Vaulting control using light with high levels of far-red content
A horticultural lighting system with a tailored light recipe of far-red and deep-red LEDs addresses inefficiencies in LED lighting for plants, reducing bolting and improving yield and quality in leafy greens.
Patent Information
- Application Number
- JP2020559550
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-04-26
- Filing Date
- 2019-04-24
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2039-04-24
AI Technical Summary
Plants grown in enclosed environments using LED lighting face challenges such as insufficient light reaching lower parts, energy inefficiency, and issues like bolting in leafy vegetables due to improper light spectra, particularly high far-red light levels.
A horticultural lighting system that provides a specific light recipe with at least 5-45% far-red light (700-800 nm) and 30-95% deep-red light (640-700 nm), supplemented with minimal blue light (0-10% 400-500 nm), to reduce bolting and increase yield in plants like arugula and spinach.
The system effectively reduces bolting and increases leaf quality and production while optimizing energy use, enhancing the growth and shelf life of leafy vegetables in controlled environments.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a horticulture lighting system and to a horticulture arrangement comprising such a horticulture lighting system. The present invention further relates to a method for providing light to plants, to which such a horticulture lighting arrangement may be applied, and to a computer program product for carrying out such a method. Furthermore, the present invention relates to a lighting apparatus that may be used in such a horticulture arrangement, horticulture lighting system or method for providing light to plants. [Background technology]
[0002] Lighting devices and systems for plant growth are known in the art. For example, US9854749 describes a system for plant growth including a first LED device configured to emit light of a first color, the first LED device configured to emit light with a controlled beam half angle of 60° or less, and a second LED device configured to emit light of a second color, the second LED device configured to emit light with a controlled beam half angle of 60° or less, the system being configured to produce an emission spectrum having a first emission peak of 500 nm or less and a second emission peak of 600 nm or more. The first emission peak is between 425 and 475 nm, and the second emission peak is between 635 and 685 nm. The system is further configured to have a third emission peak at 500 and 600 nm. The photon flux of the emission spectrum includes between 5% and 10% green light. Summary of the Invention [Problem to be solved by the invention]
[0003] Plants use the process of photosynthesis to convert light, CO2, and H2O into carbohydrates (sugars). These sugars are used to carry out metabolic processes. Excess sugars are used for biomass formation, which includes stem elongation, increased leaf area, flowering, fruit formation, etc. The photoreceptor involved in photosynthesis is chlorophyll. In addition to photosynthesis, photoperiodism, phototropism, and photomorphogenesis are also representative processes related to the interaction between radiation and plants. Photoperiodism refers to the ability of plants to sense and measure periodicities in radiation (e.g., to induce flowering), Phototropism refers to the movement of plant growth towards and away from radiation. · Photomorphogenesis refers to the change in form in response to the quality and quantity of radiation.
[0004] The two important absorption peaks of chlorophyll a and chlorophyll b are located in the red and blue regions, specifically at 625-675 nm and 425-475 nm, respectively. In addition, there are also other local peaks in the near-ultraviolet region (300-400 nm) and the far-red region (700-800 nm). The main photosynthetic activity appears to occur within the wavelength region of 400-700 nm. Radiation within this range is called photosynthetically active radiation (PAR).
[0005] In the context of horticultural lighting, near-ultraviolet light is defined as one or more wavelengths selected from the 300-400 nm spectral range, blue light is defined as one or more wavelengths selected from the 400-500 nm spectral range, white light is defined as wavelengths selected from the 400-700 nm spectral range (these selected wavelengths together may constitute white light, such as a combination of blue, green, and red wavelengths), green light is defined as one or more wavelengths selected from the 500-600 nm spectral range, red light is defined as one or more wavelengths selected from the 600-700 nm spectral range, deep-red light is defined as one or more wavelengths selected from the 640-700 nm spectral range, and far-red light is defined as one or more wavelengths selected from the 700-800 nm spectral range. Thus, deep-red light is a subselection of red.
[0006] Other photosensitive processes in plants include phytochromes. Phytochrome activity leads to different responses, such as leaf expansion, neighbor perception, shade avoidance, stem elongation, seed germination, and flowering induction. The phytochrome photosystem contains two forms of phytochrome, Pr and Pfr, which have peak sensitivities at 660 nm in the red and 730 nm in the far-red, respectively.
[0007] In horticulture, photons per second per unit area (μmol / sec / m 2 , mol is 6 10 23 The photosynthetic photon flux density (PPFD) in units of photons is measured. In practice, especially when applying inter-lighting, for example, to tomatoes, the red PPFD used is typically 200 μmol / sec / m 2The blue:red ratio may be typically 1:7 (with the red being selected, in particular, from 625-675 nm, and the blue being selected, in particular, from 400-475 nm). In particular, the photosynthetic photon flux density may comprise approximately 10% blue and approximately 90% red. PPFD may be determined from a photodiode or measured directly with a photomultiplier tube. The area within PPFD refers to the local light-receiving (plant) area in the space where the light source is located. In the case of a multi-layer system, this may be defined as the area of the relevant layer included in the multi-layer configuration, and therefore PPFD may be estimated individually for each layer (see further below). The area may, in one embodiment, be a value manually supplied to the control unit, or, in one embodiment, may be evaluated by the control unit (e.g., using a sensor).
[0008] Plant growth depends not only on the amount of light, but also on the spectral content, duration, and timing of the light on the plant. The combination of parameter values in terms of these aspects is called a "light recipe" for plant (the terms plant and crop are used interchangeably herein) growth.
[0009] LEDs can play a variety of roles in horticultural lighting, including: 1. Supplemental Lighting: For example, lighting that supplements natural daylight is used to increase production (e.g., of tomatoes) or extend crop production during the fall, winter, and spring when crop prices may be higher. 2. Photoperiodic lighting: The daily duration of light is important for many plants. The ratio of light to dark periods within a 24-hour cycle influences the flowering response of many plants. Manipulating this ratio with supplemental lighting allows for the timing of flowering. 3. Cultivation without daylight in a plant factory. 4. Tissue culture.
[0010] To provide supplemental lighting in greenhouses during fall, winter, and spring (or year-round in multi-layered growth), high-power gas discharge lamps are typically used, which must be mounted relatively high above the plants to ensure sufficiently uniform light distribution throughout the plants. Currently, greenhouses use different types of high-power lamps (e.g., high-power HIDs) ranging from 600 to 1000 W to provide supplemental lighting to plants. One disadvantage is that, depending on the type of crop, the amount of light reaching the lower parts of the plants from a position above the plants can be rather limited. At the same time, the lower parts of the plants often require the most supplemental lighting. The same dilemma remains when using solid-state lighting mounted above the plants. Nevertheless, LED lighting, particularly solid-state lighting, offers several advantages over discharge-based lighting.
[0011] In situations where plants receive insufficient light from natural sunlight, such as in northern regions or in so-called "urban agriculture" or "vertical agriculture" that rely entirely on artificial and well-controlled conditions, it appears necessary to provide plants with light for growth (leaves and fruit), ripening, and pre-harvest conditioning.
[0012] Light is not the only factor that enables growth; atmospheric factors (humidity levels, CO2 / O2 levels, etc.), water, nutrients, and spore elements are also of primary importance. Temperature (and day / night temperature profile / cycle) is also an important contributor to successful plant growth. In the field of outdoor horticulture, there appears to be a need for soilless or hydroponic horticulture, which is currently typically used in high-profit / high-value cultivation. Such methods are also based on the non-natural growth of plants and may require or benefit from artificial optimization.
[0013] The space available for food production is becoming scarce. Innovations in production methods are needed to produce higher yields in a smaller footprint while being more sustainable (minimal use of energy and water). Producing food in enclosed environments, such as plant farms, is a way to meet these demands. In plant farms (also known as plant factories, vertical farms, or urban farms), food is grown in layers, making much better use of available space compared to outdoor or greenhouse growing. This means that daylight cannot reach all plants, and almost all light must be provided by artificial lighting. In plant farms, plants must always be given optimal light treatment. At the same time, it is essential that the light generated by LED modules be used as efficiently as possible to reduce energy consumption and create a profitable business. In plant farms, production per unit area is much higher than in open fields. Water use is minimized. Plant diseases and pests can be more easily prevented.
[0014] Horticulture uses a relatively large amount of light, and thus energy. Producing higher yields while using fewer photons is key to the future of horticulture.
[0015] The term "horticulture" relates to the (intensive) cultivation of plants for human use; the activity is very diverse and incorporates food plants (fruits, vegetables, mushrooms, culinary herbs) and non-food crops (flowers, trees and shrubs, turfgrass, hops, grapes, medicinal herbs). Horticulture is the branch of agriculture that deals with the art, science, art, and business of growing plants. This can include the cultivation of non-food crops such as medicinal plants, fruits, vegetables, nuts, seeds, herbs, sprouts, mushrooms, algae, flowers, seaweed, and grasses and ornamental trees and plants. As used herein, the term "plant" refers to essentially any species selected from medicinal plants, vegetables, herbs, sprouts, mushrooms, nut-bearing plants, seed-bearing plants, flower-bearing plants, fruit-bearing plants, non-food crops such as grasses and ornamental trees, etc.
