INJECTION SYSTEMS, INJECTION TOOLS AND METHODS THEREOF
Patent Information
- Application Number
- MX2021000843
- Authority / Receiving Office
- MX · MX
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-04-17
- Filing Date
- 2021-01-21
- Publication Date
- 2026-02-25
- Estimated Expiration
- 2039-07-25
AI Technical Summary
Existing injection systems for administering liquid formulations to plants, such as trees, are labor-intensive, cause damage due to drilling and require significant pressure, leading to tissue trauma, and are unsuitable for smaller plants, with issues of clogging and non-targeted chemical release into the environment.
The development of injection tools with a penetrating delivery body featuring lateral distribution ports oriented transversely to the longitudinal axis, minimizing tissue obstruction and allowing low-pressure formulation delivery, and a self-penetrating design for efficient insertion without prior drilling, suitable for various plant sizes.
The solution enables efficient, low-trauma delivery of formulations directly into plant tissues with minimal environmental release, reducing chemical dosage and minimizing plant damage, while allowing precise modulation of plant phenotypes and pest control.
Abstract
Description
INJECTION SYSTEMS, INJECTION TOOLS AND METHODS THEREOF TECHNICAL FIELD Penetration of plants and administration of formulations to plants in penetration. BACKGROUND Liquid formulations of active ingredients, eg, insecticides, fungicides, nutrients or growth promoters, are in various examples injected into a plant, such as the cambium of a tree trunk. Liquid formulations are administered to maintain or improve the health of the tree. This procedure is practiced in other examples on other (partly woody) plants, such as grape vines. WO 2012 / 114197 A1 and WO 2015 / 110535 A1, for example, describe methods and corresponding systems for injecting active ingredient formulations into trees. In these systems, a hole is drilled in the sapwood to the cambium of the tree, and the outer end of this hole is closed with a dowel. An injection needle is inserted through the pin into the inside of the hole. A metered amount of the active ingredient formulation is administered through the injection needle by means of a metering device. The formulation of active ingredients is gradually absorbed by the cambium. In one configuration, a plug is provided having an axial channel and lateral exit openings in the bore. The active ingredient formulation is delivered through the axial channel and passes through the lateral outlet openings into the cambium. In another configuration, a needleless dispensing device is used with a pin having an integrated check valve. In each of the configurations, the pin is either removable or remains in place on the tree trunk, for example, for additional treatments. GENERAL DESCRIPTION The present inventors have determined that a problem to be solved includes minimizing the system profile (size or shape) for injection tools to minimize damage to a subject plant while minimizing labor for penetration and delivering fluid formulations to plants (eg, formulation including one or more of a liquid, gas, gel, vapor, aerosol, or the like). The above exemplary systems are labor intensive in the sense that the treated plant parts, in particular the tree trunks, are first drilled and the dowels inserted into the drilled holes. The liquid formulation is delivered through the plug, for example, by means of a syringe-like device having a barrel and a plunger to drive the fluid into the shaft. Precision filling of the hole with a specific amount of the active ingredient formulation is difficult. Plant tissue preferentially moves towards the bore of the plug or syringe, eg, along an axis of insertion and delivery of the liquid formulation, and obstructs the bore or orifice. Administration of the liquid formulation requires, in some instances, significant pressure via an actuated plunger to penetrate the grown plant tissue and infiltrate the plant. In some examples, the pressurized liquid formulation damages plant tissue, thereby defeating treatment otherwise delivered with the liquid formulation. In other examples, the plant is re-drilled to perforate the previous hole or form a new hole, causing additional trauma to the plant. QRnozn / i ζηζ / 3 / γ In yet other examples, prior systems including drill bits, dowels or the like are robust and are used with correspondingly robust shafts that support the weight of the dowels and resist drilling the hole and receiving the dowel. These systems are difficult to use with plants that have smaller profiles including, but not limited to, saplings, younger trees, vines, or the like, as drilling holes and supporting the weight of the pegs decreases integrity. structure of the plant and may cause tilting, deformation or the like. The present inventors have developed injection tools, injection systems having the injection tools, and methods that address at least these problems. Example injection tools described herein include a penetrating delivery body configured to penetrate a plant and deliver liquid formulations in a manner that distributes the formulations to plant tissue while minimizing damage to the plant. Injection tools include a penetrating element that penetrates into the plant, for example, along a longitudinal axis of the penetrating dispensing body. The penetrating distribution body includes a distribution element, such as one or more distribution ports, along the length of the body. The one or more dispensing ports open laterally along the penetrating dispensing body, in one example, relative to the longitudinal axis of the body. As the plant moves around the penetrating element, for example, during insertion in an inverted direction along the longitudinal axis of the body and toward the proximal portion of the body, the one or more delivery ports embed from the distal portion and remain open for delivery of the liquid formulation. Additionally, as described above, plant tissue can move into syringe ports, pin holes, or the like provided along the longitudinal axis of the body. Because the one or more delivery ports deliver liquid formulations along a different vector relative to the longitudinal axis of the penetrating delivery body, the ports remain open and a minimum pressure (relative to pressure applied with a plunger and powered cylinder) delivers the liquid formulation. For example, the one or more dispensing ports are open, extend laterally, dispense liquid formulation or the like in a misaligned orientation (eg, transverse, along an offset angle, orthogonal, greater than 5 degrees, greater than 10 degrees or more) in relation to the longitudinal axis of the body in order to minimize obstruction by plant tissue. In other examples, the one or more distribution ports are embedded from the outside of a penetrating distribution body profile, and consequently remain free of plant tissue. For example, the one or more distribution ports are provided along the channels of the anchoring elements (for example, threads, grooves, serrated edges, clips, scalloped surfaces, or the like), within distribution reservoirs within the penetration distribution body profile or the like. The one or more delivery ports are within the body profile, and with penetration of plant tissue the ports do not engage with plant tissue in a manner that promotes clogging. Instead, the one or more distribution ports are embedded from the penetrator and, at least in some examples, the plant tissue itself. Consequently, liquid formulations delivered to the injection tool are easily received at the plant and delivered with minimal pressure or effort. In addition, in the examples that include tanks, as described in the present description, the walls, surfaces or the like close to the QRnozn / i ζηζ / 3 / γ injection tool in combination with the surrounding plant tissue provide cavities within the plant, and liquid formulations reside in these cavities for gradual uptake by the plant. The injection tools, the injection systems having the injection tools, and the methods described herein facilitate the continuous application of liquid formulations that include active ingredients to a wide variety of plants, including, but not limited to , perennial plants with any type of trunk or stem size. The use of chemical agents as active ingredients for pests and diseases is a controversial issue. Today, pesticides are often applied either by foliar application (sprays) and / or treatment of planting material (eg seed care). In this way, a large amount of the chemicals used does not reach the target plant or pest, but is released into the environment where it may affect beneficial organisms (eg bees) and / or cause environmental contamination (eg , groundwater). Therefore, a problem with the present disclosure is to minimize the non-targeted release of active ingredients. Especially when it comes to the treatment of trees and other plantation plants such as bananas, the foliar application of especially conventional pesticides is a major environmental problem. In some embodiments, the present disclosure describes environmentally acceptable compositions and methods that provide solutions to the aforementioned problem and reduce active ingredient dosage rates in order to reduce or avoid unfavorable environmental or toxicological effects while still allowing effective pest control. . Because the injection tools described herein dispense liquid formulations into the plant, and allow the formulations to reside within the plant without pressure from a plunger, pump, or the like, the formulations remain within the plant with minimal (eg, minimal or no) risk of leakage from the formulation. Another problem is the fact that the control of pests on fruits and other food plants is legally restricted. Conventional chemical pesticides can only be used during certain times of the growing season to avoid the accumulation of chemical residues on fruits or plant products. Therefore, it is desired to replace chemical pesticides with biological control agents that are approved for human consumption. However, these control agents normally have high product costs that make a foliar application through spray applications in tree plantations and other plants such as plantain, coffee or cocoa punitively expensive. Therefore, it is desired to substantially reduce the amount of biological active ingredients in the treatment especially of trees, shrubs and other planting plants. Therefore, a further problem addressed by the present disclosure relates to a process for modulating the phenotype of a plant or a multitude of plants by installing a plant injection system according to the disclosure in the plant or multitude of plants. and administering a liquid formulation of an active ingredient to modulate the phenotype of the plant. A further problem addressed by the present disclosure relates to a method for modulating plant phenotypes, for example to treat, prevent, protect and immunize, which means inducing local and systemic resistance to plants from pathogen attacks and pest attacks. . The injection tools described herein deliver liquid formulations directly into the plant without spraying and the corresponding loss of errant applied sprayed formulations. The subject matter described in the present disclosure places the formulations in direct contact with plant tissues and the formulations are administered in a manner Selective QRnQ7n / l 7Π7 / 3 / Υ at appropriate times to minimize (eg, eliminate or minimize) the accumulation of chemical residues on fruits or crops as stipulated. BRIEF DESCRIPTION OF THE DRAWINGS The description is explained in more detail below on the basis of the illustrative embodiments shown in the drawings. Figure 1 shows a schematic view of one embodiment of an injection system with a first embodiment of an injection tool in axial cross section and inserted into a tree trunk, as well as the first, second and third embodiments of injection devices. supply; Figure 2 shows a side view of the injection tool of the injection system of Figure 1; Figure 3 shows an axial cross section of the injection tool of the injection system of Figure 1 along the line lll-lll of Figure 2; Figure 4 shows a general view of the first embodiment of the delivery device of the injection system of Figure 1; Figure 5 shows a schematic hydraulic diagram of the Figure 4 supply device; Figure 6 shows a side view of the second embodiment of the delivery device of the injection system of Figure 1; Figure 7 shows a schematic hydraulic diagram of the Figure 6 supply device; Figure 8 shows a schematic hydraulic diagram of an assembly of various supply devices according to Figure 6; Figure 9 shows a view of a second embodiment of the injection tool according to the description; Figure 10 shows a longitudinal cross-sectional view of the injection tool of Figure 9; Figure 11 shows a front view of a third embodiment of the injection tool according to the description; Figure 12 shows a longitudinal cross-sectional view of the injection tool of Figure 11; Figure 13 shows a left half of a side view of the injection tool of Figure 11; Figure 14 shows a front view of a fourth embodiment of the injection tool according to the description; Figure 15 shows a longitudinal cross-sectional view of the injection tool of Figure 14; Figure 16 shows a side view of the injection tool of Figure 14; QRnQ7n / l 7Π7 / 3 / Υ Figure 17 shows a perspective view of a fifth embodiment of the injection tool according to the description; Figure 18 Figure 19 Figure 20 shows a front view of the injection tool of Figure 17; shows a side view of the injection tool of Figure 17; shows a perspective view of a sixth modality of the injection tool QRnQ7n / l 7Π7 / 3 / Υ according to the description; Figure 21 Figure 22 Figure 23 shows a front view of the injection tool of Figure 20; shows a side view of the injection tool of Figure 20; shows a perspective view of a seventh embodiment of the injection tool according to the description; Figure 24 Figure 25 Figure 26 with the description; and Figure 27 Figure 28 shows a front view of the injection tool of Figure 23; shows a side view of the injection tool of Figure 23; shows a side view of an eighth embodiment of the injection tool according to shows a cross-sectional view along the line A-A of Figure 26. shows a perspective view of a ninth embodiment of an injection tool according to the description; Figure 29 Figure 30 Figure 31 shows a side view of the injection tool of Figure 28. shows a cross-sectional view along line A-A in Figure 29. shows a perspective view of a tenth embodiment of an injection tool according to the description; Figure 32 Figure 33 shows a side view of the injection tool of Figure 31. shows a cross-sectional view along line A-A of Figure 32. DESCRIPTION OF THE MODALITIES In the following description, certain terms are used for convenience and are not intended to limit the description. The terms ''right'', ''left'', ''above'', ''below'', ''below'' and ''above'' refer to the instructions in the figures. Terminology comprises the terms mentioned explicitly, as well as their derivations and terms with a similar meaning. In addition, terms relating to space, such as vertical, below, below, above, above, proximal, distal, and the like, can be used to describe the relationship of one item or feature to another item or feature as illustrated in the figures. It is to be understood that the terms in relation to space are intended to encompass different positions and orientations of the devices during their use or operation, in addition to the position and orientation shown in the figures. For example, if a device in the figures is rotated, elements described as below or below, other elements or features would then be oriented above or above the other elements or features. Therefore, the illustrative term below can encompass the positions and orientations of above and below. The device can be oriented in any other way (rotated 90 degrees or in other orientations) and space-related descriptors used herein are interpreted accordingly. Likewise, descriptions of movement along and around various axes include various special positions and orientations of the device. To avoid repetition in the figures and descriptions of the various illustrative aspects and embodiments, it is to be understood that some features are common to many aspects and embodiments. The omission of an aspect from a description or figure does not imply that the aspect is missing in modalities that incorporate that aspect. Instead, the aspect may have been omitted for clarity and to avoid unnecessary description. In this context, the following applies to the rest of this description: If, for the purpose of clarity of the drawings, a figure contains reference signs which are not explained in the directly associated part of the description, then reference is made to the previous or next description sections. Also, for clarity, if in a drawing not all features of a part are provided with reference signs, reference is made to other drawings showing the same part. Similar numbers in two or more figures represent the same or similar items. The problems described in the present description are addressed by the injection systems, injection tools and methods described in the present description. Furthermore, embodiments of injection systems, injection tools or methods according to the description are the subject of the dependent claims. In one aspect, the description is an injection tool for a plant injection system configured to introduce an active ingredient formulation (eg, a fluid that includes one or more of a liquid, gas, gel, vapor, aerosol, colloid, etc.). , micro / nanoparticles, biological organisms or the like) in a plant. The injection tool is configured to be inserted into the plant. It has a penetration structure configured to generate a hole in the plant to insert the injection tool into the plant. In a further aspect, the description is a process for modulating the phenotype of a plant or a multitude of plants by installing a plant injection system according to the description in the plant or multitude of plants and applying a liquid formulation of a active ingredient to modulate the phenotype of the plant. The term "piercing structure" or "piercing element", as used in the present description, refers to any arrangement that is adequate or appropriate to generate the hole while the insertion tool advances towards the plant. Some embodiments include a self-plunging feature, such as cutting elements, that automatically form the injection tool plunge hole insert into the plant. The penetrating structure or penetrating element includes the examples described in the present description, as well as their equivalents. The term "hole" in this connection refers to a plant-provided cavity, channel, or similar structure, which is suitable for receiving the insertion tool or a portion, particularly a front or distal portion, thereof. By plants is meant all plants and plant populations, such as wild plants, cultivated varieties, and desirable and undesirable plant varieties (which may or may not be protected by plant variety or plant breeder's rights). Cultivated varieties and plant varieties can be plants obtained by conventional methods of propagation and cultivation that can be assisted or supplemented by one Ofinozn / I 7Π7 / 3 / Υ or more biotechnological methods, such as the use of double haploids, protoplast fusion, random and site-directed mutagenesis, molecular or genetic markers, or through bioengineering and genetic engineering methods. The term "plant" includes whole plants and parts thereof, including, but not limited to, vegetative shoot organs / structures (for example, leaves, stems, and tubers), roots, flowers, and floral organs / structures ( bracts, sepals, petals, stamens, carpels, anthers, and ovules), seed (including embryo, endosperm, and seed coat), and fruit (the mature ovary), plant tissue (for example, vascular tissue, soil and the like) and cells (eg, guard cells, egg cells and the like), and progeny thereof. By "fruit" and by "vegetable product" should be understood any plant product that is also used after harvesting, for example, fruits in the proper sense, nuts, wood, etc., that is to say anything of economic value that is produced by the plant. As used herein, "plant pathogen" refers to an agent capable of infecting and / or invading a plant, in whole or in part, and causing infection or disease or symptoms thereof in the plant. As used herein, "activity" means a component or components of fermented products that can be extracted therefrom in an aqueous solvent and exert an effect of mitigating, ameliorating, treating, preventing, and inhibiting the growth of a pathogen of the disease. plant when applied to a plant part and / or soil. The term "bactericidal" as used herein refers to the ability of a substance to increase mortality or decrease health (eg, decrease growth rate, viability, proliferation, metabolism, longevity, etc.) of the bacteria. Biological Control: As used herein, "biological control" is defined as the control of a pathogen or insect or any other unwanted organism through the use of a second organism. An example of a known biological control mechanism is the use of enteric bacteria to control root rot by fungi that compete for space on the root surface. Bacterial toxins, such as antibiotics, have been used to control pathogens. The toxin can be isolated and applied directly to the plant or the bacterial species can be administered to produce the toxin in situ. Fungicides, as well as the terms fungicidal and fungicidal, refer to the ability of a substance to increase mortality or decrease health (for example, decrease growth rate, viability, proliferation, metabolism, longevity, etc.) of phytopathogenic fungi. As used herein, the term phytopathogenic fungi encompasses all organisms of the fungal kingdom, including the Oomycetes, that can cause damage to plants and / or damage to plant parts and / or loss of fruit. or harvested vegetables. The term "fungus" or "fungi" as used herein includes a wide variety of spore-bearing nuclear organisms that are devoid of chlorophyll. Examples of fungi include yeasts, molds, grapevine disease, mushrooms, and mushrooms. "Fungal pathogen" includes fungi of the following phyla: Myxomycota, Plasmodiophoromycota, Hyphochytnomycota, Labynthulomycota, Oomycota, Chytridiomycota, Zygomycota, Ascomycota, and Basidiomycota. "Fungal inhibition" includes both fungicidal and fungistatic activity, QRnQ7n / l 7Π7 / 3 / Υ as measured by reduced fungal health (eg, decreased growth rate, viability, proliferation, metabolism, longevity, etc.) compared to a control. A "susceptible fungus" is a fungal strain that demonstrates a beneficial or desired response separately to one component of the system provided herein or to a combination of both components. Insecticides as well as the term insecticide refer to the ability of a substance to increase mortality or decrease health (for example, decrease the growth rate, viability, proliferation, metabolism, longevity, etc.) of insects. insects. As used herein, the term insects encompasses all organisms of the class Insects. Nematicide refers to the ability of a substance to increase the mortality or decrease the health (eg, decrease the growth rate, viability, proliferation, metabolism, longevity, etc.) of nematodes. In general, the term nematode encompasses eggs, larvae, juvenile and mature forms of said organism. Acaricidal refers to the ability of a substance to increase mortality or decrease health (for example, decrease the growth rate, viability, proliferation, metabolism, longevity, etc.) of ectoparasites belonging to the class Arachnids , subclass Acarus. Microbiocidal: Microbicidal, as used herein, refers to the ability of a substance to increase mortality or decrease health (eg, decrease growth rate, viability, proliferation, metabolism, longevity, etc.) of the microorganism. The term "plant health" or "plant health" is defined as a condition of the plant and / or its products that is determined by various aspects, alone or in combination with each other, such as yield, vigor of the plant, the quality of the harvested plant parts, tolerance to abiotic and / or biotic stress, viability, proliferation, metabolism, longevity, etc.). "Prevent infection" in the present context, means that plants treated with the system described in the present description, avoid infection (for example, such as infection by pathogens) or disease symptoms or all of the above, or show reduced or minimized or less frequent infection or disease symptoms or all of the above, or induce or increase defense / antibody responses to stimuli in plants to prevent or reduce or minimize infection or disease symptoms or all of the above, which they are the natural result of plant interactions with infectious or disease-causing pathogens as compared to plants not treated by the methods, tools and system of the description. That is, infectious or disease-causing pathogens are prevented from causing disease and / or associated disease symptoms. Infection and / or symptoms are reduced by at least about 10%, 20%, 30%, 40%, 50%, 60%, 70%, or 80% or more compared to a plant not treated with the system being described in the present description. Pesticide: The term “pesticide” as used herein refers to the ability of a substance to decrease health (for example, decrease the growth rate of a pest, i.e., an unwanted organism, the viability, proliferation, metabolism, longevity, etc.) or increase the mortality of a pest. In general, pesticide means the ability of a substance to increase the mortality or decrease the health (eg growth rate, viability, proliferation, metabolism, longevity, etc.) of phytopathogenic fungi. The QRnozn / i ζηζ / 3 / γ definition further includes the ability of a substance to increase mortality or decrease health (eg, decrease growth rate, viability, proliferation, metabolism, longevity, etc.) of phytopathogenic fungi and / or plant pests. The term is used in the present description to describe the property of a substance to exhibit activity against phytopathogenic fungi, insects, mites and / or nematodes. Plants are exposed to many microbes, including bacteria, viruses, fungi, and nematodes. Diseases of ornamental, woodland and other plants caused by such plant pathogens, particularly bacterial pathogens, are a worldwide problem with enormous economic impact. The severity of the destructive disease process depends on the aggressiveness of the phytopathogen and the host's response. The tools, system and methods of the disclosure allow for a systemic or targeted application of active ingredients in the vascular system of a plant, such as in the stem of a plant. The description can be applied to a wide variety of plants, including, but not limited to, those listed below, as well as any other disease pathogens and / or complexes found in agriculture, especially horticulture. Another problem underlying the present disclosure is the desire for plant-enhancing compositions, a process commonly referred to hereinafter as "plant health." Healthier plants are desirable, as they result in, among other things, better yields and / or better quality of plants or crops, specifically better quality of harvested plant parts. Healthier plants are also more resistant to biotic and / or abiotic stress. A high resistance against biotic stress, in turn, allows those skilled in the art to reduce the amount of pesticides applied and, consequently, slow down the development of resistance against the respective pesticides. The increase in yield can be characterized, inter alia, by the following improved plant properties: increased plant weight; and / or increase in the height of the plant; and / or increased biomass, such as higher total fresh weight (FW); and / or increase in the number of flowers per plant; and / or higher grain and / or fruit yield; and / or more suckers or side shoots (branches); and / or larger leaves; and / or increased shoot growth; and / or increased protein content; and / or increased oil content; and / or increased starch content; and / or increased pigment content; and / or increase in chlorophyll content (chlorophyll content has a positive correlation with the rate of photosynthesis of the plant and consequently the higher the chlorophyll content the higher the yield of a plant), increase in quality of a plant. According to the present description, the yield is increased by at least 4%. In general, the increase in yield can be even higher, for example 5 to 10%, for example 10 to 20%, or even 20 to 30%. Another indicator for plant condition is plant vigor. The vigor of the plant is manifested in several aspects, such as the general visual appearance. Another indicator for plant condition is the "quality" of a plant and / or its products and / or the plant's tolerance or resistance to biotic and / or abiotic stress factors. Biotic and abiotic stress, especially in the long term, can have deleterious effects on plants. According to one embodiment, the injection tool of the disclosure is part of an injection system that may allow central delivery of the active ingredient to one or more plants. All the different components of such a system can be provided in the form of a kit supplied to the farmer or professional applicator. Such QRnozn / i ζηζ / 3 / γ kit may comprise the following components: (1) one or more injection tools and / or (2) one or more delivery devices that can be configured to connect to the injection tool and / or ( 3) one or more active ingredients. Said kit may comprise components (1) and (2), or said kit may comprise components (1) and (3), or said kit may comprise components (2) and (3). By having the penetrating structure or the penetrating element, the injection tool can be inserted, such as screwed, driven or nailed, into the plant without prior formation of a receiving recess. Rather, the injection tool according to the description more or less automatically generates the required hole as it is advanced towards the plant. Therefore, it can be inserted into the plant in a single work step. Therefore, the injection tool allows the amount of work involved to be reduced, which can make the entire process considerably more efficient. The injection tool is configured to be inserted into a woody region of the plant, particularly a tree trunk, or is configured to be inserted into a non-woody region of the plant, particularly a pseudostem. In embodiments of the injection tool, the penetrator structure or penetrator element includes a