Red and far-red light ratio during basil growth
A horticulture lighting system with a controlled red-to-far-red light ratio and end-of-day far-red exposure enhances basil's chilling tolerance, addressing spoilage issues and improving storage efficiency.
Patent Information
- Application Number
- JP2022551587
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-28
- Filing Date
- 2021-02-26
- Publication Date
- 2025-09-11
- Estimated Expiration
- 2041-02-26
AI Technical Summary
Basil plants are sensitive to chilling temperatures, leading to rapid decay and spoilage, and existing storage and transportation methods are inefficient, requiring separate handling which is difficult and expensive.
A horticulture lighting arrangement that provides a controlled spectral power distribution with a specific red-to-far-red light ratio, including an on-off schedule and an end-of-day period with increased far-red light exposure, to enhance chilling tolerance in basil plants.
The lighting arrangement improves basil's chilling resistance, reducing spoilage and enhancing storage quality while optimizing energy efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a horticulture lighting arrangement and a horticulture system including such a horticulture lighting arrangement. The present invention further relates to a method of providing horticulture light to plants, in particular basil plants, using such a horticulture lighting arrangement or system. [Background technology]
[0002] Industrial plant growth facilities and methods of using such plant growth facilities are known in the art. US 2018 / 0206422, for example, describes an industrial plant growth facility for growing plants of at least one plant species, comprising a housing enclosing a growth chamber, a plurality of racks positioned within the growth chamber, each rack configured to receive one or more trays, a plurality of trays disposed within the plurality of racks, the plurality of trays configured to receive a plurality of plants of the at least one plant species, the plurality of trays configured to receive a growth medium, a fluid system configured to provide a growth medium comprising nutrients and having a pH to the trays, the fluid system configured to adapt the nutrient concentration and the pH according to predetermined nutrient concentrations and predetermined pH for the plant species, and a climate system configured to provide a temperature and humidity within the growth chamber, the climate system The present invention describes an industrial plant growth facility comprising: a climate system configured to adapt a temperature and humidity within the growth chamber according to a predetermined temperature and a predetermined humidity for the plant species; a plurality of light emitting diode (LED) based lighting devices configured to provide a light spectrum and a light intensity, the light spectrum comprising photosynthetically active radiation (PAR), the LED based lighting devices configured to adapt the light intensity and / or the light spectrum according to a predetermined light intensity and / or a predetermined light spectrum for the plant species; a carbon dioxide system configured to provide a carbon dioxide concentration within the growth chamber, the carbon dioxide system configured to adapt the carbon dioxide concentration according to the predetermined carbon dioxide concentration for the plant species; and a transport system for transporting trays. Summary of the Invention [Problem to be solved by the invention]
[0003] Plants use the process of photosynthesis to convert light, CO2, and HO into carbohydrates (sugars). These sugars are used for fuel metabolic processes and biomass formation. This biomass formation may include stem elongation, increased leaf area, flowering, fruit formation, etc. Photosynthesis may involve one or more plant photoreceptors, such as chlorophyll. Photoreceptors may also be involved in other interactions between plants and radiation, such as photoperiodism, phototropism, and photomorphogenesis. Photoperiodism refers to a plant's ability to sense and measure the periodicity of radiation (e.g., to induce flowering). Phototropism refers to the movement of plant growth toward and / or away from radiation. Photomorphogenesis refers to morphological changes in response to the wavelength and intensity of radiation.
[0004] Two important absorption peaks for chlorophyll a and chlorophyll b can be located in the red and blue regions, specifically at 625-675 nm and 425-475 nm, respectively. Additionally, there can be other local peaks in the near-ultraviolet region (300-400 nm) and 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 subrange of red.
[0006] The photosensitive process in plants may also be particularly related to a type of receptor, phytochrome. Phytochrome activity can lead to different responses, such as leaf expansion, neighbor perception, shade avoidance, stem elongation, seed germination, and flowering induction. Phytochromes can change their conformational state depending on one or more external signals, for example, when exposed to one or more specific wavelengths of radiation or when exposed to temperature changes. For example, plants may contain phytochromes with two conformational states, Pr and Pfr, which switch to other conformational states upon light absorption and may have peak sensitivities in the red at approximately 660 nm and the far-red at approximately 730 nm, respectively.
[0007] In horticulture, light intensity is measured in photons per second per unit area (µmol / s / m 2 , mol is 6 10 23 The photon flux density (PPFD) can be measured in terms of the number of photons per 10 ...2 The 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 can be determined from a photodiode or measured directly with a photomultiplier tube. The area in PPFD refers to the local light receiving (plant) area of the space in which the light source(s) are located. In the case of a multi-layer system, this may be defined as the area of the relevant layer in the multi-layer configuration, in which case 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).
[0008] Plant growth may depend not only on light intensity but also on parameters such as the spectral composition, duration, and timing of the light to which the plant is exposed. A combination of two or more parameter values in terms of these parameters is called a "light recipe" for growing a plant (or crop).
[0009] Light-emitting diodes (LEDs) can fulfill a variety of roles in horticultural lighting, including: (1) Supplemental lighting: Lighting that supplements natural daylight to increase production (e.g., of tomatoes) or extend crop production during autumn, winter, and spring, when crop prices may be higher; (2) Photoperiodic lighting: The periodic duration of light is important for many plants. For example, the relative proportions and durations of light and dark periods within a 24-hour cycle affect the flowering response of many plants. Manipulating these proportions and / or durations using supplemental lighting can facilitate the regulation of flowering time; (3) Artificial lighting: Lighting for cultivation in horticultural systems independent of natural sunlight; and (4) Differentiation lighting: Lighting selected to promote cell differentiation, for example, in the context of tissue culture.
[0010] In situations where plants receive insufficient light from natural sunlight, for example in northern regions or in so-called "urban agriculture" or "vertical agriculture" that relies entirely on artificial and well-controlled conditions, it appears necessary to provide light to plants for growth (leaves and fruit), ripening, and pre-harvest conditioning.
[0011] The space available for food production is becoming scarce. Therefore, innovations in production methods may be needed to produce higher yields in a smaller footprint while becoming 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 may be grown in multiple layers, which makes much better use of available space compared to outdoor or greenhouse growing. This means that in plant farms, natural sunlight may not reach all plants, and a significant proportion of light may need to be provided by artificial lighting. In plant farms, there is a need to provide plants with optimal light treatment at all times. At the same time, it is desirable to use the light generated by the light source as efficiently as possible to reduce energy consumption. In plant farms, production per unit area can be much higher than in open fields. Water use is minimized. Plant diseases and pests can be more easily prevented.
[0012] The term "horticulture" relates to the (intensive) cultivation of plants for human use; the activity is very diverse and encompasses 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.
[0013] As used herein, the term "plant" refers to essentially all stages of plant development. The term "plant part" may refer to roots, stems, leaves, fruits (if any), flowers (if any), etc.
[0014] The term "crop" may be used to refer to a plant species or variety that is grown to be harvested, for example, for food, livestock feed, fuel, or for any other economic purpose. The term "crop" may also relate to multiple crops. 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 a (mature) plant. The term "plant" may also refer to multiple (different) plants.
[0015] As used herein, the term "horticulture light" may refer specifically 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 wavelength ranges may depend on the context, for example, the type and / or growth phase of the plant. Thus, a recipe may define the ratio of different wavelengths of light in the horticulture light for one or more types of plants, optionally as a function of time. In particular, the term "horticulture light" may refer to the PAR wavelength range (400-700 nm photosynthetically active range). The term "horticulture light" may also be used for light applied to plants in hydroponic applications.
[0016] The above may apply, among other things, to (artificial) horticultural lighting in general. The present invention proposes, among other things, further specific horticultural light recipes. The present invention also proposes, among other things, further specific horticultural lighting configurations. The light recipe may, in some embodiments, include, among other things, on-times, during which horticultural light is provided, which may also be indicated as "day" or "light period", and off-times, during which essentially no horticultural light is provided, which may also be indicated as "night" or "dark period".
[0017] Basilicum (Ocimum basilicum), or "basil," is a tropical plant used as a culinary herb. It is one of the most expensive and widely sold herbs. It is also very sensitive to temperatures below 10°C. The recommended storage temperature is 12°C. Storage at temperatures lower than this appears to induce rapid decay of the leaves, manifested by a blackening of the leaf surface that begins as small dots. The product quickly becomes unsalable, which can mean significant waste for supermarkets and consumers. To increase basil's so-called "chilling resistance," the only reliable solution appears to be to avoid storing basil below 12°C. Cold acclimation may be applied; however, it has been observed that this is not always successful for all basil species. Storing basil at higher temperatures, such as 18°C (as in supermarkets), causes it to spoil just as quickly as when stored under chilling conditions due to moisture loss and wilting. In either case, there is no preferred cool or warm temperature, except for an ideal temperature of about 12°C. However, coolers are generally not designed for each crop, and single-temperature refrigerators are usually used for all herbs. However, other products are generally transported and / or stored at temperatures other than those preferred for basil. Unfortunately, this plant therefore likely requires transportation and handling separate from other herbs, which is difficult and expensive. A solution to avoid the chilling effect on basil would significantly improve the production chain.