[0016] As used herein, the term "plant" refers to essentially all stages. The term "plant part" may refer to roots, stems, leaves, fruits (if any), etc. The term "horticulture" relates to the (intensive) cultivation of plants for human use, an activity that is highly diverse and incorporates food plants (fruits, vegetables, mushrooms, culinary herbs) and non-food crops (flowers, trees and shrubs, turfgrass, hops, grapes, medicinal herbs). Horticulture is the branch of agriculture that deals with the art, science, art, and business of growing plants. This may include the cultivation of non-food crops such as medicinal plants, fruits, vegetables, nuts, seeds, herbs, sprouts, mushrooms, algae, flowers, seaweed, and grasses and ornamental trees and plants. As used herein, the term "plant" refers to essentially any species selected from medicinal plants, vegetables, herbs, sprouts, mushrooms, nut-bearing plants, seed-bearing plants, flower-bearing plants, fruit-bearing plants, non-food crops such as grasses and ornamental trees, etc. More particularly, the term "plant" is used to refer to essentially any species selected from medicinal plants, vegetables, herbs, sprouts, nut-producing plants, seed-producing plants, flower-producing plants, fruit-producing plants, non-food crops, etc.
[0017] The term "crop" is used herein to refer to horticultural plants that are grown or raised. Plants of the same type that are grown on a large scale for food, clothing, etc. may be referred to as crops. A crop is, for example, a non-animal species or variety that is grown to be harvested for food, livestock feed, fuel, or any other economic purpose. The term "crop" may also refer to multiple crops. Horticultural crops may particularly refer to food crops (tomatoes, peppers, cucumbers, and lettuce) and plants that (potentially) produce such crops, such as tomato plants, pepper plants, cucumber plants, etc. Horticulture may be used herein generally to refer to, for example, crop and non-crop plants. Examples of crop plants are rice, wheat, barley, oats, chickpeas, peas, cowpeas, lentils, mung beans, black mung beans, soybeans, kidney beans, moth beans, linseed, sesame, glass peas, sunn hemp, chili peppers, eggplant, tomatoes, cucumbers, okra, peanuts, potatoes, corn, pearl millet, rye, alfalfa, radishes, cabbage, lettuce, pepper, sunflowers, sugar beets, castor beans, red clover, and white beans. The following crops are of particular interest: clover, safflower, spinach, onion, garlic, turnip, eggplant, muskmelon, watermelon, cucumber, pumpkin, kenaf, oil palm, carrot, coconut, papaya, sugarcane, coffee, cocoa, tea, apple, pear, peach, cherry, grape, almond, strawberry, pineapple, banana, cashew, Irish potato, cassava, taro, rubber, sweet sorghum, cotton, triticale, pigeon pea, and tobacco. Of particular interest are tomatoes, cucumbers, peppers, lettuce, watermelons, papaya, apples, pears, peaches, cherry, grape, and strawberry.
[0018] The term "plant" as used herein may refer specifically to Archaeplastida. Archaeplastida is a major group of eukaryotic organisms that includes red algae (rhodophytes), green algae, and land plants, along with a small group of freshwater unicellular algae called glaucophytes. Thus, in embodiments, the term "plant" may refer to land plants. In embodiments, the term "plant" may also refer to algae (such as one or more of green and red algae and unicellular algae called glaucophytes).
[0019] In particular, the present invention may be of interest to short-day plants (arugula, baby leaf spinach, ornamental plants (anthurium, orchids, chrysanthemums, etc.), essentially all herbs (dill, basil, parsley, coriander, poinsettia, etc.), or any plant that needs to maintain a short photoperiod to avoid flower bud formation (where this is particularly undesired, such as in leafy vegetables). Furthermore, the present invention may be of particular interest to high-wire plants, i.e., plants that grow along a wire or other vertical support. Thus, in an embodiment, the plant may be selected from the group of tomato plants, cucumber plants, pepper plants, eggplant plants, etc. Still further, the plant includes a plant selected from the group of leafy green plants.
[0020] The term "horticultural light" particularly refers to light having one or more wavelengths in one or more of a first wavelength range of 400-475 nm and a second wavelength range of 625-675 nm. The relative energy (watts) provided in these ranges may depend on the type and / or growth phase of the plant. Therefore, a recipe may define ratios for one or more types of plants, optionally depending on time. In particular, the term "horticultural light" may refer to the PAR range (photosynthetically active range from 400 to 700 nm). The term "horticultural light" may also be used for light applied to plants in hydroponic applications. As is known in the art, in the PAR range (photosynthetically active range from 400 to 700 nm), the leaf reflection coefficient is very small (5-10%). Beyond 700 nm, the reflection coefficient increases toward the near infrared. In certain embodiments, the horticultural light may also include a small amount of far red (<20% of output, particularly up to about 10% of output), i.e., 700-800 nm, in addition to PAR light.
[0021] The above applies to (artificial) horticultural lighting in general. The present invention proposes, among other things, specific horticultural lighting recipes.
[0022] When growing plants using LED light in a completely enclosed environment, the plants may grow very differently from the outside world. Some aspects, such as temperature and humidity, may interfere with normal plant physiological development. However, in addition, the light spectrum may also have morphological and physiological effects on plants.
[0023] Some plants, such as lettuce, appear to thrive in vertical farms, and the general absence of stressors induced by the presence of UV light, light intensity variations, and sudden climate changes appears to favor rapid growth and biomass production.
[0024] In the cut-leaf segment category, baby leaves are cut from the plant several times. The plant is left in the growing area, leaving only the roots and a few centimeters of stem, which usually regrow rather quickly. Many species evolve between the first harvest and subsequent harvests. Leaves can change shape, color, and flavor. In wild arugula, some users may be particularly interested in cutting five or more leaves, as they have a stronger flavor and better appearance. Leaves have been shown to change their composition and behavior after multiple cuts. One aspect that emerges with increasing cuts is bolting. Unfortunately, the flowers are not sold as a product with the leaves and must be sorted and separated. However, the flowers are edible, have a rather pleasant flavor, and may have certain health benefits.
[0025] Bolting appears to be highly dependent on the light photoperiod: the longer the light hours per day, the more bolting occurs. In the cut arugula and spinach species examined, bolting occurs even with a short lighting photoperiod (12 h to a maximum of 15 h), depending on the species, and flowers appear to pop up (approximately) from the third cut.
[0026] It is therefore an aspect of the present invention to provide an alternative system, lighting device and / or method for growing plants that preferably also at least partially avoids one or more of the above-mentioned disadvantages. The present invention may have the object of overcoming or ameliorating at least one of the disadvantages of the prior art, or of providing a useful alternative. The present invention is defined by the claims. [Means for solving the problem]
[0027] Although far-red light generally appears to induce flowering in most horticultural crops, the present inventors surprisingly discovered that a high dose (e.g., at least about 10%) of far-red light significantly reduces bolting on cut arugula. However, the complete absence of far-red light and / or the complete absence of white light (presence of green light) will induce bolting and increase flower production.
[0028] Furthermore, high levels of far-red light appear to increase production yield. However, at the same time, it negatively impacts shelf life. Therefore, solutions with specific light recipes can be used to improve the quality of arugula just before harvest while keeping bolting incidence low. In this invention, the inventors have developed several lighting recipe strategies to maximize leaf quality, production, and bolting reduction, especially for baby leaf plants (which are known to bolt easily).
[0029] Therefore, in a first aspect, there is described a method of providing horticultural light to plants (in a horticultural arrangement), the method comprising providing, during a control mode, a first horticultural light to the plants, wherein particularly at least 5%, more particularly at least 10%, even more particularly at least 15% of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, particularly at least 20%, more particularly at least 40%, even more particularly at least 45% of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm. In particular, the plants are grown in the horticultural arrangement.
[0030] Using such a method, it appears that bolting can be reduced and / or delayed in the sense that the extent of bolting is shifted to later cuttings. Thus, using the method, plants have significantly lower bolting, which increases partitioning when creating biomass for consumption. Using such a light recipe that reduces bolting may also be a solution for increasing production without increasing bolting. In particular, the application of far-red light appears to have a beneficial effect on reducing bolting. Using the method of the present invention, lamp investment costs and / or energy usage may also be reduced. In the present invention, the growth light has a substantial far-red component.
[0031] As mentioned above, the present invention provides a method for providing horticultural light to plants. The plant can be essentially any plant as defined above. However, in particular, the plant is selected from the group of green vegetables. More particularly, the plant is of a type that produces new leaves after leaf harvest. More particularly, the plant is of a type that can produce a bolt, or multiple bolts, and subsequently a flower, or multiple flowers, respectively. The term "bolting" and similar terms refer in particular to the premature production of a flowering stem (or stems) on a horticultural crop before the crop is at least partially harvested. Thus, the term "bolting" may refer to the early stage of a flower or flowering stem.