cutting edge configured to cut the hole in the plant when the injection tool is inserted into the plant. In this context, the term cut should be broadly understood as any structure that facilitates the carving, cutting or opening of the plant in the position where the injection tool is inserted. It includes, but is not limited to, puncturing the liner, perforating, cutting, slicing, shredding, wedges, or any similar arrangement. Such a cutting edge makes it possible to efficiently generate the hole in the plant to generate a cavity in which the injection tool is placed. In particular, such a cutting edge allows the insertion tool to efficiently self-generate the hole into which it is to accommodate. In one embodiment, the cutting edge of the penetrating structure includes one or more cutting elements, similar in some respects to a drill bit, wound along a longitudinal axis of the injection tool. Such a drill bit portion allows the injection tool to be driven efficiently towards the plant. Thus, the cutting edge drill bit portion of the penetrating structure includes a chip groove extending along and bounded by the cutting edge. Such a chip groove allows removal of plant tissue chips generated when the injection tool is driven towards the plant so that adequate feed of the injection tool is achieved. The cutting elements of the penetrating structure optionally include threads rolled along a longitudinal axis of the injection tool. The threads or other anchoring elements described herein (collectively as anchoring elements) facilitate the attachment and retention of the injection tool in the plant. In one example, in combination with the cutting elements, the injection tool consolidates plant penetration, injection tool positioning, and injection tool retention in the plant. The injection tool includes a base or head and a shank (or generally a penetration distribution body including, but not limited to, a shank body profile, wedge body profile, or the like). Optionally, the penetration element of the penetration distribution body includes the cutting element, such QRnozn / i ζηζ / 3 / γ as a drill bit portion, and the screw portion, and the screw portion is closer to the head than the drill bit portion. An external diameter (or more generally, profile) of the threads or other anchoring element is optionally larger than an external diameter (or profile) of the cutting element. The shank optionally includes a ridged portion (eg, one or more closure ridges) located between the cutting element and the base, and on which at least one closure ridge is formed. An external profile of the peripheral flange is larger than the external diameter of the threads or the rest of the penetration distribution body. The closure lip forms a seal between the injection tool and the plant with the interior of the plant, and in some examples facilitates visual assessment of the penetration depth of the injection tool. In another embodiment, the penetrating element includes a wedge body profile (eg, tapering from a proximal to a distal portion, such as a dowel, nail, wedge, or the like). A wedge body profile allows the injection tool to be advanced efficiently towards the plant, for example with a hammering or driving action. In this example, the injection tool includes a penetration distribution body that includes one or more than one wedge or shank profile having a conical shape. For example, the penetrating distribution body is conical and includes external longitudinal grooves or grooves (eg, examples of distribution tanks). The injection tool includes an impact head (optionally as a base feature). Optionally, a conical portion of the penetration distribution body is closer to the base than the tip portion of the nail (or cutting element). In another example, the penetration delivery body includes one or more closure ridges located between the conical portion and the impact head having at least one peripheral ridge. The profile of the peripheral rim is, in one example, larger than a profile of the conical portion of the penetration distribution body. In yet another embodiment, the injection tool has a wedge portion (wedge body profile) in a spear point shape equipped with the penetrator including a leading end or cutting edge at its front end or distal portion. In this convention, the term "front end" can refer to a distal portion of the penetrative delivery body directed toward the plantar and in engagement with the plantar at penetrative. This wedge body profile example is an alternative wedge profile that allows for efficient advancement of the injection tool in the plant. In particular, the wedge-shaped body profile opens the plant by spreading cut plant tissue. In some examples, the wedge body profiles access the interior of the plant with minimal damage (eg, little or no damage) to the interior structure of the plant. For example, propagation with a wedge-shaped body profile leaves the liquid transport structure of the plant, such as capillaries or the like, minimally damaged (including undamaged or minimally damaged). In one example, the wedge body profile includes a flat spearhead or leading edge having two or more wing-shaped side portions. Optionally, the profile of the wedge body is chosen based on the plant for the treatment. For example, the sturdiness of the wedge body profile is tailored to the desired application or plant. Depending on the plant, the cutting element is selected with a nail point type wedge (for example, a circular or conical type wedge) or a wedge body profile having two or more wings extending from a leading edge of the penetration distribution body. QAnQZn / l 7Π7 / 3 / Υ The injection tool optionally includes an impact head, for example, as part of the base. An impact head allows efficient advancement of the injection tool within the plant, for example when hammering on the impact head. Optionally, the penetration distribution body that includes one or more of the profiles described in the present description includes one or more openings, such as distribution tanks. Distribution reservoirs provide one or more spaces, cavities, recesses, voids, or the like within the plant when the injection tool is inserted. Distribution reservoirs facilitate the distribution of liquid formulations, for example, by retaining the formulations in the cavities of the reservoirs and at the same time coupling the formulations with the plant tissue. In other examples, the dispensing reservoirs include dispensing channels that facilitate delivery of the liquid formulations within the channels and along the profile of the penetrating dispensing body. The injection tools described herein include one or more inlet passages and associated delivery ports. Optionally, the injection tools include multiple inlet passages that deliver the liquid formulations to a plurality of dispensing ports. For example, injection tools include at least one inlet passage or passages, each of which terminates in at least one delivery port. Optionally, the injection tools include one or more of the dispensing reservoirs described above (sometimes referred to as openings), and the dispensing ports open into the dispensing reservoirs. The injection tools described herein include a channel (eg, an input passage) and at least one delivery port connected to the channel. The inlet passages (or channels) provide a network of distributed outlets or distribution ports for the injection tool, for efficient distribution of the liquid formulation of the active ingredient to one or more locations within the plant. The at least one distribution port extends from the main channel. The at least one delivery port (also referred to as an outlet channel) facilitates the delivery of the liquid formulation of the active ingredient to one or more locations relative to the injection tool. In some examples, when an injection tool is inserted into a plant, plant material, such as plant tissues including, but not limited to, wood, fibers, or the like, is advanced toward the distal openings or localized holes. The plant tissue in these examples obstructs the distal opening or orifice, thereby preventing or thwarting the delivery of the active ingredient formulation to the plant. In some examples, significant pressure is applied to the formulation (eg, via a piston, plunger, or the like) to unlock the distal opening or orifice. Pressure in some cases causes trauma to plant tissue. The distribution ports described in the present description (alternatively, the outlet channels) are oriented transversely in relation to the direction of penetration of the injection tools (for example, corresponding to a longitudinal axis of the body of the tools). For example, transverse delivery ports are oriented at an angle relative to the direction of penetration. In one example, the dispensing ports are oriented to open at 90 degrees relative to the direction of penetration movement. In another example, ports QRnozn / i ζηζ / 3 / γ of distribution are oriented at angles between about 100 to 180 degrees relative to the direction of the penetration movement (for example, the longitudinal axis of the body of the injection tools). Regarding the orientation of the dispensing ports, one or more of the following three directions are considered, an insertion direction, a penetrating movement direction, and an exit (or dispensing) direction. In one example, the insertion direction is the general direction in which the injection tool is inserted or advanced into the plant (eg, from the outside of the plant to the inside). The insertion direction generally conforms to an axis of the injection tool, for example, the longitudinal axis of the body described in the present description. Accordingly, the longitudinal axis of the body is used as a reference location corresponding to the direction of insertion when discussing the orientation of the dispensing ports. The direction of penetration movement is the direction in which the injection tool will move (eg, rotated) to penetrate the plant for insertion. In embodiments of injection tools having cutting elements in the manner of a drill bit portion or threads, the direction of penetration movement is along the thread of the drill bit portion or screw portion. (and in some examples it is indicated by a circle and a dot in the figures that indicate the direction of the movement of penetration in and out of the page). The dispensing ports, for example, provided between the threads, extend in a transverse orientation relative to the direction of penetration movement in addition to the direction of insertion. With the injection tool embodiments herein having wedge body profiles that taper or taper to penetrate the plant, such as injection tools with a nail point portion or a wedge portion (for example , the example wedge profiles), the direction of the plunge movement corresponds to the insertion direction. In each of the modalities described in the present description (for example, the stem or wedge profiles), the one or more distribution ports are transverse (include an exit direction or opening at a different angle) to the longitudinal axis of the body. and the corresponding insertion address. Additionally, in the example embodiments that include a shank profile, for example, having cutting elements of the thread or drill bit type, the one or more dispensing ports (for example, the exit direction or opening direction of ports) are transverse (at a different angle) to the direction of penetration movement. Accordingly, each of the insertion direction and the direction of penetration movement are collectively referred to as penetration directions, and the exit or opening directions of the delivery ports of the injection tools are transverse to the respective penetration directions. of the modalities. In some examples, the opening direction or the exit direction of the one or more distribution ports extends rearward relative to the penetration direction which includes the direction of penetration movement described herein. The term "rearward-extending" or the like in this context refers to an extension of the at least one dispensing port in an opposite or contrary orientation relative to the direction of penetrating movement. The backward extension is not limited to an extension opposite to the direction of the penetration movement, that is, a backwards direction in the strict sense, but rather to an extension at an angle with οκηοζη / ι ζηζ / 3 / γ with respect to the direction of the plunge movement other than a right angle or greater. For example, in some examples, the manifold ports are oriented 105 degrees relative to the direction of penetration movement. In embodiments that include linear delivery ports, an open end of a delivery port (the outward-facing opening of the tool) is remote from the leading end of the injection tool (for example, the penetrator) which the connection of the distribution port to the inlet passage. In other words, the dispensing port, at least near its open end, faces rearward relative to the forward end of the tool. In other examples that include delivery ports, the one or more of the delivery ports include rearwardly directed opening (eg, another example of transverse orientation) to prevent plugging during penetration (eg, one or more directions of insertion or penetration movement, collective penetration directions). For example, such an outlet channel may have a curve that turns the outlet channel back toward its outlet opening. In another example, by orienting the one or more delivery ports more than 90 degrees relative to the direction of penetrating movement, clogging of the delivery ports with plant tissue is minimized (eg, eliminated or minimized). Consequently, clogging is minimized and liquid formulations of active ingredients are delivered effectively and efficiently through one or more dispensing ports. Additionally, the injection tools described herein include distal portions, for example, having a front end (front end) or tip for the penetrating element. The one or more distribution ports are detached from the front end. Because the delivery ports are spaced from the leading end, the liquid formulation of the active ingredient is delivered remotely relative to the leading end, and in some examples is distributed peripherally around the injection tool without centralizing fluid distribution to the distal portion, such as a tip. The liquid formulation, in this way, is optimally distributed to the plant with minimal risk of clogging of the distribution ports. The injection tool has an inlet port (eg a terminal opening or the like) connected to the inlet passage or at least one delivery port. The inlet port is configured for connection to a plant injection system delivery device. Such an end opening allows a source of the liquid formulation of the active ingredient to be efficiently connected. The injection tool end opening is arranged in the injection tool head or in the impact head of the injection tool. This allows efficient attachment of the injection tool, as such a head typically protrudes from the plant when the injection tool is inserted. The injection tools described in the present description are in several examples made of or include metal or an alloy of metals. The injection tools described herein can be constructed from or include polymers or polymer alloys that can be used with any of the manufacturing methods described herein. In the production methods, the method of milling, casting or other similar methods may be used. The injection tools described herein can be constructed from or include polymers or polymer alloys that can be used with any of the manufacturing methods described herein. In the production methods, the method of milling, QRnozn / i ζηζ / 3 / γ casting or other similar methods. In an example of a production method, the injection tools are produced by a 3D printing or 3D printed method. This allows, on the one hand, sufficient stability and, on the other hand, cost-effective production of the injection tool. In addition, 3D printing makes it possible to manufacture the injection tool with comparably complex shapes in comparably small dimensions. For example, 3D printing facilitates the construction of one or more passages, ports, tanks or the like of the distribution channel system in the injection molding tool in comparably small dimensions. More specifically, 3D printing makes it possible to efficiently generate rearward-extending outlet channels as described above. The injection tool is equipped with a support face configured to come into contact with the plant at the end of the insertion of the injection tool into the plant. Such a bearing face may be implemented by a step, flange, support arms or similar structure provided to the injection tool, for example, as a component of the injection tool base. The support face can be flat or uniform. It may also have a corresponding shape (eg, arched, flat, or the like) to a portion of the plant where the insertion tool is designed for insertion. For example, it may be curved in accordance with a stem of a plant. The support face limits the advance of the injection tool on the plant. Particularly where the plant is comparably soft, as is the case with comparably small or non-woody plants, the bearing face limits penetration to prevent penetration through the opposite side of the plant while facilitating precise positioning of the distribution element. within a specific plant tissue. Additionally, the support face reinforces the connection between the injection tool and the plant. For example, the surface-to-surface contact between the support face of the base and the sole also closes the interior of the sole from the external environment and allows high pressure to be generated within the sole, for example, by means of a fuel injection system. plants as described below, in order to provide the liquid formulation of the active ingredient in the plant. Additionally, the bearing face of the base restricts the escape of the active ingredient formulation through the slot or opening created by the injection tool. In another aspect, the disclosure is a plant injection system for introducing a liquid formulation of the active ingredient into a plant. The system comprises an injection tool as described above and a delivery device. The delivery device is configured to connect to the injection tool to deliver the active ingredient formulation to the injection tool. Such a system allows the liquid formulation of the active ingredient to be efficiently delivered to the plant for its treatment. The delivery device is designed as a pneumatically or hydraulically operated metering pump configured to deliver a fluid formulation (eg, a fluid that includes one or more of a liquid, gas, gel, vapor, aerosol, or the like). Alternatively, the supply device is designed as a pneumatic or hydraulic supply pump configured to provide one or more pressures. In some examples, the pressures provided are close to but greater than ambient pressure to provide a gradual, low-pressure delivery of the formulation to a plant. In another example, the delivery device delivers the liquid formulation passively, for example, by means of hydrostatic pressure or capillary action. οκηοζη / ι ζηζ / 3 / γ The delivery device, in one example, is designed as a two-chamber assembly, where the two chambers are arranged in a container, one chamber of which contains a pressure medium and the other contains a formulation of the active ingredient that can be be ejected from the two-chamber assembly through a valve by the pressure medium. As mentioned above, the injection system according to the description is suitable to be applied to several different plants. In this way, the shape and dimensions of the injection tools involved are advantageously adapted to the desired application. More specifically, the injection tool can be designed to be applied to comparably large plants and specifically to trees, shrubs, or other woody plants. Or, it may be designed to apply to comparably small or smaller plants. For example, injection tools suitable for woody plants may have an overall length of more than 50 millimeters (mm) or in the range of 60mm to 200mm. The respective penetration distribution bodies (for example, the stem or wedge body profiles) include lengths of 35mm or more and, in some examples, are in the range of between about 35mm and 160mm, and / or a width of 30 mm or more or are in a range between about 35 mm and 150 mm. By contrast, injection tools intended for comparably small plants optionally have an overall length of between about 3mm and 20mm, between about 6mm and 16mm, or less than 10mm. In yet another aspect, the disclosure is a process for modulating the phenotype of a plant or a multitude of plants, said process including the steps of (i) installing a plant injection system in accordance with the disclosure provided herein on the plant or a multitude of plants, and (ii) applying a liquid formulation of an active ingredient to modulate the phenotype of the plant. The active ingredient is selected from the group consisting of (i) pesticides, (¡i) growth regulators. The active ingredient is a compound or biological composition approved for food and feed application. In one example, the process is carried out by one or more of a) to e): a) the active ingredient is applied / transferred to the plant in an automatically controlled scheme / method during the vegetation period (growing season), b) the active ingredient is transferred from a depot to the plant via a pneumatic conveying system (Takt-Schub), which minimizes the amount of active ingredient / active ingredient formulation in the system fluid lines and delivery passages and ports. distribution of injection tools, c. a multitude of plants are supplied with the active ingredient from a central reservoir, while optionally the transfer to each plant is individually controlled, d. the active ingredient can be automatically selected from a pool of pools to achieve a different effect, such as different phenotype modulation, and. water may be provided between applications of one or more active ingredients; the plant is a tree or plants with pseudostems, such as banana plants; trees may include, for example, fruit trees, cocoa trees, coffee trees, or ornamental trees (the term "tree" is further explained below); QRnQ7n / l 7Π7 / 3 / Υ the modulation of the phenotype of the plant or a multitude of plants is selected from the group consisting of controlling and / or avoiding plant diseases, controlling and / or avoiding pest attacks, improving and / or control the health of plants, improve and / or control the growth of plants and / or the quantity and / or quality of plant products, such as fruits. The disclosure further relates to a multitude of plants, plant plantations, or plant fields, wherein the plants are connected to a plant injection system in accordance with the disclosure to provide, in one embodiment, phenotype modulation. A receiving recess should be understood as any type of cavity that is created in the woody region of a plant for the purpose of inserting an injection tool. In particular, a receiving recess includes a drilled hole. The term self-drilling, in the context of the description, is to be understood as a self-penetrating modality of the injection tool by which the receiving recess, necessary for the insertion of the injection tool into the plant, can be generated directly during the injection procedure. insert itself, so there is no need to create a receiving recess before inserting. According to the views in Figures 1-3, an embodiment of an injection system according to the description comprises a first embodiment of an injection tool 1 according to the description, having a stem body profile that is self-drilling Additionally, it comprises a delivery device that can be attached to the injection tool 1 and by means of which an active ingredient formulation W is delivered, in a metered amount, to the injection tool 1. The active ingredient formulation W can be delivered then to the plant to be treated, eg a tree, via the injection tool 1. The delivery device can be configured in various ways. For example, Figure 1 shows three modes 100, 200 and 300 of delivery devices. When the injection system is actually in use, only one of these variants is attached to the injection tool 1 at a time. The design and function of the different variants of the delivery device are described in more detail below. Figure 2 shows a side view of the injection tool 1. In one example, the injection tool 1 (and other injection tools described herein) is a single component, eg 3D molded or printed. In other examples, the injection tools described herein are multiple components, 3D molded or printed, and then assembled. The injection tool 1 substantially has a penetration distribution body having a body profile, in this example a stem body profile. The injection tool includes a screw-shaped body profile exterior with a head 10 (for example, the base 10) and a stem 20 (for example, the penetration distribution body 20). The penetration delivery body 20 is optionally divided into three portions, that is, a distal drill bit portion 20a (a penetration element 20a), an intermediate screw portion 20b (a delivery element 20b), and a delivery portion 20a. rear flange 20c (a closure element 20c). The penetration element 20a directed away from the base 10 is designed as a (wood) hole. It comprises the rolled cutting elements 21 and the adjacent chip grooves as components of the penetrating element 20a. The distribution element 20b (for example, the intermediate screw portion in this example) includes the threads 22 as a rolled cutting edge and anchoring element of the structure. QAnQZn / l 7Π7 / 3 / Υ of penetration of the injection tool 1. An external diameter of the intermediate portion 20b is in one example larger than that of the front portion 20a. The closure ridges 23 (of which there are three in this example) are formed on the closure element (or rear portion 20c) directly adjacent to the base 10. The external profile (eg, diameter, projection relative to the rest of the body or the like) of these peripheral ridges 23 is larger than the corresponding external profile (for example, the diameter or the like) of the intermediate portion 20b. As best seen in Figure 3, an outwardly open cylindrical joint or terminal opening 11 (an terminal fitting) is provided in the base 10 and is connected, for communication therewith, to the longitudinal channel 25 (for example, a passageway). inlet 25) provided as a main channel in the penetration distribution body 20. The longitudinal channel 25 is optionally configured as a blind hole and extends through at least the rear portion 20c and the intermediate portion 20b of the stem 20 ( an example of a penetration distribution body). In the region of the intermediate portion 20b of the stem 20 (the distribution element of the penetrating distribution body), the laterally extending radial outlet channels 27 (for example, one or more distribution ports) are provided which connect to the longitudinal channel 25 for communication therewith. The radial outlet channels 27 (distribution ports) open laterally in the region of the intermediate portion 20b of the stem 20 between the thread turns 22 thereof. In one example, the thread turns provide one or more dispensing reservoirs between the thread turns, and the dispensing ports are within the turns. Consequently, the distribution ports are embedded from the outside of the body profile, which includes the peripheral ends of the thread turns. The head 10 (an example of a base) has, for example, a hexagonal outer contour, so that a screwdriver with a hexagonal socket can be connected thereto. The injection tool 1, in one example, is made of metal (including metal alloys) and is produced by 3D printing. In use, the injection tool 1 is inserted into a woody region B of a plant to be treated, such as a tree trunk, as shown in Figure 1. More specifically, the injection tool 1 penetrates the plant along an insertion direction 30 (for example, an example of a penetration direction) towards which it is sent to the trunk of the tree. The insertion direction 30 extends along the axis of the insertion tool 1, the longitudinal axis of the body 40. This embodiment of the injection tool 1 includes a self-drilling design with the cutting elements 21 of the injection tool 1 , and insertion is performed in a single working step by screwing (for example, by means of an electric or manual screwdriver), without drilling a pilot hole. The drill portion 20a (an example of the penetration element) of the shank 20 drills a hole, the screw portion 20b of the shank (in this embodiment, the delivery element and the anchoring element) causes further advancement and secure retention. of the injection tool 1. The peripheral ridges 23 of the third portion 20c (the closure element) further engage the injection tool 1 to the outside and enclose the plant penetration. Additionally, the penetration depth of the injection tool 1 is monitored visually with the peripheral ridges 23. For example, as each of the peripheral ridges 23 reaches the outside of the plant, the operator recognizes that the penetration element 20a (also referred to as the drilling portion) is at a corresponding penetration depth. QRnQ7n / l 7Π7 / 3 / Υ While the injection tool 1 is advanced by means of the screw portion 20b, the insertion tool 1 rotates and thus moves along the threads 22 in a direction of penetration movement 31 shown in Figure 2 with a arrow parallel to the threads. A pitch or angle of thread 22 in one example defines the direction of plunge movement 31 (another example of a plunge direction). The screwing of the injection tool 1 (for example, the rotation of the tool) and the movement of the threads 22 along the direction of the penetration movement 31 axially moves the injection tool 1 along the direction of insert 30. Referring now to Figure 3 and Figure 2, the outlet channels 27 (examples of distribution ports) are linear and extend in an outlet direction 32 transverse (at a relative angle) to the direction of penetrating movement 31 For example, the outlet channels 27 extending in the outlet direction 32 are at an angle of 90 degrees or less relative to the direction of penetrating movement 31 (for example, the outlet channels are perpendicular or open in an inverse direction relative to the direction of the penetration movement 31). In Figure 3, the output direction 32 is along the plane of the page and transverse to each of the penetrating direction 31, the insertion direction 30 (collectively the penetrating directions), and the