[0018] It is therefore an aspect of the present invention to provide an alternative horticultural system and / or arrangement and / or method that preferably also at least partially obviates 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. [Means for solving the problem]
[0019] Accordingly, in a first aspect, the present invention provides a horticulture lighting arrangement including: (i) a lighting system configured to provide horticulture light (to a basil plant or "Basil cultivar") having a controllable spectral power distribution; and (ii) a control system configured to control the spectral power distribution of the horticulture light. In certain embodiments, in an operational mode of the horticulture lighting arrangement, the horticulture lighting arrangement is configured to provide the horticulture light according to an on-off schedule in which on periods (D) and off periods (N) are applied consecutively. In particular, in some embodiments, the horticulture light includes one or more of a first horticulture light including a wavelength selected from the range of 400 to 600 nm, a red light including a wavelength selected from the range of 600 to 700 nm, and a far-red light including a wavelength selected from the range of 700 to 800 nm. Furthermore, in some embodiments, the on periods may last for a period of 12 to 20 hours, and the off periods may last for a period of 4 to 12 hours. More particularly, the on-period includes an end-of-day period (EOD) at the end of the on-period. In some embodiments, the end-of-day period lasts for at least about 0.25 hours, such as selected from the range of about 0.5 to 4 hours. More particularly, in some embodiments, during at least a portion of the on-period prior to the end-of-day period, the ratio of red light to far-red light, I 600-700nm / I 700-800nmThe R / Fr ratio, defined as: R / Fr=R / Fr ... , red light having a wavelength selected from the range of 600 to 700 nm, and far-red light having a wavelength selected from the range of 700 to 800 nm; (ii) the on period lasts in the range of 12 to 20 hours, the off period lasts in the range of 4 to 12 hours, and the on period includes an end-of-day period at the end of the on period, the end-of-day period lasting in the range of at least about 0.25 hours, particularly selected from the range of 0.5 to 4 hours; and (iii) during at least a portion of the on period before the end-of-day period, the ratio of red light to far-red light I 600-700nm / I 700-800nm wherein the R / Fr ratio, defined as: R / Fr = R / Fr ...
[0020] In the definition of the R / Fr ratio, the term "I 600-700nm " is the μmol / m of photons in a wavelength range selected from the range of 600 to 700 nm. 2 The term "I" refers to the light intensity of the red light component in horticultural lighting in terms of / s. 700-800nm " is the μmol / m of photons in a wavelength range selected from the range of 700 to 800 nm. 2It refers to the light intensity of the far-red light component in horticultural lighting in terms of / s. Note that the R / Fr ratio of horticultural lighting is a property of the light generated by a lighting system, lighting device, or lighting apparatus and irradiated onto plants.
[0021] In order to produce the claimed chilling resistance effect, the expressions "at least part of the on-period" and "at least part of the end-of-day period" should be interpreted as a substantial part of the period, meaning at least 50%, preferably at least 80%, and more preferably at least 90% of the period. In certain embodiments, the above expressions refer essentially to the entire duration of the period, i.e., essentially the entire on-period or essentially the entire end-of-day period.
[0022] It appears that such configurations and / or methods described herein (see further below) can improve chilling tolerance. Several experiments in which the length of time during which a substantial dose of far-red light is applied was varied showed that the end-of-day option has a positive effect on chilling tolerance and may be a relatively energy-friendly solution. The inventors have found that there is a preferred range for the end-of-day time period during which a substantial dose of far-red light is applied. On the one hand, increasing the time period during which a substantial dose of far-red light is applied may not substantially further improve chilling tolerance, leading to a more energy-consuming solution. On the other hand, substantially shortening the time period during which a substantial dose of far-red light is applied may have a smaller or no effect on chilling tolerance. The term "chilling resistance" specifically refers to the chilling tolerance of harvested basil plants, particularly their leaves.
[0023] As mentioned above, the present invention provides, inter alia, a horticulture lighting arrangement. Such a horticulture lighting arrangement includes at least a lighting system. The lighting system may include one or more light sources, in particular a plurality of light sources. Furthermore, the light generated by the lighting system may be controllable in one or more of its spectral power distribution and its spectral power, in particular at least its spectral power distribution. The lighting system is configured to provide light that can be used by plants for growing, bolting, maturing, etc. in one or more operating modes. Therefore, the light is also referred to herein as "horticulture light" (see also below).
[0024] In particular, the horticultural light may include one or more of: (a) a first horticultural light including a wavelength selected from the range of 400 to 600 nm; (b) a red light including a wavelength selected from the range of 600 to 700 nm; and (c) a far-red light including a wavelength selected from the range of 700 to 800 nm. The first horticultural light and the red light may together provide PAR light in some embodiments.
[0025] Thus, horticultural lighting arrangements include, among other things, lighting systems configured to provide horticultural light having a controllable spectral power distribution.
[0026] The horticultural light is provided specifically to basil plants, which may include basil cultivars, and the term "basil plant" may refer to multiple basil plants.
[0027] In particular, such a horticultural lighting arrangement may also include a control system. Such a control system may be configured, in particular, to control the spectral power distribution of the horticultural light. This may, among other things, allow for control of the spectral power distribution over time. As mentioned above, certain light recipes appear to be beneficial for achieving improved cold tolerance (of basil plants). The control system may be included in the lighting system or may be configured external to the lighting system. In particular, the control system is functionally coupled to the lighting system. The present invention also provides the lighting system itself and / or the control system itself.
[0028] In some embodiments, in the operating mode of the horticultural lighting configuration, the horticultural lighting configuration is configured to provide horticultural light according to an on-off schedule in which on and off periods are applied consecutively. Thus, a light recipe may include a series of on and off periods executed consecutively. In this way, a day-night rhythm may be mimicked. The set of on and off periods may last 24 hours together, but may also last shorter or longer. In particular, the shortest cycle may be 16 hours, and the longest cycle may be 32 hours. Generally, the cycle may be approximately 24 hours. The 24-hour cycle may be aligned with the circadian cycle experienced by plants in a greenhouse. In particular, in plant farms where plants are grown in a closed (sunlight-free) environment using substantially only artificial light, the cycle may deviate from the circadian cycle. Furthermore, generally, the duration of the cycle is essentially the same throughout the plant's growth. Thus, in some embodiments, a control system may be configured to control the lighting system to provide horticultural light according to an on-off schedule in which on and off periods are applied consecutively.
[0029] In certain embodiments, the ON period may last from 12 to 20 hours and the OFF period may last from 4 to 12 hours. In particular, in some embodiments, the ON period lasts from 14 to 19 hours and the OFF period lasts from 5 to 10 hours. This can provide a good yield of basil plants in a reasonable time.
[0030] Generally, the spectral power distribution during the on period may be essentially the same throughout the entire on period. However, in the present invention, there may be a substantial contribution or increased contribution in the far red at the end of the on period. Thus, there may be an end-of-day period at the end of the on period where the spectral power distribution of the horticultural light is different from the spectral power distribution of the horticultural light during the preceding portion of the on period.
[0031] Furthermore, this end-of-day period may last on the order of about 0.5 to 4 hours of the on period, which may last a total of 12 to 20 hours. Thus, the day period preceding the end-of-day period may last on the order of 8 to 19.5 hours. However, particularly in certain embodiments, the preceding day period may last, particularly at least about 10 hours, more particularly at least about 12 hours. Thus, in certain embodiments, the on period includes an end-of-day period at the end of the on period, and the end-of-day period lasts in the range of 0.5 to 4 hours, such as at least 1 hour. After the end-of-day period ends, an off period may begin. Thus, particularly, the on period ends with the end of the end-of-day period. In other words, the off period may begin at the end of the end-of-day period.
[0032] As noted above, during the end-of-day period, the far-red contribution may be substantially greater than during the preceding portion of the on-period. This appears to substantially increase cold tolerance. During the on-period preceding the end-of-day period, there may be some far-red, but this is not necessarily the case. However, in particular, there is some far-red horticultural light during essentially the entire on-period, with a (substantially) increased contribution during the end-of-day period. Furthermore, generally, there is some red horticultural light included in the horticultural light during essentially the entire on-period, but this is not necessarily the case. However, in many embodiments herein, there is both red and far-red horticultural light during the entire on-period. Increased cold tolerance is achieved, in particular, when there is a relatively low far-red contribution during the portion of the on-period preceding the end-of-day period, and a relatively high far-red contribution during the end-of-day part of the on-period. In certain embodiments, during at least a portion of the on-period prior to the end-of-day period, the ratio of red light to far-red light, I 600-700nm / I 700-800nmThe R / Fr ratio, defined as: R / Fr = 1 / (Fr / Fr) / (Fr / Fr) is selected from the range of 4 to 20, and during at least a portion of the end-of-day period, the R / Fr ratio is selected from the range of 0.1 to 4. In particular, in certain embodiments, during (essentially) the entire portion of the on-period before the end-of-day period, the ratio of red light to far-red light I 600-700nm / I 700-800nm The R / Fr ratio, defined as: R / Fr = R / Fr ...
[0033] Therefore, in one embodiment, during the 8 to 19.5 hours of the on period, the horticultural light has a ratio of red light to far-red light I 600-700nm / I 700-800nm may be selected from the range of 4 to 20, and during the 0.5 to 4 hour end-of-day portion of the on-period, the horticultural light may be provided with a ratio I of red light to far-red light. 600-700nm / I 700-800nm may be selected from the range of 0.1 to 4.
[0034] In particular, in some embodiments, the end-of-day period lasts in the range of at least 1 hour. Shorter periods, especially periods shorter than about 0.5 hours, may have too little effect on cold resistance. Best results in terms of cold resistance and energy efficiency can be obtained when the end-of-day period lasts in the range of at least 1 to 3.5 hours, especially 1 to 3 hours, for example, at least about 1.5 hours.
[0035] Thus, in one embodiment, during the end of day period (EOD) at the end of the on period, the relative contribution of far-red light having a wavelength selected from the range of 700-800 nm to the horticultural light is greater than the relative contribution of far-red light during the on period before the end of day period (EOD).
[0036] During the (entire) on-period, the horticultural light may include one or more of a first horticultural light (comprising a wavelength selected from the range of 400-600 nm), red light (comprising a wavelength selected from the range of 600-700 nm), and far-red light (comprising a wavelength selected from the range of 700-800 nm). In some embodiments, during the end-of-day period, the horticultural light may consist essentially of far-red light. In alternative embodiments, during the end-of-day period, the horticultural light may not only consist of far-red light but also include one or more of the first horticultural light and red light, particularly at least red light, and more particularly the first horticultural light and red light. For example, in some embodiments, a first set of one or more light sources is configured to provide the first horticultural light and red light (and optionally some far-red light), and a second set of one or more light sources is configured to provide far-red light (and optionally some red light). Thus, in certain embodiments, the first horticultural light, red light, and far-red light are provided during a portion of the end-of-day period.
