WO2014192331A1 - Multi-tiered shelf type plant growth device and plant growth system - Google Patents

Multi-tiered shelf type plant growth device and plant growth system Download PDF

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Publication number
WO2014192331A1
WO2014192331A1 PCT/JP2014/053442 JP2014053442W WO2014192331A1 WO 2014192331 A1 WO2014192331 A1 WO 2014192331A1 JP 2014053442 W JP2014053442 W JP 2014053442W WO 2014192331 A1 WO2014192331 A1 WO 2014192331A1
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Prior art keywords
shelf
type plant
box
plant growing
tray
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PCT/JP2014/053442
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French (fr)
Japanese (ja)
Inventor
布施 順也
東 典浩
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三菱樹脂アグリドリーム株式会社
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Priority to AU2014202160A priority Critical patent/AU2014202160B2/en
Publication of WO2014192331A1 publication Critical patent/WO2014192331A1/en

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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G31/00Soilless cultivation, e.g. hydroponics
    • A01G31/02Special apparatus therefor
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G31/00Soilless cultivation, e.g. hydroponics
    • A01G31/02Special apparatus therefor
    • A01G31/06Hydroponic culture on racks or in stacked containers
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G9/00Cultivation in receptacles, forcing-frames or greenhouses; Edging for beds, lawn or the like
    • A01G9/24Devices or systems for heating, ventilating, regulating temperature, illuminating, or watering, in greenhouses, forcing-frames, or the like
    • A01G9/246Air-conditioning systems
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A40/00Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
    • Y02A40/10Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in agriculture
    • Y02A40/25Greenhouse technology, e.g. cooling systems therefor
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P60/00Technologies relating to agriculture, livestock or agroalimentary industries
    • Y02P60/20Reduction of greenhouse gas [GHG] emissions in agriculture, e.g. CO2
    • Y02P60/21Dinitrogen oxide [N2O], e.g. using aquaponics, hydroponics or efficiency measures

Definitions

  • the present invention relates to a multistage shelf type plant growing apparatus such as a seedling apparatus having an artificial illuminator, and more particularly to a multistage shelf type plant growing apparatus having an improved structure of the artificial illuminator.
  • the present invention also relates to a plant growing system provided with this multistage shelf type plant growing apparatus.
  • Multistage shelf-type plant breeding where shelves are arranged in multiple stages, trays are installed on the upper surface of each shelf, seedlings are placed on the trays, water is irrigated, and light is emitted from an artificial illuminator such as a fluorescent lamp.
  • the apparatus is described in Patent Documents 1 to 3.
  • the artificial illuminator is installed on the lower surface side of each shelf, and is configured to irradiate light on the plants on the shelf on the lower side of the shelf.
  • light is irradiated to the plant on the uppermost shelf from an artificial illuminator installed on the top surface portion of the multistage shelf-type plant growing device.
  • Patent Document 1 discloses that heat from the artificial illuminator is transferred to the nutrient solution flowing in the tray immediately above the artificial illuminator. And providing a nutrient solution cooling unit in the nutrient solution circulation path.
  • this method requires a cooling unit and increases the equipment cost.
  • the present invention efficiently dissipates heat from the artificial illuminator to the atmosphere, and can prevent an increase in the temperature of the nutrient solution flowing through the tray directly above the artificial illuminator and the temperature of the root zone of the plant on the tray. It is an object of the present invention to provide a multistage shelf type plant growing apparatus and a plant growing system having the multistage shelf type plant growing apparatus.
  • the present invention is a multi-stage shelf-type plant growing device in which plant growing shelves are arranged in multiple upper and lower stages, and an irrigation device for flowing nutrient solution on each shelf is provided.
  • the multi-shelf-type plant growing device in which an artificial illuminator for irradiating light is installed on the lower surface of the shelf, the artificial illuminator has a box installed on the lower surface side of the shelf, and a lower surface side of the box A light emitter disposed in the box and a power supply unit for operating the light emitter, the box having a top plate and a bottom plate, and the power unit is installed on the bottom plate,
  • a multistage shelf type plant growing apparatus in which the power supply unit and the top plate are separated from each other.
  • an air flow forming means for forming an air flow is provided in an upper space of each shelf.
  • the box is preferably in contact with the lower surface of the shelf. Moreover, it is preferable that the bottom plate of the box is a reflection plate for reflecting light from the light emitter.
  • such a multi-shelf plant growing device is installed in a closed building structure.
  • an artificial illuminator installed on the lower surface side of the shelf includes a box, a light emitter disposed on the lower surface side of the box, and the box.