longitudinal axis of the page. body 40 corresponding to at least the insertion direction. In Figure 2, the output direction is shown to extend into and out of the page with the circle and dot symbol, and again transverse to the direction of the plunge movement 31, the insertion direction 30 and the axis. longitudinal of the body 40. For example, the outlet channels 27 extending in the outlet direction 32 are at an angle of 90 degrees or less relative to the insertion direction 30 (for example, the outlet channels are perpendicular or open in a reverse direction relative to the direction of insertion 30). The transverse orientation of the exit channels 27 isolates the exit channels 27 from plant tissues during insertion and consequently minimizes tissue engagement and possible obstruction of the exit channels. With the injection tool 1 inserted into the plant (as part of a penetration configuration), one of the delivery devices 100, 200, 300 (or a delivery device of another configuration) is attached in a sealed manner to the injection tool. injection 1 into an inlet port, in this example the junction opening 11. A metered amount of the active ingredient formulation W (a fluid including one or more of a liquid, gas, gel, vapor, aerosol, colloid, micro / nanoparticles, biological organisms or the like) is delivered for a predefined period of time. The active ingredient formulation W passes through the junction opening 11, the longitudinal channel 25 (an example of an inlet passage) and the exit channels 27 (example delivery ports) into the plant tissue surrounding the tool. injection 1. Formulation W is gradually absorbed and transported through the nutrient pathways of the plant. Thread turns 22 and distribution ports transverse (exit channels 27) relative to the directions of penetration promote dispensing of the active ingredient formulation to surrounding plant tissue. For example, the dispensing ports are embedded within the threads that act as the walls of a dispensing reservoir and consequently within the profile of the penetrating dispensing body (in this example, the stem 20). In addition, the dispensing ports are open and, consequently, are oriented transverse relative to the directions of penetration (which include the direction of insertion and the direction of penetration movement) and correspondingly transverse relative to the longitudinal axis of the body 40. The transverse orientation of the QRnQ7n / l 7Π7 / 3 / Υ outlet channels 27 in combination with the distribution reservoirs isolates the outlet channels 27 from plant tissues during insertion. To facilitate the communication of the delivery device with the injection tool 1, the delivery devices 100, 200, 300 are provided with a joint part 111, 211, 311 corresponding to the joint opening 11 (an end fitting) of the head 10 of the injection tool 1. The joint parts allow a sealed communication with the injection tool 1. The joint part includes, but is not limited to, a tip 111, a hose 211, a joint connector 311 or the like, each of which mates in a sealed manner with the injection tool 1 at the joint opening 11 (an example of a terminal fitting) having an inlet port 41 in communication with outlet channels 27 (inlet distribution ports). example). The first embodiment of a delivery device 100 shown by way of example in Figure 4 comprises a container 130, in which a liquid formulation of the active ingredient W is kept stored, and a dosing device 110, formed in this example in a gun profile and with which a metered amount of the active ingredient formulation is dispensed under pressure into the injection tool, eg one or more of the injection tools described herein. In the example shown in Figure 4, a carrier plate 131 is fixed on the container 130, on which carrier plate 131 is mounted a cartridge 132 with a pressurized gas D, eg CO2. An adjustable pressure reducing valve 133 and a manometer 134 are attached to the cartridge 132. The container 130, with the active ingredient formulation, and the pressure reducing valve 133 are each connected to the dosing device 110 through a respective hose line 135, 136. Metering device 110 comprises a handle 112 having a trigger 113 for toggling a spring-loaded 3 / 2 valve 114 contained in handle 112. Valve 114 is attached to a hose line 136 (also shown in Figure 5). and to a pneumatic pump assembly 120 for aspiration of the formulation from the container 130. The formulation is dispensed under pressure through the union tip 111 on the injection tool, such as the tool 1 shown in Figures 1-3. . Figure 5 shows these components schematically. As shown in Figure 5, the pneumatic pump assembly 120 comprises a pressure cylinder 121, with a pressure piston 122 movable therein and a return spring 123. The pump assembly 120 further includes in this example a cylinder dosing tube 124 with a dosing piston 125 movable inside. The supply device 100 in this example is a pneumatically operated metering pump. The metering piston 125 is kinematically coupled to the pressure piston 122. The previously mentioned joint tip 111 is mounted on the metering cylinder 124 and is connected to the latter for communication therewith. The pressure cylinder 121 is connected to the 3 / 2 valve 114 via a hose line 137. A check valve 138 (for example, a regulating valve, a one-way valve, or the like) is located in the hose line 135 which connects the dosing cylinder 124 to the container 130 (with the intermediate joint tip 111). Another check valve 139 is located at the union tip 111. In the position of the components as shown in Figure 5, the pressure cylinder 121 is free of pressure; its pressure piston 122 and the dosing piston 125 are located at their rear limit stops (on the right in the figure). QRnozn / i ζηζ / 3 / γ as a function of the return force of the return spring 123. The dosing cylinder space located in front of the dosing piston 124 is filled with a formulation of the active ingredient. By actuating the trigger 113, the 3 / 2 valve 114 in a rest position with the return spring 114a is actuated to connect the hose lines 136 and 137. In this way, the pressurized gas D acts on the pressure piston 122 and pushes the latter, together with the metering piston 125, forward (to the left in the figure). The active ingredient formulation W located in the dosing barrel 124 is dispensed with movement of the dosing piston 125 through the attachment tip 111 to the injection tool. After the trigger 113 is released, the return spring 114a resets the 3 / 2 valve 114 to its rest position and the hose line 137 opens (or closes depending on a vented or non-vented configuration relative to the cylinder). 121). Pressure cylinder 121 is released from pressure, and its return spring 123 moves pressure piston 122, together with metering piston 125, to their rear limit stops. In this way, the active ingredient formulation W is drawn out of the container 130 into the dosing cylinder 124 through the hose line 135 and the check valve 138. The dispensing device 100 is equipped with one example of a single-acting pressure piston 122 that is moved back to its initial position by means of the return spring 123. In other examples, the dispensing device 100 includes a single-acting pressure piston. double acting and a corresponding control valve. In this example, the pressure piston moves pneumatically in both directions and consequently delivers a metered amount of formulation W with each movement. Figures 6-7 show a second embodiment of a supply device 200. The supply device 200 is configured as a pneumatic feed pump. As shown in the schematic representation in Figure 7, the supply device 200 includes a pump cylinder 220 with a pump piston 221 movable therein. A viewing window 222 is optionally included to identify the position of the pump piston 221. A pressurized gas supply valve 223 (eg, similar to a bicycle tube valve) is arranged in a lower portion of the pump cylinder. pump 220. Arranged on the cylinder head of the pump 220 opposite the lower portion, are a T-piece 224 (such as a T-joint), a check valve 225 (throttle valve, one-way valve, or the like), and, on an opposite side of the T-piece, a shutoff valve 226. Attached to the shutoff valve is a hose line. The hose line in this example is a joint part 211 for connection to the injection tool 1 including, but not limited to, a corresponding end fitting flexible hose configured for retention in clips or the like. A hose line 227 in communication with the active ingredient formulation W is attached to the check valve 225. The pump cylinder 220 is supported in a frame 228 shown in Figure 6. Frame 228 optionally includes a mounting plate 229 to facilitate attachment of delivery device 200 to a tree trunk, support, or the like. Pump barrel 220 is filled with active ingredient formulation W (eg, a fluid formulation including one or more of a liquid, gas, gel, vapor, aerosol, or the like) through hose line 227 and check valve 225. The pump piston 221 is pushed to an opposite end (down in the drawing). A pressurized gas cushion is provided on the opposite side of the pump cylinder 220 through the release valve. QRnQ7n / l 7Π7 / 3 / Υ supply of pressurized gas 223. When the shut-off valve 226 is opened, the pressurized gas drives the piston of the pump 221 (upward in the Figure), thus driving the formulation of the active ingredient W located in the pump barrel 220 out of the pump barrel 220, through the joint part 211 and into the injection tool 1. The dispensing of the active ingredient W formulation from the delivery device 200 in one example it does not occur abruptly, and instead occurs gradually, for example in a continuous manner that includes one or more hours (one hour, two hours or the like). The shut-off valve 226 is optionally omitted if the filling of the pump barrel 220 with the active ingredient formulation W occurs with the joint part 211 already coupled to the injection tool 1. In another example, the restoring force or the Deflection for pump piston 221 is provided with a mechanical mechanism including, but not limited to, a drive motor, a deflection element such as a spring, or the like. In another example, a biasable membrane is provided in the barrel of the pump 220. The membrane separates the active ingredient formulation W from the pressurized fluid (eg, air, hydraulic fluid, or the like). In another example, a fluid, such as hydraulic fluid, is included in pump barrel 220 for formulation delivery, eg, to drive pump piston 221. Figure 8 is a schematic representation of five delivery devices 200 (of the type shown in Figures 6 and 7) that are attached to an injection tool 1 inserted into a tree trunk B. The filling of the cylinders of the pump 220 The active ingredient formulation is delivered via an annular line 240 (eg, a manifold or main line) that includes a feed pump 241 connected to a container with the active ingredient formulation. A shutoff valve 242 for line 240 and check valves 225 for the five supply devices 200 are included. A pneumatic pump 243, in combination with a manometer 244 and a pressure vessel 245, is in communication with the five devices. supply 200 through a hose line 246. Pump 243 provides compressed air or a pressurized fluid (if hydraulic) to devices 200 to facilitate distribution of the formulation from the respective pump cylinders to the tree trunk. B. In another example, pump 243 is a hydraulic pump that similarly operates supply devices 200. The third embodiment of a delivery device 300 is shown in Figure 1. The delivery device 300 includes a two-chamber container, or cartridge, that has separate chambers. The chambers are arranged in a cartridge type container 310. One of the separate chambers includes a pressurized medium, such as a pressurized gas. The other separate chamber includes the active ingredient formulation for dispensing through a valve 312. The chambers are optionally separated with a movable biasable piston or membrane for pumping the formulation. Valve 312 is provided with an adapter 311 configured for communication with union port 11 (eg, an end fitting) of injection tool 1. With adapter 311 mating to union port 11,1a valve 312 is opened, and the pressurized medium in the first chamber of housing 310 expands and forces the active ingredient formulation in the opposite chamber through valve 312 and out of the two-chamber package toward injection tool 1. In another example , valve 312 is a tilt valve. After the adapter 311 engages with the connection opening 11, the two-chamber container or cartridge tilts downwards under its weight and automatically opens the tilt valve. QRnQ7n / l 7Π7 / 3 / Υ Alternative embodiments of injection tools are included in the present description. In the embodiment shown in Figures 9 and 10, the injection tool 2001 has a nail-like wedge body profile having a conical tip. The embodiment of the injection tool shown in Figures 11-13 includes another example of a wedge body profile (eg, a spear point or wedge). A common element for injection tools is the ability to self-penetrate corresponding to variations in body profiles. For example, each of the injection tools described herein penetrates or is inserted (eg, hammered, pressed, or pushed) into a plant, such as a tree trunk or stem, without prior provision of the injection tool. drilled hole or other recess. Figures 26 and 27 show another embodiment of an 8001 injection tool having a stem-like body profile, for example, with a threaded feature. The injection tool has a head 8010 (an example of a base) and a shank 8020 (an example of a penetrative delivery body) having a face screw / drill portion 8020a (an penetrator element) and a shoulder portion. rear 8020b. The front portion 8020a of the shank 8020 is a plunger that tapers from the head 8010 (base) toward a distal portion of the tool 8001. The plunger dispensing body includes features of a self-tapping screw. The 8001 injection tool penetrator includes a sharp point 8021 and 8022 coiled or spiral cutting edge threads. closure) adjacent to the head 8010 (the base). The external profile of these peripheral shoulders 8023 is larger than the external profile of the cutting edges of the threads 8022 of the front portion 8020a to improve the seal between the tool 8001 and the plant. As shown in Figure 27, an outwardly open cylindrical union or end port 8011 (for example, an example of an end fitting that includes one or more than one port or a plug for one port) is in the head 8010 and is connects via an 8040 inlet port with an 8025 longitudinal main channel (an example of an inlet passage). In this example, main channel 8025 is a tapered bore that extends toward tip 8021. Toward its lower end, main channel 8025 connects to a plurality of axially and circumferentially spaced outlet channels 8027 (examples of distribution ports). . Each of the exit channels opens between two adjoining sections of spiral cutting edge 8022. As described above, the exit channels 8027 open (eg, extend, orient, or the like) transversely relative to an axis. longitudinal of the tool body 8001 corresponding to a plunge direction, such as an insertion direction, and are also transverse to the direction of plunge movement (another example of plunge direction) as the tool 8001 is rotated. The dispensing magazines are included between the 8022 reading to separate the 8027 outlet channels from the 8001 tool body profile corresponding to the taper and threaded profile shown in Figures 26 and 27. The cross orientation of the 8027 outlet channels in combination with the distribution reservoirs isolates the exit channels 8027 from plant tissues during insertion. Head 8010 (an example of a base) is equipped with a slot, opening, or the like to receive a drive tool. For example, a screwdriver is used to rotate injection tool 8001 to insert it into a plant along insertion direction 8030. Insertion direction 8030 extends along QRnozn / i ζηζ / 3 / γ of a longitudinal axis of the body 8041 of the injection tool 8001. The injection tool 8001 is made of metal or metal alloy and is optionally produced by a 3D printing method. A lower portion of head 8010 forms a flange or step that includes a landing face 8013, as shown in Figure 27. In one example, landing face 8013 acts as a depth stop and limits tool insertion. of injection 8001 in the plant. Additionally, the bearing face 8013 encloses the plant penetration in a similar manner to the peripheral ridges 8023 (examples of closing ridges) if the tool 8001 is fully inserted into the sole. As the injection tool 8001 is advanced by means of the drive tool, the insertion tool 8001 rotates and moves along its spiral or thread cutting edge 8022 in another example of a direction of plunge movement 8031. In In this example, a thread pitch or angle 8022 defines the direction of penetration movement 8031. Screwing in injection tool 8001 also axially moves injection tool 8001 in the insertion direction 8030. The exit channels 8027 are straight and extend in an exit direction 8032 shown in Figure 27. The exit direction 8032 is transverse to the longitudinal axis of the body 8041 (corresponding to the direction of insertion), as well as to the direction of the penetration movement 8031. For example, the exit direction 8032 of the exit channels is approximately 135 degrees relative to the direction of the penetration movement 8031 (and the insertion direction 8030). The transverse orientation of the exit channels 8027 relative to one or both of the directions of penetration (for example, the direction of insertion or the direction of penetration movement) isolates the exit channels from the plant matter and, consequently, minimizes clogging or obstruction of the channels. Consequently, the exit channels 8027 (example delivery ports) remain open and ready to dispense formulations after the injection tool transitions from a penetration configuration (during insertion) to a delivery configuration for treatment of plant. Another injection tool 2001 is shown in Figures 9-10 having a wedge-like body profile (eg, a tapered nail in this example). The injection tool 2001 includes an impact head 2010, eg, a base, and a shank 2020 or penetration distribution body divided into three portions. In the example shown in Figures 9 and 10, the penetrating dispensing body includes a front nail tip portion 2020a (an example of a penetrating element), an intermediate conical portion 2020b (an example of a dispensing element) and a trailing flange portion 2020c (an example of a closure element). The front portion 2020a is remote in relation to the impact head 2010 with the intermediate elements between them. The front portion 2020a, or penetrating element of the penetrating distribution body, tapers from a proximal portion of the impact head 2010 toward a distal portion of the body. In the injection tool 2001, the front portion 2020a, or penetrator, includes a conical tip (in the form of a nail) as a penetrator cutting element. The intermediate portion 2020b, or dispensing element in this example tool, is tapered and has one or more grooves or grooves 2022. As described herein, the dispensing ports are recessed relative to the body profile (for example , extend along the distal edges of the slots) to minimize port obstruction. QRnQ7n / l 7Π7 / 3 / Υ Peripheral ridges 2023 (there are three in this example) are formed on the rear portion 2020c, or closure element. The rear portion 2020c adjoins the impact head 2010. The peripheral profile of the peripheral ridges 2023 is, in one example, larger than the corresponding profile of the distal elements, such as the distribution element and the penetration element (2020b , 2020a). Peripheral ridges 2023 with the larger profile close penetration through a plant by engaging the peripheral ridges with surrounding plant material. As shown in each of Figures 9 and 10, at a transition between the rear portion 2020c of the stem 2020 (eg, an exemplary penetration distribution body) and the impact head 2010 (or base), a step flange-type or a bearing face 2013 is provided with the impact head 2010. Bearing face 2013 extends circumferentially around the stem 2020. When the stem or injection tool penetration delivery body 2001 is inserted into the plant , the support face 2013 comes into contact with the plant (with sufficient penetration of the stem) and limits the further advance of the injection tool 2001 in the plant. In addition, the support face 2013 provides a larger profile feature than the distribution element 2020b and, in some examples, encloses the interface between the plant and the injection tool 2001, thus minimizing the ingress of contaminants, pests or the like, while minimizing formulation filtration. As best seen in Figure 10, an outwardly open cylindrical joint opening 2011 (an example of an entry port) is provided in impact head 2010 and is in communication with a longitudinal main channel 2025 (or entry passage). ) of stem 2020. Optionally, impact head 2010 includes grooved outer structure 2012 (e.g., attachment clips) or other exemplary attachment clips as an alternative to inserting a corresponding end fitting into attachment opening 2011 (for example, in this example, an end fitting or end opening). For example, a hose, tube, or the like mates with impact head 2010 and attachment clips, such as ribbed structure 2012, providing a firm hold on the hose. Longitudinal channel 2025, in one example, is configured as a blind hole and extends through rear portion 2020c and intermediate portion 2020b of stem 2020. In the region of intermediate portion 2020b (an example of a distribution element) of stem 2020, radial outlet channels 2027 (an example of delivery ports) extend from longitudinal channel 2025 and open laterally in the region of intermediate portion 2020b of stem 2020 between grooves 2022 thereof. In one example, the outlet channels 2027 are within a body profile of the injection tool 2001, such as the wedge or taper of the tool 2001. For example, the grooves 2022 correspond to an exterior of the near body profile. to the outlet channels 2027, and the channels are consequently embedded in relation to the exterior. Optionally, grooves or slots 2022 extend around the dispensing bins (the spaces between the slots) with outlet channels 2027 therein. Distribution reservoirs promote distribution of the emerging active ingredient formulation into surrounding plant tissue, for example, by isolating exit channels 2027 from plant material during penetration. In another example, the dispensing reservoirs together with the nearby plant tissue form cavities, voids or the like for reception of the formulations and to improve the residence of the formulations next to the plant tissue (eg, for better absorption). QRnozn / i ζηζ / 3 / γ The operation of the injection tool 2001 shown in Figures 9-10 is similar in some respects to the operation of the injection tool 1. Unlike the injection tool 1 (rotated along the threads 22), the injection tool Injection 2001 is introduced into the plant, such as a tree trunk, for example, with a hammer, jackhammer, by hand, or the like. An insertion direction 2030 of the tool 2001 is shown along the longitudinal axis of the body 2040. As the injection tool 2001 advances or is hammered into the plant, the blows cause a movement along a direction of the penetration movement 2031 (an example of a penetration direction) corresponding to the longitudinal axis of the body 2040. The direction of the penetration movement 2031, in this example of injection tool 2001, also corresponds to the insertion direction 2030 (unlike tool 1 which has different directions shown in Figures 2 and 3). As shown in Figure 10, outlet channels 2027 (examples of distribution ports) extend laterally or radially from main channel 2025. For example, outlet channels 2027 extend or open in a transverse direction relative to the longitudinal axis of the body 2040 (and the direction of penetration or direction of insertion 2030). In the example shown in Figure 10, the outlet channels 2027 open transversely at an angle of approximately 90 degrees relative to the longitudinal axis of the body 2040. Consequently, in the example shown in Figure 10, the outlet channels 2027 they extend in an exit direction 2032 orthogonal (as well as transverse) to the direction of penetration movement 2031 and the direction of insertion 2030. In other examples, the exit channels (as shown and described in the present description) are transverse to one or more directions of penetration and a corresponding longitudinal axis of the body, for example, extending at an angle in relation to the longitudinal axis of the body to isolate outlet channels and thus improve the distribution of formulations to the plant . Another injection tool 3001 is shown in Figures 11-13. The injection tool 3001 includes another example of a body profile corresponding to a wedge. In this example, the profile of the wedge body includes planar surfaces that taper from a proximal portion 3043 (proximal to the base) of a penetrating dispensing body toward a distal portion 3041 (proximal to a penetrating element). The injection tool 3001 includes an impact head 3010 (an example of a base) and a wedge portion 3020 (another example of a penetration delivery body) configured as a spearhead or blade. The wedge portion 3020 includes a penetrating element, such as a cutting element penetrating structure at its front tip 3021. The cutting element includes a cutting edge extending along a forward end of the food distribution body. penetration (for example, the wedge portion 3020). As shown in Figure 13, the cutting element of the penetration distributing body (the wedge portion 3020) tapers from the vicinity of the impact head 3010 and consequently includes the wedge portion having an element of distribution (for example, the portion of the body next to the outlet channel 3027 and the distribution channels) and a prism-like profile. Optionally, the penetrating delivery body includes one or more anchoring elements configured to retain the body in a plan after insertion. With a wedge body profile, the anchoring elements include the proximal tapered (eg, tapered toward the base) surfaces, edges, or faces of the body. QRnozn / i ζηζ / 3 / γ A joint opening 3011 (eg, an example of an entry port) is provided in the impact head 3010. The joint opening is in communication with a longitudinal main channel 3025 (an example of an entry passage) provided in the wedge portion 3020. The impact head 3010 optionally includes a grooved outer structure 3012 (an example of joint clips), to facilitate the attachment of a hose onto the impact head 3010. Referring again to the delivery features of the injection tool 3001, the longitudinal channel 3025 is, in this example, a blind hole and extends approximately toward a distal portion 3041 of the wedge portion 3020 (for example, the body penetration distribution). An outlet channel 3027 (an example of a delivery port) communicates with the longitudinal channel 3025. The outlet channel 3027 opens into a beveled facet 3023 of the wedge portion 3020. A star-shaped arrangement of the slots 3022 or channels (eg, another example of distribution tanks) extends along the flat beveled side 3023 of the wedge portion 3020. As shown in Figure 11, the outlet channel 3027 opens at a central location relative to these slots 3022 and the slots extend from the outlet channel. The slots 3022 extend in various directions through the wedge portion 3020 (eg, the penetration distribution body). For example, some of the slots 3022 extend rearward toward the impact head 3010, while others extend peripherally (to the sides), and still others extend forward toward the forward end of the wedge portion 3020. The slots 3022 promote the distribution of the emerging active ingredient formulation into the surrounding plant tissue. For example, grooves 3022, examples of distribution reservoirs, promote the distribution of the emerging active ingredient formulation into surrounding plant tissue, eg, by isolating exit channel 3027 from plant material during penetration. Outlet channel 3027 is embedded within slots 3022 and the slots are close to the outside of the wedge body profile. In another example, grooves 3022 (eg, dispensing reservoirs) together with nearby plant tissue after penetration form cavities, voids, or the like for reception of formulations and to improve residence of formulations in proximity to plant tissue ( for example, for better absorption). As shown in Figure 13, a step or flange is included at a transition between the wedge portion 3020 and the impact head 3010. The step or flange is described in some examples as bearing face 3013. Bearing face 3013 extends laterally relative to wedge portion 3020. As injection tool 3001 is inserted into the sole, the shoulder face support 3013 (with sufficient penetration of the wedge portion) engages the plant and stops further advancement of the injection tool 3001 into the plant. In one example, bearing face 3013 mates with the plant and establishes a closed connection between injection tool 3001 and the plant, for example, to enclose or cover the penetration into the plant. The third injection tool 3001 functions in a similar way to the injection tools described in the present description. In operation, the injection tool 3001 is driven into a plant, for example, with a hammer, jackhammer, manually, or the like. The impact head 3010 (eg the base) is struck in one example with a hammer towards a plant, such as a tree trunk. QAnQZn / l 7Π7 / 3 / Υ The injection tool 3001 is driven in an insertion direction 3030 (an example of a penetration direction) that extends along a longitudinal axis of the body 3040 of the insertion tool 3001. As the injection tool 3001 advances or is hammered into the plant, the blows move the injection tool 3001 along a direction of plunge movement 3031 (another example of a plunge direction) identical, in this example, to the insertion direction 3030. The profile of the wedge body of the wedge portion 3020 separates the plant tissue with the movement of the injection tool. Plant tissue propagation, in some examples, minimizes damage to plant tissue (for example, removal) and instead diverts plant tissue to one side, while otherwise keeping the tissue with the plant. For example, the plant capillary system is maintained with minimal (eg, no or minimal) trauma to facilitate improved actualization of the active ingredient formulation in the plant. Referring again to Figure 11 (and Figure 12), the outlet channel 3027, a dispensing port, is transverse relative to the longitudinal axis of the body 3040 corresponding to the direction of insertion 3030 (and the direction of penetration movement 3031). The transverse orientation of the exit channel 3027 minimizes the engagement of plant material with the exit channel 3027 during penetration and consequently maintains the channel in an open configuration. As shown in Figure 11, the slots 3022 (eg, elongated dispensing bins) of the outlet channels 3027 are linear and extend peripherally in this example from the outlet channel 3027. The slots 3022 provide various outlet directions. 