[0037] In certain embodiments, the horticultural light during at least a portion of the on period before the end-of-day period includes 5-20% of photons in the 400-500 nm wavelength range, 0-30% of photons in the 500-600 nm wavelength range, 50-95% of photons in the 600-700 nm wavelength range, and 0-6% of photons in the 700-800 nm wavelength range, where these various contributions of photons do not sum to more than 100%. Alternatively or additionally, in some embodiments, the horticultural light during at least a portion of the end-of-day period includes 0-10% of photons in the 400-500 nm wavelength range, 0-15% of photons in the 500-600 nm wavelength range, 0-80% of photons in the 600-700 nm wavelength range, and 20-100% of photons in the 700-800 nm wavelength range, where these various contributions of photons do not sum to more than 100%.
[0038] Thus, in one embodiment, during the 8-19.5 hour on-period, horticultural light may be provided that includes 5-20% of photons in the 400-500 nm wavelength range, 0-30% of photons in the 500-600 nm wavelength range, 50-95% of photons in the 600-700 nm wavelength range, and 0-6% of photons in the 700-800 nm wavelength range, where these various contributions of photons do not total more than 100%; and during the 0.5-4 hour end of the on-period, horticultural light may be provided that includes 0-10% of photons in the 400-500 nm wavelength range, 0-15% of photons in the 500-600 nm wavelength range, 0-80% of photons in the 600-700 nm wavelength range, and 20-100% of photons in the 700-800 nm wavelength range, where these various contributions of photons do not total more than 100%.
[0039] Accordingly, the present invention also relates to, inter alia, a horticultural lighting arrangement comprising (in one aspect) (i) a lighting system configured to provide (to a basil plant) horticultural light having a controllable spectral power distribution; and (ii) a control system configured to control the spectral power distribution of the horticultural light, wherein in an operational mode of the horticultural lighting arrangement, the horticultural lighting arrangement is configured to provide the horticultural light according to an on-off schedule in which successive on and off periods are applied, and (i) the horticultural light comprises a first horticultural light comprising a wavelength selected from the range of 400 to 600 nm, a red light comprising a wavelength selected from the range of 600 to 700 nm, and a wavelength selected from the range of 700 to 800 nm. (ii) the on period lasts in the range of 12 to 20 hours and the off period lasts in the range of 4 to 12 hours, the on period includes an end-of-day period at the end of the on period, the end-of-day period lasts in the range of 0.5 to 4 hours, and (iii) (a) the horticultural light during at least a portion of the on period before the end-of-day period includes 5 to 20% of photons in the wavelength range of 400 to 500 nm, 0 to 30% of photons in the wavelength range of 500 to 600 nm, 50 to 95% of photons in the wavelength range of 600 to 700 nm, and 0 to 6% of photons in the wavelength range of 700 to 800 nm, and the aggregate contribution of photons from the different wavelength ranges (b) the horticultural lighting during at least a portion of the end-of-day period comprises 0-10% of photons in the wavelength range of 400-500 nm, 0-15% of photons in the wavelength range of 500-600 nm, 0-80% of photons in the wavelength range of 600-700 nm, and 20-100% of photons in the wavelength range of 700-800 nm, wherein the total contribution of photons from the different wavelength ranges does not exceed 100%.
[0040] In certain embodiments, the horticultural lighting configuration provides at least 50 μmol / m 2 at a distance of at least 30 cm (and in certain embodiments up to 100 cm) from the lighting system during the on period. 2In further particular embodiments, the horticultural lighting configuration is configured to provide horticultural light having an average intensity selected from the range of 100 to 600 μmol / m 2 at a distance of at least 30 cm (and in certain embodiments, up to 100 cm) from the lighting system during the on period. 2 The 30 cm distance is typically the minimum distance between a lighting device that generates the horticultural light and, for example, a substrate on which plants are grown. The distance is measured specifically relative to the light-emitting surface or exit window of such a lighting fixture through which the horticultural light can exit. In certain embodiments, this may be, for example, a lens of a light-emitting diode or a light-transmitting cover of a lighting device housing.
[0041] In terms of yield and energy efficiency, best results are achieved when the horticultural lighting configuration provides 150-450 μmol / m at a distance of at least 30 cm (and in certain embodiments up to 100 cm) from the lighting system during the on period. 2 This can be obtained in embodiments configured to provide horticultural light having an average intensity selected from the range of / s.
[0042] During the off period, approximately 10 μmol / m at a distance of at least 30 cm from the lighting system 2 / s or less, more particularly at a distance of at least 30 cm (and in certain embodiments up to 100 cm) from the lighting system, 2 In particular, during the off-period, light having a wavelength selected from the range of 400 to 800 nm may be provided at a concentration of about 5 μmol / m at the substrate level on or within which the plants are grown. 2 / s or less, about 10μmol / m 2 / s or less average intensity.
[0043] In some embodiments, the spectral power distribution of the horticultural light during the on period before the end of day period is essentially constant. In further embodiments, the spectral power of the horticultural light during the on period before the end of day period is essentially constant. In some embodiments, the spectral power distribution of the horticultural light during the end of day period is essentially constant. In further embodiments, the spectral power of the horticultural light during the end of day period is essentially constant.
[0044] When illuminating plants with red and far-red light, the propagation length of far-red light through the plant canopy is generally longer than that of red light. This may be due to the leaves absorbing red light better than far-red light. This means that as plants grow and the canopy size increases over time, the R / Fr ratio may decrease in lower leaves of the plant, even under the same illumination conditions. Therefore, to achieve the same average R / Fr ratio across the plant, the R / Fr ratio may be set lower in the early stages of the growing season and higher in the later stages of the growing season, when the canopy may be more dense. Thus, in one embodiment, in an operational mode, the contribution of far-red light to horticultural light during the end-of-day period may be controlled as a function of one or more of: (i) the growth time, growth phase, or age of one or more (basil) plants; and (ii) the canopy density (of one or more (basil) plants). Alternatively or additionally, in an embodiment, in an operational mode, the spectral power of the horticultural light during the end-of-day period may be controlled as a function of one or more of: (i) the growth time, growth stage or age of the one or more (basil) plants; and (ii) the canopy density (of the one or more (basil) plants).
[0045] One or more plants may define the canopy density. Different methods may be used to define the canopy density, such as bare soil index, canopy shadow index, etc. However, optical sensors may also be used to sense the canopy density, such as light reflection or transmission. In particular, these embodiments may relate to illumination of the plant(s) from above.
[0046] In yet other embodiments, the light sources configured to generate horticultural light may not only be located above the plant(s), but also at a lower position, such as within a (future) canopy. Alternatively or additionally, the light sources may be configured to generate horticultural light from below the plant(s), such as at about the top level of the substrate. In such embodiments, the R / Fr ratio and / or spectral power may also depend on the height of the respective light sources. Thus, in one embodiment, a lighting system includes a first light-generating device configured to generate at least a portion of far-red light, the first light-generating device including a light-emitting surface (from which the far-red light emits during operation), and in an operation mode, the contribution of the far-red light to the horticultural light during the end-of-day period is controlled as a function of a first height (h1) of the light-emitting surface of the horticultural light-generating device above the substrate for the (basil) plants. Alternatively or additionally, in the operation mode, the spectral power of the horticultural light of the horticultural light-generating device during the end-of-day period is controlled as a function of a first height (h1) of the light-emitting surface above the substrate for the (basil) plants.
[0047] In certain embodiments, a horticultural lighting arrangement includes a first light-generating device configured to generate a first device light comprising far-red light and a second light-generating device configured to generate a second device light comprising one or more of the first horticultural light and red light. The term "first light-generating device" may refer to multiple (different) first light-generating devices. Alternatively or additionally, the term "second light-generating device" may refer to multiple (different) second light-generating devices.
[0048] In some embodiments, the spectral power of the far-red light in the second device light is lower, for example at least 5 times lower, especially at least 10 times lower, than the spectral power of the far-red light in the first device light.
[0049] In some embodiments, at least 70%, more particularly at least 80%, of the spectral power in the 400-800 nm wavelength range is in the 700-800 nm wavelength range for the first device light, and at least 70%, more particularly at least 80%, of the spectral power in the 400-800 nm wavelength range is in the 400-700 nm wavelength range for the second device light.
[0050] Thus, in some embodiments, the first device light may consist essentially of far-red light, and the second device light may have only a relatively small contribution (or essentially no contribution) of far-red light.
[0051] Alternatively or additionally, in some embodiments, the contribution of the far-red light to the first device light is higher than the contribution of the far-red light to the second device light, e.g., at least 5 times higher, particularly at least 10 times higher. As used herein, the term "contribution" may refer, among other things, to the number of photons (in the relevant spectral range). Furthermore, particularly, in some embodiments, during the on period (D) before the end-of-day period (EOD), the contribution of the first device light to the horticultural light, including the first device light and the second device light, is less than 10%, and during at least a portion of the end-of-day period (EOD), the contribution of the first device light to the horticultural light, including the first device light and the second device light, is at least 20%.