[0032] More particularly, the plant is selected from the group consisting of kale, spinach, Swiss chard, collard greens, purslane, mustard greens, watercress, arugula, lettuce, dandelion greens, cabbage, arugula, and beet greens. One or more species of the Lettuce family or one or more species of the Brassicaceae family may be used in the present invention. The present invention may also be applied to other types of bolting plants where no substantial intentional harvesting of the leaves occurs.
[0033] The term "plant" may also refer to a seed or a seedling. Thus, the term "plant" may generally refer to any stage from seed to (mature) plant. The term "plant" may also refer to multiple (different) plants.
[0034] The plants are especially grown in horticultural arrangements. In particular, the term "horticultural arrangement" refers to a plant factory or climate cell in which the plants are grown under controlled conditions and in which the plants receive substantially no daylight. Furthermore, such a plant factory may be climatized, as in the case of a climate cell. Thus, in an embodiment, the horticultural arrangement includes such a plant factory or climate cell. In this specification, the term plant factory is considered to encompass embodiments of climate cells.
[0035] In other embodiments, a plant factory or climate cell comprises at least part of a horticultural arrangement. For example, the climate cell comprises a plant support and a lighting system, and a control system may be configured inside or outside the climate cell. In a plant farm (also known as a plant factory, vertical farm, or urban farm), food may be grown in multiple layers, which makes much better use of available space compared to outdoor growing or greenhouse growing. This means that daylight cannot reach all plants, and almost all light must be provided by artificial lighting. Therefore, the present invention particularly relates to a horticultural arrangement in which plants receive essentially only artificial light.
[0036] Therefore, the present invention is not limited to horticultural configurations in which plants receive essentially only artificial light. Accordingly, the present invention also provides, in a further aspect, a method in which (supplemental) horticultural light is provided to a plant such that the minimum levels (and maximum levels) defined herein for the far-red range of 700-800 nm and the deep-red range of 640-700 nm are obtained by the plant (for the time periods indicated herein). This may also be referred to herein as a "supplemental controlling mode."
[0037] The method includes providing a first horticultural light to the plants during the control mode. The term "mode" may also be indicated as "control mode." A system, apparatus, or device (see further below) may perform an action in a "mode," "operation mode," or "mode of operation." Similarly, in a method, an action, phase, or step may be performed in a "mode," "operation mode," or "mode of operation." This does not exclude that the system, apparatus, or device may be adapted to provide another control mode or multiple other control modes. Likewise, this does not exclude that one or more other modes may be executed before and / or after executing a mode. However, in embodiments, a control system (see further below) adapted to provide at least the control mode may be available. If other modes are available, selection of such modes may be performed, in particular via a user interface, although other options are also possible, such as executing a mode depending on a sensor signal or a (time) scheme. An operational mode may, in embodiments, refer to a system, apparatus, or device that can only operate in a single operational mode (i.e., "on" and without further adjustability).
[0038] The term horticultural light is also (generally) described above. For the purposes of the present method, the horticultural light in the control mode has a specific composition.
[0039] In certain embodiments, particularly at least 5%, such as at least 15%, at least 10%, more particularly at least 20% of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, and in certain embodiments, the contribution of far-red light is not more than 80%, such as not more than 35%, not more than 55%, for example not more than 30%.
[0040] Furthermore, particularly at least 20%, such as at least 40%, particularly at least 30%, and more particularly at least 45% of the photons of the first horticultural light have a wavelength selected from the range of 640 to 700 nm. In certain embodiments, the contribution of deep red light is not more than 95%, such as not more than 85%, or not more than 90%, for example not more than 80%.
[0041] Furthermore, in particular at most 10%, for example at most 5%, of the photons of the first horticultural light have a wavelength selected from the range of 400 to 500 nm.
[0042] Thus, in certain embodiments, particularly at least 5%, for example at least 10%, and more particularly at least 15% of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, at least 40%, for example at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm. Using such light, bolting can be controlled as described herein.
[0043] In certain embodiments, (i) up to 5% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm, (ii) up to 45% of the photons of the first horticultural light have a wavelength selected from the range of 500-640 nm, (iii) at least 30%, e.g., at least 40%, more particularly at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and (iv) at least 10%, particularly at least 15%, e.g., at least 20%, of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm. In this case, bolting can be better controlled (i.e., reduced) during at least a number of the first cuts. Thus, in embodiments, at least 10%, e.g., at least 15%, or even at least 20%, of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm.
[0044] The percentage of photons refers to the total number of photons in the 400-800 nm spectral range. Thus, for example, the phrase "n% of the photons of the first horticultural light" and similar phrases indicate that, of all photons having a wavelength selected from the 400-800 nm range (especially available in the horticultural light provided by the horticultural lighting system), n / 100 are in the specifically indicated subrange. This does not exclude that horticultural light, such as that provided by the lighting devices described herein, may also provide other radiation, such as UV radiation. However, for the invention described herein, the number of photons refers to the total number of photons in the 400-800 nm range. Furthermore, the artificial light provided to plants may consist essentially of the first horticultural light described herein and, unless otherwise indicated, may be essentially free of other types of radiation, such as in the second horticultural light embodiment. In such (latter) embodiments, the artificial light provided to the plants may consist essentially of the second horticultural light described herein and (unless otherwise indicated) may be essentially free of other types of radiation. As indicated elsewhere, "essentially" may refer to, among other things, at least 90%, e.g., at least 95%.
[0045] In certain embodiments, at least 80%, such as at least 90%, and more particularly at least 95% of the photons of the first horticultural light (in the wavelength range of 400 to 800 nm) have a wavelength selected from the range of 640 to 800 nm.
[0046] In particular, the light intensity received by the plant is controlled within a range. In particular embodiments, the method provides a control mode in which the light intensity is at least 50 μmol / m 2 / s, e.g., in particular at least 100 μmol / m 2 / s, e.g., more particularly at least 150 μmol / m 2 / s, for example, in particular 50 to 1000 μmol / m 2 / s, more particularly 150 to 1000 μmol / m 2In an embodiment, the method includes providing a first horticultural light having an average intensity (on the plant) selected from the range of 200 to 1000 μmol / m 2 during the control mode. 2 In an embodiment, the intensity is 800 μmol / m 2 or 900 μmol / m 3 or 100 μmol / m 4 or 100 μmol / m 5 or 100 μmol / m 6 or 100 μmol / m 7 or 100 μmol / m 8 or 100 μmol / m 9 or 100 μmol / m 10 or 100 μmol / m 11 or 100 μmol / m 2 / s, e.g., 600 μmol / m 2 / s, e.g., 200-600 μmol / m 2 / s, e.g., 200 to 525 μmol / m 2 / s range.
[0047] In particular, the light intensities shown are provided for a time period of 10-20 hours per day, with a dark period of 4-14 hours per day.
[0048] Thus, in certain embodiments, the method involves administering at least 150 μmol / m 2 of ATP over a time period of 10 to 20 hours per day with a dark period of 4 to 14 hours per day. 2 / s, for example, 200 to 525 μmol / m 2 / s, especially 200-100 μmol / m 2 providing a first horticultural light during the control mode having an average intensity selected from a range of 1 / s.
[0049] The daylight and dark periods during which horticultural light is provided in this mode, as well as the number of days during which horticultural light is provided during the control mode, may vary from plant to plant (species). Additionally, conditions can be selected to accelerate growth, retard growth, affect leaf flavor or color, etc.
[0050] at least 50 μmol / m, including a substantial portion of (far) red and deep red (see percentages given herein); 2 / s, in particular at least about 100 μmol / m 2 / s, more particularly at least about 150 μmol / m 2 / s, e.g., at least about 200 μmol / m 2The value of / s is well above the compensation point for plants (i.e., photosynthetic processes dominate over respiratory processes).
[0051] As mentioned above, the intensity, denoted herein as PPFD, can be determined from a photodiode or measured directly with a photomultiplier tube. The area in PPFD refers in particular to the local light-receiving (plant) area of the space in which the light source is located. In the case of a multi-layer system, this is the area of the relevant layer included in the multi-layer configuration, and therefore the PPFD may be estimated for each layer individually (see further below). The area may in one embodiment be a value manually supplied to the control unit, or in one embodiment may be evaluated by the control unit (e.g., using a sensor). "at least 150 μmol / m 2 / s" and similar phrases 2 ) may particularly refer to the root growth medium face. The term "root growth medium face" may refer to the liquid surface in hydroponic applications, or may refer to the top layer of a substrate such as soil. For example, the term "root growth medium face" may refer to "table level," i.e., the level at which plants are grown. In particular, "at least 150 μmol / m 2 The phrase " / s" and similar phrases refer to the intensity received by the plant. Thus, any part of the plant that can receive light (within the horticultural system) (i.e., in particular the part at least above the substrate) will receive such a dose. For example, the number of photons per second received per square meter at the upper part of the plant and at the lower part of the plant (still accessible by light) may be measured. In this way, the dose can be calculated. For example, the rooting medium level may be used to avoid the effect of leaf shadow. If the indicated intensity is received at the rooting medium level or at table level (when there are no plants), the plant will also receive at least such intensity.