3032 as shown in Figure 11. For example, the exit directions 3032 extend at different angles transverse to each of the direction of penetration movement 3031 and the direction of insertion 3030, as well as the longitudinal axis of the body 3040 Some of the angles are less than 90 degrees, equal to 90 degrees, or greater than 90 degrees (for example, 100 degrees or more). Furthermore, the slots 3022 which appear parallel to the longitudinal axis of the body 3040 and the direction of insertion 3030 in Figure 11, are in fact at a transverse angle relative to these features due to the tapering of the wedge portion 3020. Figures 14-16 show another injection tool 4001. The injection tool 4001 includes a wedge-like body profile and outlet channels (eg, manifold ports) transverse to one or more directions of penetration, such as a direction of entry. insert 4030 corresponding to the longitudinal axis of body 4040. It has an impact head 4010 (an example of a base) and a wedge portion 4020 (an example of a penetration distribution body) having a wedge body profile, e.g. example, a spearhead. The wedge portion 4020 is formed with a sharp edge like the cutting edge of a penetrating structure at its front face 4021 or front end. The wedge portion tapers from a proximal portion 4043 toward a distal portion 4041 of the penetration distribution body (eg, toward the front face 4021). The wedge portion 4020 (penetration distribution body) increases in thickness towards the impact head 4010. The wedge portion 4020 accordingly has a penetration element corresponding to a tapering portion of the wedge between the distal and proximal portions. 4041, 4043. As shown in Figures 14, 15, the wedge portion 4020 includes a dispensing opening 4028 (an example of a dispensing reservoir) having a triangular or conical shape. The dispensing opening 4028 is in communication with a plurality of dispensing ports (eg, outlet channels), and the dispensing ports QRnozn / i ζηζ / 3 / γ are transverse relative to the longitudinal axis of the body 4040 (and one or more of the directions of penetration). In the example tool 4001 shown in Figures 14-16, the wedge portion 4020 includes two wing-like portions or legs proximal to the dispense opening 4028 (eg, connecting the proximal and distal portions 4043, 4041). In other embodiments, wedge portion 4020 includes three, four, or more wing-shaped portions proximate aperture 4028. A joint opening 4011 (an example of an entry port) is provided in the impact head 4010 and communicates with a main channel 4025 (an entry passage). The impact head 4010 has a fluted outer structure 4012, for example, including one or more attachment clips, configured to mate a hole with the impact head 4010 (eg, the base of the tool 4001). In a transition from impact head 4010 to wedge portion 4020, main channel 4025 splits into intermediate channels 4026. Each intermediate channel 4026 extends along one of the wing-like portions proximal to the opening. 4028 to output channels 4027. As shown in Figure 14 and the cross-sectional view in Figure 15, the outlet channels 4027 are provided along the intermediate channels 4026 and open transversely towards the distribution opening 4028 (for example, transverse relative to the longitudinal axis of the body 4040 and the corresponding direction of penetration). For example, the outlet channels 4027 and the dispensing opening 4028 are provided in a portion of the wedge portion (eg, the penetrating dispensing body) referred to as the dispensing element. In this example tool 4001 and others herein, the distribution element is at least partially coextensive with the penetrating element, such as the wedge body profile of the wedge portion 4020. The outlet channels 4027 are a distribution element or section for the tool 4001 and extend toward the opening 4028. The outlet channels 4027 extend transversely, and as shown in this example, extend rearward relative to one direction. insertion or forward 4030 of the injection tool 4001. The main channel 4025, the intermediate channels 4026 and the exit channels 4027 form a system of channels of the injection tool 4001. At the transition between the impact head 4010 (for example, the base of the tool 4001) and the wedge portion 4020 (for example, the penetration distribution body of the tool 4001) a bearing face 4013 is included. landing face 4013 extends relative to wedge portion 4020. As injection tool 4001 is inserted into the plant, landing face 4013 engages the plant and stops further insertion into the plant. As described above, bearing face 4013 encloses (at least partially) the opening that is made in plan by wedge portion 4020. The operation of the injection tool 4001 of Figures 14-16 is similar to that of the other examples of injection tools described herein. For example, the injection tool 4001 is optionally driven into the plant (eg, struck with a hammer, manually pushed into the plant, or the like), such as a tree trunk. The injection tool penetrates and moves inside the plant along the insertion direction 4030 corresponding to the longitudinal axis of the body 4040 of the tool 4001. The movement of the injection tool 4001 inside the plant, for example, with blows, causes movement along οκηοζη / ι ζηζ / 3 / γ along a direction of the penetration movement 4031, that is, in this example, parallel to the direction of insertion 4030. Due to the wedge body profile of the wedge portion 4020, the plant material is spread upon insertion of the injection tool 4001 into the plant. Propagation of plant material minimizes (eg, eliminates or minimizes) trauma within the plant. For example, the capillary system of the plant is preserved or protected to improve the distribution and update of the formulation of the active ingredient to the plant. As shown in Figure 15, outlet channels 4027 (eg, distribution ports) open in an outlet direction 4032 toward central opening 4028 (eg, a distribution tank). The output direction 4032 is transverse to the penetration directions and the longitudinal axis of the body 4040 corresponding to at least the insertion direction of the penetration directions. For example, as shown in Figure 15, the exit channels 4027 are at an angle of approximately 135 degrees relative to the direction of the plunge movement 4031. The orientation of the exit channels 4027 minimizes the coupling of the channels with plant material by isolating the channels from (relatively) nearby plant material during insertion, thereby maintaining the exit channels 4027 in an open configuration. Consequently, tissues or plant material, such as fibers or the like, are deflected from the exit channels 4027 by the wedge portion 4020 during the insertion of the injection tool 4001 (for example, a penetrating configuration) into the plant. to keep the 4027 channels in an open configuration during a distribution configuration. Additionally, the dispensing reservoir (eg, 4028 dispensing opening) improves isolation of exit channels from plant material by opening up the body profile to facilitate placement of the openings in a recessed location relative to the outside of the profile. of the body. In addition, the dispensing reservoir (eg, dispensing port 4028) provides a cavity for reception of the formulations. In combination with the surrounding plant tissue, the dispensing reservoir holds the formulation in close proximity to or in engagement with the plant tissue surrounding the reservoir. Figures 17-19 show a 5001 injection tool having another example of a wedge body profile. Injection tool 5001 has an impact head 5010 (an example of a base) and a wedge portion 5020 (an example of a penetration delivery body) configured, in this example, as a spearhead. As shown in Figure 17, the wedge portion 5020 includes a penetrating element having a sharp edge as a cutting element. The cutting element is provided along the front face 5021 (eg, a leading edge) and the penetrating element in these examples extends from the distal portion 5041 to the proximal portion 5043. For example, it increases the profile of the wedge body of the wedge portion, increases in thickness towards the impact head 5010, as shown in Figure 19. Impact head 5010 has an axially ribbed outer shell 5012 to facilitate grasping of impact head 5010, and optionally, engagement with a corresponding accessory (eg, of a hose, dispensing device, or the like). At the transition between the impact head 5010 (the base) and the wedge portion 5020 (the penetration distribution body) a step or flange, a bearing face 5013, is provided. QRnozn / i ζηζ / 3 / γ Bearing face 5013 extends relative to wedge portion 5020, limits tool insertion and engages plant material to facilitate coverage of plant penetration. Referring again to Figure 19, impact head 5010, in this example, includes an inlet port, such as joint opening 5011. Joint opening 5011, in this example, is a separate component relative to the rest of the base (for example, the 5010 impact head). For example, the junction opening 5011 is provided as a port for the base. As shown in Figure 19, the junction opening 5011 communicates with distribution ports, such as outlet channels 5027 through a main channel 5025 (eg, an inlet passage). The main channel 5025 extends from the joint opening 5011 diagonally in an upward direction to the intermediate channels 5026 provided in the wedge portion 5020. Each intermediate channel 5026 extends vertically between two adjacent distribution tanks (for example, the openings 5028). The left middle channel 5026 is between the left openings 5028 and the right middle channel 5026 is between the right openings 5028. The various exit channels 5027 (in this example two) are provided with each of the intermediate channels 5026. The exit channels 5027 open (eg, extend, direct formulations, or the like) in a transverse direction relative to a direction insertion point of the tool 5001, for example, corresponding to the longitudinal axis of the body 5040. In this way, the liquid formulation of the active ingredient is delivered from the openings 5028 towards the plant. For example, openings 5028 (examples of dispensing tanks) are in communication with respective outlet channels 5027. Formulations delivered from outlet channels 5027 fill openings 5028. Openings 5028 are surrounded by plant tissue in a configuration of dispensing (after penetration) and injection tool 5001, including apertures 5028, consequently retains the formulation in engagement with surrounding plant tissue for absorption. The injection tool 5001, including those portions of the penetrating delivery body (the wedge portion 5020) that surround the openings 5028 and the surrounding plant tissue that thereby retain the formulation in voids or cavities to facilitate updating of the formulation. As further shown in Figure 18, outlet channels 5027 extend transverse relative to an insertion or forward direction 5030 of injection tool 5001 corresponding to the longitudinal axis of body 5040 (and intermediate channels 5026). For example, outlet channels 5027 lead toward impact head 5010 (also referred to as tool base 5001). Main channel 5025, intermediate channels 5026 (collectively inlet passages) and outlet channels 5027 (eg, manifold ports) form an injection tool channel system 5001. The operation of the injection tool 5001 shown in Figures 17-19 is similar to the operation of the other injection tools described herein. In a penetration configuration, the injection tool 5001 is driven into the plant, such as a tree trunk, with hammer blows, manual insertion, an introducer configured to install the tool 5001, or the like. As shown in Figure 19, with the separate connection nipple (for example, the 5011 union opening) provided, the 5020 impact head will QRnozn / i ζηζ / 3 / γ insulates from the opening and is suitable (eg mechanically robust) for receiving comparably strong blows, eg for penetration of plants having organized or robust materials, tissues, or the like. An insertion direction 5030 is shown in Figure 18 and is an example of a penetration direction. The insertion direction 5030 extends along (eg, is parallel to, or is within a few degrees of) the longitudinal axis of the body 5040 of the insertion tool 5001. Driving the injection tool 5001 inwardly the plant moves the injection tool 5001 along a direction of penetration movement 5031, and in this example, the direction of penetration movement 5031 corresponds to the insertion direction 5030. Due to the profile of the wedge body of the tool 5001, the plant material is separated using the 5001 injection tool. As mentioned above, spreading the plant material minimizes trauma to the interior structure of the plant. In the dispensing configuration (eg, after penetration and installation of tool 5001), outlet channels 5027 receive and dispense formulation transversely relative to the longitudinal axis of body 5040 and relative to the direction of insertion ( for example, corresponding to the axis). As shown in Figure 18, outlet channels 5027 open, thereby directing formulation toward dispensing openings 5028 (eg, dispensing tanks). As shown in Figure 18, the outlet channels 5027 extend in an outlet direction 5032 toward the openings 5028. In this example injection tool 5001, the outlet direction 5032 is transverse, for example, at an angle of approximately 125 degrees relative to the direction of penetration movement 5031, the direction of insertion 5030 (collectively directions of penetration) and the longitudinal axis of the corresponding body 5040. The transverse configuration of the exit channels 5027, in addition to the position of the channels within the distribution openings 5028 isolates the channels 5027 from engagement with plant material during insertion, and consequently minimizes plant material, such as fibers or the like, from clogging the exit channels 5027, for example, during the insertion of the injection tool 5001 in the plant. The injection tools 6001, 7001 shown in Figures 20-25, in various examples, are configured for use with less robust plants (eg, softer trees, vines, stems, or the like) that typically have softer canopy. For example, the injection tools described above may have a length of 50mm or more. In one example, these injection tools include penetration distribution bodies (eg, wedge or shank body profiles) with a length of 35mm or more and a width of 30mm or more. In contrast, the examples of injection tools 6001,7001 shown in Figures 20-25 in some examples have overall lengths between about 6mm and 16mm. Figures 20-22 show an injection tool 6001 having a cradle portion 6020, such as a penetration distribution body having a wedge-like body profile. The injection tool 6001 includes an impact head 6010 (an example of a base) and the wedge portion 6020 (an example of a penetration distribution body). The wedge portion 6020 includes a cutting element. For example, wedge portion 6020 includes a cutting edge along front face 6021 directed distally away from impact head 6010. Wedge portion 6020 includes at least partially coextensive penetration and delivery elements. For example, the penetrating element extends from the cutting edge along the front face 6021 and close to a distal portion 6041 QRnozn / i ζηζ / 3 / γ to a proximal portion 6043 of wedge portion 6020. Similarly, delivery element 6012 (including outlet channels 6027 and delivery openings 6028) is within the penetration element of wedge portion 6020. As shown in the side view of Figure 22, wedge portion penetrating element 6020 increases in thickness from distal portion 6041 toward proximal portion 6043 and impact head 6010. Impact head 6010 optionally includes grooved outer structure 6012, such as attachment clips, to facilitate gripping of impact head 6010 and to securely connect injection tool 6001 to a delivery device. At the transition between the impact head 6010 and the wedge portion 6020, a step is provided. The step forms a bearing face 6013. Bearing face 6013 extends relative to (eg, away from) wedge portion 6020. During insertion of injection tool 6001, bearing face 6013 comes into contact with the plant and stops further feeding of the 6001 injection tool into the plant. Compared to bearing faces of other injection tools described herein, bearing face 6013 is relatively large compared to the associated wedge portion 6020 (eg they are similar in size). The 6013's larger bearing face makes it easier to use with smaller, less robust plants that have a comparably softer border or cover. The relatively large bearing face distributes the forces of the insert over the correspondingly large face 6013 and thus minimizes trauma to the plant. The support face 60313 also provides a closure face for the injection tool 6001, to establish a robust coupling with the plant. As shown in Figures 21 and 22, the impact head 6010 includes an attachment opening 6011 (eg, an example of an entry port). Junction opening 6011 is in communication with outlet channels 6027 and distribution openings 6028, eg with a main channel 6025 (eg an inlet passage). As shown in Figures 20 and 21, outlet channels 6027 (eg distribution ports) are in communication with main channel 6025 and open transversely towards respective distribution openings 6028 (eg distribution tanks). ). The fluid active ingredient formulation is delivered from the outlet channels 6027 transversely, e.g., relative to the longitudinal axis of the body 6040 and the corresponding direction of insertion 6030, into the dispensing openings 6028. The dispensing openings 6028 retain the formulation. in the residence close to the adjacent plant tissues. In the example shown in Figure 21, exit channels 6027 extend proximally toward impact head 6010 and transverse to the direction of insertion 6030 of injection tool 6001. Main channel 6025 and exit channels 6027 form a system of channels of the injection tool 6001. The operation of the injection 6001 is similar, at least to some extent, to other injection tools described in the present description. Due to the relatively small profile of the 6001 Injection Tool (or the contracted shapes of the other tools), the 6001 Injection Tool is easily inserted and installed into comparably small plants or less robust plants that have softer plant material (for example , fabrics or the like). For example, the 6001 injection tool is set up for light tapping or manual pressing of the 6001 tool into the plant, eg into a stem. QRnQ7n / l 7Π7 / 3 / Υ As shown in Figure 21, the injection tool 6001 is inserted along an insertion direction 6030 corresponding to the longitudinal axis of the body 6040 of the insertion tool 6001. As the injection tool 6001 advances into the plant, the tool moves along a direction of the plunge motion 6031, and in the example shown, the insertion direction 6030 corresponds to the direction of the plunge motion 6031. Similar to the other injection tools that have a profile of the wedge-like body and described herein, the wedge portion 6020 of the injection tool 6001 spreads the plant material to one side as the tool 6001 is inserted into the plant. Propagation of plant material minimizes trauma to plant material and, in some instances, facilitates better absorption of formulations. As further shown in Figure 21, outlet channels 6027 (eg, distribution ports) extend in an outlet direction 6032 toward distribution openings 6028 (eg, distribution tanks). The exit direction 6032 is transverse to the direction of the penetration movement 6031 (and the longitudinal axis of the body 6040). For example, the output direction 6032 is misaligned with the penetrating movement direction 6031, the insertion direction 6030 (collectively penetrating directions), and the longitudinal axis of the body 6040 by an angle of 125 degrees or the like. The transverse orientation of the outlet channels 6027 isolates the outlet channels 6027 from plant material that is otherwise introduced into the outlet channels with the insert. In addition, dispensing openings 6028 (eg, dispensing tanks) facilitate placement of outlet channels 6027 within the body profile, eg, by embedding channels 6027 from an exterior of the body profile. Figures 23-25 show another embodiment of a 7001 injection tool having a wedge-like body profile. In a manner similar to other injection tools described herein, injection tool 7001 includes an impact body or head 7010 (eg, a base) and a head with a wedge portion 7020 (eg, an impact body). penetration distribution). The body 7010 or base of the injection tool 7001 is conical in this example and tapers towards the joint opening 7011. The wedge portion 7020 is formed with a sharp edge as a cutting element of a penetrating structure on its face. distal front 7021 or front end. The wedge portion 7020, as seen in Figure 25, increases in thickness toward the body 7010. The wedge portion penetrating element 7020 in this example, extends between the distal and proximal portions 7041, 7043, and is it corresponds to a distribution element of the wedge portion that includes the outlet channels 7027 and the lateral recesses 7028. As shown in Figures 23 and 24, wedge portion 7020 includes a dispensing element having lateral recesses 7028 (examples of dispensing reservoirs) forming a neck section 7020b. The neck section 7020b separates the wedge portion 7020 into an upper cutting section 7020a and a lower extension section 7020c. Cutting section 7020a (an example of a penetrating element) includes one or more cutting elements, such as the leading edge of the wedge body profile configured to cut or open the plant with insertion of injection tool 7001 into plant. The expansion section 7020c of the wedge portion 7020 widens the penetration provided by the cutting section 7020a to create a cavity within the plant for the remainder of the wedge portion 7020. In another example, the extension section 7020c cooperates with 7028 side recesses for οκηοζη / ι ζηζ / 3 / γ spread plant material and facilitate residence of fluid formulations in 7028 side recesses close to plant tissues similar to distribution reservoirs described with other injection tools in the present description. As seen in Figures 24 and 25, the body 7010 includes a junction opening 7011 (an example of an inlet port) that opens into a central main channel 7025 (eg, an inlet passage). The main channel 7025 extends from the joint opening 7011 through the neck section 7020b of the wedge portion 7020. The outlet channels 7027 extend transversely from the main channel 7025. As shown in Figures 23 and 24 , outlet channels 7027 open transversely into side recesses 7028. The fluid active ingredient formulation is delivered transversely from outlet channels 7027 into side recesses 7028. As shown in Figure 24, the outlet channels 7027 extend transversely relative to an insertion direction 7030 of the injection tool 7001 corresponding to a longitudinal axis of the body 7040. For example, the outlet channels 7027 extend toward the body 7010 (for example, the base). The main channel 7025 and the exit channels 7027 form a system of channels of the injection tool 7001. At the transition between the body 7010 and the extension section 7020c of the wedge portion 7020, a step is formed. The step is a curved bearing face 7013 in this example. The support face 7013 is curved in a way corresponding to the profile of the plant, for example a round stem, which receives the injection tool 7001. As the injection tool 7001 is inserted into the plant, the support face Curve Support 7013 engages in surface-to-surface contact with the stem and stops further advancement of the 7001 injection tool into the plant. The advance of the 7001 injection tool stops relatively gently with the curved configuration of the 7013 bearing face to minimize trauma to the plant. Additionally, as with the other embodiments described in the present description, the support face 7013 establishes a robust coupling between the injection tool 7001 and the plant, and encloses the penetration formed with the wedge portion 7020. The operation of the injection tool 7001 shown in Figures 23-25 is similar in some respects to the other example injection tools described herein. For example, the injection tool 7001 is inserted (eg, punched, pressed, or the like) into the plant, such as a stem. The injection tool 7001 is inserted along the insertion direction 7030 which generally corresponds to a longitudinal axis of the body 7040 of the insertion tool 7001. The injection tool 7001 moves along a direction of penetration movement 7031, and in this example, the direction of the penetration movement 7031 corresponds to the direction of insertion 7030. Penetration of the plant with the wedge portion 7020 spreads the plant material in a manner similar to other wedge-type injection tools described herein. With the wedge portion 7020 (eg, the penetrating dispensing body) installed in a penetrating configuration, the injection tool 7001 assumes a dispensing configuration. In the dispensing configuration, the fluid formulation is dispensed from outlet channels 7027 (eg, dispensing ports) transversely to side openings or recesses 7028 (eg, dispensing reservoirs). The liquid formulation is supplied to the lateral recesses 7028 and resides within the recesses in the QRnQ7n / l 7Π7 / 3 / Υ proximity and coupling with adjacent plant material. With the fluid formulation residing in the lateral recesses 7028, the plant can gradually update the formulation, eg, with no or minimal supply pressure applied to the formulation. Figures 28, 29 and 30 show another example of an injection tool 300. As in the previous examples, the injection tool 300 includes a base 302 and a penetration distribution body 304 extending from the base. As shown in Figure 28, penetration distribution body 304 includes a body profile 308 including, in this example, a wedge profile. The profile of the body 308 in Figure 28 and Figure 29 is shown in broken lines and includes, but is not limited to, one or more of the shape, contour, size, texture, or the like of the penetration distribution body. 304. As shown, penetrating distribution body 304 further includes a distribution element 312. Distribution element 312 includes one or more distribution ports 314 spaced from a penetration element, such as penetration element 310 including the leading edge of the body profile 308. As described above, the one or more delivery ports 314 distribute the liquid formulation transversely (eg, in a different direction) relative to the longitudinal axis of the body 306 corresponding to the direction of insertion. of the injection tool 300 in a plant. Referring again to Figure 28, injection tool 300, as described above, includes a body profile 308, such as the wedge profile in this example. As shown, the profile of the wedge body 308 tapers from the proximal portion 307 of the penetrating dispensing body 304 to the distal portion 305 of the dispensing body 304. The wedge profile 308 facilitates penetration and delivery of the tool. injection 300 into the plant tissue of the plant. Additionally, the penetration distribution body 304 optionally includes one or more anchoring elements 316. In this example, the body profile 308 includes one or more flanges, surfaces, corners, or the like for engaging the penetration distribution body 304 with the corresponding tissues of the plant and, optionally, retaining the penetrating dispensing body 304 in the plant in a continuous manner, for example, for the dispensing of liquid formulations for a plurality of hours, such as one hour, two hours, or more. As further shown in Figures 28 and 30, dispensing element 312, in one example, includes one or more dispensing reservoirs 322 in communication with dispensing ports 314. As described above with respect to other embodiments, reservoirs The dispensing chambers 322 are configured to receive the liquid formulations delivered through the dispensing ports 314. The dispensing reservoirs 322, in another example, facilitate residence of the liquid formulation in the dispensing reservoirs, while the dispensing body of penetration 304 is retained within the plant. For example, the surfaces of penetrating dispensing body 304 surrounding dispensing reservoirs 322, as well as adjacent plant tissue, form voids, cavities, or the like within the plant and configured body 304 to contain and retain liquid formulations. in it for gradual absorption into plant tissue. The dispensing reservoirs 322 are provided in a distributed pattern through the penetrating dispensing body 304, and are optionally larger than the dispensing ports 314, to improve the amount (area) of plant tissue in contact with the liquid formulations. QAnQZn / l 7Π7 / 3 / Υ As shown in Figure 28 and further shown in Figure 29, the dispensing tanks 322 and dispensing ports 314, in one example, are within the profile of the body 308 and are therefore isolated (eg, conceal, shield, hide, separate, cover, or the like) substantially from plant tissues during insertion of the injection tool 300 into a plant. In another example, the distribution tank 322, the distribution ports 314 or the like are embedded from an outer body profile 309 of the body profile 308. By embedding the distribution element 312 that includes, for example, the distribution ports 314 and dispensing reservoirs 322 relative to the profile of outer body 309 during delivery or penetration of injection tool 300 into plant tissue, plant tissue does not engage or otherwise infiltrate dispensing reservoirs 322 or the distribution ports 314 in a significant manner that would otherwise clog the distribution ports 314 or fill the distribution tanks 322 to prevent residence of the liquid formulation therein. As shown in Figure 29, the distribution reservoirs 322 are within the body profile 308 of the penetrating distribution body 304. For example, as shown in Figure 29, the dashed line of the body profile 308 extends around of the distribution tanks 322 with the tanks 322 inside. Consequently, the distribution reservoirs 322 become isolated from the plant tissues during penetration. For example, one or more of the penetrating element 310 or the remainder of the penetrating distribution body 304 conceals or covers the distribution element 312 (for example, including one or more of the ports 314 and reservoirs 322) from plant tissue. during penetration. In