[0052] In some embodiments, each day-night cycle may include end-of-day irradiation as described herein. However, good results may be obtained when such EOD irradiation is applied only during a portion of the (basil) plant's growth period. Thus, for example, during the first few weeks, the ON period does not have a specific EOD irradiation at the end of the ON period. Thus, the horticultural light may be as described herein with respect to the horticultural light in the period preceding the end-of-day period. However, during the last few weeks of the (basil) plant's growth period, the EOD irradiation as described herein is applied. Thus, in certain embodiments, the horticultural lighting configuration is configured (in an operational mode) to: (i) apply horticultural light having an R / Fr ratio of at least 4 during the entire ON period during a first portion of the growth period t; and (ii) apply horticultural light having an R / Fr ratio selected from the range of 0.1 to 4 during at least a portion of the end-of-day period (EOD) during a second portion of the growth period t. This may be useful in methods for growing basil plants over a growing period t of at least 3 weeks. Such a mode of operation may achieve the desired cold tolerance while further reducing energy consumption.
[0053] Also disclosed herein is a horticulture system including the horticulture lighting arrangement as described above. The term "horticulture system" as used herein may refer, inter alia, to a plant farm, a plant factory, a vertical farm, a city farm, and / or a climate cell. In some embodiments, the horticulture system may include a climate cell.
[0054] In some embodiments, the horticultural system and / or horticultural lighting arrangement may include a lighting apparatus, in particular the lighting apparatus including a light source for providing horticultural light. In further embodiments, the lighting apparatus may include a device having a device housing, the light source being (at least partially) disposed within the housing. The term "lighting apparatus" may also refer to multiple (different) lighting apparatus.
[0055] The term "light source" as used herein 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 some embodiments, the light source may include a solid-state light source (such as an LED or laser diode), particularly an LED. 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 some embodiments. The term "COB" specifically refers to an LED chip in the form of a semiconductor chip that is not encapsulated or connected, but is mounted directly on a substrate, such as a PCB. Thus, multiple semiconductor light sources may be configured on the same substrate. In some embodiments, the light source is a COB, which may be multiple LED chips 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.
[0056] In some embodiments, the light source configured to provide light having a wavelength selected from the 400-800 nm subrange is particularly a light source having at least 50%, such as at least 70%, for example at least 80%, or even more so, for example at least 90%, of its power in the 400-800 nm spectral range within said subrange. In some embodiments, the light source is a light source configured to generate source light having a peak wavelength within the indicated subrange, i.e., a maximum peak within the 400-800 nm range within said subrange.
[0057] 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 be selected, in particular a UV LED, using a blue light-emitting material. Thus, in an embodiment, the light source may comprise a blue light source.
[0058] The green light may in particular be provided by means of a green light source, in particular a green LED, although optionally a blue light source, in particular a blue LED, or a UV light source, in particular a UV LED, using a green emitting material may be selected. Thus, in an embodiment, the light source may comprise a green light source.
[0059] The red light may be provided in particular 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 be selected. This may also apply to far red and deep red. Thus, in some embodiments, the light source may include a red light source.
[0060] White light may be provided in particular by means of a white light source, in particular a white LED, but optionally a UV light source, in particular a UV LED, or a blue light source, in particular a blue LED, using a suitable luminescent material, may also be selected. 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 particularly relates to light having a correlated color temperature (CCT) of about 2000 to 20000 K, in particular between 2700 and 2000 K, and in particular within about 15 SDCM (standard deviation of color matching) of the black body locus (BBL), in particular within about 10 SDCM of the BBL, and more particularly within about 5 SDCM of the BBL.
[0061] In particular, the different types of light provided herein are provided using light sources having peak wavelengths within the above-mentioned wavelength ranges corresponding to the different types of light.
[0062] In embodiments where the lighting device includes multiple light sources, two or more subsets of the multiple light sources may be independently controllable in terms of light intensity. Furthermore, two or more of the subsets may provide light having different spectral distributions. In such embodiments, both the intensity and the spectral distribution of the horticultural light may be controllable. Thus, two or more subsets may be configured to provide light having different spectral distributions in some embodiments.
[0063] Furthermore, in certain embodiments, the illumination device may provide a luminescence intensity of at least 100 μmol / m at a distance of at least 30 cm from the illumination device, such as at least 100 cm, and in particular at least 100 μmol / m 2 / s, etc., at least 50 μmol / m 2 / s。 In particular, the lighting device may be configured to provide horticultural light having an average intensity at a distance of at least 30 cm from the lighting device. Furthermore, the lighting device may be configured to provide horticultural light having an average intensity during a predetermined time period (e.g., a certain time per day).
[0064] In some embodiments, the horticultural system may include (at least a part of) a horticultural lighting arrangement. The horticultural system may be configured, in particular, for hosting plants. In particular, the horticultural system may include a support for supporting the plants. Thus, in some embodiments, during operation, plants may be placed within the horticultural system. In particular, the term "horticultural system" may refer to a structure for hosting plants, in particular where the plants are grown under controlled conditions, more particularly where the plants are essentially not exposed to natural sunlight. Furthermore, the horticultural system may be climatized, such as in the case of a climate cell.
[0065] In a further embodiment, the climate cell may include a plant support and a lighting device, and the control system may be arranged inside or outside the climate cell.
[0066] Horticultural systems may be configured to grow food in multiple layers, which makes much better use of available space compared to open-field or greenhouse cultivation. This means that natural sunlight may not reach all plants in a horticultural system, and a significant proportion of light may need to be provided by artificial lighting. The present invention therefore particularly relates to horticultural systems in which plants receive substantial, and in particular essentially only, artificial light.
[0067] In use, a horticultural system may include a plant support with plants, or a plant support with seeds, or a plant support with seedlings, etc. Thus, in use, a horticultural system may include a plant support with plants, or a plant support with seeds, or a plant support with seedlings, etc. The term "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 the like.
[0068] In some embodiments, the horticultural system and / or horticultural lighting arrangement may include a sensor.
[0069] In a further embodiment, the sensor may be configured to sense a parameter, in particular a plant-related parameter selected from the group comprising nutrients, leaf size, plant temperature, plant leaf temperature, plant root temperature, plant stem length, plant fruit size, etc., or an environmental parameter, in particular selected from the group comprising temperature, humidity, gas composition (in the horticultural system, in particular within the horticultural system), and natural sunlight intensity (if natural sunlight is also applied). In a further embodiment, the sensor may comprise a camera, such as a CCD camera. The term "sensor" may refer to multiple sensors. In particular, the horticultural system may comprise multiple (spatially separated) (light) sensors.
[0070] In further embodiments, the sensor may be configured to sense one or more of: (i) the number and / or appearance and / or color of the plant's leaves; (ii) the area and / or color of the plant's canopy; and (iii) the number and / or appearance of the plant's flowers.
[0071] In some embodiments, the sensors may be configured to monitor plant-related parameters and provide associated sensor signals (to a control system), and in particular the control system may be configured to control the horticultural system in dependence on the sensor signals, particularly the control system may control the spectral distribution and / or intensity of the horticultural light in dependence on the sensor signals.
[0072] In further embodiments, the sensor may include a light sensor configured to sense ambient light and provide (to the control system) an associated light sensor signal, and in particular the control system may be configured to provide (cause the lighting system to provide) horticultural light and / or supplemental light based on the light sensor signal. Thus, in some embodiments, horticultural light may be provided in dependence on the light sensor signal (or another sensor signal).
[0073] In some embodiments, a (predetermined) spectral distribution and / or spectral power of the horticultural light may be provided based on the feedback signals of the sensor(s).
[0074] Thus, in a further aspect, the present invention provides a horticultural system (for basil plants), comprising an indoor facility and the horticultural lighting arrangement described herein. The horticultural lighting arrangement may be configured, in particular, to provide horticultural light to the indoor facility (for growing basil plants) (see also above). In certain embodiments, the horticultural system comprises a plurality of first light-generating devices or lighting apparatuses as described above, in certain embodiments configured at different first heights (h1) of their light-emitting surfaces above the growth substrate, such that in an operational mode, the contribution of far-red light to the horticultural light during the end-of-day period is controlled as a function of the first height (h1) of their light-emitting surfaces above the substrate. Instead of the term "light-emitting surface," the terms "final window," "exit window," or "exit surface" may also be applied (see also above). The second light-generating device may be configured above the plants or, in certain embodiments, at different heights (above the substrate).
[0075] In some embodiments, the horticultural system or horticultural lighting arrangement may include a control system. The control system may be configured to control (part of) the horticultural system. In further embodiments, the control system may be configured to control the lighting system, lighting device(s) and / or lighting apparatus. In further embodiments, the control system may be configured to control the sensor.
[0076] The conditions to which a plant (while growing) is subjected may generally be defined in a growth recipe. Thus, the control system may be configured to subject the plant to the growth recipe during operation. The growth recipe may include a light recipe that defines predetermined horticultural light settings, e.g., horticultural light intensity. This may include the light recipe also defining predetermined horticultural light intensities over time. Alternatively or additionally, the light recipe may define predetermined horticultural light intensities as a function of parameters, particularly parameters determined using sensors. In further embodiments, the parameters may include plant-related parameters selected from the group including nutrients, leaf size, plant temperature, plant leaf temperature, plant root temperature, plant stem length, plant fruit size, etc. In further embodiments, the parameters may include environmental parameters selected from the group including temperature, humidity, gas composition (within the horticultural system, particularly within the horticultural system), and natural sunlight intensity (if natural sunlight is also applied). A "light recipe" generally refers to a set of lighting parameters. The light recipe may be included in a recipe that also includes other parameters, such as the temperature imposed, particularly on parts of the plant, such as on the leaves of the plant, or on the roots of the plant.
[0077] In certain embodiments, the control system may be configured to control the spectral composition of the horticultural light as a function of one or more of: (i) the number and / or appearance and / or color of the plant's leaves; (ii) the area and / or color of the plant's canopy; and (iii) the number and / or appearance of the plant's flowers.
[0078] In some embodiments, the control system may be configured to control the horticultural lighting arrangement and other aspects of the horticultural system. In particular, the control system may be configured to control one or more of the temperature, humidity, irrigation, nutrient supply, air conditions of the horticultural system, including one or more of the light intensity of the horticultural lights, air temperature, air composition, air flow rate, etc. The control system may be configured to control one or more of these conditions at different locations within the arrangement.