[0052] The conditions to which a (growing) plant is subjected are generally defined in a recipe. Thus, the control system may grow the plant according to the recipe. Such a recipe may include a light recipe that defines a predetermined (second) horticultural light intensity. This may mean that the recipe defines the predetermined (second) horticultural light intensity over time. Alternatively or additionally, the recipe may define the predetermined (second) horticultural light intensity as a function of a sensed parameter, such as nutrient uptake, leaf size, plant temperature, leaf temperature, root temperature, stem length, fruit size, etc. Other parameters may also be sensed, such as one or more of temperature (in a greenhouse, field, climate cell, tunnel, etc.), humidity, and gas composition. Daylight intensity (which may also apply to sunlight) may also be a parameter to be sensed. A recipe for lighting parameters may be referred to as a "light recipe." A light recipe may be included in a recipe that also includes other parameters, such as one or more of leaf temperature, root temperature, and ambient temperature.
[0053] Bolting appears to become a problem with a larger number of cuts. The more cuts there are, the more likely bolting is to become a problem. For at least some plants, bolting appears to become a problem only after a few cuts. Therefore, applying the composition of the first horticultural light defined herein may be necessary, for example, only after a certain time of plant growth, or after a few cuts, or may be performed, for example, only when the number of bolts or bolt size exceed a respective predetermined minimum level. Thus, in embodiments (where the plant produces new leaves after leaf harvest), the control mode includes controlling the spectral composition of the first horticultural light as a function of one or more of: (a) the time point in the plant's lifetime; (b) the number of harvests; (c) the number and / or appearance of bolts; and (d) the number and / or appearance of flowers. The term "appearance" particularly refers to one or more of size and color, particularly at least size. As noted above, bolting can lead to flowers.
[0054] Alternatively or additionally, the control mode includes controlling the spectral composition of the first horticultural light as a function of one or more of: (i) the number and / or appearance and / or color of leaves of one or more plants; (ii) the area and / or color of a canopy of one or more plants; (iii) the number of harvests performed after the first generation of leaves of one or more plants; (iv) the number and / or appearance of bolts of one or more plants; and (v) the number and / or appearance of flowers of one or more plants.
[0055] For this purpose, in an embodiment, a sensor may be applied. For example, in an embodiment, the sensor may be applied to sense one or more of: (i) the number and / or appearance and / or color of leaves of one or more plants; (ii) the area and / or color of the canopy of one or more plants; (iii) the number of harvests performed after the first generation of leaves of one or more plants; (iv) the number and / or appearance of bolts of one or more plants; and (v) the number and / or appearance of flowers of one or more plants. The sensor may include a camera, such as a CCD camera. The term "sensor" may refer to multiple sensors.
[0056] Because bolting may increase with the number of cuts, horticultural light may alternatively or additionally be applied at a relatively low level of essentially far-red light (which is likely to impose a decrease in bolting behavior) rather than constantly, for example, after a certain number of cuts. Alternatively, or additionally, the light may be started at a relatively low level and then increased after each cut, for example. Thus, in embodiments, the control mode includes increasing the contribution of photons having wavelengths selected from the 700-800 nm range to the first horticultural light with one or more of: (a) time; (b) number of harvests; and (c) number and / or appearance of bolts. Thus, in certain embodiments, the control mode includes providing the first horticultural light only after the nth harvest, where n is at least 2, e.g., at least 3. There will typically be a period of at least one week, e.g., at least two weeks, between two cuts, but typically less than several months.
[0057] Furthermore, it appears surprisingly that pulses having essentially blue light, particularly relatively shortly before cutting, can have a beneficial effect on increasing yield (of the crop) and / or increasing shelf life (of the cut leaves). Thus, in embodiments, prior to harvest, providing the first horticultural light is terminated and horticultural light relatively richer in blue is provided. Using the second horticultural light as part of the light recipe appears to increase shelf life and improve the visual quality of the plant, particularly the leaves.
[0058] Thus, in certain embodiments, the control mode includes providing a first horticultural light to the plant for one or more first time periods prior to harvest and providing a second horticultural light to the plant for one or more second time periods prior to harvest, particularly where the first and second time periods do not overlap, and particularly where the one or more second time periods are within a maximum of three days prior to harvest. In certain embodiments, at least 20%, e.g., at least 25%, e.g., at least 30%, more particularly at least 35%, of the photons of the second horticultural light have a wavelength selected from the range of 400-500 nm, and up to 10% of the photons of the second horticultural light have a wavelength selected from the range of 700-800 nm. In particular, the second horticultural light has a higher (relative) intensity in the range of 400-500 nm and a lower (relative) intensity in the range of 700-800 nm than the first horticultural light. More particularly, the absolute intensity (of the second horticultural light) in at least the range of 400 to 500 nm is greater than that of the first horticultural light, and the absolute intensity (of the second horticultural light) in the range of 700 to 800 nm is less than that of the first horticultural light.
[0059] The intensity of the second horticultural light may be in a similar range as described above.
[0060] In particular, the second horticultural light is also provided for a time period of 10 to 20 hours per day, with a dark period of 4 to 14 hours per day.
[0061] The method may be performed, inter alia, using a lighting device as described herein and / or a lighting system as described herein (which may include such a lighting device). The method may be performed on a computer operatively coupled to or included in a horticultural lighting system or horticultural arrangement.
[0062] Therefore, in yet another aspect, described is a computer program product that, when executed on a computer operatively coupled to or included in a horticultural lighting device configured to generate, in a control mode, a first horticultural light, wherein in certain embodiments at least 5%, such as at least 10%, e.g., particularly at least 15%, of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, at least 20%, such as at least 40%, e.g., particularly at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm. The horticultural lighting device is, in particular, a horticultural lighting system as further defined herein.
[0063] The present invention therefore further provides a computer program product which, when loaded onto, for example, a computer (functionally coupled to a horticultural lighting system or a horticultural lighting device), is capable of carrying out the methods described herein. In a still further aspect, the present invention provides a record carrier (or data carrier, such as a USB stick, CD, DVD, etc.) storing a computer program as claimed. The computer program product, when run on or loaded into a computer, therefore performs or is capable of performing the methods described herein. Therefore, in a further aspect, the present invention provides a computer program product which, when run on a computer functionally coupled to or included in a horticultural lighting system, as particularly defined herein, or a horticultural arrangement (thus) comprising such a horticultural lighting system, as particularly defined herein, is capable of causing the methods described herein.
[0064] The record carrier or computer-readable medium and / or memory may be any recordable medium (e.g., RAM, ROM, removable memory, CD-ROM, hard drive, DVD, floppy disk, or memory card) or a transmission medium (e.g., a network, including optical fiber, the World Wide Web, a cable, and / or a wireless channel, e.g., using time division multiple access, code division multiple access, or other wireless communication systems). Any medium known or to be developed that is capable of storing information suitable for use in a computer system may be used as the computer-readable medium and / or memory. Additional memory may also be used. Memory may be long-term memory, short-term memory, or a combination of long-term and short-term memory. The term memory may also refer to multiple memories. The memory may configure the processor / controller to perform the methods, operations, and functions disclosed herein. The memory may be distributed or local, and the processor may be distributed or unitary, where additional processors may be provided. Memory may be implemented as electrical, magnetic, or optical memory, or any combination of these or other types of storage devices. Furthermore, the term "memory" should be interpreted broadly enough to encompass any information that can be read from or written to an address in an addressable space accessed by a processor. By this definition, information on a network, such as the Internet, is also within the scope of memory, since, for example, a processor may obtain that information from the network.
[0065] The controller / processor and memory may be of any type. The processor may be capable of performing the various operations described and executing instructions stored in the memory. The processor may be an application-specific integrated circuit or a general-purpose integrated circuit. Furthermore, the processor may be a dedicated processor for performing in accordance with the present system, or a general-purpose processor performing only one of many functions to perform in accordance with the present system. The processor may operate using program portions, multiple program segments, or may be a hardware device using a dedicated or multi-purpose integrated circuit.
[0066] The present invention also provides a computer program product that, when executed on a computer operatively coupled to or included in a horticultural lighting system (or horticultural lighting device), is configured to generate supplemental horticultural light in a control mode (i.e., supplemental control mode), wherein the horticultural light is provided such that the minimum levels (and maximum levels) defined herein for the far-red range of 700-800 nm and the deep-red range of 640-700 nm are obtained by the plants (for the time periods indicated herein).
[0067] In yet a further aspect, a horticultural lighting device ("lighting device" or "device") is described that may be configured or capable of (solely) generating a first horticultural light. Thus, in one aspect, the present invention provides a lighting device configured to provide a first horticultural light during a control mode, wherein at least 5%, more particularly at least 10%, even more particularly at least 15%, e.g., at least 20%, of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, at least 20%, e.g., at least 40%, particularly at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm. As noted above, the terms "control mode" or "operational mode" or similar terms may, in embodiments, refer to a device that can operate only in a single operational mode (i.e., "on" and without further adjustability). However, the terms "control mode" or "operation mode" or similar terms may also refer to a device that may be adapted to provide another control mode or multiple other control modes.