one example, penetrator 312 provides a penetrator profile or penetrator profile. The distribution element 312 including one or more of the ports 314 or the reservoirs 322 is within the penetration profile during penetration in a direction along the longitudinal axis of the body 306. The penetration profile (for example, the shape , dimensions such as cross-sectional area or the like) is greater than and axially aligned with at least one of the distribution ports 314 or distribution reservoirs 322. Consequently, the ports 314 and reservoirs 322 within the distribution profile penetration are isolated from the plant tissues engaged by the penetration element 310 during penetration. For example, the distribution element 312 including one or more of the distribution ports 314 and the distribution reservoirs 322 are concealed behind the penetration profile (for example, corresponding to the cross-sectional profile of the penetration distribution body 304). . Accordingly, the delivery element 312, which includes one or more of the delivery ports 314 or delivery reservoirs 322, is isolated from engagement with plant tissues, for example, during insertion of the injection tool 300 into the plant. . Consequently, the ports 314 and dispensing reservoirs 322 remain open and are less prone to clogging and thus facilitate administration of liquid formulations while in a dispensing configuration, for example, with the penetrating dispensing body. 304 placed and retained within the plant. Referring again to the side view of the injection tool 300 in Figure 29, the base 302 of the tool 300 includes, in one example, one or more attachment clips 324 including flanges, barbs, or the like. Attachment clips 324 mate with one or more features of the dispensing devices described herein, including, but not limited to, dispensing device hoses, fittings, or the like. In QRnQ7n / l 7Π7 / 3 / Υ As an example, the attachment clips 324 retain features such as fittings, hoses, or the like in a continuous manner to facilitate continuous delivery of the liquid formulations through the injection tool 300. Figure 30 is a cross-sectional view of injection tool 300 taken along sectional line A-A in Figure 29. As shown in Figure 30, injection tool 300 includes dispensing reservoirs 322 arranged in a distributed pattern through penetrating manifold body 304. For example, in the example shown, a plurality of manifold tanks 322 are sandwiched between manifold ports 314. Manifold ports 314 each open toward manifold tanks respective 322. In one example, an inlet passage 320 provides the liquid formulation from an inlet port 318 of injection tool 300 to distribution ports 314 for distribution to distribution reservoirs 322. As further shown in Figure 30, the delivery ports 314, in this example, have a transverse orientation (eg, a different angular orientation) relative to the longitudinal axis of body 306. For example, as shown in Figure 30, example dispense ports 314 open or extend at an angle of approximately 105 degrees relative to the longitudinal axis of body 306. Accordingly, in this example, dispense ports 314 are rotated or reverse directed, for example, towards the base 302 of the injection tool 300 and away from the penetration element 310 of the penetration distribution body 304. In other examples, as described and shown in the present description, the distribution ports are arranged in a variety of configurations with the ports 314 opening in different transverse directions relative to the longitudinal axis of the body 306. The dispensing ports shown in Figure 30 and in other embodiments herein open, extend, or are directed relative to the longitudinal axis of body 306 (eg, corresponding to a direction of penetration) to facilitate fluid distribution in a direction other than the orientation of the longitudinal axis of body 306. For example, and as described earlier in this description, the Liquid formulations are dispensed from the dispensing ports 314 along angles that vary by 5 or more degrees relative to the longitudinal axis of the body 306. In other examples, the dispensing ports 314 are spaced or recessed from the longitudinal axis of the body. 306. In the example shown in Figure 30, the delivery ports 314 are each spaced from the longitudinal axis of the body 306 (and spaced from the penetration element 310) and are also directed in a transverse orientation (for example, an angle different relative to axis 306). In a dispensing configuration, the liquid formulations are accordingly dispensed in a different direction from the dispensing ports 314 relative to the insertion direction of the penetrating element 310 and the penetrating dispensing body 304 in a penetrating configuration (for example, generally along the longitudinal axis 306). Figures 31, 32 and 33 show another example of an injection tool 400. The injection tool 400 includes one or more features similar to features of other injection tools described herein. For example, the injection tool 400 includes a base 402 and a penetration distribution body 404 that extends from the base 402. In the example shown in Figure 31, the penetration distribution body 404 includes a body profile 408 having, in this example, a wedge shape or wedge profile. In this example, the wedge body profile 408 includes a curved or concave configuration that includes a corresponding curved (forked or concave) penetrating element 410 . 404 penetration distribution body tapers QRnQ7n / l 7Π7 / 3 / Υ from the proximal portion 407 of the body 404 to the distal portion 405. As described herein, the curved penetrating element 410 and the corresponding curved or arcuate penetrating dispensing body 404 facilitate the placement of one or more dispensing element 412 including one or more dispensing ports 414 or dispensing reservoirs 322 adjacent to a common ring or plant tissue penetrated by tool 400. Accordingly, dispensing fluids from distribution ports 414 is located, in one example, in the corresponding ring or plant tissue that extends circumferentially around the plant. Referring to Figures 31 and 32, the profile of wedge body 408 (shown in dashed lines) tapers from proximal portion 407 to distal portion 405. In Figure 32, penetration delivery body 404 also tapers. relative to the thickness of the tool (as opposed to the width shown in Figures 31 and 32). The body profile 408, shown in Figures 31 and 32 as a dashed line, extends around the penetration element 410, as well as the penetration distribution body 404. As shown in Figure 32, the distribution ports 414 and manifold reservoirs 422, in this example, are within body profile 408. For example, manifold ports 414 are recessed from a body profile 409 outside of body profile 408. Similarly, manifold reservoirs 414 distribution 422 are embedded from the outer body profile 409 of the profile 408. As described above with respect to other embodiments, placement of the dispensing element 412 including (for example, one or more of the dispensing ports 414 or dispensing reservoirs 422) within the body profile 408, such as within the outer body profile 409 minimizes (eg, eliminates or minimizes) the engagement of plant tissue with the dispensing element 412 and, consequently, facilitates keeping ports 414, dispensing reservoirs 422 or the like open and free of obstructions to facilitate distribution of liquid formulations from ports, eg, into distribution reservoirs 422 for uptake into plant tissue. As further shown in Figure 31 and Figure 32, in another example, the penetration delivery body 404 includes one or more anchoring elements 416. In this example, the anchoring elements 416 correspond to a proximally directed surface of the body. penetration distribution element 404, eg, a flange, edge, or the like of penetration distribution body 404. Anchoring element 416, in one example, is received wholly or partially within plant tissue, eg, immediately adjacent to the bark, outer surface or the like of the plant and, in one example, optionally grows on or is covered by the plant tissue to retain the penetrating delivery body 404 within the plant. As further shown in Figures 31 and 32, base 402, in one example, includes one or more attachment clips 424 including, for example, rings, tabs, spikes, or the like configured to grip and retain one or more accessories, hoses or the like from an injection device, dispensing device or the like coupled with the injection tool 400. In one example, the attachment clips 424 facilitate the retention of the coupling of the injection tool 400 to one or more corresponding features of the dispensing or injection devices including, but not limited to, containers, dosing devices, or the like described and shown hereinabove. QRnozn / i ζηζ / 3 / γ Figure 33 is a cross-sectional view of injection tool 400 taken along section line A-A in Figure 32. As shown in Figure 33, injection tool 400 includes a plurality of manifold ports. 414 that open or are directed in a direction other than the longitudinal axis of body 406, for example, ports 414 are transverse relative to the longitudinal axis of body 406 which is generally the direction of penetration for tool 400. For example, as shown shown, the delivery ports 414, in this example, are directed in a lateral or angled direction relative to the longitudinal axis of the body 406. Consequently, in a delivery configuration relative to a penetration configuration, the delivery ports 404 are configured to deliver the liquid formulations in a transverse or angled vector or along an angled vector relative to the longitudinal axis of the body 406. In the example shown in Figure 33, the delivery ports 414 are directed in a reverse or opposite direction relative to the direction of penetration (eg, generally aligned with the longitudinal axis of the body 406). For example, delivery ports 414 rotate toward base 402 of injection tool 400 and conversely away from the longitudinal axis of body 406. In other examples, delivery ports 414 are arranged at different angles relative to each other. to those shown in Figure 33, while also at a different angle relative to the longitudinal axis of body 406 and thus away from the longitudinal axis of body 406. As further shown in Figure 33, one or more distribution tanks 422 are in communication with distribution ports 414. Distribution tanks 422 receive liquid formulation from ports 414 via an inlet passage 420 in communication with the inlet port 418. As described above, the dispensing reservoirs 422 provide a cavity, void, or the like within the injection tool 400 and within the plant tissue which consequently holds the liquid formulation in close proximity and adjacent to the tissue. plant vegetable. Consequently, while the liquid formulation is held within the dispensing reservoir 422, plant tissue readily absorbs the liquid formulation. Uptake or uptake is further enhanced by the arcuate configuration of the distribution reservoirs 422. The arcuate configuration of the reservoirs 422 corresponds to the profile of the most active plant tissue, such as the youngest growth ring of a tree or other perennial. , and in this way provides the liquid formulation to plant tissue more ready to absorb and transport the formulation. In each of the injection tools described herein, including but not limited to injection tools 300, 400, liquid formulations are delivered under passive or active pressures through ports 414 for absorption. by a plant. As described herein above, in one example, the liquid formulations are provided by means of 'active' pressure, for example, by means of a pump, bladder or the like which pressurizes the liquid formulation to a specified pressure and provides liquid formulations to one or more injection tools, such as injection tool 400 for dispensing through ports 414 and reservoirs 422. In another example, liquid formulations are 'passively' delivered to the injection tool. injection 400, for example, by means of hydrostatic pressure, capillary action or the like. Liquid formulations are received in distribution reservoirs 422 (in Figure 33) and plant tissue absorbs the liquid formulation over time. In each of the designs that include one or more distribution ports retained within the plant, the liquid formulations, in one example, are delivered passively. QRnozn / i ζηζ / 3 / γ to plant tissue. Consequently, the pressurization of the fluid and the corresponding leakage or the like are minimized (eg, eliminated or minimized). Instead, the injection tool, in combination with the plant tissue, provides a sealed or closed environment for the residence of the liquid formulations within the plant tissue. Residency of delivered liquid formulations, for example, under passive pressure, facilitates distribution of the liquid formulation to plant tissue and absorption through plant tissue without actively pressurizing the fluid in a way that may increase the change in damage to the plant. plant, leakage from the plant or the like. Numerous active ingredients, which can be used in the context of this description, are generally available to a worker in the art. The active ingredients specified in the present description by their common name are known and described, for example, in The Pesticide Manual (18th edition, Ed. Dr. J A Turner (2018), which includes, among other agents, herbicides, fungicides, insecticides, acaricides, nematocides, plant growth regulators, repellents, synergists) or can be searched on the Internet (eg alanwood.net / pesticides). Furthermore, the active ingredient can be selected from the following groups of compounds and compositions: 1. Fungicides 1.1 Respiration inhibitors 1.1.1 Complex III inhibitors at the Qo site, e.g. azoxystrobin, coumethoxystrobin, coumoxystrobin, dimoxystrobin, enestroburin, phenaminestrobin, phenoxystrobin / fluphenoxystrobin, fluoxastrobin, cresoxym-methyl, metominostrobin, orysastrobin, picoxystrobin, pyraclostrobin, pyramethostrobin, pyraoxystrobin , trifloxystrobin, piribencarb, triclopyricarb / chlorodincarb, famoxadone, and / or fenamidone; 1.1.2 Complex III inhibitors at the Q¡ site: cyazofamide and / or amisulbrom; 1.1.3 Complex II inhibitors: flutolanil, benodanil, bixafen, boscalid, carboxin, fenfuram, fluopyram, flutolanil, fluxapyroxad, furametpyr, isopyrazam, mepronil, oxycarboxin, penflufen, penthiopyrad, sedaxane, tecloftalam and / or thifluzamide; 1.1.4 Other respiration inhibitors (eg complex I, uncouplers): diflumetorim; 1.1.5 Nitrophenyl derivatives: binapacryl, dinobuton, dinocap, fluazinam; ferimzone; organometallic compounds: fentin acetate, fentin chloride and / or fentin hydroxide; ametoctradine; and / or silthiopham; 1.2 Sterol biosynthesis inhibitors (SBI fungicides) 1.2.1 . C14 demethylase inhibitors (DMI fungicides): triazoles: azaconazole, bitertanol, bromuconazole, cyproconazole, difenoconazole, diniconazole, diniconazole-M, epoxiconazole, fenbuconazole, fluquinconazole, flusilazole, flutriafol, hexaconazole, imibenconazole, ipconazole, metconazole, myclobutanil, oxpoconazole, paclobutrazole , penconazole, propiconazole, prothioconazole, simeconazole, tebuconazole, tetraconazole, triadimefon, triadimenol, triticonazole and / or uniconazole; 1.2.2 Imidazoles: imazalil, pefurazoate, prochloraz, triflumizole; pyrimidines, pyridines and piperazines: fenarimol, nuarimol, pyrifenox, triforine; Delta14-reductase inhibitors: aldimorph, dodemorph, dodemorph-acetate, phenpropimorph, tridemorph, fenpropidin, piperaline, spiroxamine; 3-keto reductase inhibitors: fenhexamide; 1.3 Inhibitors of nucleic acid synthesis: 1.3.1 Phenylamides or acyl amino acid fungicides: benalaxyl, benalaxyl-M, chiral-axyl, metalaxyl, ofurace, oxadixil; others: himexazole, octilinone, oxolinic acid, bupirimate and / or, 5-fluorocytosine; QRnQ7n / l 7Π7 / 3 / Υ 1.4 Inhibitors of cell division and the cytoskeleton 1.4.1 Tubulin inhibitors: benzimidazoles, thiophanates: benomyl, carbendazim, fuberidazole, thiabendazole, thiophanate-methyl; triazolopyrimidines: 1.4.2 Cell division inhibitors: diethofencarb, ethaboxam, pencicuron, fluopicolide, zoxamide, metrafenone and / or pyriophenone; 1.5 Inhibitors of amino acid and protein synthesis 1.5.1 Methionine synthesis inhibitors (anilino-pyrimidines): cyprodinil, mepanipyrim, pyrimethanil; protein synthesis inhibitors: blasticidin-S, kasugamycin, kasugamycin hydrochloride hydrate, mildiomycin, streptomycin, oxytetracycline, polyoxin, validamycin A; 1.6 . signal transduction inhibitors 1.6.1 MAP / histidine kinase inhibitors: fluoroimide, iprodione, procymidone, vinclozolin, fenpiclonil, fludioxonil; G protein inhibitors: quinoxyfen; 1.7 Inhibitors of lipid and membrane synthesis 1.7.1 Phospholipid biosynthesis inhibitors: edifenphos, iprobenfos, pyrazophos, isoprothiolane; lipid peroxidation: dichloran, quintozene, technazene, tolclofos-methyl, biphenyl, doroneb, etridiazole; phospholipid biosynthesis and cell wall deposition: dimethomorph, flumorph, mandipropamide, p¡rimorph, bentiavalicarb, iprovalicarb, valifenalate; 1.7.2 Compounds Affecting Cell Membrane Permeability and Fatty Acids: Propamocarb, Propamocarb-Fatty Acid Amide Hydrochloride 1.8 Inhibitors with multisite action 1.8.1 Inorganic active substances: Bordeaux mixture, copper acetate, copper hydroxide, copper oxychloride, basic copper sulfate, sulfur; thio- and dithiocarbamates: ferbam, mancozeb, maneb, metam, metiram, propineb, thiram, zineb, ziram; organochlorine compounds (for example, phthalimides, sulfonamides, chloronitriles): anilazine, chlorothalonil, captafol, captan, folpet, dichlofluanid, dichlorophen, hexachlorobenzene, pentachlorphenol and its salts, phthalide, tolylfluanid, and others: guanidine, dodine, dodine free base, guazatin, guazatin acetate, iminoctadine, iminoctadine triacetate, iminoctadinetris (albesilate), dithianon; 1.9 Inhibitors of cell wall synthesis 1.9.1 Glucan synthesis inhibitors: validamycin, polyoxin B; inhibitors of melanin synthesis: pyroquilon, tricyclazole, carpropamid, dicyclomet and / or fenoxanil; 1.10 Plant defense inducers 1.10.1 Acibenzolar-S-methyl, probenazole, isothianil, thiadinyl, prohexadione-calcium; phosphonates: fosetyl, fosetylaluminum, phosphorous acid and their salts; 1.11 Mode of action unknown 1.11.1 Bronopol, chinomethionat, cyflufenamide, cymoxanil, dazomet, debacarb, diclomezine, difenzoquat, difenzoquat methylsulfate, diphenylamine, fenpyrazamine, flumetover, flusulfamide, flutianil, metasulfocarb, nitrapyrine, nitrothal-isopropyl, oxine-copper, picarbutrazox, tebufloquinid , teclophthalam and / or triazoxide; οκηοζη / ΐ 7Π7 / 3 / Υ 1.12 Antifungal Biological Control Agents: Ampelomycesquisqualis (eg, AQ 10® from Intrachem Bio GmbH & Co. KG, Germany), Aspergillus flavus (eg, AFLAGUARD® from Syngenta, OH), Aureobasidium pullulans (eg, BOTECTOR® from bio-ferm GmbH, Germany), Bacillus pumilus (eg NRRL Accession No. B-30087 on SONATA® and BALLAD® Plus from AgraQuest Inc., USA), Bacillus subtilis (eg NRRL-Nr. B-21661 isolate in RHAPSODY®, SERENADE® MAX and SERENADE® ASO from AgraQuest Inc., United States), Bacillus subtilis var. amyloliquefaciens FZB24 (for example, TAEGRO® from Novozyme Biologicals, Inc., USA), Candidaoleophila I-82 (for example, ASPIRE® from Ecogen Inc., USA), Candida saitoana (for example, BIOCURE® (in admixture with lysozyme) and BIOCOAT® from Micro Fio Company, USA (BASF SE) and Arysta), Chitosan (eg ARMOR-ZEN from BotriZen Ltd., NZ), Clonostachys rosea f. catenulata, also called Gliocladium catenulatum (for example, J1446 isolate: PRESTOP® from Verdera, Finland), Coniothyrium minitans (for example, CONTANS® from Prophyta, Germany), Cryphonectria parasitica (for example, Endothia parasitica from CNICM, France), Cryptococcus albidus (eg YIELD PLUS® from Anchor Bio-Technologies, South Africa), Fusarium oxysporum (eg BIOFOX® from S.I.A.P.A., Italy, FUSACLEAN® from Natural Plant Protection, France), Metschnikowia fructicola (eg SHEMER® from Agrogreen , Israel), Microdochium dimerum (for example, ANTIBOT® from Agrauxine, France), Phlebiopsis gigantea (for example, ROTSOP® from Verdera, Finland), Pseudozyma flocculosa (for example, SPORODEX® from Plant Products Co. Ltd., Canada) , Pythium oligandrum DV74 (for example, POLYVERSUM® from Remeslo SSRO, Biopreparaty, Czech Republic), Reynoutria sachlinensis (for example, REGALIA® from Marrone Bio-lnnovations, USA), Talaromyces flavus V117b (for example, PROTUS® from Prophyta, Germany), Trichoderma asperellum SKT-1 (for example, ECOHOPE® from Kumiai Chemical Industry Co., Ltd., Japan), T. atroviride LC52 (for example, SENTINEL® from Agrimm Technologies Ltd, NZ), T. harzianum T- 22 (for example, PLANTSHIELD® from Firma BioWorks Inc., USA), T. harzianum TH 35 (for example, ROOT PRO® from Mycontrol Ltd., Israel), T. harzianum T-39 (for example, TRICHODEX® and TRICHODERMA 2000® from Mycontrol Ltd., Israel and Makhteshim Ltd., Israel), T. harzianum and T. viride (for example, TRICHOPEL from Agrimm Technologies Ltd, NZ), T. harzianum ICC012 and T. viride ICC080 (for example, REMEDIER® WP from Isagro Ricerca, Italy), T. polysporum and / or T. harzianum (for example, BINAB® from BINAB Bio-lnnovation AB, Sweden), T. stromaticum (for example, TRICOVAB® from C.E.P.L.A.C., Brazil), T. virens GL-21 (eg, SOILGARD® from Certis LLC, USA), T. viride (eg, TRIECO® from Ecosense Labs. (India) Pvt. Ltd., India, BIO-CURE® F from T Stanes & Co. Ltd., India), T. viride TV1 (for example, T. viride TV1 from Agribiotec srl, Italy), Ulocladium oudemansii HRU3 (for example, BOTRY-ZEN® from Botry-Zen Ltd, NZ), Beauveria bassiana PPRI 5339 (sold by Becker Underwood as the "BroadBand" product), Metarhizium anisopliae FI-1045 (sold by Becker Underwood as the "BioCane" product), Metarhizium anisopliae var. acridum FI-985 (sold by Becker Underwood as the ''GreenGuard'' product) and / or Metarhizium anisopliae var. acridum IMI330189 (commercially available from Becker Underwood as the product "Green Muscle"). Active ingredients may also include proteins or secondary metabolites. The term protein or secondary metabolites refers to any compound, substance, or by-product of a fermentation of a microorganism that has pesticidal activity. The definition encompasses any compound, substance, or byproduct of a fermentation of a microorganism that has pesticidal activity, including fungicidal or insecticidal. Examples of QAnQZn / l 7Π7 / 3 / Υ such secondary proteins or metabolites are Harpin (isolated by Erwinia amylovora, product known as eg Harp-N-Tek™, Messenger®, Employ™, ProAct™); and / or terpene and terpene mixture constituents, ie, a-terpinene, p-cymene and limonene (product known as, for example, Requiem® from Bayer CropScience LP, United States). Useful proteins may also include antibodies against fungal target proteins or other proteins with antifungal activity, such as defensins and / or proteinase inhibitors. Defensins can include, for example, radish NaD1, PhD1A, PhD2, Tomdef2, RsAFP2, RsAFPI, RsAFP3 and RsAFP4, dahlia DmAMPI, MsDefl, MtDef2, CtAMPI, PsD1, HsAFPI, VaD1, VrD2, ZmESR6, AhAMPI and AhAMP4deAesculushippocatanum, alfalfa, NaD2, AX1, AX2, BSD1, EGAD1, HvAMPI, JI-2, PgD1, SD2, SoD2, WT1, pl39 and pl230 from pea. Proteinase inhibitors may include proteinase inhibitors of the following classes: inhibitors of serine, cysteine, aspartic and metallo proteinase and carboxypeptidases such as StPinlA (US 7,462,695) or bovine trypsin I-P inhibitor. 2. Insecticidal compound 2.1 Carbamate class acetylcholine esterase inhibitors: aldicarb, alanicarb, bendiocarb, benfuracarb, butocarboxim, butoxycarboxim, carbaryl, carbofuran, carbosulfan, ethiofencarb, fenobucarb, formetanate, furathiocarb, isoprocarb, methiocarb, methomyl, metolcarb, oxamyl, pirimicarb , propoxur, thiodicarb, thiophanox, trimetacarb, XMC, xylylcarb and / or triazamate; 2.2 Acetylcholine esterase inhibitors of the organophosphate class: acetate, azamethifos, azinphos-ethyl, azinphosmethyl, cadusafos, chlorethoxyphos, chlorfenvinphos, chlormephos, chlorpyrifos, chlorpyrifos-methyl, coumaphos, cyanophos, demetonS-methyl, diazinon, dichlorvos / DDVP, dicrotophos, dimethoate, dimethylvinphos, disulfoton, EPN, ethion, ethoprophos, famfur, fenamifos, fenitrothion, fenthion, fostiazate, heptenofos, imiciafos, isofenphos, isopropyl O-(methoxyam¡not¡o-phospho¡l) salic¡late, isoxation, malathion, mecarbam, methamidophos, metidathion, mevinphos, monocrotophos, nalad, omethoate, oxydemeton-methyl, parathion, parathion-methyl, phenthoate, phorate, fosalon, phosmet, fosphamidon, phoxim, pirimifos-methyl, profenofos, propetamfos, prothiophos, pyraclophos, pyridafenthion, quinalphos, sulfotep, tebupirimfos, temephos, terbufos, tetrachlorvinphos, thiometon, triazophos, trichlorfon and / or vamidothion; 2.3 Antagonists of the GABA-regulated chloride channel 2.4 Organochlorine Cyclodiene Compounds: Endosulfan; or M-2.B fiproles (phenylpyrazoles): ethiprole, fipronil, flufiprole, pyrafluprole or pyriprole; 2.5 Sodium channel modulators of the pyrethroid class: acrinathrin, allethrin, d-cis-trans allethrin, d-trans allethrin, bifenthrin, bioallethrin, S-cyclopentenyl bioallethrin, bioresmethrin, cycloprothrin, cyfluthrin, betacyfluthrin, cyhalothrin, lambda- cyhalothrin, gamma-cyhalothrin, cypermethrin, alpha-cypermethrin, beta-cypermethrin, theta-cypermethrin, zeta-cypermethrin, cyphenothrin, deltamethrin, momfluorothrin, empentrin, esfenvalerate, etofenprox, fenpropatrin, fenvalerate, flucythrinate, flumethrin, tau-fluvalinate, halfenprox, imiprothrin, meperfluthrin, metofluthrin, permethrin, phenothrin, prallethrin, profluthrin, pyrethrin (pyrethrum), resmethrin, silafluofen, tefluthrin, tetramethylfluthrin, tetramethrin, tralomethrin, transfluthrin, DDT and / or, methoxychlor; 2.6 Nicotinic acteylcholine receptor agonists of the neonicotinoid class: acteamiprid, clothianidin, cycloxaprid, dinotefuran, flupiradifurone, imidacloprid, nitenpyram, sulfoxaflor, thiacloprid and / or thiamethoxam; QRnQ7n / l 7Π7 / 3 / Υ 2.7 Activators of the allosteric nicotinic acteylcholine receptor of the spinosyn class: spinosad, spinetoram; 2.8 Chloride channel activators of the class of mectins: abamectin, emamectin benzoate, ivermectin, lepimectin and / or milbemectin; 2.9 Juvenile hormone mimics: hydroprene, cynoprene, methoprene, fenoxycarb and / or pyriproxyfen; 2.10 Non-specific multisite inhibitors: methyl bromide and other alkyl halides, chloropicrin, sulfuryl fluoride, borax and / or tartar emetic; 2.11 Selective blockers of homopteran feeding: pymetrozine, flonicamid and / or p¡rifIuquinazon; 2.12 Mite growth inhibitors: clofentezine, hexythiazox, diflovidazine and / or etoxazole; 2.13 Inhibitors of mitochondrial ATP synthase: diafenthiuron, azocyclotin, cyhexatin, fenbutatin oxide, propargite and / or tetradifon; 2.14 Uncouplers of oxidative phosphorylation: chlorfenapyr, DNOC and / or sulfluramid; M-13 nicotinic acetylcholine receptor channel blockers: bensultap, cartap hydrochloride, thiocyclam, and / or thiosultap sodium; 2.15 Chitin biosynthesis inhibitors type 0 (benzoylurea class): bistrifluron, chlorfluazuron, diflubenzuron, flucycloxuron, flufenoxuron, hexaflumuron, lufenuron, novaluron, noviflumuron, teflubenzuron and / or triflumuron; 2.16 Type 1 chitin biosynthesis inhibitors: buprofezin; 2.17 Molting destabilizers: cyromazine; 2.18 Ecdysone Receptor Agonists: Methoxyfenozide, Tebufenozide, Halofenozide, Fufenozide, and / or Chromafenozide; 2.19 Octopamine Receptor Agonists: Amitraz; 2.20 Inhibitors of electron transport of the mitochondrial complex III: hydramethylnon, acequinocil, flometoquin, fluacrypyrim and / or pyriminostrobin; 2.21 Mitochondrial complex I electron transport inhibitors: fenazaquin, fenpyroximate, pyrimidifen, pyridaben, tebufenpyrad, tolfenpyrad, flufenerim and / or rotenone; 2.22 Voltage-Gated Sodium Channel Blockers: Indoxacarb and / or Metaflumizone 2.23 Lipid synthesis inhibitors, acetyl CoA carboxylase inhibitors: Spirodiclofen, Spiromasifen and / or Spirotetramate; 2.24 Inhibitors of electron transport of the mitochondrial complex II: cienopirafen, cyflumethofen and / or piflubumide; 2.25 Ryanodine receptor modulators of the diamide class: flubendiamide, chlorantraniliprole (rinaxipir) and / or cyantraniliprole (ciazipir), 2.26 Others: afidopiropen, 2.27 Insecticidal Biological Control Agents: Bacillus firmus (eg, Bacillus firmus CNCM 1-1582, eg, WO09126473A1 and WO09124707 A2, commercially available as Votivo") and / or Bacillus thuringiensis (Bt) δ-endotoxins. 