[0079] In some embodiments, the control system may be configured to control the sensor. In some embodiments, the control system may be configured to perform (cause the horticultural system to perform) a method of the present invention (see below). In a further aspect, the present invention may also provide the lighting apparatus or light-generating device itself. In a further aspect, the present invention may also provide the sensor itself. In a further aspect, the present invention may also provide the horticultural lighting arrangement itself.
[0080] In a further aspect, the present invention provides a method for providing horticultural light to a basil plant. Such a method may be included in a method for cultivating a basil plant (or a basil cultivar). In particular, the method may be applied to a horticultural lighting configuration and / or a horticultural system described herein. Among other things, the method may include providing horticultural light to a basil plant according to an on-off schedule in which on and off periods are applied sequentially during a control mode. As described above, in particular, the horticultural light includes one or more of a first horticultural light having a wavelength selected from the range of 400 to 600 nm, a red light having a wavelength selected from the range of 600 to 700 nm, and a far-red light having a wavelength selected from the range of 700 to 800 nm. Furthermore, as described above, in particular, the on period may last for a period of 12 to 20 hours in some embodiments, and the off period may last for a period of 4 to 12 hours in some embodiments. Furthermore, the on period may include an end-of-day period at the end of the on period, particularly prior to initiating the off period.
[0081] To obtain (increase in) chilling tolerance of basil plants, the ratio of red light to far-red light I was increased during at least part of the ON period before the end-of-day period. 600-700nm / I 700-800nmThe R / Fr ratio, defined as: R / Fr ... 600-700nm / I 700-800nm wherein the R / Fr ratio, defined as: R / Fr = R / Fr ...
[0082] In certain embodiments, the ON period may last from 14 to 19 hours and / or the OFF period may last from 5 to 10 hours. Additionally, in certain embodiments, the end-of-day period may last from 1 to 3 hours.
[0083] In certain embodiments, the first horticultural light, red light, and far-red light are provided during a portion of the end-of-day period. Furthermore, in some embodiments, the end-of-day period lasts for between 0.5 and 4 hours. In certain embodiments, the basil plant may be a basil cultivar selected from the group consisting of Cinnamon, Dolly, Emily, and Lemon. It is particularly these cultivars that have experienced a (substantial) increase in chilling tolerance using the methods described herein.
[0084] In one embodiment, the method comprises the step of: (in an operating mode) detecting a concentration of at least 50 μmol / m 2 In a further particular embodiment, the method may include providing horticultural light to the basil plants at an average intensity selected from the range of 100 to 600 μmol / m 2
[0023] In particular, in one embodiment, the method provides horticultural light to basil plants at an average intensity selected from the range of 150 to 450 μmol / m 2 The present invention may include providing horticultural light during the on-period (in the operational mode) at an average intensity selected from a range of 1 / s / s, where these intensities are the intensities experienced by the plants and may be approximated, for example, by the intensities at the location of the substrate on or within which the plants are growing.
[0085] In certain embodiments, the horticultural light during at least a portion of the on period before the end-of-day period may include 5-20% of photons in the 400-500 nm wavelength range, 0-30% of photons in the 500-600 nm wavelength range, 50-95% of photons in the 600-700 nm wavelength range, and 0-6% of photons in the 700-800 nm wavelength range, where the total contribution of photons from the different wavelength ranges does not exceed 100%. Alternatively or additionally, the horticultural light during at least a portion of the end-of-day period may include 0-10% of photons in the 400-500 nm wavelength range, 0-15% of photons in the 500-600 nm wavelength range, 0-80% of photons in the 600-700 nm wavelength range, and 20-100% of photons in the 700-800 nm wavelength range, where the total contribution of photons from the different wavelength ranges does not exceed 100%.
[0086] As noted above, in certain embodiments, the method may further include controlling (in the operational mode) the contribution of far-red light to horticultural lighting during the end-of-day period as a function of one or more of: (i) the growth time, growth stage, or age of one or more plants; and (ii) the canopy density (as defined by one or more plants). Alternatively or additionally, the method may further include controlling (in the operational mode) the contribution of far-red light to horticultural lighting during the end-of-day period as a function of the height at which the horticultural light is generated above the substrate on or within which the plants are growing or above the canopy of the plants being grown. Thus, in certain embodiments, the method may further include controlling (in the operational mode) the contribution of far-red light to horticultural lighting during the end-of-day period as a function of the position relative to the canopy of the basil plants to which the far-red light is provided.
[0087] Further, as noted above, far-red enriched light may be provided during the end-of-day period, or alternatively, may be provided only during the end-of-day period during a portion (e.g., the final portion) of the entire growing period. Thus, in certain embodiments, a method may include growing a basil plant for a growing period t, where t is at least 3 weeks, and the method may further include (i) applying horticultural light having an R / Fr ratio of at least 4 during the entire ON period during a first portion of the growing period t, and (ii) applying horticultural light having an R / Fr ratio selected from the range of 0.1 to 4 during at least a portion of the end-of-day period (EOD) during a second portion of the growing period t.
[0088] In some embodiments, the method includes providing supplemental horticulture light, e.g., far-red light, to the plants, where the supplemental horticulture light may be provided such that a minimum level (and maximum level) of light intensity in a supplemental wavelength range, e.g., the far-red wavelength range, is provided to the plants during the on-period and end-of-day periods indicated herein. This may also be referred to herein as a "supplemental controlling mode." This supplemental controlling mode is particularly useful for supplementing known methods in which the on-off schedule of a horticulture lighting configuration provides little or no far-red light to the plants.
[0089] In some embodiments, the method may include providing horticultural light to the plant, particularly during the control mode. In further embodiments, the horticultural light is ≧50 μmol / m 2 / s, e.g., ≥ 100 μmol / m 2 / s, e.g., more particularly ≥ 150 μmol / m 2 / s, e.g., 50 to 1000 μmol / m 2 / s, more particularly 150 to 1000 μmol / m 2In a further embodiment, the first horticultural light may have an average intensity (on the plant) selected from the range of 200 to 1000 μmol / m 2 In some embodiments, the intensity is ≦800 μmol / m 2 / s, e.g., ≤ 600 μmol / m 2 / s, e.g., 200-600 μmol / m 2 / s range, e.g., 200 to 525 μmol / m 2 / s range.
[0090] In particular, the light intensities indicated may be provided for 10 to 20 hours of on period (light or day) per day followed by 4 to 14 hours of off period (dark or night) per day.
[0091] The conditions to which a (growing) plant is subjected may generally be defined in a growth and / or light recipe (see above), and thus the method may comprise subjecting the plant to a growth and / or light recipe.
[0092] In certain embodiments, the method may include controlling the spectral composition of the horticultural light as a function of (i) the number and / or appearance and / or color of the leaves of the plant, (ii) the area and / or color of the canopy of the plant, and (iii) the number and / or appearance of the flowers of the plant.
[0093] Thus, in certain embodiments, the method may include sensing one or more of: (i) the number and / or appearance and / or color of the leaves of the plant; (ii) the area and / or color of the canopy of the plant; and (iii) the number and / or appearance of the flowers of the plant.
[0094] In a still further aspect, the present invention also provides a computer program product operatively coupled to or included in a horticultural lighting system, which when executed on a computer, in particular a control system as described herein, causes the horticultural lighting system to carry out the methods of the present invention.
[0095] Therefore, the present invention further provides a computer program product which is capable of carrying out the methods described herein when loaded into, for example, a computer (functionally coupled to a horticultural lighting system). 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 product.
[0096] Photon percentages referred to herein relate to the total number of photons in the 400-800 nm spectral range. Thus, for example, the phrase "n% of the photons of the horticulture light" and similar phrases indicate that, of all photons (of the horticulture light) having a wavelength selected from the 400-800 nm range, n / 100 are in the specifically indicated subrange. This does not exclude that horticulture light, such as that provided by the lighting devices or light-generating devices described herein, also provides other radiation, such as UV radiation. However, for the inventions described herein, the number of photons relates to the total number of photons in the 400-800 nm range. As indicated elsewhere, "essentially" may refer, inter alia, to at least 90%, e.g., at least 95%.
[0097] The intensity (of horticultural light), 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(s) are located. In the case of a multi-layer system, this is the area of the relevant layer included in the multi-layer configuration, in which case 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 (at least 150 μmol / m 2 / s) and similar phrases 2 ) may particularly refer to the root growth medium surface. The term "root growth medium surface" 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 surface" 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 a horticultural system) (i.e., particularly the part that is at least above the substrate) can receive such a dose. For example, the number of photons per second received per square meter at an upper part of the plant and at a lower part of the plant (still accessible by light) can be measured. In this way, the dose can be calculated. The dose received by the plant can be approximated by the dose received at the root growth medium surface. If the indicated intensity is received at the root growth medium surface or at table level (when there are no plants), the plant will also receive at least such intensity. In particular, the term "root growth medium surface" can refer to a horizontal planar (average) surface.
[0098] The term "mode" may also be indicated as "controlling mode". A system, or apparatus, or device (see further below) may perform an action in a "mode" or "operation mode" or "mode of operation" or "control mode". Similarly, in a method, an action, or a phase, or a step may be performed in a "mode" or "operation mode" or "mode of operation" or "control mode". This does not exclude that a system, or 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 some embodiments, a control system (see further below) may be available that is adapted to provide at least the control mode. If other modes are available, the selection of such a mode may be performed in particular via a user interface, although other options may also be possible, such as executing a mode depending on a sensor signal or a (time) scheme. An operational mode may, in some embodiments, refer to a system, or apparatus, or device that can only operate in a single operational mode (i.e., "on" and without further tunability).