  • the power supply unit is installed on the bottom plate of the box, and the power supply unit is separated from the top plate of the box. Therefore, the heat of the power supply unit of the artificial illuminator is mainly radiated downward from the bottom plate of the box, and the heat transferred to the upper shelf of the artificial illuminator is small. Thereby, it is prevented that the nutrient solution which flows on a shelf (on a tray) and the rhizosphere part of the plant mounted on the tray are warmed by the heat of the artificial illuminator, and the plant is efficiently grown.
  • the nutrient solution as used herein refers to water containing fertilizer, fresh water, or the like.
  • the plant can be grown by intermittently stopping the nutrient solution flowing in the tray, the amount of water given to the plant can be limited by shortening the time for flowing the nutrient solution to the tray per day. . For this reason, it is possible to cultivate seedlings of good quality that are resistant to drying even after transplanting in a field or greenhouse.
  • the height of the multi-shelf plant growing device can be reduced without reducing the height of the space above the shelf, or the height of the multi-shelf shelf plant growing device.
  • the number of shelves can be increased without increasing the size.
  • the bottom plate of the box of the artificial illuminator a reflecting plate that reflects the light from the light emitter, the light from the light emitter can be efficiently used for plant growth.
  • FIG. 2 is a sectional view taken along line II-II in FIG. It is a front view of the multistage shelf type plant growing device concerning an embodiment.
  • FIG. 4 is a sectional view taken along line IV-IV in FIG. 3. It is a top view of the tray of the multistage shelf type plant growing device concerning an embodiment. It is a perspective view of the tray of FIG.
  • FIG. 7 is a sectional view taken along line VII-VII in FIG. 5. It is a bottom view of an artificial illuminator.
  • FIG. 9 is a sectional view taken along line IX-IX in FIG. 8. It is sectional drawing of the tray of the multistage shelf type plant growing apparatus which concerns on another embodiment.
  • FIGS. 1 and 2 A preferred embodiment of the present invention will be described with reference to FIGS.
  • a plurality of (four in the illustrated example) box-shaped multistage shelf-type plants are grown in a room of a closed building structure 1 surrounded by a heat insulating wall and made completely light-shielding.
  • Devices 3, 4, 5, 6 are installed.
  • the plant growing device is a seedling raising device.
  • two multi-stage shelf type plant growing apparatuses 3 and 4 are arranged in a row so that their open front faces in the same direction, and the two multi-stage shelf type plant growing apparatuses 5 and 6 are also arranged.
  • One row is arranged so that the open front faces in the same direction, and two rows are arranged in the room so that the open front faces each other.
  • a working space that allows one or more workers to work is provided between these two rows.
  • a space with a width of about 50 to 500 mm is provided between the wall of the room and the back of each of the multi-shelf plant growing devices 3 to 6 to form an air passage through the multi-shelf plant growing devices 3 to 6.
  • Air conditioners 7 to 10 having a function of adjusting the temperature of the air in the room and circulating the temperature-controlled air according to the set conditions are installed above the wall surface of the room.
  • each of the multistage shelf-type plant growing apparatuses 3 to 6 has a pedestal 3c, left and right side panels 3a, a back panel 3b on the back, and a top panel 3e on the zenith, and the front is open. It has a box-shaped structure. Inside the box-shaped structure, a plurality of seedling racks 12 are arranged in multiple stages at regular intervals in the vertical direction.
  • each of the multi-shelf-type plant growing devices 3 to 6 is about 2000 mm, which is high enough for an operator to work, and the width of the nursery shelf 12 is a grid of tens to hundreds of cells (small bowls).
  • a plurality of resin cell trays arranged in a line can be placed side by side, and the temperature and humidity of the upper space of each shelf 12 can be adjusted to a constant width, for example, about 1000 mm to 2000 mm, and the depth of the seedling rack 12 is 500 mm to The thickness is preferably 1000 mm.
  • a plurality of cell trays 40 are placed substantially horizontally on each seedling shelf 12. The dimensions of one cell tray are generally about 300 mm in width and about 600 mm in length.
  • the bottom nursery shelf 12 is placed on the pedestal 3c.
  • the adjuster (not shown) provided on the pedestal 3c is configured so that the level of the seedling rack 12 can be adjusted.
  • Each seedling shelf 12 is provided with a watering device 30 described later.
  • Artificial illuminators 13 are installed on the lower surfaces of the seedling shelves 12 and the top panel 3e that are the second and higher tiers from the bottom, and light is emitted to the plants that grow on the cell tray 40 of the seedling shelves 12 directly below each artificial illuminator 13. It is configured to In this embodiment, the artificial illuminators 13 other than the uppermost part are attached to the lower surface of an irrigation tray 31 described later.