3. A plant growth regulator: QRnQZn / l 7Π7 / 3 / Υ 3.1 Antiauxins: clofibric acid and / or 2,3,5-tri-iodobenzoic acid; 3.2 Auxins: 4-CPA, 2,4-D, 2,4-DB, 2,4-DEP, dichlorprop, fenoprop, IAA (indole-3-acetic acid), IBA, naphthaleneacetamide, α-naphthaleneacetic acid, 1- naphthol, naphthoxyacetic acid, potassium naphthenate, sodium naphthenate and / or 2,4,5-T; 3.3 Cytokines: 2IP, 6-benzylaminopurine (6-BA), 2,6-dimethyl pyridine and / or kinetin, zeatin; 3.4 Defoliants: calcium cyanamide, dimethipine, endothelium, merfos, methoxuron, pentachlorophenol, thidiazuron, tribuios and / or tributylphosphorotrithioate; 3.5 Ethylene modulators: aviglycine, 1-methylcyclopropene (1-MCP), prohexadione (calcium prohexadione) and / or trinexapac (trinexapac-ethyl); 3.6 Ethylene liberators: ACC, etacelasil, ethephon, glyoxime; Gibberellins: gibberellin, gibberellic acid; 3.7 Growth inhibitors: abscisic acid, anzimidol, butralin, carbaryl, chlorphonium, chlorpropham, dikegulac, flumetralin, fluoridamid, fosamine, glyphosine, isopyrimole, jasmonic acid, maleic hydrazide, mepiquat (mepiquat chloride, mepiquat pentaborate), piproctanil, prohydrojasmon , propham and / or 2,3,5-tri-iodobenzoic acid; 3.8 Morfactins: chlorfluren, chlorflurenol, dichlorflurenol and / or flurenol; 3.9 Growth retardants: chlormequat (chlormequat chloride), daminozide, flurprimidol, mefluidide, paclobutrazol, tetciclacis, uniconazole and / or metconazole; 3.10 Growth stimulators: brassinolide, forchlorfenuron and / or himexazole; 3.11 Plant growth regulators unclassified / classification unknown: amidochlor, benzofluoride, buminaphos, carvone, choline chloride, ciobutide, clofencet, cloxifonac, cyanamide, cyclanilide, cycloheximide, ciprosulfamide, epocoleone, eticlozate, ethylene, fenridazon, fluprimidol, flutiacet, heptopargyl, holosulf, inabenfide, karetazan, lead arsenate, metasulfocarb, pidanon, synthofen, and / or triapenthenol. In one embodiment, the fungicidal compound is selected from the group consisting of Dimoxystrobin, Pyraclostrobin, Azoxystrobin, Trifloxystrobin, Picoxystrobin, Cyazofamide, Boscalid, Fluoxapyroxad, Fluopyram, Bixafen, Isopyrazam, Benzovindiflupyr, Penthiopyrad, Ametoctradin, Difenoconazole, Metconazole, Prothioconazole, Tebuconazole, Propiconazole, Cyproconazole, Penconazole, Myclobutanil, Tetraconazole, Hexaconazole, Metrafenone, Zoxamid, Pyrimethanil, Cyprodinil, Metalaxyl, Fludioxonil, Dimethomorph, Mandipropamid, Tricyclazole, Copper, Metiram, Chlorothalonil, Ditianon, Fluazinam, Folpet, Fosetyl-AI, Captan, Cymoxanil, Mancozeb, Kresoxim-methyl, Oryzastrobin, Epoxiconazole, Fluquinconazole, Triticonazole, Fenpropimorph, and Iprodione. In one embodiment, the plant growth regulator is selected from the group consisting of 6-benzylaminopurine (=N-6-benzyladenine), chlormequat (chlormequat chloride), choline chloride, cyclanilide, dikegulac, diflufenzopyr, dimethipine, ethephon, flumetralin , flutiacet, forchlorfenuron, gibberellic acid, inabenfide, maleic hydrazide, mepiquat (mepiquat chloride), 1-methylcyclopropene (1-MCP), paclobutrazol, prohexadione (calcium prohexadione), prohydrojasmon, thidiazuron, triapenthenol, tributyl phosphorotrithioate, trinexapac-ethyl and uniconazole. In another embodiment, the active ingredient is a biological control agent such as a biopesticide. Compared to conventional synthetic chemical pesticides, biopesticides are non-toxic, safe to use, and can have high specificity. These can be used as a preventative (or curative) tool to control QRnQ7n / l 7Π7 / 3 / Υ diseases, nematodes and insects and other pests. Biopesticides allow the reduction in the use of traditional chemical-based pesticides without affecting yields. The use of biopesticides is compatible with the use for food and feed production and many of the biological agents are approved for consumption. This allows year-round use in food production systems such as wine, banana, cocoa, coffee, and fruit plantations, etc. where pest control is a significant and growing challenge. In one embodiment, the tools, systems and methods of the description are used in organic agriculture. In one embodiment, the active ingredients are those that provide a systemic effect. The active ingredient is generally formulated to be suitable for injection / transfer into a plant species by a method according to the present disclosure. Examples of typical formulations include water soluble liquids (SL), emulsifiable concentrates (EC), water emulsions (EW), suspension concentrates (SC, SE, ES, OD), water dispersible granules (WG), and flowables ( including one or more than one liquid, gas, gel, vapor, aerosol, or the like). These and other possible types of formulation are described, for example, in Crop Life International and Pesticide Specifications, FAO and QMS Handbook on the Development and Use of Pesticide Specifications, FAO Plant Protection and Production Documents, Prepared by the Joint FAO / WHO Meeting on Pesticide Specifications, 2004, ISBN: 9251048576; Catalog of pesticide formulation types and International coding system”, Technical Monograph No. 2, Issue 6, May 2008, CropLife International. The compositions are prepared in a known manner, such as described by Mollet and Grudemann, Formulation technology, Wiley VCH, Weinheim, 2001; o Knowles, New developments in crop protection product formulation, Agrow Reports DS243, T&F Informa, London, 2005. Formulations are prepared, for example, by mixing the active ingredients with one or more suitable additives, such as extenders, solvents, growth promoters, etc. suitable spontaneity, carriers, emulsifiers, dispersants, frost protectants, biocides, thickeners, adjuvants or the like. An adjuvant in this context is a component that enhances the biological effect of the formulation, without the component itself having a biological effect. Examples of adjuvants are agents that promote retention, propagation or penetration into the target plant. One embodiment of the disclosure comprises a long-term supply of the active ingredient to the plant during the growing season, with auxiliary stabilizers, such as low-temperature stabilizers, preservatives, antioxidants, light stabilizers, or other agents that improve chemical stability. and / or physical. Examples of suitable auxiliaries are solvents, liquid carriers, surfactants, dispersants, emulsifiers, wetting agents, adjuvants, solubilizers, penetration enhancers, protective colloids, humectants, repellents, attractants, feeding stimulants, compatibilizers, bactericides, antifreeze agents, antifoam agents , dyes, stabilizers or nutrients, UV protectors, adherents and / or binders. Specific examples for each of these auxiliaries are well known to those skilled in the art, see, for example, US 2015 / 0296801 A1. The compositions may optionally comprise 0.1-80% stabilizers and / or nutrients and 0.1-10% UV protectants. General examples of suitable ratios for the many formulation types mentioned above are given in Agrow Reports DS243, T&F Informa, London, 2005. QRnozn / i ζηζ / 3 / γ When active ingredients are applied, the application may be continuous for a longer period or intervals. The app could also be coupled with a disease monitoring system and activated “on demand”. The system of the invention can be used with any number of known injection protocols, such as, for example, those described in PCT applications WO 2012 / 114197 or WO 2013 / 149993 which are incorporated herein by reference. The appropriate protocol will depend on several factors including nozzle tip, tree species, target (insect, nematode, disease, abiotic stress, etc.), injection fluid components and / or viscosity, volume required dose and injection pressure. Penetrating agents that facilitate and / or improve the uptake and distribution of the active ingredient in the target plant may be used. Penetrant agents suitable in the present context include all those substances that are typically used to enhance the penetration of plant-active agrochemicals. Examples include alcohol alkoxylates, such as coconut fatty ethoxylate, isotridecyl ethoxylate, fatty acid esters, such as rapeseed or soybean oil methyl esters, fatty amine alkoxylates, such as tallowamine ethoxylate, or ammonium salts and / or phosphonium, such as ammonium sulfate or diammonium hydrogen phosphate. Formulations may comprise between 0.5% and 90% by weight of active compound, based on the weight of the formulation. At certain application rates, the compositions and / or formulations according to the description can also have a strengthening effect on plants. "Plant-reinforcing" substances (resistance-inducing) should be understood in the current context, as those substances or combinations of substances that are capable of stimulating the defense system of plants in such a way that, when subsequently inoculated with microorganisms harmful, the treated plants show a substantial degree of resistance to these microorganisms. In some embodiments, the injection tool of the description is inserted into the stem of the plant. The term "stem" is to be understood in the widest possible sense and includes all parts of the plant that (i) comprise a vascular system connected to the plant and (ii) have a diameter of at least 1 cm, such as at minus 2 cm or 3 cm, or at least 4 cm or 5 cm. The term stem includes tree trunks and branches, large petioles, but also false stems or pseudostems of plants such as bananas, which consist of tightly packed pods. The stems can be woody or non-woody. Plants that can benefit from the application of the products and methods of the subject description are selected from Crops of trees (for example, walnuts, almonds, pecans, hazelnuts, pistachios, etc.), citrus trees (Citrus spp. for example , orange, lemon, grapefruit, tangerines etc.), fruit crops (such as pips, stone fruits or soft fruits, for example apples, pears, plums, peaches, cherries etc.), Vining crops (for example grapes, blueberries, blackberries, etc.), coffee (Coffea spp.), coconut (Cocos iucifera), pineapple (Ananas comosus), cocoa (Theobroma cacao), tea (Camellia sinensis), banana (Musa spp.), laurel plants ( such as avocado (Persea americana), cinnamon or camphor), fig (Ficus casica), guava (Psidium guajava), mango (Mangifera indica), olive (Olea europaea), papaya (Carica papaya), cashew (Anacardium occidentale), macadamia (Macadamia integrifolia), almond (Prunus amygdalus), natural rubber trees, date trees, oil palm, ornamentals, forestry (eg pine, fir, eucalyptus, poplar, conifers, etc.) and / or boxwood. QRnozn / i ζηζ / 3 / γ The conifers that can be used in the practice of the modalities are selected among pines such as loblolly pine (Pinus taeda), oblique pine (Pinus elliotii), ponderosa pine (Pinus ponderosa), lodgepole pine (Pinus contorta) and Monterey pine (Pinus radiala); Douglas fir (Pseudotsuga menziesii); Western hemlock (Tsuga canadensis); Sitka spruce (Picea glauca); sequoia (Sequoia sempervirens); true firs such as silver fir (Abies amabilis) and balsam fir (Abies balsamea); and cedars such as western red cedar (Thuja plicata) and / or Alaskan yellow cedar (Chamaeeyparis nootkatensis). Palms that can be treated are selected from Archontophoenix alexandrae (King Alexander palm), Arenga spp. (Dwarf Sugar Palm), Borassus flabellifer (Lontar Palm), Brahea armata (Blue Hesper Palm), Brahea edulis (Guadalupe Palm), Butia capitate (Pindo Palm), Chamaerops humilis (European Fan Palm), Carpentaria spp (Carpenteria Palm ), Chamaedoreaelegans (parlor palm), C. erupens (bamboo palm), C. seífrizii (cane palm), Chrysalidocarpus lutescens (areca palm), Coccothrinax argentata (silver palm), C. crinite (elder palm ), Cocos nucifera (coconut palm), Elaeis guineensis (African oil palm), Howea forsterana (Kentia palm), Livistona rotundifolia (roundleaf fan palm), Neodypsis decaryi (triangle palm); Normanbya normanbi (Queensland black); Pinanga insignis; Phoenix canariensis (date from the Canary Islands); Ptychosperma macarthuri (Macarthur palm); Rhopalostylis spp (shaving brush palm); Roystonea elata (Florida royal palm), R. regia Cuban (royal palm), Sabal spp (dwarf palm), Syagrus romanzoffiana (queen palm), Trachycarpus fortune (windmill palm), Trythrinax acanthocoma (spiny fiber palm) , Washingtonia filifera (petticoat palm) and / or W. robusta (Washington / Mexico fan palm). One embodiment includes the prevention or cure of palm bud rot caused, for example, by Phytophthora palmivora, Thielaviopsis paradoxa and / or bacteria. Unlike most trees, which have many points where new growth emerges, palms rely on their single terminal bud. If the terminal bud or heart becomes diseased and dies, the tree will be unable to produce any new leaf growth and will die. That is why preventative care is needed to maintain a healthy palm tree. An embodiment comprises a method for reducing damage to plants and / or plant parts or losses in harvested fruits or plant products caused by phytopathogenic fungi by controlling such phytopathogenic fungi, comprising application of the tools, systems, agents / formulations or methods of description to plant. Advantageously, the disclosure is for controlling, avoiding or curing the following fungal diseases of plants selected from the group: Botrytis cinerea (teleomorph: Botryotinia fuckeliana: gray mold) on fruits and berries (eg strawberries), rapeseed, vines, forest plants; Ceratocystis (syn. Ophiostoma) spp. (rot or wither) on broadleaf trees and evergreens, eg C. ulmi (Dutch elm disease) on elms; Cercospora spp. (Cercospora leaf spots) on coffee; Colletotrichum (teleomorph: Glomerella) spp. (anthracnose) in soft fruits; Cycloconium spp., eg C. oleaginum in olive trees; Cylindrocarpon spp. (eg, fruit tree canker or young vine decline, teleomorph: Nectria or Neonectria spp.) on fruit trees, vines (eg, C. liriodendri, teleomorph: Neonectria liriodendri: Blackfoot disease) and ornamentals; Scar (die-off, stroke) on vines, caused by Formitiporia (syn. Phellinus) punctata, F. mediterranean, Phaeomoniella chlamydospora (formerly Phaeoacremonium chlamydosporum), Phaeoacremonium aleophilum, and / or Botryosphaeria obtuse; elsinoe QRnozn / i ζηζ / 3 / γ spp. in pip fruits (E. pyn), soft fruits (E. veneta: anthracnose) and vines (E. ampelina: anthracnose); Eutypa lata (Eutypa canker or die-off, anamorph: Cytosporina lata, syn. Libertella blepharis) on fruit trees, vines, and ornamental woodlands; Fusarium (teleomorph: Gibberella) spp. (wilt, root or stem rot) on various plants; Glomerella cingulata on vines, pome fruits, and other plants; Guignardia bidwellii (black rot) on vines; Gymnosporangium spp. on rosaceous plants and junipers, eg, G. sabinae (rust) on pears; Hemileia spp., eg, H. vastatrix (coffee leaf rust) on coffee; Isariopsis clavispora (syn. Cladosporium vitis) on vines; Monilinia spp., eg, M. taxa, M. fructicola and M. fructigena (flowering and twig blight, brown rot) on stone fruits and other rosaceous plants; Mycosphaerella spp. on bananas, soft fruits, such as for example M. fijiensis (black Sigatoka disease) on bananas; Phialophora spp. eg on vines (eg P. tracheiphila and P. tetraspora); Phomopsis spp. on vines (eg, P. viticola: tin leaf spot); Phytophthora spp. (wilt, root, leaf, fruit, and stem root) in various plants, such as broadleaf trees (eg, P. ramorum: sudden death oak); Plasmopara spp., eg, P. viticola (vine downy mildew) on vines; Podosphaera spp. (powdery mildew) on rosaceous plants, hops, pome and soft fruit, eg P. leucotricha on apples; Pseudopezicula tracheiphila (red fire disease or rotbrenner', anamorph: Phialophora) on vines; Ramularia spp., for example, R. collo-cygni (Ramularia leaf spot, Physiological leaf spot) on barley and R. beticola on sugar beet; Rhizoctonia spp. on cotton, rice, potatoes, grass, corn, rapeseed, sugar beets, vegetables and other plants, eg R. solani (root and stem rot) on soybeans, R. solani (sheath blight) on rice or R. cerealis (Rhizoctonia spring blight) on wheat or barley; Rhizopus stolonifer (black mold, soft rot) on vines; Uncinula (syn. Erysiphe) necator (powdery mildew, anamorph: Oidium tuckeri) on vines; Taphrina spp., eg, T. deformans (leaf curl disease) on peaches and T. pruni (plum bag) on plums; Thielaviopsis spp. (black root rot) on pome fruits; Venturia spp. (scab) on apples (eg, V. inaequalis) and pears; and / or Verticillium spp. (wilting) on various plants, such as fruit and ornamentals, vines, soft fruits. The subject described is used to control, avoid or cure diseases in selected plants of: • Apple diseases: Blossom blight (Monilinia mali), powdery mildew (Podosphaera leucotricha), Alternaria leaf spot / Alternaria blotch (pathotype of Alternaaria apple), scab (Venturia inaequalis), bitter rot (Colletotrichum acutatum), anthrax (Colletotriei acatatum) decay disease (Valsa ceratosperma) and / or crown rot (Phytophtora cactorum); • Pear diseases: scab (Venturia nashicola, V. pirina), black spot / purple spot (Japanese pear Alternaria alternata pathotype), rust / frogeye (Gymnosporangium haraeanum) and / or phytophthora fruit rot (Phytophtora cactorum) ; • Peach diseases: brown rot (Monilinia fructicola), black spot / scab disease (Cladosporium carpophilum) and / or phomopsis rot (Phomopsis sp.); • Grape diseases: anthracnose (Elsinoe ampelina), powdery mildew (Uncinula necator), ripe rot (Glomerella cingulata), black rot (Guignardia bidwelli i), downy mildew (Plasmopara viticola), rust (Phakopsora ampelopsidis) and / or gray mold (Botrytis cinerea); QRnozn / i ζηζ / 3 / γ • Diseases of Japanese persimmon: anthracnose (Gloeosporium kaki) and / or leaf spot (Cercospora kaki, Mycosphaerella nawae); • Diseases of cruciferous vegetables: Alternaria leaf spot (Alternaria japonica), white spot (Cercosporella brassicae) and / or downy mold (Peronospora parasitica); Rapeseed diseases: sclerotinic rot (Scleroti ni a sclerotiorum) and / or gray leaf spot (Alternaria brassicae); • Rose diseases: black spot (Diplocarpon rosae) and / or powdery mildew (Sphaerotheca pannosa); • Plantain disease: sigatoka (Mycosphaerella fijiensis, Mycosphaerella musicola, Pseudocercospora musae); and / or Colletotrichum musae, Armillaria mellea, Armillaria tabescens, Pseudomonas solanacearum, Phyllachora musicola, Mycosphaerella fijiensis, Rosellinia bunodes, Pseudomas spp., Pestalotiopsis leprogena, Cercospora hayi, Pseudomonas solanacearum, Ceratocystis paradoxa, Verticillium theobromae, Trachysphaeradospor Clachysphaerados fructiopsis girl vignette, Cordana johnstonii, Cordana musae, Fusarium pallidoroseum, Colletotrichum musae, Verticillium theobromae, Fusarium spp., Acremonium spp., Cylindrocladium spp., Deightoniella torulosa, Nattrassia mangiferae, Dreschslera gigantean, Guignardia musae, Botryosphaeria ribis, Fusarium haematoco, Nectria, Nectria Fusarium oxysporum, Rhizoctonia spp., Colletotrichum musae, Uredo musae, Uromyces musae, Acrodontium simplex, Curvularia eragrostidis, Drechslera musae-sapientum, Leptosphaeria musarum, Pestalotiopsis disseminate, Ceratocystis paradoxa, Haplobasidion musae, Marasmiellus soladomonasmilona inoderma, Lasmiellus soladomonasmilona siodiplodia theobromae , Fusarium pallidoroseum, Verticillium theobromae, Pestalotiopsis palmarum, Phaeoseptoria musae, Pyricularia grísea, Fusarium moniliforme, Gibberella fujikuroi, Erwinia carotovora, Erwinia chrysanthemi, Cylindrocarpon musae, Meloidogyne arenaria, Meloidogyne incognita, Meloidogyne javanica, Pratylenchus goffeelenichua, Pratylenchus coffee s. brachyurus, Pratylenchus reniformia, Sclerotinia sclerotiorum, Nectria foliicola, Mycosphaerella musicola, Pseudocercosporamusae, Limacinula tenuis, Mycosphaerella musae, Helicotylenchus multicinctus, Helicotylenchus dihystera, Nigrospora sphaerica, Trachysphaera frutigena, Ramichloridium musae, Verticillium theobromae; • Citrus disease: black spot disease (Diaporthe citri), scab (Elsinoe fawcetti) and / or fruit rot (Penicillium digitatum, P. italicum); • Tea disease: net rice disease (Exobasidium reticulatum), victory disease (Elsinoe leucospila), ring leaf spot (Pestalotiopsis sp.), anthracnose (Colletotrichum theaesinensis; • Palm disease: Bud rot, crown rot, red ring, bud rot, deadly yellowing; • Boxwood diseases: Boxwood blight fungus (Cylindrocladium buxicola also called Calonectria pseudonaviculata), Volutella buxi, Fusarium buxicola. The methods of the disclosure can be used to reduce damage caused by a wide range of insect pests. The target insects may be selected from the order Lepidoptera, Coleoptera, Diptera, Thysanoptera, Hymenoptera, Orthoptera, Mites, Siphonaptera, Thysanuridae, Chilopoda, Dermaptera, Phthiraptera, Hemiptera, Homoptera, QRnQ7n / l 7Π7 / 3 / Υ isopterous and / or wingless. Examples of such pests include, but are not limited to, arthropods, including, for example, Lepidoptera (for example, Plutellidae, Noctuidae, Pyralidae, Tortricidae, Lyonetiidae, Carposinidae, Gelechüdae, Crambidae, Arctiidae, and / or Lymantriidae), Hemiptera (for example, Cicadellidae, Delphacidae, Psyllidae, Aphididae, Aleyrodidas, Orthezidae, Miridae, Tingidae, Pentatomidae, and / or Lygaiedae), Coleoptera (for example, Scarabaeidae, Elateridae, Coccinellidae, Cerambycidae, Chrysomelidae, and / or Curculionidae), Diptera (for example, Muscidae, Calliphoridae, Sarcophagidae, Anthomyiidae, Tephritidae, Opomyzoidea, and / or Carnoidea), Orthoptera (for example, Acrididae, Catantopidae, and Pyrgomorphidae), Thrips (for example, Thripidae, Aeolothripidae, and Merothripidae), Tilenchids ( Aphelenchoididae and / or Neotylechidae), springtails (for example, Onychiurus and Isotomidae), mites (for example, Tetranychidae, Dermanyssidae, Acaridae, and / or Sarcoptidae), stylomatophores (for example, Philomycidae and / or Bradybaenidae), ascarids (for example, Ascaridida and / or Anisakidae), Opistorchiids, Strigeids, Blatodeans (for example, Blaberidae, Cryptocercidae, and / or Panesthiidae), Thrips (for example, Lepismatidae, Lepidotrichidae, and / or Nicoletiidae), and / or Boxwood Moth / Boxwood Caterpillar (Cydalima perspectalis). The description is also useful against bacterial pathogens that attack, consume (in whole or in part), or prevent the growth and / or development of plants and / or act as transmission vectors to the plant and / or other plants caused by such bacterial pathogens. Bacterial pathogens may include Agrobacterium, Agrobacterium tumefaciens, Erwinia, Erwinia amylovora, Xanthomonas, Xanthomonas campestris, Pseudomonas, Pseudomonas syringae, Ralstonia solanacearum, Corynebacterium, Streptomyces, Streptomyces scabies, Actinobacteria, Mycoplasmas, Spiroplasmas, and / or Phytoplasmas. The description is also useful to mitigate, control and / or eradicate viral pathogens that attack, consume (in whole or in part), or prevent the growth and / or development of the plant and / or act as transmission vectors to the plant and / or other plants caused by such viral pathogens. Such viral pathogens may include Carlaviridae, Closteroviridae, citrus fruit viruses, Cucumoviridae, llarviridae, plum dwarf viruses, Luteoviridae, Nepoviridae, Potexviridae, Potyviridae, Tobamoviridae, Caulimoviridae, as well as other viruses that attack vegetation and crops. Plant growth regulating compounds can be used, for example, to inhibit the vegetative growth of plants. Such growth inhibition is of economic interest, for example, the inhibition of the growth of herbaceous and woody plants on roadsides and in the vicinity of pipelines or overhead cables, or in general in areas where vigorous plant growth is not desired. the plants. Inhibition of vegetative plant growth can also lead to improved yields because nutrients and assimilates are more beneficial for flower and fruit formation than for the vegetative parts of plants. Growth regulators can often be used to promote vegetative growth as well. This is of great benefit when harvesting vegetative plant parts. However, promoting vegetative growth can also promote generative growth in which more assimilates are formed, resulting in more or larger fruits. The use of growth regulators can control the branching of plants. On the one hand, by breaking the apical dominance, it is possible to promote the development of lateral shoots, which can be highly desirable particularly in the cultivation of ornamental plants, also in combination with a growth inhibition. By οκηοζη / ι ζηζ / 3 / γ on the other hand, however, it is also possible to inhibit the growth of the lateral shoots. This effect is of particular interest, for example, in the cultivation of tobacco or in the cultivation of tomatoes. Under the influence of growth regulators, the number of leaves on the plants can be controlled so that defoliation of the plants is achieved at the desired time. Such defoliation plays an important role in the mechanical harvesting of cotton, but is also of interest to facilitate harvesting in other crops, for example, in viticulture. Growth regulators can also be used to achieve faster or delayed ripening of harvested material before or after harvest. This is particularly advantageous as it allows for optimal adjustment to market requirements. In addition, growth regulators in some cases can improve the color of the fruit. In addition, growth regulators can also be used to concentrate ripening within a certain period of time. This sets the prerequisites for full mechanical or manual harvesting in a single operation, for example in coffee. By using growth regulators, it is also possible to influence the dormancy of the seeds or shoots of the plants, so that plants, which include pineapple or ornamental plants in nurseries, for example, germinate, sprout or flower in no time. where they normally don't tend to. Additionally, growth regulators can induce plant resistance to frost, drought, or high soil salinity. This allows the cultivation of plants in regions that are normally unsuitable. Compositions and / or formulations according to the description also exhibit a potent strengthening effect on plants. Consequently, they can be used to mobilize the defenses of the plant against the attack of undesirable microorganisms. Substances that reinforce plants (inducing resistance) should be understood in the current context, as those substances that are capable of stimulating the defense system of plants in such a way that the treated plants, when subsequently inoculated with undesirable microorganisms, develop a high degree of resistance to these microorganisms. The active compounds according to the description are also suitable for increasing crop yields. Furthermore, they show reduced toxicity and are well tolerated by plants. Furthermore, in the context of the present disclosure, plant physiology effects comprise the following (all of which can be modulated by the compositions, methods, and devices provided herein): Abiotic stress tolerance, including temperature tolerance, drought tolerance and recovery after drought stress, water use efficiency (correlated with reduced water consumption), flood tolerance , ozone stress and tolerance to UV rays, tolerance to chemical substances such as heavy metals, salts, pesticides (protectants), etc. Tolerance to biotic stress, comprising increased resistance to fungal diseases, increased resistance against nematodes, viruses, and bacteria. Increased plant vigor, including plant health, plant quality, seed vigour, support failure reduction, improved appearance, increased recovery, better growth effect greening and improving photos!ntetic efficiency. QRnozn / i ζηζ / 3 / γ In addition, the treatment of the invention can reduce the mycotoxin content in harvested material and food and feed prepared therefrom. In another modality of the description, the tools, the system, the compositions / formulations and the methods are used to provide the plant with nutritional elements such as nitrogen, phosphorus and potassium, as well as mineral elements, including, but not limited to, limited to, silicon, calcium, magnesium and manganese. examples Log injection devices have been tested with respect to use with different types of logs, rate of absorption, product distribution within the plant, and continuous use of an injection device within a log. The injection devices have been tested with logs with a diameter between 2 cm and 30 cm. The tests have been carried out with boxwood, grapevine, hazelnut, walnut, maple, peach and oak. Also, trees such as date palm, citrus tree, and banana tree would also be suitable. The rate of absorption is influenced by factors such as weather, season, time of day, and injection pressure. Within the tests carried out under ideal conditions, an injection pressure of 2.5 bars and 10 ml of test substance, absorption times of less than 2 minutes have been achieved. Distribution within plants has been tested by injecting a solution comprising 2% Brilliant Blue E 133 (CAS Registry No. 3844-45-9.) as a test substance. The trees have then been felled and cut into pieces to analyze the distribution of the test substance over time within the plant. The test substance was typically distributed over 5 meters within the stem for 24 hours. In addition, conventional active ingredients can be applied, eg the commercial products Maag Perfekthion® and Maag Kendo® for boxwood. Maag Perfekthion® (40% dimethoate stock solution), depending on the size of the boxwood, a 10 ml to 100 ml injection can be used at a dilution of 0.1% to 0.3%. Various notes and aspects Aspect 1 may include such subject matter as a plant injection system comprising: an injection tool configured to penetrate a plant and deliver a liquid formulation to the plant, the injection tool includes: a base having an injection port entrance; a penetration distribution body extending along a longitudinal axis of the body and having a body profile, the penetration distribution body includes: a penetration element; at least one distribution tank within the profile of the body; and one or more distribution ports in communication with the entry port and the at least one distribution tank, the one or more distribution ports are separated from the penetration element; and wherein the injection tool includes penetrating and dispensing configurations: in the penetrating configuration, the penetrating element is configured to penetrate the plant along the longitudinal axis of the body; and in the dispensing configuration, the one or more dispensing ports are configured to dispense the liquid formulation transversely relative to the longitudinal axis of the body within the at least one plant-proximal dispensing reservoir. Aspect 2 may include, or may optionally be combined with, the subject of Aspect 1, to optionally include, wherein the one or more manifold ports are spaced laterally from the longitudinal axis of the body. QRnQ7n / l 7Π7 / 3 / Υ Aspect 3 may include, or may optionally be combined with the theme of one or any combination of Aspects 1 or 2 to be optionally included, wherein the penetration element includes a penetration profile, and the one or more distribution ports are within of the penetration profile and proximal in relation to the penetration profile. Aspect 4 may include, or may optionally be combined with the theme of one or any combination of Aspects 1-3 to be optionally included, where the one or more distribution ports are embedded within the penetration profile. Aspect 5 may include, or may optionally be combined with, the theme of one or any combination of Aspects 1-4 to be optionally included, wherein in the penetration configuration, the penetration element breaks the coupling of the one or more distribution ports with the plant. Aspect 6 may include, or may optionally be combined with the subject of Aspects 1-5 to optionally include, where the one or more distribution ports are recessed from an exterior of the body profile. Aspect 7 may include, or may optionally be combined with the subject of Aspects 1-6 to optionally include, where in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the outside of the profile. of the body. Aspect 8 may include, or may optionally be combined with the subject of Aspects 1-7 to optionally include, where in the dispensing configuration, the one or more dispensing ports are configured to dispense the liquid formulation remotely relative to to the penetrating element. Aspect 9 may include, or may optionally be combined with the subject of Aspects 1-8 to optionally include, where in the delivery configuration, the one or more delivery ports are configured to deliver the liquid formulation at a location proximal to along the penetration distribution body relative to the penetration element. Aspect 10 may include, or may optionally be combined with the theme of Aspects 1-9 to be optionally included, wherein in the distribution configuration, the penetrating distribution body having the at least one distribution reservoir is configured to retaining the liquid formulation throughout a plant tissue of the plant. Aspect 11 may include, or may optionally be combined with the subject matter of Aspects 1-10 to optionally include a retaining configuration wherein the penetrating distribution body is retained