[0099] The term "controlling" and similar terms particularly refer to at least determining the behavior or supervising the running of an element (here, a horticultural system or one or more elements thereof). Thus, in this specification, "controlling" and similar terms may refer to imposing a behavior on an element (determining the behavior of an element or supervising the running of an element), such as, for example, measuring, indicating, activating, opening, shifting, changing temperature, etc. Additionally, the term "controlling" and similar terms may also include monitoring. Thus, the term "controlling" and similar terms may include imposing a behavior on an element, as well as imposing a behavior on an element and monitoring an element. Control of an element can be performed using a control system, which may also be referred to as 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 some 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. Examples of user interface devices include, among others, manually actuated 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 with which the user interface is functionally coupled or in which the user interface is functionally included.The user interface may include, among other things, manually actuated buttons, touch screens, keypads, voice-activated input devices, switches, knobs, etc., and / or optionally, modems, networking cards, etc. The user interface may also include graphical user interfaces. 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. The user interface may, among other things, be functionally coupled to or included in a control system.
[0100] Essentially the same embodiments as described in relation to the methods may also be applied to horticultural systems, in particular horticultural devices. Horticultural systems, in particular lighting devices, may in particular be used in the methods described herein and / or the horticultural lighting systems described herein.
[0101] The present invention makes it possible, for example, to improve the cold tolerance of harvested basil plants, particularly their leaves. [Brief explanation of the drawings]
[0102] 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] 1A-1E illustrate several embodiments and aspects in a schematic manner. The schematic drawings are not necessarily to scale. [Figure 2] Figures 2A-2B show the changes in canopy R:FR ratio due to canopy shading and depending on plant density. The left side of Figure 2A shows the measurement method, and the right side of Figure 2A shows the R:FR ratio values as a function of plant growth for two different planting densities. Figure 2B shows a photograph of the Basil canopy. [Figure 3]3A-3C show the experimental setup and test results for Basil cv. lemon. [Figure 4] Figures 4A and 4B show the test results for basil cultivars Cinnamon and Dolly, respectively. [Figure 5] 5A and 5B show the test results for the Basil cultivar Piccolino. [Figure 6] Figure 6 shows the test results for the Basil cultivar Emily. DETAILED DESCRIPTION OF THE INVENTION
[0103] 1A illustrates schematically one embodiment of a horticultural lighting configuration 1000. The configuration 1000 includes a lighting system 100 configured to provide horticultural light 101 to a plant 1, e.g., a basil plant 1, where the horticultural light 101 has a controllable spectral power and spectral power distribution, and a control system 300 configured to control the spectral power and spectral power distribution of the horticultural light 101.
[0104] The horticultural lighting configuration 1000 includes one or more light-generating devices. Here, by way of example, the horticultural lighting configuration 1000 includes a first light-generating device 110 and a second light-generating device 120. The former is configured to generate a first device light 111, and the latter is configured to generate a second device light 121. The horticultural light 101 may include one or more of the first device light 111 and the second device light 121.
[0105] The horticultural lighting configuration 1000 may be particularly configured to provide the horticultural light 101 according to an on-off schedule in which successive on periods D and off periods N are applied (in an operating mode of the horticultural lighting configuration 1000).
[0106] The horticultural light 101 includes one or more of a first horticultural light 1011 including a wavelength selected from the range of 400-600 nm, a red light 1012 including a wavelength selected from the range of 600-700 nm, and a far-red light 1013 including a wavelength selected from the range of 700-800 nm. As shown schematically in this embodiment, the first light-generating device 110 is configured to generate the first device light 111 including the far-red light 1013, and the second light-generating device 120 is configured to generate the second device light 121 including one or more of the first horticultural light 1011 and the red light 1012. Other embodiments may also be possible. For example, the first device light 111 may also include (some) red light 1012, and the second device light 121 may also include (some) far-red light 1013.
[0107] In some embodiments, the on period D may last for a period ranging from 12 to 20 hours. The off period N may last for a period ranging from 4 to 12 hours. In particular, the on period D includes an end-of-day period EOD at the end of the on period D. This end-of-day period EOD lasts for a period ranging from 0.5 to 4 hours. Furthermore, during at least a portion of the on period D before the end-of-day period EOD, the ratio I of red light 1012 to far-red light 1013 is 600-700nm / I 700-800nm The R / Fr ratio, defined as: R / Fr ...
[0108] Thus, in certain embodiments, during the on period D before the end of day period EOD, the contribution of the first device light 111 to the horticultural light 101 (including one or more of the first device light 111 and the second device light 121) may be less than 10%, and during at least a portion of the end of day period EOD, the contribution of the first device light 111 to the horticultural light 101 (including one or more of the first device light 111 and the second device light 121) may be at least 20%.
[0109] As noted above, the presence of far-red light during the EOD period does not preclude the presence of other types of light, such as red light. Similarly, the presence of one or more of a first horticultural light and a red light (which together may be PAR light) during the on period portion preceding the EOD period does not preclude the presence of other types of light, such as far-red light. Thus, in one embodiment, a first horticultural light 1011, a red light 1012, and a far-red light 1013 are provided during a portion of the end-of-day period.
[0110] The reference h1 denotes the height above the substrate 20 (or average substrate surface, such as water, soil, etc.). This height or distance is measured from the light-emitting surface 115 or exit surface of the light-generating device. The distance is indicated by the reference d, which is the same as the height h1 for the light-generating devices 110, 120 configured above the plant 1.
[0111] 1A also shows schematically one embodiment of a horticultural system 2000, particularly for plants, for example, more particularly for basil plants 1. The horticultural system 2000 includes, among other things, an indoor facility 2100. Furthermore, the horticultural system 2000 includes a horticultural lighting arrangement 1000 as defined herein. In an embodiment, the horticultural lighting arrangement 1000 may be configured to provide horticultural light 101 to the indoor facility 2100, particularly for the cultivation of (basil) plants 1.
[0112] In one embodiment, the horticultural system 2000 includes a plurality of light-generating devices 110 configured at different first heights h1 of their light-emitting surfaces 115 (or exit surfaces) above the substrate 20 (see, for example, the light-generating devices 110 above and next to the plants 1 in FIG. 1A ). As mentioned above, in one embodiment, the lighting system 100 may include a first light-generating device 110 that may be configured to generate, in particular, at least a portion of the far-red light 1013. The first light-generating device 110 may include a light-emitting surface 115 (see also above) from which the far-red light 1013 is emitted during operation. In an operational mode, the contribution of the far-red light 1013 to the horticultural light 101 during the end-of-day period EOD may be controlled as a function of the first height h1 of the light-emitting surface 115 above the substrate 20. Thus, in an embodiment, the method may (further) include controlling (in an operational mode) the contribution of far-red light 1013 to the horticultural light 101 during the end-of-day period EOD as a function of the position of the corresponding light-generating device 110 relative to the canopy of the basil plant 1 to which the far-red light 1013 is provided.
[0113] In particular, the horticultural lighting arrangement 1000 may be configured to provide a horticultural light source having a luminescence intensity of at least 50 μmol / m at a distance d of at least 30 cm from the light-generating devices 110, 120 of the lighting system 100. 2 / s, particularly 100 to 600 μmol / m 2 / s.
[0114] Furthermore, in some embodiments, the horticultural light 101 during at least a portion of the on period D before the end-of-day period may include 5-20% of photons in the wavelength range of 400-500 nm, 0-30% of photons in the wavelength range of 500-600 nm, 50-95% of photons in the wavelength range of 600-700 nm, and 0-6% of photons in the wavelength range of 700-800 nm, with the total contribution of photons from the different wavelength ranges not exceeding 100%. Furthermore, in some embodiments, the horticultural light 101 during at least a portion of the end-of-day period EOD may include 0-10% of photons in the wavelength range of 400-500 nm, 0-15% of photons in the wavelength range of 500-600 nm, 0-80% of photons in the wavelength range of 600-700 nm, and 20-100% of photons in the wavelength range of 700-800 nm, wherein the total contribution of photons from the different wavelength ranges does not exceed 100%.
[0115] As described above, in the operational mode, the contribution of far-red light 1013 to the horticultural light 101 during the end-of-day period EOD is controlled as a function of one or more of the growth time, growth stage or age of one or more plants 1, and canopy density (as defined by one or more plants 1). One way to estimate canopy density is, for example, shadow measurement.
[0116] 1B-1C schematically illustrate a non-limiting number of embodiments of day-night horticultural lighting schemes, where D indicates the provision of horticultural light (day period) and N indicates the provision of essentially no horticultural light (night period). A horticultural light 101 used primarily for growth may be designated as a growth light GL. This horticultural light 101 may include one or more of a first horticultural light 1011 having a wavelength selected from the range of 400-600 nm and a red light 1012 having a wavelength selected from the range of 600-700 nm. However, optionally, referring also to FIG. 1C, this growth light may include far-red light 1013 (having a wavelength selected from the range of 700-800 nm). During essentially the last portion of the day period, the (additional) far-red light 1013 may be provided. This may, but need not, overlap in time with the time when the growth light is provided. After the far-red EOD period, a night period N may begin.
[0117] 1B-1C thus schematically illustrate one embodiment of a method for providing horticultural light (to a basil plant), the method comprising providing horticultural light 101 (to basil plant 1 (see FIG. 1A)) according to an on-off schedule in which on periods D and off periods N are applied consecutively during a control mode. The horticultural light 101 comprises one or more of a first horticultural light 1011 comprising a wavelength selected from the range of 400-600 nm, a red light 1012 comprising a wavelength selected from the range of 600-700 nm, and a far-red light 1013 comprising a wavelength selected from the range of 700-800 nm. Furthermore, the on period D may last for a period of 12-20 hours, the off period N may last for a period of 4-12 hours, and the on period D includes an end-of-day period EOD at the end of the on period D. Furthermore, during at least a portion of the on period D prior to the end-of-day period, a ratio I of the red light 1012 to the far-red light 1013 may be adjusted. 600-700nm / I 700-800The R / Fr ratio, defined as nm, is selected from the range of 4 to 20, and during at least a portion of the end-of-day period EOD, the R / Fr ratio is selected from the range of 0.1 to 4. In particular, the end-of-day period EOD may last in the range of 0.5 to 4 hours.