[0068] Thus, a lighting device may be configured to provide lighting device light, such as a horticultural light, having a controllable spectral power distribution in certain embodiments, and in a control mode (of the device), a first horticultural light is provided, although in certain embodiments the lighting device may also be capable of providing horticultural light having a different spectral power distribution than the first horticultural light. In alternative embodiments, the lighting device is specifically configured to provide the first horticultural light and is configured to essentially include a single control mode, i.e., production of the first horticultural light during an on mode, optionally at a controllable intensity, but having essentially the same spectral distribution at all intensities, or non-production of the first horticultural light during an off mode. The term "horticultural light" refers to horticultural light in general (see also above), and the terms "first horticultural light" or "second horticultural light" refer specifically to light having the specific spectral composition set forth herein.
[0069] Thus, in embodiments, the lighting device may include a lighting control system or be operatively coupled to a lighting control system configured to control the spectral characteristics of the lighting device, which in embodiments may be a control system as further defined in relation to a horticultural lighting system.
[0070] In yet other embodiments, the lighting device is configured to provide essentially a single spectral distribution, i.e., the spectral distribution of the first horticultural light.
[0071] The lighting device includes at least a light source for providing horticultural light, such as a horticultural light. The lighting device may include a device having a device housing, and the device housing may include the light source.
[0072] The term "light source" may refer to semiconductor light-emitting devices such as light-emitting diodes (LEDs), resonant cavity light-emitting diodes (RCLEDs), vertical cavity laser diodes (VCSELs), and edge-emitting lasers. The term "light source" may also refer to organic light-emitting diodes, such as passive matrix (PMOLED) or active matrix (AMOLED). In certain embodiments, the light source includes a solid-state light source (such as an LED or laser diode). In one embodiment, the light source includes an LED (light-emitting diode). The term "LED" may also refer to multiple LEDs. Furthermore, the term "light source" may also refer to so-called chip-on-board (COB) light sources in embodiments. The term "COB" specifically refers to LED chips in the form of semiconductor chips that are not encapsulated or connected, but are mounted directly on a substrate, such as a PCB. Thus, multiple semiconductor light sources may be configured on the same substrate. In embodiments, a COB is a multi-LED chip configured together as a single lighting module. The term "light source" may also relate to a plurality of light sources, such as 2 to 2000 solid state light sources.
[0073] The blue light may be provided by means of a blue light source, in particular a blue LED, but optionally a UV light source may also be chosen, in particular a UV LED, using a blue emitting material.
[0074] The green light may in particular be provided by means of a green light source, in particular a green LED, but optionally a blue light source, in particular a blue LED, or a UV light source, in particular a UV LED, may be selected, using a green emitting material.
[0075] The red light may in particular be provided by means of a red light source, in particular a red LED, but optionally a UV light source, in particular a UV LED, or a blue light source, in particular a blue LED, using a red emitting material may also be chosen, this may also apply to far red and deep red.
[0076] In particular, the lighting device comprises a plurality of light sources for providing horticultural light, such as at least a first horticultural light. Two or more of the light sources, or all of the light sources together, may be configured to provide the first horticultural light in the control mode. Thus, in particular, the lighting device comprises a plurality of different light sources for providing horticultural light, such as at least a first horticultural light and optionally a second horticultural light.
[0077] In embodiments, the lighting device may include a plurality of light sources, in particular solid-state light sources. In further embodiments, two or more subsets of these light sources may be independently controllable. Still further, two or more of such subsets may provide light having different spectral distributions. In such embodiments, the intensity and spectral distribution of the horticultural light, such as the first horticultural light and / or the second horticultural light, may be controllable. Thus, two or more subsets may, in embodiments, be configured to provide light having different spectral distributions.
[0078] Thus, in embodiments, a horticultural lighting device may include (i) one or more light sources, particularly a first set of solid-state light sources, configured to provide light having a wavelength selected from the range of 700-800 nm, (ii) one or more light sources, particularly a second set of solid-state light sources, configured to provide light having a wavelength selected from the range of 640-700 nm, and optionally (iii) one or more light sources, particularly a third set of solid-state light sources, configured to provide light having a peak wavelength selected from the range of 400-500 nm. More types of light sources may also be available.
[0079] In particular, the different types of light provided herein are provided using light sources having peak wavelengths within the wavelength ranges indicated herein (belonging to the different types of light). Thus, in certain embodiments, a horticultural lighting device includes: (i) a first set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 700-800 nm; (ii) a second set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 640-700 nm; and, optionally, (iii) a third set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 400-500 nm. More types of light sources may also be available.
[0080] Furthermore, in certain embodiments, the horticultural lighting device (during control mode) emits a luminescence (e.g., a luminescence) of at least 100 μmol / m 2 at a distance of at least 30 cm, such as at least 100 cm, from the lighting device. 2 / s, etc., at least 50 μmol / m 2 / s。 The device may include a plurality of light sources providing the (first) horticultural light at different spatial locations, so that the light intensity does not vary significantly between a distance of 30 cm and a distance of 100 cm from the lighting device.
[0081] In particular, the device is configured to provide (first) horticultural lighting having an intensity as defined above (in relation to the method), in particular at a position at least 30 cm from the horticultural lighting device. Furthermore, the horticultural lighting device may be configured to provide (first) horticultural light having an intensity as defined above (in relation to the method) during a time period (i.e., hours per day) as defined above (in relation to the method).
[0082] The present invention also provides a (horticultural) lighting device configured to produce supplemental horticultural light in a control mode (i.e., supplemental control mode), in which the horticultural light is provided such that the minimum levels (and maximum levels) defined herein for the far-red range of 700-800 nm and the deep-red range of 640-700 nm are obtained by the plants (for the time periods indicated herein).
[0083] The term "lighting device" may also refer to multiple (different) lighting devices, two or more of which may together provide horticultural light, such as a first horticultural light and / or optionally a second horticultural light.
[0084] Essentially the same embodiments as described in relation to the method can also be applied to the (horticultural) lighting device.
[0085] The lighting device may be used in particular in the methods described herein and / or the horticultural lighting systems described herein.
[0086] In yet a further aspect, - a lighting device configured to provide horticultural light, in particular configured to provide horticultural light having a controllable spectral power distribution; - a control system configured to control the lighting device to provide a first horticultural light during a control mode, wherein in certain embodiments at least 5%, for example in particular at least 10%, more in particular at least 15%, of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, at least 20%, for example in particular at least 40%, more in particular at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and at most 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm; A horticultural lighting system is described, including:
[0087] Using such a system, the horticultural lighting provided to the plants can be controlled. In this way, bolting can be reduced and yield and / or shelf life may be increased.
[0088] The term "control" and similar terms particularly refer to at least determining the behavior of or supervising the operation of an element (here, a horticultural system or one or more elements thereof). Thus, as used herein, "control" and similar terms may refer to imposing a behavior on an element (determining the behavior of an element or supervising the operation of an element), such as, for example, measuring, indicating, activating, opening, shifting, changing temperature, etc. Alternatively, the term "control" and similar terms may additionally include monitoring. Thus, the term "control" and similar terms may include imposing a behavior on an element, as well as imposing a behavior on an element and monitoring an element.
[0089] Control of an element can be performed using a control system, which may also be denoted a "controller." Thus, the control system and the element may be functionally coupled, at least temporarily, or permanently. An element may include a control system, although in embodiments, the control system and the element may not be physically coupled. Control can be performed via wired and / or wireless control. The term "control system" may also refer to multiple different control systems, particularly those that are functionally coupled, where, for example, one control system may be a master control system and one or more other control systems may be slave control systems. A control system may include a user interface or be functionally coupled to a user interface.
[0090] Examples of user interface devices include, among others, manual activation buttons, displays, touchscreens, keypads, voice-activated input devices, audio outputs, indicators (e.g., lights), switches, knobs, modems, and networking cards. In particular, a user interface device may be configured to allow a user to instruct a device, apparatus, or system to which the user interface is operatively coupled or in which the user interface is operatively included. The user interface may include, among others, manual activation buttons, touchscreens, keypads, voice-activated input devices, switches, knobs, etc., and / or optionally, modems, networking cards, etc. The user interface may comprise a graphical user interface. The term "user interface" may also refer to a remote user interface, such as a remote control. A remote control may be a separate, dedicated device. However, a remote control may also be a device having an app configured to control (at least) a system, device, or apparatus. A user interface may, among others, be operatively coupled to or included in a control system.
[0091] Essentially the same embodiments as described in relation to the method may also be applied to horticultural lighting systems, some of which are discussed in more detail below.