in a continuous state in plan with an anchoring element. Aspect 12 may include, or may optionally be combined with the topic of Aspects 1-11 to optionally include, where in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the plant in a continuous state. Aspect 13 may include, or may optionally be combined with the subject of Aspects 1-12 to be optionally included, wherein the steady state includes a plurality of dispenses of the liquid formulation from the one or more dispensing ports over one or more hours . Aspect 14 may include, or may optionally be combined with the subject of Aspects 1-13 to optionally be included, wherein the plurality of distributions includes a continuous distribution of the liquid formulation. QAnQZn / l 7Π7 / 3 / Υ Aspect 15 may include, or may optionally be combined with the subject matter of Aspects 1-14 to optionally include, wherein the penetrating element includes one or more of a cutting element, wedge profile, or nose profile. Aspect 16 may include, or may optionally be combined with the subject matter of Aspects 1-15 to optionally include a method for distributing a liquid formulation to a plant, the method comprising: penetrating a plant with an injection tool having a penetration distribution body extending along a longitudinal axis of the body, the penetration includes: piercing the plant with a penetration member of the penetration distribution body; isolating one or more distribution ports of the plant with the penetrating distribution body; and distributing the liquid formulation to the penetrated plant, the distribution of the liquid formulation includes: conveying the liquid formulation from an inlet port of the injection tool to the one or more distribution ports; supplying the liquid formulation from the one or more distribution ports to the at least one distribution tank in communication with the penetrated plant, the at least one distribution tank being within a profile of the penetrating distribution body. Item 17 may include, or may optionally be combined with the topic of Items 1-16 to be optionally included, wherein isolating the one or more plant distribution ports includes isolating the one or more plant distribution ports with a penetration profile of the penetration element. Aspect 18 may include, or may optionally be combined with the subject matter of Aspects 1-17 to optionally include, where the one or more distribution ports are within the penetrating distribution body profile; and isolating the one or more distribution ports of the plant includes isolating the one or more distribution ports with the body profile. Aspect 19 may include, or may optionally be combined with the subject matter of Aspects 1-18 to be optionally included, wherein the one or more distribution ports are within a body profile of the penetrating distribution body; and penetrating the plant with the injection tool includes disrupting the coupling of the one or more distribution ports with the plant. Aspect 20 may include, or may optionally be combined with the theme of Aspects 1-19 to optionally include, wherein the penetrating element includes a cutting element; and piercing the plant with the penetrating element includes cutting the plant with the cutting element. Aspect 21 may include, or may optionally be combined with the theme of Aspects 1-20 to be optionally included, wherein the penetrating element includes a wedge profile; and the piercing of the sole with the penetrating element includes cutting the sole with the wedge profile. Aspect 22 may include, or may optionally be combined with the subject of Aspects 1-21 to be optionally included, where the penetrating distribution body includes a body profile, and the one or more distribution ports are recessed from the profile of the body; and the supply of the liquid formulation from the one or more dispensing ports includes the transverse supply of the liquid formulation relative to a longitudinal axis of the penetrating dispensing body. QRnQ7n / l 7Π7 / 3 / Υ Aspect 23 may include, or may optionally be combined with, the subject of Aspects 1-22 to optionally include retention of the liquid formulation throughout a plant tissue of the plant. Aspect 24 may include, or may optionally be combined with the subject of Aspects 1-23 to optionally include, where the one or more distribution ports are remote from the penetrating element; and supplying the liquid formulation from the one or more delivery ports includes supplying the liquid formulation remotely relative to the penetrating element. Item 25 may include, or may optionally be combined with the subject matter of Items 1-24 to be optionally included, wherein delivery of the liquid formulation remotely includes delivery of the liquid formulation at a location proximal along the dispensing body of penetration in relation to the element of penetration. Aspect 26 may include, or may optionally be combined with the subject matter of Aspects 1-25 to optionally include retaining the penetrating distribution body in plan with an anchoring element. Aspect 27 may include, or may optionally be combined with the subject matter of Aspects 1-26 to optionally be included, wherein the supply of the liquid formulation from the one or more distribution ports includes continuous supply of the liquid formulation. Aspect 28 may include, or may optionally be combined with the subject matter of Aspects 1-27 to be optionally included, wherein continuous supply of the liquid formulation includes continuous supply of the liquid formulation for one or more hours. Aspect 29 may include, or may optionally be combined with the subject matter of Aspects 1-28 to optionally be included, wherein the continuous supply of the liquid formulation includes a plurality of distributions. Aspect 30 may include, or may optionally be combined with the subject matter of Aspects 1-29 to optionally include, where delivery of the liquid formulation includes passive delivery of the liquid formulation. Aspect 31 may include, or may optionally be combined with the subject matter of Aspects 1-30 to optionally include, wherein passive delivery of the liquid formulation includes delivery of the liquid formulation based on a hydrostatic pressure of the liquid formulation. Aspect 32 may include, or may optionally be combined with the subject matter of Aspects 1-31 to optionally include a plant injection system comprising: an injection tool configured to penetrate a plant and deliver a liquid formulation to the plant, the injection tool includes: a base having an inlet port; a penetration distribution body extending along a longitudinal axis of the body, the penetration distribution body includes: a penetration element; and one or more distribution ports in communication with the entry port, the one or more distribution ports are separated from the penetration element; and wherein the injection tool includes penetrating and dispensing configurations: in the penetrating configuration, the penetrating element is configured to penetrate the plant along the longitudinal axis of the body; and in the delivery configuration, the one or more delivery ports are configured to deliver the liquid formulation to the plant transversely relative to the longitudinal axis of the body. Aspect 33 may include, or may optionally be combined with the subject of Aspects 1-32 to optionally include, wherein the one or more manifold ports are spaced laterally from the longitudinal axis of the body. QRnQ7n / l 7Π7 / 3 / Υ Item 34 may include, or may optionally be combined with the subject of Items 1-33 to be optionally included, where the penetrating element includes a penetrating profile, and the one or more distribution ports are within the penetrating profile and proximal to the penetration profile. Aspect 35 may include, or may optionally be combined with the subject of Aspects 1-34 to optionally include, where the one or more distribution ports are embedded within the penetration profile. Aspect 36 may include, or may optionally be combined with the subject matter of Aspects 1-35 to optionally include, where in the penetrating configuration, the penetrating element breaks the coupling of the one or more distribution ports to the plant. Aspect 37 may include, or may optionally be combined with the subject of Aspects 1-36 to be optionally included, where the penetrating distribution body includes a body profile, and the one or more distribution ports are recessed from an exterior of the body profile. Aspect 38 may include, or may optionally be combined with the subject of Aspects 1-37 to optionally include, where in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the outside of the profile. of the body. Item 39 may include, or may optionally be combined with the subject matter of Items 1-38 to be optionally included, where in the dispensing configuration, the one or more dispensing ports are configured to dispense the liquid formulation remotely relative to to the penetrating element. Aspect 40 may include, or may optionally be combined with the subject of Aspects 1-39 to optionally include, wherein in the delivery configuration, the one or more delivery ports are configured to deliver the liquid formulation at a location proximal to along the penetration distribution body relative to the penetration element. Aspect 41 may include, or may optionally be combined with the subject matter of Aspects 1-40 to optionally include, wherein the penetration distribution includes a body profile and at least one distribution reservoir within the body profile; and in the dispensing configuration, the one or more dispensing ports are configured to dispense the liquid formulation to the at least one dispensing reservoir. Aspect 42 may include, or may optionally be combined with the subject of Aspects 1-41 to optionally include, wherein in the distribution configuration, the penetrating distribution body having the at least one distribution reservoir is configured to retain the liquid formulation throughout a plant tissue of the plant. Aspect 43 may include, or may optionally be combined with the subject matter of Aspects 1-42 to optionally include a retaining configuration wherein the penetrative distribution body is retained in a continuous state in plan with an anchoring element. Item 44 may include, or may optionally be combined with the subject of Items 1-43 to be optionally included, where in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the plant in a continuous state. QRnozn / i ζηζ / 3 / γ Item 45 may include, or may optionally be combined with the subject matter of Items 1-44 to be optionally included, wherein the steady state includes a plurality of dispenses of the liquid formulation from the one or more dispensing ports over one or more hours . Aspect 46 may include, or may optionally be combined with the subject matter of Aspects 1-45 to optionally be included, wherein the plurality of distributions includes a continuous distribution of the liquid formulation. Aspect 47 may include, or may optionally be combined with the subject matter of Aspects 1-46 to optionally include, wherein the penetrating element includes one or more of a cutting element, wedge profile, or point profile. Aspect 48 may include, or may optionally be combined with the subject matter of Aspects 1-47 to optionally include a plant injection system comprising: an injection tool configured to penetrate a plant and deliver a liquid formulation to the plant, the injection tool includes: a base having an inlet port configured to receive the liquid formulation; a penetration distribution body extending from the base along a longitudinal axis of the body, the penetration distribution body having a body profile, the penetration distribution body including: a penetration element proximate to a distal portion of penetration distribution body; a distribution element along the penetrating distribution body, the distribution element includes one or more distribution ports; and wherein the one or more dispensing ports open laterally along the penetrating dispensing body relative to the longitudinal axis of the body. Aspect 49 may include, or may optionally be combined with the subject of Aspects 1-48 to optionally include, wherein the body profile includes a shank profile having one or more cutting elements along the penetrating element. Aspect 50 may include, or may optionally be combined with the theme of Aspects 1-49 to optionally include, wherein the body profile includes a wedge profile that tapers towards the distal portion. Aspect 51 may include, or may optionally be combined with the subject matter of Aspects 1-50 to be optionally included, wherein the penetration delivery body includes an anchoring element configured to retain the injection tool within a penetrated plant. Aspect 52 may include, or may optionally be combined with the subject matter of Aspects 1-51 to optionally include, wherein the anchoring element includes one or more of threads, slots, clips, or a wedge profile. Aspect 53 may include, or may optionally be combined with the subject of Aspects 1-52 to be optionally included, wherein the penetration distribution body includes an inlet passage extending from the inlet port to the one or more ports of distribution. Aspect 54 may include, or may optionally be combined with the subject of Aspects 1-53 to optionally include, where the one or more distribution ports are recessed from an exterior of the body profile. Aspect 55 may include, or may optionally be combined with, the subject of Aspects 1-54 to optionally include, wherein the one or more distribution ports include a plurality of distribution ports. QRnozn / i ζηζ / 3 / γ Aspect 56 may include, or may optionally be combined with the subject of Aspects 1-55 to optionally include, wherein the one or more manifold ports extend away from the longitudinal axis of the body. Aspect 57 may include, or may optionally be combined with the subject of Aspects 1-56 to be optionally included, wherein the one or more delivery ports extend toward the base and extend away from the distal portion of the delivery body of penetration. Item 58 may include, or may optionally be combined with the subject matter of Items 1-57 to be optionally included, wherein the injection tool includes a dispensing configuration having the one or more dispensing ports configured to dispense the liquid formulation to plant transversely in relation to the longitudinal axis of the body. Aspect 59 may include, or may optionally be combined with the subject of Aspects 1-58 to be optionally included, wherein the body profile includes at least one distribution reservoir, and the one or more distribution ports open into the at least a distribution depot. Aspect 60 may include, or may optionally be combined with the subject matter of Aspects 1-59 to optionally include, wherein the at least one dispensing reservoir is spaced from a leading edge of the penetrating element. Aspect 61 may include, or may optionally be combined with the subject of Aspects 1-60 to optionally include, wherein the at least one dispensing reservoir is recessed from an exterior of the body profile. Aspect 62 may include, or may optionally be combined with the subject matter of Aspects 1-61 to optionally include a delivery device in communication with the injection tool, the delivery device including: a container configured to store the liquid formulation; and a junction interface in communication with the container, the junction interface is configured to mate with the inlet port of the injection tool. Aspect 63 may include, or may optionally be combined with the subject matter of Aspects 1-62 to be optionally included, wherein the dispensing device includes a dispensing device interposed between the container and the joint interface, the dispensing device is configured to deliver a specified quantity of the liquid formulation to the injection tool for lateral distribution from one or more distribution ports. Aspect 64 may include, or may optionally be combined with the subject matter of Aspects 1-63 to optionally include a plant injection system comprising: an injection tool configured to penetrate a plant and deliver a liquid formulation to the plant, the injection tool includes: a base having an inlet port configured to receive the liquid formulation; a penetration distribution body extending from the base along a longitudinal axis of the body, the penetration distribution body having a body profile, the penetration distribution body including: a penetration element proximate to a distal portion of penetration distribution body; an anchoring element along the penetration distribution body, the anchoring element being configured to retain the injection tool within the penetrated plant; a distribution element along the penetrating distribution body, the distribution element includes one or more distribution ports; and wherein the one or more delivery ports are in communication with the inlet port, and the one or more delivery ports are spaced laterally from the longitudinal axis of the body. QRnozn / i ζηζ / 3 / γ Aspect 65 may include, or may optionally be combined with the theme of Aspects 1-64 to optionally include, wherein the body profile includes a shank profile, and the penetrating element includes one or more cutting elements. Aspect 66 may include, or may optionally be combined with the theme of Aspects 1-65 to optionally include, wherein the body profile includes a wedge profile that tapers towards the distal portion. Aspect 67 may include, or may optionally be combined with the subject matter of Aspects 1-66 to optionally include, wherein the anchoring element includes one or more of threads, slots, clips, or a wedge profile. Aspect 68 may include, or may optionally be combined with the subject matter of Aspects 1-67 to be optionally included, wherein the penetration distribution body includes an inlet passage extending from the inlet port to the one or more ports of distribution. Aspect 69 may include, or may optionally be combined with the subject of Aspects 1-68 to optionally include, where the one or more distribution ports are recessed from an exterior of the body profile. Aspect 70 may include, or may optionally be combined with the subject of Aspects 1-69 to optionally include, where the one or more distribution ports are remotely located relative to the penetrating element. Aspect 71 may include, or may optionally be combined with the subject of Aspects 1-70 to optionally include, wherein the one or more manifold ports extend away from the longitudinal axis of the body. Aspect 72 may include, or may optionally be combined with the subject of Aspects 1-71 to be optionally included, wherein the one or more delivery ports extend toward the base and extend away from the distal portion of the delivery body of penetration. Aspect 73 may include, or may optionally be combined with the subject of Aspects 1-72 to be optionally included, wherein the injection tool includes a dispensing configuration having the one or more dispensing ports configured to dispense the liquid formulation to plant transversely in relation to the longitudinal axis of the body. Aspect 74 may include, or may optionally be combined with the subject of Aspects 1-73 to be optionally included, wherein the body profile includes at least one distribution reservoir, and the one or more distribution ports open into the at least a distribution depot. Aspect 75 may include, or may optionally be combined with the theme of Aspects 1-74 to optionally include, wherein the penetrating distribution body surrounds the at least one distribution reservoir. Aspect 76 may include, or may optionally be combined with the subject matter of Aspects 1-75 to be optionally included, wherein the penetrating distribution body includes one or more scalloped surfaces, and the at least one distribution reservoir extends to along the one or more scalloped surfaces. Aspect 77 may include, or may optionally be combined with the subject of Aspects 1-76 to be optionally included, wherein the penetrating distribution body includes one or more cavities, and the at least one distribution reservoir is within the one or more cavities. QAnQZn / l 7Π7 / 3 / Υ Aspect 78 may include, or may optionally be combined with the subject matter of Aspects 1-77 to optionally include, wherein the at least one dispensing reservoir is spaced from a leading edge of the penetrating element. Aspect 79 may include, or may optionally be combined with the subject of Aspects 1-78 to optionally include, wherein the at least one distribution tank is recessed from an exterior of the body profile. Aspect 80 may include, or may optionally be combined with the subject matter of Aspects 1-79 to optionally include a method for distributing a liquid formulation to a plant, the method comprising: penetrating a plant with an injection tool having a penetration distribution body extending along a longitudinal axis of the body, the penetration includes: piercing the plant with a penetration element of the penetration distribution body, wherein the penetration element moves along the longitudinal axis of the body; distributing the liquid formulation to the penetrated plant, the distribution of the liquid formulation includes: conveying the liquid formulation from an inlet port of the injection tool to one or more distribution ports of the penetration distribution body; delivering the liquid formulation from the one or more delivery ports transversely relative to the longitudinal axis of the body. Aspect 81 may include, or may optionally be combined with the subject of Aspects 1-80 to be optionally included, where penetration of the plant with the injection tool includes isolating the one or more distribution ports of the plant with a profile of penetration of the penetration element. Aspect 82 may include, or may optionally be combined with the subject of Aspects 1-81 to optionally include, wherein the one or more distribution ports are within a penetrating distribution body profile; and penetrating the plant with the injection tool includes isolating the one or more distribution ports of the plant with the body profile. Aspect 83 may include, or may optionally be combined with the subject of Aspects 1-82 to optionally include, where the one or more distribution ports are within a body profile of the penetrating distribution body; and penetrating the plant with the injection tool includes disrupting the coupling of the one or more distribution ports with the plant. Aspect 84 may include, or may optionally be combined with the theme of Aspects 1-83 to optionally include, wherein the penetrating element includes a cutting element; and piercing the plant with the penetrating element includes cutting the plant with the cutting element. Aspect 85 may include, or may optionally be combined with the subject matter of Aspects 1-84 to be optionally included, wherein the penetrating element includes a cradle profile; and the piercing of the sole with the penetrating element includes cutting the sole with the wedge profile. Aspect 86 may include, or may optionally be combined with the subject of Aspects 1-85 to be optionally included, where the penetrating distribution body includes a body profile, and the one or more distribution ports are recessed from the profile of the body; and delivery of the liquid formulation from the one or more distribution ports transversely includes delivery of the liquid formulation in the profile of the body. QRnozn / i ζηζ / 3 / γ Aspect 87 may include, or may optionally be combined with the subject matter of Aspects 1-86 to optionally include, wherein the penetrating distribution body includes at least one distribution reservoir; and supplying the liquid formulation from the one or more distribution ports transversely includes supplying the liquid formulation into the at least one distribution tank. Aspect 88 may include, or may optionally be combined with, the subject of Aspects 1-87 to optionally include retention of the liquid formulation throughout a plant tissue of the plant. Aspect 89 may include, or may optionally be combined with the subject of Aspects 1-88 to optionally include, where the one or more distribution ports are remote from the penetrating element; and supplying the liquid formulation from the one or more delivery ports includes supplying the liquid formulation remotely relative to the penetrating element. Aspect 90 may include, or may optionally be combined with the subject matter of Aspects 1-89 to be optionally included, wherein delivery of the liquid formulation remotely includes delivery of the liquid formulation at a proximal location along the dispensing body of penetration in relation to the element of penetration. Aspect 91 may include, or may optionally be combined with the subject matter of Aspects 1-90 to optionally include retaining the penetrating distribution body in plan with an anchoring element. Aspect 92 may include, or may optionally be combined with the subject matter of Aspects 1-91 to optionally include, wherein the supply of the liquid formulation from the one or more distribution ports includes continuous supply of the liquid formulation. Aspect 93 may include, or may optionally be combined with the subject matter of Aspects 1-92 to be optionally included, wherein continuous delivery of the liquid formulation includes continuous delivery of the liquid formulation for one or more hours. Aspect 94 may include, or may optionally be combined with the subject matter of Aspects 1-93 to optionally be included, wherein the continuous supply of the liquid formulation includes a plurality of distributions. Aspect 95 may include, or may optionally be combined with the subject matter of Aspects 1-94 to be optionally included, wherein delivery of the liquid formulation includes passive delivery of the liquid formulation. Aspect 96 may include, or may optionally be combined with the subject matter of Aspects 1-95 to optionally include, wherein passive delivery of the liquid formulation includes delivery of the liquid formulation based on a hydrostatic pressure of the liquid formulation. Aspect 97 may include, or may optionally be combined with the subject matter of Aspects 1-96 to optionally include a plant injection system comprising: an injection tool configured to penetrate a plant and deliver a liquid formulation to the plant, the injection tool includes: a base having an inlet port; a penetration distribution body extending from the base along a longitudinal axis of the body, the penetration distribution body having a body profile, the penetration distribution body including: a penetration element proximate to a distal portion of penetration distribution body; a distribution element along the penetration distribution body, the distribution element includes one or more distribution ports directed laterally relative to the longitudinal axis of the body, the one or more distribution ports QRnozn / i ζηζ / 3 / γ distribution in communication with the port of entry; and a delivery device in communication with the injection tool, the delivery device includes: a container configured to store the liquid formulation; and a binding interface in communication with the container, the binding interface is configured for coupling to the input port. Aspect 98 may include, or may optionally be combined with the subject matter of Aspects 1-97 to optionally include, wherein the dispensing device includes a dispensing device interposed between the container and the joint interface, the dispensing device is configured to deliver a specified quantity of the liquid formulation to the injection tool for lateral dispensing from the one or more dispensing ports. Aspect 99 may include, or may optionally be combined with the subject of Aspects 1-98 to optionally include, wherein the one or more distribution ports are recessed from an outer surface of the body profile. Aspect 100 may include, or may optionally be combined with the subject of Aspects 1-99 to be optionally included, wherein the body profile includes at least one distribution reservoir, and the one or more distribution ports open to the at least a distribution depot. Aspect 101 may include, or may optionally be combined with the subject matter of Aspects 1-100 to optionally include, wherein the at least one dispensing reservoir is spaced from a leading edge of the penetrating element. Aspect 102 may include, or may optionally be combined with the subject matter of Aspects 1-101 to optionally include, wherein the at least one distribution tank is recessed from an outer surface of the body profile. Each of these non-limiting aspects can stand on its own, or can be combined in various permutations or combinations with one or more of the other aspects. The above description includes references to the accompanying drawings, which form a part of the detailed description. The drawings show, by way of illustration, specific embodiments in which the invention may be practiced. These embodiments are further referred to herein as "aspects" or "examples". Such aspects or examples may include items in addition to those shown or described. However, the present inventors further contemplate aspects or examples in which only those items shown or described are provided. In addition, the present inventors also contemplate aspects or examples that use any combination or permutation of the elements shown or described (or one or more features thereof), either with respect to particular aspects or examples (or one or more features thereof). themselves), or with respect to other Aspects (or one or more features thereof) shown or described in this description. In the case of inconsistent uses between this document and all documents incorporated by reference, the use in this document controls. In this document, the terms "a" or "an" are used, as is common in patent documents, to include one or more than one, independent of any other instances or uses of "at least one" or "one or further." In this document, the term “or” is used to refer to a non-exclusive term or, such that “A or B” includes “A but QRnQ7n / l 7Π7 / 3 / Υ not B,” “B but not A,” and “A and B,” unless otherwise noted. In this document, the terms “including” and “in which” are used as the plain English equivalents of the respective terms “comprising” and “in which.” In addition, in the following claims, the terms "including" and "comprising" are open-ended, that is, a system, device, article, composition, formulation, or process that includes items in addition to those listed after such term. in a claim are still considered to fall within the scope of that claim. On the other hand, in the following claims, the terms "first," "second," and "third," etc. they are used merely