[0118] 1B-1C, during a portion of the end-of-day period EOD, a first horticultural light 1011, a red light 1012, and / or a far-red light 1013 may be provided. Similarly, some far-red light 1013 may also be available during a portion of the daylight period preceding EOD.
[0119] 1B-1C show only a single cycle, which may be repeated (consecutively) during one or more weeks, in particular during multiple weeks (see also FIG. 1E).
[0120] 1D schematically illustrates the spectral power distribution of one embodiment of the horticultural light 101. Of course, entirely other spectral power distributions may be possible. Essentially all types of horticultural lights described herein may be used, including, by way of example, a first horticultural light 1011 that may have a blue and / or green, particularly at least a blue, intensity, a red light 1012 that may have a red intensity, and a far-red light 1013 that may have a far-red intensity. During the daylight period, the spectral power distribution of the horticultural light may change substantially when transitioning from a period preceding the EOD to the EOD period.
[0121] Whether EOD light is applied may also depend on the growth stage, growth time, or age of the plant. This is shown highly diagrammatically in FIG. 1E. Thus, an embodiment of a method is generally shown that includes cultivating a basil plant over a growth period t, which in some embodiments may be at least 3 weeks, and the method may further include applying horticultural light 101 having an R / Fr ratio of at least 4 during an entire on-period D during a first portion of the growth period t (see generally the first 3 days D), and applying horticultural light 101 having an R / Fr ratio selected from the range of 0.1 to 4 during at least a portion of an end-of-day period EOD during a second portion of the growth period t (see generally the second 3 days D). Bar heights and bar widths are not to scale and are merely diagrammatic.
[0122] Basilicum (Ocimum basilicum L.) is a culinary herb that can provide aroma. People use the aroma of fresh leaves in cooking to adjust flavor. During storage, basil easily suffers from chilling injury when temperatures fall below 12°C. Chilling injury is observed as dark spots on the leaves, wilting, and loss of aroma. The present invention relates to a method for optimizing the use of far-red light to induce chilling tolerance in basil plants during their growth, achieving an optimal light sequence that saves energy and eliminates the need for far-red light exposure, which induces undesirable physiological changes in plants.
[0123] Applying a short photoperiod (<15h) versus a long photoperiod (18h) can improve cold tolerance in some cases. However, a long photoperiod is most beneficial to growers because it allows them to make the most efficient use of their lighting system. On the other hand, applying far-red light all day will improve the cold tolerance of basil, but it may overstretch (under this prolonged exposure to far-red light).
[0124] When planted at high density to optimize growth and light utilization efficiency, natural shading of the plant canopy occurs, resulting in a lower R:FR ratio for the plant toward the end of growth. Therefore, dynamic dosing of far-red light may account for the natural R:FR variations due to the canopy to reduce far-red light energy utilization during growth. Light control using cameras or sensors allows for direct adjustment of light levels (red or far-red) to maintain the R:FR dose to plant leaves.
[0125] Among others, Cinnamon, Dolly, Emily, and Lemon cultivars were tested. All of these showed improved cold tolerance, especially when applied during relatively long days, such as at least 14 hours, and more especially at least 16 hours. The Cinnamon cultivar appeared to be highly sensitive to far-red light.
[0126] Experimental evidence Determining the R:FR range The rationale for the low R:FR range of 0.1–4 is based on the following considerations: Far-red wavelengths are known to alert plants to the presence of shade and trigger specific plant and leaf behaviors. When growing plants on a farm, plant density, e.g., in terms of the number of plants per area, can lead to shade creation in the canopy as the plants grow. Figure 2B shows the effect of canopy size on shade creation below the canopy top. The photograph on the left side of Figure 2B was taken at position C (camera position) shown on the left side of Figure 2A. The photograph on the right side of Figure 2B was taken at a position near the substrate, shown as lower position S (sensor position) on the left side of Figure 2A. When measuring light transmission through the canopy, the first thing to note is that the level of photosynthetically active radiation (PAR light, covering wavelengths in the 400–700 nm range) decreases significantly as the sensing position is lowered into the crop (see lower position S on the left side of Figure 2A). This decrease is stronger and more rapid at higher plant densities. Second, noteworthy is that this decrease in intensity is much smaller for far-red light (in the 700-800 nm range). This is due to low leaf absorption and high leaf transmission at wavelengths above 700 nm. This means that as the plant canopy develops, the R:FR ratio perceived by the Basilica canopy changes over time, especially at lower canopy levels. The right side of Figure 2A shows the change in the R:FR ratio measured at the bottom of the canopy as a function of plant growth (the horizontal axis represents time in terms of growing days) for two different planting densities.
[0127] State-of-the-art horticultural lighting systems contain small amounts of far-red light (5%-7%), resulting in an R:FR ratio of 10 or greater. We found that basil grown under these conditions is sensitive to chilling. To significantly improve chilling tolerance, we found that the R:FR ratio needs to be lowered, i.e., the amount of far-red light needs to be increased. Natural shading in the canopy during growth results in an effective R:FR ratio of the lower leaves of 6 or 4, depending on the planting density (see the right side of Figure 2A). We found that the lower leaves of harvested basil plants grown at high planting densities, i.e., leaves that experience significant periods of shading with increased far-red light, exhibit improved chilling tolerance. Therefore, we consider the amount of additional far-red light in horticultural lighting equivalent to an R:FR ratio of 4 to be the minimum amount required to achieve chilling tolerance in basil. Therefore, to have a significant effect on chilling tolerance, the R:FR ratio should be 4 or less. Because most currently available far-red light sources, such as far-red LEDs, also have some of their spectral power in the red portion of the spectrum, i.e., in the tail toward red wavelengths of the far-red LED's spectral distribution, there will always be a small amount of red provided by the far-red LED, and therefore the maximum amount of far-red, expressed as the R:FR ratio of a horticultural light, is 0.1, the minimum achievable R:FR ratio.
[0128] Effect of end-of-day far-red radiation on chilling tolerance of basil: cv. Lemon Basil cultivar 'Lemon' was used in this experiment. Seeds were seeded at 1000 plants / m 2 Seeds were hand-sown in soil trays at a density of 100 μmol / m . Once sown, the seed trays were covered with plastic film and kept at 100% humidity and in darkness at 20°C to promote germination. Two days after sowing, seedlings were transferred to growth cells and irradiated with 180 μmol / m red-blue LED spectrum (RB 180). 2The plants were grown under horticultural light with a photoperiod of 18 hours, 2000 / s. The temperature was 24°C and the relative humidity was 70%. Irrigation was applied every 24 hours using a fixed ebb-flood system. Seven days after sowing, the plastic film was removed. Twelve days after sowing, the plants were transplanted into 7 x 7 cm rockwool blocks at a plant density of 100 plants / m. 2 It was decided.
[0129] Plants in the control group (also referred to as the DRW Fr group) had a mean nutrient intake of 232 μmol / m during the 18-h ON period. 2 The experimental group (also referred to as the EOD Fr group) was illuminated with a control horticulture light (DRW Fr 232 μmol / m 2: 11% blue, 18% green, 71% red, 7% far-red) with a light intensity of 100 μmol / s and a deep red + white + far-red spectrum. The control horticulture light had an R:FR ratio of 10. Plants in the experimental group (also referred to as the EOD Fr group) were exposed to the same horticulture light conditions as the control group during the first 17 hours of the ON period and 164 μmol / m 2 during the 3 hours of the end-of-day period with a 1-hour overlap with the DRW Fr during the first 17 hours of the ON period. 2 The plants were illuminated using a dynamic EOD-Fr light recipe, including supplemental far-red light at an intensity of 1 / s. The supplemental far-red was activated at an R:Fr ratio of 1, followed only at hours 19 and 20 by a far-red ration at an R:Fr ratio of 0.1. Figure 3A shows the horticultural light recipes used in the control and EOD-Fr groups. Sixteen days after transplanting, after exposure to the lighting conditions described above, the plants were harvested, and a portion of the harvest was stored for shelf life and chilling tolerance evaluation. The total supplemental far-red light used in the experimental group compared to the control group was 28 mol / s during the entire basil growth cycle.
[0130] The overall visual quality (OVQ) of basil leaves was measured during storage for 10 control and 10 experimental samples. The concept of OVQ measurement is described in the paper "Systems for Scoring Quality of Harvested Lettuce" by Kader et al., available at http: / / ucce.ucdavis.edu / files / datastore / 234-417.pdf. Samples were stored at 4°C and 65% relative humidity. Oval visual quality was measured every 2–3 days and scored according to a scale of 2–9. The customer acceptance threshold was set at a score of 6 on the same scale. Samples below this score were deemed unsalable, but evaluation continued regardless. The results are shown in Figure 3B (graph) and Figure 3C (photograph). Figure 3C shows that plants grown under DRW Fr suffered significant chilling injury (blackening of leaves) starting already from the fifth day of storage, whereas plants treated with EOD Fr showed no chilling injury.
[0131] End-of-day far-red effects on chilling tolerance of basil: Cinnamon and Dolly cultivars Cinnamon and Dolly cultivars were used in this experiment. Light settings were the same as in the experiment described above for lemon cultivar. Results for oval visual quality (OVQ) during storage are shown in Figure 4A for Cinnamon and in Figure 4B for Dolly.
[0132] Effect of end-of-day far-red light with ratio R:Fr-4 Cultivar Piccolino was used in this experiment. These control plants received 300 μmol / m 2 for a 15-h ON period. 2The control horticultural light had an R:FR ratio of 10. The experimental EOD-Fr light recipe included the same horticultural light conditions as the control group during the first 14 h of the ON period, with a light intensity of 50 μmol / m 2 Three hours of far-red light at an intensity of 1 / s was applied with a 1-hour overlap with the DRW Fr preceding the end-of-day period at 15 hours, enabling an R:Fr ratio of 4, followed only by far-red light at 16 and 17 hours, enabling an R:Fr ratio of 0.1.