[0092] In certain embodiments, the control system may be configured to control the lighting device during the control mode to provide the first horticultural light for a time period of 10 to 20 hours per day and a dark period of 4 to 14 hours per day, particularly wherein in the first horticultural light, up to 5% of the photons of the first horticultural light have a wavelength selected from the range of 400 to 500 nm, up to 45% of the photons of the first horticultural light have a wavelength selected from the range of 500 to 640 nm, at least 20%, such as particularly at least 40%, more particularly at least 45%, of the photons of the first horticultural light have a wavelength selected from the range of 640 to 700 nm, and at least 5%, such as particularly at least 10%, more particularly at least 15%, such as at least 20%, of the photons of the first horticultural light have a wavelength selected from the range of 700 to 800 nm. In yet other particular embodiments (also noted above), the control mode includes controlling the spectral composition of the first horticultural light as a function of one or more of: (a) a time point in the plant's lifetime; (b) a number of harvests; (c) a number and / or appearance of bolts; and (d) a number and / or appearance of flowers.
[0093] In yet other particular embodiments (also noted above), the horticultural lighting system may further include a sensor, and the control system may be configured to sense, via the sensor, one or more of: (a) the number and / or appearance and / or color of leaves of the one or more plants; (b) the area and / or color of the canopy of the one or more plants; (c) the number of harvests performed after the first generation of leaves of the one or more plants; (d) the number and / or appearance of bolts of the one or more plants; and (e) the number and / or appearance of flowers.
[0094] The phrase "number of executed harvests after a first generation of leaves" specifically refers to the number of harvests itself. As noted above, in an embodiment, the control mode includes providing the first horticultural light only after the nth harvest, where n is at least 2.
[0095] In embodiments, the control mode includes increasing a contribution of photons to the first horticultural light having a wavelength selected from the range of 700-800 nm with one or more of (a) time, (b) harvest number, (c) number and / or appearance of flower, and (d) flower number and / or appearance. Further, in embodiments, the control mode includes providing the first horticultural light to the plant for one or more first time periods prior to harvest and providing the second horticultural light to the plant for one or more second time periods prior to harvest, wherein the first and second time periods do not overlap, and the one or more second time periods are within a period of up to three days prior to harvest, and wherein at least 20% of the photons of the second horticultural light have a wavelength selected from the range of 400-500 nm and up to 10% of the photons of the second horticultural light have a wavelength selected from the range of 700-800 nm.
[0096] As mentioned above, in particular, a horticultural lighting system may include a lighting device (particularly as defined herein). Still further, a horticultural lighting system may include a plurality of (different) lighting devices (particularly as defined herein). The plurality of different devices may together provide the (first and / or second) horticultural light.
[0097] In particular, the horticultural lighting system includes a plurality of light sources for providing horticultural light, such as at least one horticultural light, wherein two or more of the light sources, or all of the light sources together, may be configured to provide a first horticultural light in a controlled mode.
[0098] In embodiments, the horticultural lighting system may include multiple light sources, particularly solid-state light sources. In further embodiments, two or more subsets of these light sources may be independently controllable. Still further, two or more subsets of such subsets may provide light having different spectral distributions. In such embodiments, the intensity and spectral distribution of the horticultural lights, such as the first horticultural light and / or the second horticultural light, may be controllable.
[0099] Thus, in an embodiment, a horticultural lighting system includes (i) a first set of one or more light sources, such as solid state light sources, configured to provide light having a wavelength selected from the range of 700-800 nm, (ii) a second set of one or more light sources, such as solid state light sources, configured to provide light having a wavelength selected from the range of 640-700 nm, and, optionally, (iii) a third set of one or more light sources, such as solid state light sources, configured to provide light having a peak wavelength selected from the range of 400-500 nm. More types of light sources may also be available.
[0100] In particular, the different types of light provided herein are provided using light sources having peak wavelengths within the wavelength ranges indicated herein (belonging to the different types of light). Thus, in certain embodiments, a horticultural lighting system includes: (i) a first set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 700-800 nm; (ii) a second set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 640-700 nm; and, optionally, (iii) a third set of one or more (solid-state) light sources configured to provide light having a peak wavelength selected from the range of 400-500 nm. More types of light sources may also be available.
[0101] In an embodiment, the light source configured to provide light having a wavelength selected from the range of 700-800 nm is particularly a light source in which at least 50%, such as at least 70%, for example at least 80%, or even for example at least 90% of its power in the spectral range of 400-800 nm is in the range of 700-800 nm. In an embodiment, the light source is a light source configured to generate source light having a peak wavelength in the indicated wavelength range, i.e., a peak maximum in the range of 400-800 nm that is in the range of 700-800 nm.
[0102] Furthermore, in embodiments, the light source configured to provide light having a wavelength selected from the range of 640-700 nm is particularly a light source in which at least 50%, such as at least 70%, for example at least 80%, or even for example at least 90% of its power in the spectral range of 400-800 nm is in the range of 640-700 nm. In embodiments, the light source is a light source configured to generate source light having a peak wavelength within the indicated wavelength range, i.e., a peak maximum within the range of 400-800 nm that is in the range of 640-700 nm.
[0103] Furthermore, in embodiments, the light source configured to provide light having a wavelength selected from the range of 400-500 nm is particularly a light source in which at least 50%, such as at least 70%, for example at least 80%, or even for example at least 90% of its power in the spectral range of 400-800 nm is in the range of 400-500 nm. In embodiments, the light source is a light source configured to generate source light having a peak wavelength in the indicated wavelength range, i.e., a peak maximum in the range of 400-800 nm that is in the range of 400-500 nm.
[0104] Also, in embodiments, the light source configured to provide light having a wavelength selected from the range of 500-640 nm is particularly a light source in which at least 50%, for example at least 70%, for example at least 80%, or even for example at least 90% of its power in the spectral range of 400-800 nm is in the range of 500-640 nm. In embodiments, the light source is a light source configured to generate source light having a peak wavelength within the indicated wavelength range, i.e., a peak maximum within the range of 400-800 nm that is in the range of 500-640 nm.
[0105] A light source configured to generate white light is in particular a light source whose emitted light is white light, as known to those skilled in the art, this in particular relates to light having a correlated color temperature (CCT) between about 2000 and 20000 K, in particular between 2700 and 20000 K, and in particular within about 15 SDCM (standard deviation of color matching) from the BBL (black body locus), in particular within about 10 SDCM from the BBL, more in particular within about 5 SDCM from the BBL.
[0106] Furthermore, in certain embodiments, the horticultural lighting system may (during control mode) emit a luminescence (luminescence) of at least 100 μmol / m at a distance of at least 30 cm, such as at least 100 cm, from the horticultural lighting system, in particular at least 100 μmol / m 2 / s, etc., at least 50 μmol / m 2 / s。 Because the system may include multiple light sources providing the (first) horticultural light at different spatial locations, which may span several meters or even tens of meters, the light intensity may not differ significantly between a distance of 30 cm and a distance of 100 cm from the horticultural lighting system.
[0107] In particular, the device is configured to provide (first) horticultural lighting having an intensity as defined above (in relation to the method), in particular at a position at least 30 cm from the horticultural lighting device. Furthermore, the horticultural lighting device may be configured to provide (first) horticultural light having an intensity as defined above (in relation to the method) during a time period (i.e., hours per day) as defined above (in relation to the method).
[0108] The present invention also provides a horticultural lighting system configured to generate supplemental horticultural light in a control mode (i.e., supplemental control mode), in which the horticultural light is provided such that the minimum levels (and maximum levels) defined herein for the far-red range of 700-800 nm and the deep-red range of 640-700 nm are obtained by the plants (during the time periods indicated herein).
[0109] In yet another aspect, the present invention also provides a horticultural arrangement for plants, the horticultural arrangement comprising a horticultural lighting system as defined herein and a support for supporting the plants.
[0110] In use, the arrangement may comprise a plant support with plants, or a plant support with seeds, or a plant support with seedlings, etc. Thus, in use, a system (including the arrangement) may comprise a plant support with plants, or a plant support with seeds, or a plant support with seedlings, etc. The terms "support" or "plant support" may refer to one or more of a (particulate) substrate, an aqueous substrate (in hydroponics), soil, wire (for wire crops), etc. that can be used to grow plants in, on, or along it.
[0111] The control system of such a horticultural arrangement may control one or more of the air conditions including one or more of temperature, humidity, irrigation, nutrient supply, light intensity of horticultural lights, air temperature, air composition, air flow rate, etc. Such a horticultural system may be configured to control one or more of these conditions at different locations within the arrangement.
[0112] As can also be derived from the above, in certain embodiments the horticultural lighting system and / or horticultural arrangement may further include sensors, which may be configured to monitor plant parameters and / or other parameters and to provide corresponding sensor signals, and the control system may be configured to control the horticultural lighting system and / or horticultural arrangement in dependence on such sensor signals.
[0113] For example, for the supplemental control mode, a light sensor may be applied and the control system may, depending on the sensor signal of the light sensor, control the supplemental horticultural light such that the minimum levels (and maximum levels) defined herein for the far-red range of 700-800 nm and the deep-red range of 640-700 nm are obtained by the plant (during the time periods indicated herein).
[0114] Therefore, the horticultural lighting device or system may further include a light sensor configured to sense ambient light. Based on the light sensor signal, supplemental light may be provided.