as labels, and are not intended to impose numerical requirements on your objects. Geometric terms such as "parallel," "perpendicular," "round," or "square" are not intended to require absolute mathematical precision, unless the context otherwise indicates. Instead, such geometric terms allow for variations due to manufacturing or equivalent functions. For example, if an element is described as "round" or "generally round," a component that is not precisely circular (for example, one that is slightly oblong or is a many-sided polygon) is still included in this description. The above description is intended to be illustrative, and not restrictive. For example, the aspects or examples described above (or one or more aspects thereof) can be used in combination with each other. Other modalities may be used, such as by one skilled in the art upon review of the above description. The summary is provided to comply with 37 C.F.R. §1.72(b), to allow the reader to quickly determine the nature of the technical description. It is presented with the understanding that it shall not be used to construe or limit the scope or meaning of the claims. Furthermore, in the above detailed description, various features may be grouped together to summarize the description. This should not be construed to mean that an unclaimed described feature is essential to any claim. Rather, the subject matter of the invention may lie in less than all the features of a particular described embodiment. Therefore, the following claims are incorporated into the detailed description as aspects, examples, or embodiments, with each claim standing on its own as a separate embodiment, and it is contemplated that such embodiments may be combined with one another in various combinations or permutations. The scope of the invention is to be determined by reference to the appended claims, together with the full scope of equivalents to which such claims are entitled. This description and the accompanying drawings that illustrate aspects and modalities of the present description should not be taken as limiting the claims that define the protected description. In other words, while the description has been illustrated and described in detail in the drawings and the description above, such illustration and description should be considered illustrative and not restrictive. Various mechanical, compositional, structural, electrical, and operational changes can be made without departing from the spirit and scope of this description and the claims. In some cases, well-known circuits, structures, and techniques have not been shown in detail for the purpose of not obscuring the description. Therefore, it will be understood that changes and modifications may be made by those skilled in the art within the scope and spirit of the following claims. In particular, the present description covers additional modalities with any combination of features of different modalities described above and below. QRnQ7n / l 7Π7 / 3 / Υ The description also covers all additional features shown in the Figures individually, although they may not have been described in the preceding or following description. Furthermore, the individual alternatives of the embodiments described in the figures and the description and the individual alternatives of their features can be rejected from the subject of the description or from the subject described. The description comprises a subject consisting of the 5 characteristics defined in the claims or the illustrative embodiments, as well as a subject comprising said characteristics. In addition, in the claims, the word comprising does not exclude other elements or stages, and the indefinite article a or "an" does not exclude a plurality. A single unit or stage can fulfill the functions of several features set forth in the claims. The mere fact that certain measures are set forth in mutually different dependent claims does not indicate that a combination of these measures cannot be used to benefit. The terms "essentially", "around", "approximately" and the like in relation to a particular attribute or value also define exactly the attribute or exactly the value, respectively. The term "approximately" in the context of a given numerical value or range refers to a value or range that is, for example, within 20%, within 10%, within 5%, or within 2% of the value or given interval. Components described as coupled or connected may be electrically or mechanically coupled directly, or they may be coupled indirectly through one or more intermediate components. Any reference signs in the claims should not be construed as limiting the scope of the claims. It is noted that as of this date, the best method known to the applicant for putting said invention into practice is the one that is clear from the present description of the invention. QRnozn / i ζηζ / 3 / γ
Claims
Having described the invention as above, the following claims are claimed as property:
1. A plant injection system comprising: an injection tool configured to penetrate a plant and distribute a liquid formulation to the plant, the injection tool including: a base having an inlet port; a penetrating distribution body extending along a longitudinal axis of the body and having a body profile, the penetrating distribution body including: a penetrating element; at least one distribution reservoir within the body profile; and one or more distribution ports in communication with the inlet port and the at least one distribution reservoir, the one or more distribution ports being separate from the penetrating element;and characterized in that the injection tool includes penetration and distribution configurations: in the penetration configuration, the penetrating element is configured to penetrate the plant along the longitudinal axis of the body; and in the distribution configuration, one or more distribution ports are configured to distribute the liquid formulation transversely in relation to the longitudinal axis of the body within at least one distribution reservoir close to the plant.
2. The plant injection system of claim 1, characterized in that the one or more distribution ports are laterally separated from the longitudinal axis of the body.
3. The plant injection system of claim 1, characterized in that the penetrating element includes a penetration profile, and the one or more distribution ports are within the penetration profile and proximal to the penetration profile. 4.- The plant injection system of claim 3, characterized in that the one or more distribution ports are recessed within the penetration profile. 5.- The plant injection system of claim 1, characterized in that in the penetration configuration, the penetrating element interrupts the coupling of one or more distribution ports with the plant.
6. The plant injection system of claim 1, characterized in that the one or more distribution ports are recessed from an outside of the body profile.
7. The plant injection system of claim 6, characterized in that, in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the outside of the body profile. QRnQ7n / l 7Π7 / 3 / Y 8. The plant injection system of claim 1, characterized in that, in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation remotely with respect to the penetrant element.
9. The plant injection system of claim 1, characterized in that in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation at a proximal location along the penetrating distribution body relative to the penetrating element. 10.- The plant injection system of claim 1, characterized in that in the distribution configuration, the penetrating distribution body having at least one distribution reservoir is configured to retain the liquid formulation along a plant tissue of the plant. 11.- The plant injection system of claim 1 comprising a retained configuration in which the penetrating distribution body is retained in an uninterrupted state in the plant by an anchoring element. 12.- The plant injection system of claim 1, characterized in that in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the plant in an uninterrupted state. 13.- The plant injection system of claim 12, characterized in that the uninterrupted state includes a plurality of distributions of the liquid formulation from one or more distribution ports for one or more hours. 14.- The plant injection system of claim 13, characterized in that the plurality of distributions includes a continuous distribution of the liquid formulation. 15.- The plant injection system of claim 1, characterized in that the penetrating element includes one or more cutting elements, a wedge profile or a pin profile.
16. A method for distributing a liquid formulation to a plant, the method comprising: penetrating a plant with an injection tool having a penetrating distribution body extending along a longitudinal axis of the body, the penetration including: piercing the plant with a penetrating element of the penetrating distribution body; isolating one or more distribution ports of the plant with the penetrating distribution body; and distributing the liquid formulation to the penetrated plant, the distribution of the liquid formulation including: conveying the liquid formulation from an inlet port of the injection tool to the one or more distribution ports; supplying the liquid formulation from one or more distribution ports to at least one distribution reservoir in communication with the penetrated plant, the at least one distribution reservoir being within a profile of the body of the penetrating distribution body.
17. The method of claim 16, characterized in that isolating one or more distribution ports of the plant includes isolating one or more distribution ports of the plant with a penetration profile of the penetrating element. QRnozn / i ζηζ / 3 / γ 18.- The method of claim 16, characterized in that the one or more distribution ports are within the profile of the body of the penetrating distribution body; and the isolation of the one or more distribution ports from the plant includes isolating the one or more distribution ports with the body profile. 19.- The method of claim 16, characterized in that the one or more distribution ports are within a profile of the penetrating distribution body; and penetration of the plant with the injection tool includes interrupting the coupling of the one or more distribution ports with the plant. 20.- The method of claim 16, characterized in that the penetrating element includes a cutting element; and the drilling of the plant with the penetrating element includes cutting the plant with the cutting element. 21.- The method of claim 16, characterized in that the penetrating element includes a wedge profile; and the drilling of the plant with the penetrating element includes cutting the plant with the wedge profile.
22. The method of claim 16, characterized in that the penetrating distribution body includes a body profile, and one or more distribution ports are recessed from the body profile; and the delivery of the liquid formulation to the one or more distribution ports includes the transverse delivery of the liquid formulation with respect to a longitudinal axis of the penetrating distribution body. 23.- The method of claim 16 comprising retaining the liquid formulation along a plant tissue. 24.- The method of claim 16, characterized in that the one or more distribution ports are located away from the penetrant element; and the supply of the liquid formulation from the one or more distribution ports includes supplying the liquid formulation remotely with respect to the penetrant element. 25.- The method of claim 24, characterized in that the remote delivery of the liquid formulation includes the delivery of the liquid formulation at a proximal location along the penetrant distribution body with respect to the penetrant element. 26.- The method of claim 16 comprising retaining the penetrating distribution body in the plant with an anchoring element. 27.- The method of claim 16, characterized in that the supply of the liquid formulation from the one or more distribution ports includes the uninterrupted supply of the liquid formulation. 28.- The method of claim 27, characterized in that the uninterrupted supply of the liquid formulation includes the uninterrupted supply of the liquid formulation for one or more hours. 29.- The method of claim 27, characterized in that the uninterrupted supply of the liquid formulation includes a plurality of distributions.
30. The method of claim 16, characterized in that the supply of the liquid formulation includes the passive supply of the liquid formulation. QRnozn / i ζηζ / 3 / γ 31The method of claim 30, characterized in that the passive supply of the liquid formulation includes the supply of the liquid formulation based on the hydrostatic pressure of the liquid formulation.
32. A plant injection system comprising: an injection tool configured to penetrate a plant and distribute a liquid formulation to the plant, the injection tool including: a base having an inlet port; a penetrating distribution body extending along a longitudinal axis of the body, the penetrating distribution body including: a penetrating element; and one or more distribution ports in communication with the inlet port, the one or more distribution ports being separate from the penetrating element; and characterized in that the injection tool includes penetration and distribution configurations: in the penetration configuration, the penetrating element is configured to penetrate the plant along the longitudinal axis of the body;and in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the plant transversely in relation to the longitudinal axis of the body.; 33.- The plant injection system of claim 32, characterized in that the one or more distribution ports are laterally separated from the longitudinal axis of the body. 34.- The plant injection system of claim 32, characterized in that the penetrating element includes a penetration profile, and the one or more distribution ports are within the penetration profile and proximal to the penetration profile. 35.- The plant injection system of claim 34, characterized in that the one or more distribution ports are recessed within the penetration profile. 36.- The plant injection system of claim 32, characterized in that in the penetration configuration, the penetrating element interrupts the coupling of one or more distribution ports with the plant. 37.- The plant injection system of claim 32, characterized in that the penetrating distribution body includes a body profile, and one or more distribution ports are recessed from an outside of the body profile. 38.- The plant injection system of claim 37, characterized in that in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the outside of the body profile.
39. The plant injection system of claim 32, characterized in that, in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation remotely with respect to the penetrant element. QAnQZn / l 7Π7 / 3 / Y 40.- The plant injection system of claim 32, characterized in that in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation at a proximal location along the penetrating distribution body relative to the penetrating element. 41.- The plant injection system of claim 32, characterized in that the penetrating distribution includes a body profile and at least one distribution reservoir within the body profile; and in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation into at least one distribution reservoir. 42.- The plant injection system of claim 41, characterized in that in the distribution configuration, the penetrating distribution body having at least one distribution reservoir is configured to retain the liquid formulation along a plant tissue of the plant. 43.- The plant injection system of claim 32 comprising a retained configuration characterized in that the penetrating distribution body is retained in an uninterrupted state in the plant by an anchoring element. 44.- The plant injection system of claim 32, characterized in that in the distribution configuration, the one or more distribution ports are configured to distribute the liquid formulation to the plant in an uninterrupted state. 45.- The plant injection system of claim 44, characterized in that the uninterrupted state includes a plurality of distributions of the liquid formulation from one or more distribution ports for one or more hours. 46.- The plant injection system of claim 44, characterized in that the plurality of distributions includes a continuous distribution of the liquid formulation. 47.- The plant injection system of claim 32, characterized in that the penetrating element includes one or more cutting elements, a wedge profile or a pin profile. 48.- A plant injection system comprising: an injection tool configured to penetrate a plant and distribute a liquid formulation to the plant, the injection tool including: a base having an inlet port configured to receive the liquid formulation; a penetrating distribution body extending from the base along a longitudinal axis of the body, the penetrating distribution body having a body profile, the penetrating distribution body including: a penetrating element near a distal portion of the penetrating distribution body; a distribution element along the penetrating distribution body, the distribution element including one or more distribution ports; and characterized in that the one or more distribution ports open laterally along the penetrating distribution body in relation to the longitudinal axis of the body.
49. The plant injection system of claim 48, characterized in that the body profile includes a shaft profile having one or more cutting elements along the penetrating element. QRnozn / i ζηζ / 3 / γ 50.- The plant injection system of claim 48, characterized in that the body profile includes a wedge profile that tapers towards the distal portion. 51.- The plant injection system of claim 48, characterized in that the penetrating distribution body includes an anchoring element configured to retain the injection tool within a penetrated plant. 52.- The plant injection system of claim 51, characterized in that the anchoring element includes one or more threads, grooves, plugs, or a wedge profile. 53.- The plant injection system of claim 48, characterized in that the penetrating distribution body includes an inlet passage extending from the inlet port to one or more distribution ports. 54.- The plant injection system of claim 48, characterized in that the one or more distribution ports are recessed from an outside of the body profile. 55.- The plant injection system of claim 48, characterized in that the one or more distribution ports include a plurality of distribution ports. 56.- The plant injection system of claim 48, characterized in that the one or more distribution ports extend away from the longitudinal axis of the body. 57.- The plant injection system of claim 48, characterized in that the one or more distribution ports extend towards the base and away from the distal portion of the penetrating distribution body. 58.- The plant injection system of claim 48, characterized in that the injection tool includes a distribution configuration having one or more distribution ports configured to distribute the liquid formulation to the plant transversely relative to the longitudinal axis of the body. 59.- The plant injection system of claim 48, characterized in that the body profile includes at least one distribution tank, and the one or more distribution ports open towards at least one distribution tank. 60.- The plant injection system of claim 59, characterized in that the at least one distribution tank is separated from a leading edge of the penetrating element. 61.- The plant injection system of claim 59, characterized in that the at least one distribution tank is recessed from an outside of the body profile. 62.- The plant injection system of claim 48 comprising: a delivery device in communication with the injection tool, the delivery device including: a container configured to store the liquid formulation; and a connection interface in communication with the container, the connection interface being configured to couple with the inlet port of the injection tool. 63.- The plant injection system of claim 62, characterized in that the supply device includes a dosing device interposed between the container and the connection interface, the dosing device QRnozn / i ζηζ / 3 / γ being configured to supply a specific quantity of the liquid formulation to the injection tool for lateral distribution from one or more distribution ports.
64. A plant injection system comprising: an injection tool configured to penetrate a plant and distribute a liquid formulation to the plant, the injection tool including: a base having an inlet port configured to receive the liquid formulation; a penetrating distribution body extending from the base along a longitudinal axis of the body, the penetrating distribution body having a body profile, the penetrating distribution body including: a penetrating element near a distal portion of the penetrating distribution body; an anchoring element along the penetrating distribution body, the anchoring element being configured to retain the injection tool within the penetrated plant; a distribution element along the penetrating distribution body, the distribution element including one or more distribution ports;and characterized in that the one or more distribution ports are in communication with the inlet port, and the one or more distribution ports are laterally separated from the longitudinal axis of the body.; 65.- The plant injection system of claim 64, characterized in that the body profile includes a shaft profile and the penetrating element includes one or more cutting elements. 66.- The plant injection system of claim 64, characterized in that the body profile includes a wedge profile that tapers towards the distal portion. 67.- The plant injection system of claim 64, characterized in that the anchoring element includes one or more threads, grooves, plugs or a wedge profile. 68.- The plant injection system of claim 64, characterized in that the penetrating distribution body includes an inlet passage extending from the inlet port to one or more distribution ports. 69.- The plant injection system of claim 64, characterized in that the one or more distribution ports are recessed from an outside of the body profile. 70.- The plant injection system of claim 64, characterized in that the one or more distribution ports are located remotely with respect to the penetrating element. 71.- The plant injection system of claim 64, characterized in that the one or more distribution ports extend away from the longitudinal axis of the body. 72.- The plant injection system of claim 64, characterized in that the one or more distribution ports extend towards the base and away from the distal portion of the penetrating distribution body.
73. The plant injection system of claim 64, characterized in that the injection tool includes a distribution configuration having one or more distribution ports configured to distribute the liquid formulation to the plant transversely relative to the longitudinal axis of the body. QRnozn / i ζηζ / 3 / γ 74.- The plant injection system of claim 64, characterized in that the body profile includes at least one distribution tank, and the one or more distribution ports open towards at least one distribution tank. 75,- The plant injection system of claim 74, characterized in that the penetrating distribution body surrounds at least one distribution tank. 76.- The plant injection system of claim 74, characterized in that the penetrating distribution body includes one or more scalloped surfaces, and the at least one distribution reservoir extends along the one or more scalloped surfaces. 77.- The plant injection system of claim 74, characterized in that the penetrating distribution body includes one or more cavities, and the at least one distribution reservoir is within the one or more cavities. 78.- The plant injection system of claim 74, characterized in that the at least one distribution tank is separated from a leading edge of the penetrating element. 79.- The plant injection system of claim 74, characterized in that the at least one distribution tank is recessed from an outside of the body profile. 80.- A method for distributing a liquid formulation to a plant, the method comprising: penetrating a plant with an injection tool having a penetrating distribution body extending along a longitudinal axis of the body, the penetration including: piercing the plant with a penetrating element of the penetrating distribution body, characterized in that the penetrating element moves along the longitudinal axis of the body; distributing the liquid formulation to the penetrated plant, the distribution of the liquid formulation including: conveying the liquid formulation from an inlet port of the injection tool to one or more distribution ports of the penetrating distribution body; supplying the liquid formulation from one or more distribution ports transversely to the longitudinal axis of the body.
81. The method of claim 80, characterized in that penetrating the plant with the injection tool includes isolating one or more distribution ports of the plant with a penetration profile of the penetrating element. 82.- The method of claim 80, characterized in that the one or more distribution ports are within a profile of the body of the penetrating distribution body; and penetrating the plant with the injection tool includes isolating the one or more distribution ports from the plant with the body profile. 83.- The method of claim 80, characterized in that the one or more distribution ports are within a profile of the penetrating distribution body; and penetration of the plant with the injection tool includes interrupting the coupling of the one or more distribution ports with the plant. 84,- The method of claim 80, characterized in that the penetrating element includes a cutting element; and the drilling of the plant with the penetrating element includes cutting the plant with the cutting element. 85.- The method of claim 80, characterized in that the penetrating element includes a wedge profile; and the drilling of the plant with the penetrating element includes cutting the plant with the wedge profile. 86.- The method of claim 80, characterized in that the penetrating distribution body includes a body profile, and the one or more distribution ports are recessed from the body profile; and supplying the liquid formulation to the one or more distribution ports transversely includes supplying the liquid formulation to the body profile. 87.- The method of claim 86, characterized in that the penetrating distribution body includes at least one distribution reservoir; and the supply of the liquid formulation from the one or more transverse distribution ports includes supplying the liquid formulation to at least one distribution reservoir. 88,- The method of claim 80 comprising retaining the liquid formulation along a plant tissue. 89.- The method of claim 80, characterized in that the one or more distribution ports are located away from the penetrant element; and the supply of the liquid formulation from the one or more distribution ports includes supplying the liquid formulation remotely with respect to the penetrant element. 90.- The method of claim 89, characterized in that the remote delivery of the liquid formulation includes the delivery of the liquid formulation at a proximal location along the penetrant distribution body with respect to the penetrant element. 91.- The method of claim 80 comprising retaining the penetrating distribution body in the plant with an anchoring element. 92.- The method of claim 80, characterized in that the supply of the liquid formulation from the one or more distribution ports includes the uninterrupted supply of the liquid formulation. 93.- The method of claim 92, characterized in that the uninterrupted supply of the liquid formulation includes the uninterrupted supply of the liquid formulation for one or more hours. 94.- The method of claim 92, characterized in that the uninterrupted supply of the liquid formulation includes a plurality of distributions. 95.- The method of claim 80, characterized in that the supply of the liquid formulation includes the passive supply of the liquid formulation. 96.- The method of claim 95, characterized in that the passive supply of the liquid formulation includes the supply of the liquid formulation based on the hydrostatic pressure of the liquid formulation. 97.- A plant injection system comprising: an injection tool configured to penetrate a plant and distribute a liquid formulation to the plant, the injection tool including: a base having an inlet port; QRnQ7n / l 7Π7 / 3 / Y a penetrating distribution body extending from the base along a longitudinal body axis, the penetrating distribution body having a body profile, the penetrating distribution body including: a penetrating element near a distal portion of the penetrating distribution body; a distribution element along the penetrating distribution body, the distribution element including one or more distribution ports directed laterally relative to the longitudinal body axis, the one or more distribution ports in communication with the inlet port;and a delivery device in communication with the injection tool, the delivery device includes: a container configured to store the liquid formulation; and a connection interface in communication with the container, the connection interface is configured to mate with the inlet port. 98.- The plant injection system of claim 97, characterized in that the supply device includes a dosing device interposed between the container and the connection interface, the dosing device being configured to supply a specific quantity of the liquid formulation to the injection tool for lateral distribution from one or more distribution ports. 99.- The plant injection system of claim 97, characterized in that the one or more distribution ports are recessed from an outer surface of the body profile. 100,- The plant injection system of claim 97, characterized in that the body profile includes at least one distribution tank, and the one or more distribution ports open towards at least one distribution tank. 101,- The plant injection system of claim 100, characterized in that the at least one distribution tank is separated from a leading edge of the penetrating element. 102,- The plant injection system of claim 100, characterized in that the at least one distribution tank is recessed from an outer surface of the body profile.