[0133] Some plants from each of the treatment groups, i.e., the control and EOD-Fr groups, were harvested at a growing temperature of 24°C, while other plants from each of the treatment groups were grown at 24°C but harvested at a lower temperature of 16°C. Piccolino cultivars are known to be more temperature sensitive than other basil cultivars. The results indicate that harvest temperature has a mild effect on chilling injury, with a significant effect of EOD-Fr application observed in both cases. The results are shown in Figure 5A (harvesting temperature 24°C) and Figure 5B (harvesting temperature 16°C).
[0134] Effect of pre-harvest application of far-red light on the chilling tolerance of Basilicum CV Emily Cultivar 'Emily' was grown similarly to the lemon cultivar described above. However, the plants were irradiated with 150 μmol / m 2 The control plants were exposed to a deep red + white spectrum DRW horticultural light with 11% blue, 18% green, 71% red, and 1% far-red at an intensity of 10 ... 2 / s of far-red light, and an additional 180 μmol / m during the entire ON period only during the 1-week period before harvest. 2There was also a third group receiving 1 / s of far-red light. The supplemental far-red (in addition to the DRW) resulted in an R:Fr ratio of 0.65. The results in Figure 6 show that there is a significant improvement in shelf life (due to chilling tolerance) within 5-6 days. This also shows that a one-week preharvest far-red treatment is nearly equivalent to a three-week preharvest treatment. This suggests that chilling tolerance is particularly developed during the last week before harvest. In that week, the total amount of supplemental far-red applied was 70 moles. In comparison, the EOD far-red experiment described earlier used 28 moles.
[0135] Therefore, it is more advantageous to use the EOD far-red concept to increase chilling tolerance than "whole day" far-red for one week before harvest to save energy, since far-red LEDs are less efficient in terms of energy consumption. The duration of the end-of-day period is a trade-off between the minimum duration to achieve increased chilling tolerance and the maximum duration considering the energy consumption (relatively high for far-red LEDs) and the plant elongation as a result of the far-red.
Claims
1. 1. A horticultural lighting arrangement comprising: (i) a lighting system configured to provide horticultural light having a controllable spectral power distribution; and (ii) a control system configured to control the spectral power distribution of the horticultural light, wherein in an operational mode of the horticultural lighting arrangement, the horticultural lighting arrangement is configured to provide horticultural light according to an on-off schedule that applies successive on and off periods; the horticultural light includes one or more of a first horticultural light including a wavelength selected from the range of 400 to 600 nm, a red light including a wavelength selected from the range of 600 to 700 nm, and a far-red light including a wavelength selected from the range of 700 to 800 nm; the on period lasts in a range of 12 to 20 hours, the off period lasts in a range of 4 to 12 hours, the on period includes an end-of-day period at the end of the on period, the end-of-day period lasts in a range of 0.5 to 4 hours; μmol / m of photons in a wavelength range selected from the range of 600 to 700 nm during a substantial portion of the on period before the end-of-day period. 2 / s and μmol / m of photons in a wavelength range selected from the range of 700 to 800 nm. 2 an R / Fr ratio, defined as the ratio of light intensities of far-red light in terms of time / s, selected from the range of 4 to 20, and during a substantial portion of the end-of-day period, the R / Fr ratio is selected from the range of 0.1 to 4; the R / Fr ratio during said substantial portion of said on-period is greater than the R / Fr ratio during said substantial portion of said end-of-day period; 10. A horticultural lighting configuration, wherein a contribution of far-red light to horticultural light during said substantial portion of said end-of-day period is substantially greater than a contribution of far-red light to horticultural light during said substantial portion of said on period.
2. 10. The horticultural lighting arrangement of claim 1, wherein a first horticultural light, a red light, and a far-red light are provided during a portion of the end-of-day period, the end-of-day period lasting in the range of at least one hour.
3. The horticultural lighting configuration has a luminescence intensity of 100 to 600 μmol / m at a distance of at least 30 cm from the lighting system during the on period. 2 3. The horticultural lighting arrangement of claim 1, configured to provide horticultural light having an average intensity selected from the range of: / s; (a) the horticultural light during the substantial portion of the on-period before the end-of-day period comprises 5-20% of photons in a wavelength range of 400-500 nm, 0-30% of photons in a wavelength range of 500-600 nm, 50-95% of photons in a wavelength range of 600-700 nm, and 0-6% of photons in a wavelength range of 700-800 nm; and (b) the horticultural light during the substantial portion of the end-of-day period comprises 0-10% of photons in a wavelength range of 400-500 nm, 0-15% of photons in a wavelength range of 500-600 nm, 0-80% of photons in a wavelength range of 600-700 nm, and 20-100% of photons in a wavelength range of 700-800 nm.
4. 4. The horticultural lighting arrangement of claim 1, wherein in the operational mode, the contribution of far-red light to the horticultural light during the end-of-day period is controlled as a function of one or more of: (i) a growth time of one or more plants; and (ii) a canopy density of one or more plants.
5. 5. The horticultural lighting arrangement of claim 1, wherein the lighting system comprises a first light-generating device configured to generate at least a portion of far-red light, the first light-generating device comprising a light-emitting surface, and wherein in the operational mode, a contribution of far-red light to the horticultural light during the end-of-day period is controlled as a function of a first height of the light-emitting surface above a substrate.
6. 5. The horticultural lighting arrangement of claim 1, comprising: a first light-generating device configured to generate a first device light comprising far-red light; and a second light-generating device configured to generate a second device light comprising one or more of a first horticultural light and red light, wherein during the on-period before the end-of-day period, a contribution of the first device light to the horticultural light comprising one or more of the first device light and the second device light is less than 10%, and during at least the substantial portion of the end-of-day period, a contribution of the first device light to the horticultural light comprising one or more of the first device light and the second device light is at least 20%.
7. 7. The horticultural lighting arrangement of claim 1, wherein the on-periods last in a range of 14 to 19 hours, the off-periods last in a range of 5 to 10 hours, and the end-of-day periods last in a range of 1 to 3 hours.
8. 8. A horticultural system comprising an indoor facility and a horticultural lighting arrangement according to claim 1 , wherein the horticultural lighting arrangement is configured to provide horticultural light to the indoor facility.
9. 9. The horticultural system of claim 8, comprising a plurality of first light-generating devices as described in claim 5 configured at different first heights of the light-emitting surface above the substrate, and wherein in the operating mode, the contribution of far-red light to the horticultural light during the end-of-day period is controlled as a function of the first height of the light-emitting surface above the substrate.
10. 1. A method of providing horticultural light to a basil plant, the method comprising, during a control mode, providing horticultural light to the basil plant according to an on-off schedule in which successive on and off periods are applied; the horticultural light includes one or more of a first horticultural light including a wavelength selected from the range of 400 to 600 nm, a red light including a wavelength selected from the range of 600 to 700 nm, and a far-red light including a wavelength selected from the range of 700 to 800 nm; the on period lasts in a range of 12 to 20 hours, the off period lasts in a range of 4 to 12 hours, the on period includes an end-of-day period at the end of the on period, the end-of-day period lasts in a range of 0.5 to 4 hours; μmol / m of photons in a wavelength range selected from the range of 600 to 700 nm during a substantial portion of the on period before the end-of-day period. 2 / s and μmol / m of photons in a wavelength range selected from the range of 700 to 800 nm. 2 an R / Fr ratio, defined as the ratio of light intensities of far-red light in terms of time / s, selected from the range of 4 to 20, and during a substantial portion of the end-of-day period, the R / Fr ratio is selected from the range of 0.1 to 4; the R / Fr ratio during said substantial portion of said on-period is greater than the R / Fr ratio during said substantial portion of said end-of-day period; A method wherein a contribution of far-red light to horticultural light during said substantial portion of said end-of-day period is substantially greater than a contribution of far-red light to horticultural light during said substantial portion of said on-period.
11. 11. The method of claim 10, wherein a first horticultural light, a red light, and a far-red light are provided during a portion of the end-of-day period.
12. 12. The method of claim 10 or 11, wherein the end-of-day period lasts in the range of at least one hour and the basil plant is a basil cultivar selected from the group consisting of Cinnamon, Dolly, Emily, and Lemon.
13. The method includes, during the on period, 2 13. The method of claim 10, comprising providing horticultural light to a basil plant at an average intensity selected from the range of: / s; (a) the horticultural light during the substantial portion of the on-period before the end-of-day period comprises 5-20% of photons in the wavelength range of 400-500 nm, 0-30% of photons in the wavelength range of 500-600 nm, 50-95% of photons in the wavelength range of 600-700 nm, and 0-6% of photons in the wavelength range of 700-800 nm; and (b) the horticultural light during the substantial portion of the end-of-day period comprises 0-10% of photons in the wavelength range of 400-500 nm, 0-15% of photons in the wavelength range of 500-600 nm, 0-80% of photons in the wavelength range of 600-700 nm, and 20-100% of photons in the wavelength range of 700-800 nm.
14. 14. The method of claim 10, wherein the method comprises growing a basil plant for a growth period t, where t is at least 3 weeks, the method comprising: (i) applying horticultural light having an R / Fr ratio of at least 4 during an entire on-period during a first portion of the growth period t; and (ii) applying horticultural light having an R / Fr ratio selected from the range of 0.1 to 4 during at least a substantial portion of the end-of-day period during a second portion of the growth period t.
15. 15. The method of any one of claims 10 to 14, wherein the method comprises controlling the contribution of far-red light to horticultural light during the end-of-day period as a function of the position at which the far-red light is provided relative to the canopy of the basil plants.
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