  • Fluorescent lamps, LEDs, and the like are preferable as the light emitter of the artificial illuminator 13, but in this embodiment, a straight tube fluorescent lamp is used as the light source.
  • FIGS. 8 is a bottom view of the artificial illuminator 13
  • FIG. 9 is a cross-sectional view taken along the line IX-IX of FIG.
  • the artificial illuminator 13 has a plurality of pairs (six pairs in this embodiment) of sockets 13b attached to the lower surface of the box 13a, and both ends of the fluorescent lamp 13c are attached to the sockets 13b and 13b.
  • a switch 13s is installed on the lower surface of the box 13a.
  • the box 13a is a box-like body having a top plate 13d and a bottom plate 13e, and the bottom plate 13e also serves as a reflector that reflects the light from the fluorescent lamp 13c.
  • a power supply unit 13g incorporating an electric circuit member 13f such as a ballast, an inverter, a constant current circuit, a constant voltage circuit, and a current limiting resistor is installed.
  • three power supply units 13g are provided between the fluorescent lamps 13c, that is, between the first and second fluorescent lamps 13c, between the third and fourth fluorescent lamps 13c, and 5th. It arrange
  • Each power supply unit 13g is attached to the bottom plate 13e of the box 13a.
  • a gap of about 3 to 30 mm is provided between each power supply unit 13g and the top plate 13d of the box 13a.
  • heat generated by the power supply unit 13g is transmitted to the bottom plate 13e and is dissipated from the bottom plate 13e. That is, it is transmitted to the air flowing through the nursery space below the artificial illuminator 13.
  • the heat from the fluorescent lamp 13c is also transmitted to this air flow.
  • vents are provided in the rear panel 3 b behind each of the nursery shelves 12 and between the uppermost nursery shelves 12 and the top panel 3 e (nursing seedling space).
  • An air fan 15 is attached to each. By operating the air fan 15, a circulating air flow as shown by the arrow in FIG. 2 is generated in the room. That is, the air whose temperature is controlled by the air conditioners 7 to 10 is sucked into the seedling space of each stage of the seedling rack 12 from the open front side of the multi-stage shelf type plant growing apparatuses 3 to 6, and the rear panel 3b from the vent hole.
  • the circulating flow passes through each nursery space of the multi-stage shelf type plant growing devices 3 to 6, water vapor evaporated from the irrigation device, medium, plant, etc., or heat released from the artificial illuminator 13 is accompanied by the circulating flow,
  • the circulating flow is conditioned and humidity-controlled by the air conditioners 7 to 10 and continuously circulated, so that the room can be maintained in a temperature and humidity environment optimum for plant growth.
  • the flow rate of the air flowing through the nursery space is preferably 0.1 m / sec or more, more preferably 0.2 m / sec or more, and further preferably 0.3 m / sec or more. If the air flow rate is too high, there is a possibility that a problem may occur in plant growth, and therefore it is generally preferably 2.0 m / sec or less.
  • the airflow is passed from the front of the nursery space through the fan 15 to the back side of the shelf in a negative pressure state, but conversely, the airflow may be passed from the back side of the shelf to the front side in a positive pressure state.
  • the airflow in the nursery space becomes more uniform when flowing from the front side to the back side of the shelf in a negative pressure state.
  • a shelf plate of each seedling shelf 12 is configured by the irrigation tray 31 of the irrigation device (bottom irrigation device) 30, and irrigation is performed from the bottom surface of the cell tray 40 placed on the irrigation tray 31. ing.
  • a configuration example of the irrigation apparatus 30 will be described with reference to FIGS. 5 is a plan view of the irrigation apparatus, FIG. 6 is a perspective view, and FIG. 7 is a sectional view taken along line VII-VII in FIG.
  • the irrigation apparatus 30 includes a rectangular irrigation tray 31 having a bottom plate 31d with side walls 31a, 31b, 31c standing on the rear side and the left and right sides.
  • a drainage groove 32 is provided on the front side of the irrigation tray 31 without a side wall and connected to the bottom plate 31 d, and a drainage port 32 a is formed at one end of the drainage groove 32.
  • the drainage groove 32 and the bottom plate 31 d are partitioned by a weir 34, and the nutrient solution flows into the drainage groove 32 from the notches 34 a at both ends of the weir 34.
  • a water supply pipe 33 for supplying nutrient solution into the irrigation tray 31 is provided along the side wall 31 a on the rear side of the irrigation tray 31, and the nutrient solution is supplied to the tray from a plurality of small holes 33 a provided in the water supply pipe 33. 31 is supplied.