[0115] In general, the first horticultural light may be provided depending on a light sensor. A (predetermined) spectral distribution and / or spectral power may be provided based on a feedback signal of the sensor. As indicated herein, the term "sensor" and similar terms (such as "light sensor") may also refer to multiple (different) sensors (such as light sensors). In particular, a horticultural light system or horticultural arrangement may include multiple (spatially separated) light sensors (and / or other sensors).
[0116] The phrases "minimum level (and maximum level)" and similar phrases refer specifically to the percentage of each light type (blue, deep red, far red, etc.) and / or intensity (i.e., particularly photosynthetic photon flux density (PPFD)) of light. [Brief explanation of the drawings]
[0117] Embodiments will now be described, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, and in which: [Figure 1] FIG. 1 shows a schematic representation of one embodiment and variant of a horticultural arrangement, a horticultural system, and a lighting device. [Figure 2] FIG. 2 shows a schematic representation of an embodiment of a light recipe. [Figure 3] 3a-3c show some experimental results. DETAILED DESCRIPTION OF THE INVENTION
[0118] Schematic drawings are not necessarily to scale.
[0119] In a plant farm (see Figure 1), production per unit area is much higher than in an open field. Water use is minimized. Plant diseases and pests can be more easily prevented. Typically, in a plant farm, plants are grown in climate cells. Each cell comprises one or more racks. Each rack has multiple layers for growing plants. Plants (herbs such as basil or leafy vegetables such as lettuce) can also be grown hydroponically (where plants are grown without soil, using minerals or organic nutrients dissolved in water). Alternatively, as shown, plants may be grown in a substrate such as soil or particulate material.
[0120] 1 schematically illustrates a lighting device 110 configured to, during a control mode, provide a first horticultural light 1111. As discussed above, at least 5% of the photons of the first horticultural light 1111 have a wavelength selected from the range of 700-800 nm, at least 45% of the photons of the first horticultural light 1111 have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light 1111 have a wavelength selected from the range of 400-500 nm.
[0121] The lighting device 110 may also be configured to provide other types of horticultural light in embodiments. Thus, the lighting device 110 may be configured to provide horticultural light having a controllable spectral distribution, and the control system may be able to control this spectral distribution so that a first horticultural light is generated in a control mode. Alternatively, the lighting device may be configured only to provide the first horticultural light.
[0122] The lighting device may include multiple light sources.
[0123] 1 also schematically illustrates a horticultural lighting system 100 including a lighting device 110 configured to provide at least a first horticultural light, which in an embodiment may have a controllable spectral light distribution. The horticultural lighting system 100 also includes a control system 200 configured to control the lighting device 110 to provide the first horticultural light 1111 during a control mode.
[0124] As described above, the control mode includes controlling the spectral composition of the first horticultural light 1111 as a function of one or more of: (a) a point in time in the lifetime of the plant 1; (b) the number of harvests; and (c) the number and / or appearance of voltage. Accordingly, in an embodiment, the horticultural lighting system 100 may further include sensors 210. Here, by way of example, two sensors 210 are shown, and these sensors 210 may have different functions. For example, one may be configured to sense one or more of temperature, humidity, etc. However, at least one sensor 210 may be configured to sense plants, such as a CCD camera. Thus, control system 200 may be configured to sense, among other things, via sensors 210, one or more of: (a) the number and / or appearance and / or color of leaves of one or more plants; (b) the area and / or color of the canopy of one or more plants; (c) the number of harvests performed after the first generation of leaves of one or more plants; (d) the number and / or appearance of bolts of one or more plants; and (e) the number and / or appearance of flowers of one or more plants.
[0125] FIG. 1 also shows a schematic diagram of a horticultural arrangement 1000 for a plant 1, the horticultural arrangement 1000 including a horticultural lighting system 100 as described herein and a support 400 for supporting the plant 1.
[0126] Figure 2 shows schematically three light recipes that may be used. More recipes than those shown can be used. On the x-axis, time is shown. The bars marked H are harvest moments or periods. On the y-axis, intensity is shown, but this is only indicated. The relative intensity between the three light recipes is meaningless.
[0127] The first recipe R1 indicates that the first horticultural light 1111 is provided only after the second harvest. This may be the third harvest, or optionally the fourth harvest. By way of example, thereafter the first horticultural light 1111 is at a single intensity. However, this intensity may vary, such as according to recipe R2 and / or recipe R3.
[0128] Recipe R2 shows a continuous increase in the intensity of the first horticultural light 1111 over time. This intensity may be initiated when seedlings become available. However, this intensity of the first horticultural light may be initiated only after the nth harvest, as in recipe R1.
[0129] Recipe R3 indicates that a pulse of the second horticultural light 1112 is provided immediately prior to harvest, for example, within a few days before harvest (during a lighting period that may be shorter than 24 hours per day), but the intensity of the first horticultural light 1111 is essentially zero, or at least much less than the intensity of the second horticultural light 1112.
[0130] As mentioned above, many more recipes are possible, such as combinations of two or more of the above recipes.
[0131] Thus, light recipes have been proposed that can significantly reduce bolting. However, it may not be possible to completely eliminate bolting. However, the incidence of bolting at harvest occurs at a later stage (later cut), allowing for a larger harvest.
[0132] Several experiments were conducted using various lighting recipes to measure bolting and yield. Bolting and reduced bolting were observed in several wild arugula varieties (Diplotaxi Tenuifolia).
[0133] Plant density is 1m 2 The light treatment consisted of 1250 plants per 1000 plants. The light treatment consisted of 247 μmol / m2 A standard deep red / blue recipe (DRB) with a PAR of 347 μmol / m / s, plus low (5%, DRW) or high (25%, HFR) far-red light, was used. 2 / s PAR, and an additional 25% far red, for a standard Philips deep red / white recipe of 260 μmol / m 2 The light treatment consisted of a deep red / white recipe (DRI) using 1000 / s. Six trays were available per light treatment, half of which could be used for experiments with various sequential pre-harvest light treatments, leaving three trays for the control treatment and three trays for the pre-harvest treatment (dynamic light treatment).
[0134] The table below gives some information about the different light compositions that were used. TIFF0007767010000001.tif43132 (1: The blue part of the white part is in a separate column)
[0135] In cut 1, five trays were used for the control treatment and only one tray was used for the pre-harvest treatment. In cuts 2 to 7, three trays were used for the control treatment and three trays were used for the pre-harvest treatment. In cut 8, three trays were used for the control treatment and no pre-harvest treatment was applied.
[0136] New measurements for this harvest were bolting and overall visual quality (OVQ) assessment. Bolting was measured by counting flower-stems and weighing them separately from the leaves. OVQ was assessed by storing 50g portions in three boxes at 4°C and 10°C. Plant material was scored on a 1-10 scale, with 1 being the worst and 10 being the best possible score, with 6 being the lowest possible score for saleable product.
[0137] The results in the figure are expressed as a function of number (days after sowing), so the x-axis shows time in days after sowing.
[0138] Overall, blue light, low far-red, and high PAR appear to induce bolting (P<0.05, Figure 3a). Treatments with the lowest PAR light levels exhibited the lowest bolting. The figure shows the bolting evolution as a function of number of cuttings and DAS for wild arugula grown under four different static lighting recipes. Low bolting was achieved for low light levels and high far-red levels (or high ratio of far-red compared to PAR).
[0139] Both DRW and DRB have relatively low far-red content and give relatively high bolting, but DRB, with less than 5% far-red and a high blue content, is clearly the worst. If white is reduced, blue is kept low, and the far-red content is increased, as is the case with DRI and HFR, bolting is clearly reduced. Relative to the HFR recipe, the DRI recipe, with low blue content, high deep-red content, low white content, and slightly higher far-red content, is best. The more blue light there is, the more bolting there is (DRB contains 35% blue).
[0140] Yields appear to be systematically higher at 25% far-red compared to 5% far-red. Towards the end of the cut, the difference becomes larger. This is due to both less bolting and more biomass production with far-red. High levels of blue light reduce yields.
[0141] High additive far-red was observed to have the lowest efficiency because more photons were used in the light recipe (visible + far-red total light sum).
[0142] Figure 3a shows on the y-axis the number of boltings, n, defined as the number of flower stalks per square meter. Figure 3b shows the yield or cumulative yield in g / m 2 The cumulative yield is defined as the mass per square meter. Figure 3c shows on the y-axis the radiation use efficiency in g / mol, i.e., the mass yield per mol of photons of horticultural light.
[0143] Alternative light recipes were also tested.
[0144] As a first simple light recipe, a high level of far-red (25%) was shown to exhibit a strong reduction in bolting. This may be best combined with deep red white light, but can also be used with deep red blue; however, white with green compounds also appears to have a similar (but less strong) effect on bolting.
[0145] In the second example, a dynamic light recipe is applied to reduce bolting. Bolting only appears in cut 3 and is actually a problem from cut 5 onwards. Therefore, a dynamic light recipe is proposed that gradually increases the percentage of far-red light as a function of the number of cuts. For example, this light recipe would suit wild arugula well. Here, for example, 5% far-red light for cuts 1-2, 10% far-red light for cut 3, 15% far-red light for cut 4, etc. See, for example, example R1 in Figure 2.
[0146] In a third example, a dynamic light recipe is applied to reduce bolting and increase shelf life. Because high far-red light produces low-quality arugula, the previous lighting recipe can be used in combination with pre-harvest continuous light (1 or 2 days) without far-red light to improve the appearance of green pigmentation on the leaves and shelf life. The continuous light may be adjusted per day with a high blue content (e.g., 50% blue and 50% red) similar to the coloration recipe to accelerate the pre-harvest effect. Short pre-harvest light did not show any incidence of bolting because the application time was too short for the plant to respond and produce flowers. See, for example, example R3 in Figure 2.
[0147] The term "plurality" refers to two or more.
[0148] The terms "substantially" or "essentially" used herein will be understood by those skilled in the art. The terms "substantially" or "essentially" may also include embodiments with "entirely," "completely," "all," etc. Thus, in embodiments, the adjective "substantially" or "essentially" may be omitted. Where applicable, the terms "substantially" or "essentially" may also relate to 90% or more, including 100%, such as 95% or more, particularly 99% or more, and more particularly 99.5% or more.
[0149] The term "comprise" also includes embodiments in which the term "comprise" means "consists of."
[0150] The term "and / or" specifically refers to one or more of the items mentioned before and after "and / or." For example, the phrase "item 1 and / or item 2" and similar phrases may refer to one or more of items 1 and 2. The term "comprising" may, in one embodiment, refer to "consisting of," but in another embodiment may also refer to "including at least the defined species, and optionally one or more other species."
[0151] Furthermore, terms such as first, second, third, etc. in the specification and claims are used to distinguish between similar elements and not necessarily to describe a sequential or chronological order. The terms so used are interchangeable under appropriate circumstances, with the understanding that the embodiments of the invention described herein are capable of operating in other sequences than those described or illustrated herein.
[0152] Devices, apparatus, or systems are described herein, inter alia, in operation. As will be apparent to those skilled in the art, the present invention is not limited to methods of operation or devices, apparatus, or systems in operation.
[0153] It should be noted that the above-described embodiments are illustrative rather than limiting of the present invention, and that those skilled in the art can design many alternative embodiments without departing from the scope of the appended claims.
[0154] In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim.
[0155] Use of the verb "to comprise" and its conjugations does not exclude the presence of elements or steps other than those stated in a claim. Unless the context clearly indicates otherwise, throughout the specification and claims, the words "comprise", "comprising", and the like should be interpreted in their inclusive sense, i.e., "including, but not limited to", rather than their exclusive or exhaustive sense.
[0156] The article "a" or "an" preceding an element does not exclude the presence of a plurality of such elements.
[0157] The invention may be implemented by means of hardware comprising several distinct elements, and by means of a suitably programmed computer. In a device, apparatus, or system claim enumerating several means, several of these means may be embodied by one and the same item of hardware. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.
[0158] The present invention also provides a control system that can control a device, apparatus, or system or that can perform the methods or processes described herein. Still further, the present invention also provides a computer program product that, when executed on a computer operatively coupled to or included in a device, apparatus, or system, controls one or more controllable elements of such device, apparatus, or system.
[0159] The present invention further applies to a device, apparatus or system comprising one or more of the features described in the present specification and / or shown in the accompanying drawings. The present invention further relates to a method or process comprising one or more of the features described in the present specification and / or shown in the accompanying drawings.
[0160] The various aspects discussed in this patent may be combined to provide additional advantages. Moreover, those skilled in the art will appreciate that embodiments may be combined, and that three or more embodiments may be combined. Furthermore, some of the features may form the basis for one or more divisional applications.
Claims
1. 1. A method of providing horticultural light to plants in a horticultural arrangement, the method comprising: During control mode, at least 150 μmol / m 2 / s, wherein at least 15% of the photons of the first horticultural light have a wavelength selected from the range of 700-800 nm, at least 45% of the photons of the first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of the first horticultural light have a wavelength selected from the range of 400-500 nm, the percentage of photons being related to the total number of photons in the spectral range of 400-800 nm; the control mode includes providing the first horticultural light to the plant for one or more first time periods prior to harvest and providing a second horticultural light to the plant for one or more second time periods prior to harvest, the first time periods and the second time periods do not overlap, the one or more second time periods are within a time period of up to three days prior to harvest, at least 20% of the photons of the second horticultural light have a wavelength selected from the range of 400-500 nm, and up to 10% of the photons of the second horticultural light have a wavelength selected from the range of 700-800 nm.
2. At least 20% of the photons of the first horticultural light have a wavelength selected from the range of 700 to 800 nm, and the method comprises administering a concentration of 200 to 1000 μmol / m for a time period of 10 to 20 hours per day with a dark period of 4 to 14 hours per day. 2 10. The method of claim 1, further comprising providing the first horticultural light during a control mode having an average intensity selected from a range of 100 / s.
3. 3. The method of claim 1, wherein at least 10% of the photons of the first horticultural light have a wavelength selected from the range of 500 to 640 nm.
4. 4. The method of any one of claims 1 to 3, wherein the plant is selected from the group of kale, spinach, Swiss chard, collard greens, purslane, mustard greens, watercress, arugula, lettuce, dandelion greens, cabbage, yellow bell pepper, and beet greens.
5. 5. The method of claim 1, wherein the plant is of a type that produces new leaves after leaf harvesting, and the control mode comprises controlling the spectral composition of the first horticultural light as a function of one or more of: (a) a point in the plant's lifetime; (b) a number of harvests; (c) a number and / or appearance of bolts; and (d) a number and / or appearance of flowers.
6. 6. The method of claim 5, wherein the control mode comprises increasing a contribution of photons having a wavelength selected from the range of 700 to 800 nm to the first horticultural light with one or more of: (a) time; (b) number of harvests; (c) number and / or appearance of bolts; and (d) number and / or appearance of flowers.
7. 7. The method of claim 5 or 6, wherein the control mode includes providing the first horticultural light only after the nth harvest, where n is at least 2.
8. 8. A computer program capable of performing the method of any one of claims 1 to 7 when run on a computer operatively coupled to or included in a horticultural lighting system configured to generate in a controlled mode the first horticultural light of any one of claims 1 to 7.
9. a lighting device configured to provide horticultural light; During control mode, at least 150 μmol / m at a distance of at least 30 cm from the lighting device 2 a control system configured to control the lighting device to provide a first horticultural light having an average intensity selected from a range of 1. A horticultural lighting system comprising: at least 15% of the photons of said first horticultural light have a wavelength selected from the range of 700-800 nm, at least 45% of the photons of said first horticultural light have a wavelength selected from the range of 640-700 nm, and up to 10% of the photons of said first horticultural light have a wavelength selected from the range of 400-500 nm, the percentages of photons being related to the total number of photons in the spectral range of 400-800 nm; the control mode includes providing the first horticultural light to the plant during one or more first time periods prior to harvest and providing the second horticultural light to the plant during one or more second time periods prior to harvest, the first time periods and the second time periods do not overlap, the one or more second time periods are within a period of up to three days prior to harvest, and at least 20% of the photons of the second horticultural light have a wavelength selected from a range of 400 to 500 nm and up to 10% of the photons of the second horticultural light have a wavelength selected from a range of 700 to 800 nm.
10. 10. The horticultural lighting system of claim 9, comprising: (i) a first set of one or more light sources configured to provide light having a peak wavelength selected from the range of 700 to 800 nm; and (ii) a second set of one or more light sources configured to provide light having a peak wavelength selected from the range of 640 to 700 nm.
11. 11. The horticultural lighting system of claim 9 or 10, comprising: (iii) a third set of one or more light sources configured to provide light having a peak wavelength selected from the range of 400 to 500 nm.
12. The control system may be configured to provide a control mode in which the concentration of 200 to 1000 μmol / m is maintained for a time period of 10 to 20 hours per day. 2 12. The horticultural lighting system of claim 9, configured to control the lighting devices to provide a first horticultural light having an average intensity selected from the range of 700 to 800 nm / s and to provide a dark period of 4 to 14 hours per day, wherein at least 20% of the photons of the first horticultural light have a wavelength selected from the range of 700 to 800 nm.
13. 13. The horticultural lighting system of claim 9, wherein the control mode comprises controlling the spectral composition of the first horticultural light as a function of one or more of: (a) a point in a plant's lifetime; (b) a number of harvests; (c) a number and / or appearance of bolts; and (d) a number and / or appearance of flowers; and wherein the horticultural lighting system comprises a sensor, and wherein the control system is configured to sense, via the sensor, one or more of: (a) a number and / or appearance and / or color of leaves of one or more plants; (b) a canopy area and / or color of one or more plants; (c) a number of harvests performed after a first generation of leaves of one or more plants; (d) a number and / or appearance of bolts of one or more plants; and (e) a number and / or appearance of flowers of one or more plants.
14. A horticultural arrangement for plants, comprising a horticultural lighting system according to any one of claims 9 to 13 and a support for supporting the plants.
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