  • a plurality of ribs 35 having a height of about 7 mm extend in parallel to each other toward the drainage grooves 32 on the upper surface of the irrigation tray bottom plate 31d, and the cell tray 40 is placed on these ribs 35. ing.
  • the drainage groove 32 protrudes from the open front surface of the growing device 3-6. It is a dimension. By projecting the drainage groove 32 from the open front surface of the growing device, the nutrient solution discharged from the drainage port 32a of the drainage groove 32 of the irrigation tray 31 placed on each stage of the seedling rack 12 is collected to the outside of the building structure 1 It becomes easy to discharge.
  • the nutrient solution When the nutrient solution is continuously supplied from the small hole 33a provided in the water supply pipe 33 of the irrigation apparatus 30, the nutrient solution is blocked by the weir 34 and accumulated to a predetermined water level to be in a pool state. While supplying the nutrient solution from the water supply pipe 33, the nutrient solution gradually flows out from the notch 34 a into the drainage groove 32. It is preferable to maintain a pool state with a water level of, for example, about 10 to 12 mm in the irrigation tray 31 by adjusting the nutrient solution supply amount and the outflow amount from the notch 34a.
  • the artificial illuminator 13 is attached to the lower surface of the bottom plate 31d of the irrigation tray 31.
  • the top plate 13d of the box 13a of the artificial illuminator 13 is in direct contact with the lower surface of the irrigation tray 31, but a spacer or a heat insulating material may be interposed.
  • the upper surface of the bottom plate 31d of the irrigation tray 31 is inclined in the direction of the drainage groove 32 as shown in FIG. Thereby, the nutrient solution can be discharged to the drain groove 32 in a short time when irrigation is stopped.
  • the cell tray 40 placed on the rib 35 is held horizontally by changing the height of the rib 35 so that the top portion 35a of the rib becomes horizontal. it can.
  • FIG. 10 shows another example of the irrigation apparatus used in the present invention.
  • the same members as those in FIGS. 5 to 7 are given the same reference numerals.
  • the under tray 50 is interposed between the irrigation tray bottom plate 31 d and the cell tray 40.
  • the under tray 50 has a rigidity sufficient to support the cell tray 40 in which the culture medium is placed in each cell 41.
  • a plurality of small holes 51 are formed on the bottom surface, and a plurality of small holes 51 are formed on the back surface.
  • a protrusion 52 is formed. These protrusions 52 function as gap holding means for holding a gap between the irrigation tray bottom plate 31d and the bottom surface of the cell tray 40 when the cell tray 40 is accommodated in the irrigation tray together with the under tray 50.
  • the irrigation apparatus 30 ′ of FIG. 10 when the nutrient solution is supplied from the water supply pipe 33 and becomes a pool state at a predetermined water level, the nutrient solution is guided into the under tray 50 from the small hole 51 of the under tray 50. Water is sucked up by the capillary action from the cell hole 42 formed on the bottom surface of each cell 41 of the cell tray 40 to the medium in the cell.
  • the artificial illuminator 13 is attached to the lower surface of the irrigation tray bottom plate 31d.
  • the cell tray 40 placed on the irrigation tray 31 is formed by arranging several tens to several hundreds of cells 41 in a lattice shape and integrating them into a tray shape. Although it is set as 300 mm and length is about 600 mm, it is not limited to this.
  • a liquefied carbon dioxide cylinder 16 is installed outside the building structure 1 and the inside of the room measured by the carbon dioxide concentration measuring device is used. Carbon dioxide gas is supplied from the carbon dioxide gas cylinder 16 so that the carbon dioxide gas concentration is constant.
  • this seedling raising device By growing seedlings using this seedling raising device, it is possible to automatically adjust environmental conditions such as light quantity, temperature, humidity, carbon dioxide gas and moisture suitable for seedling growth. Since all the seedlings in each nursery shelf can grow under the same environment, the uniformity of the obtained seedling quality can be enhanced.
  • the heat of the artificial illuminator 13 is transmitted to the box bottom plate 13e which also serves as a reflector, and is transmitted from the bottom plate 13e to the air flowing through the seedling raising space.
  • the heat transferred from the artificial illuminator 13 to the upper irrigation tray 31 is extremely small. Therefore, the temperature of the nutrient solution on the irrigation tray 31 is controlled within a predetermined range.
  • the above embodiment is an example of the present invention, and the present invention is not limited to this.
  • the size of the room and the number of installed multistage shelf type plant growing devices may be other than those described above.
  • the air conditioner may be installed on the ceiling.

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  • Life Sciences & Earth Sciences (AREA)
  • Environmental Sciences (AREA)
  • Hydroponics (AREA)
  • Cultivation Of Plants (AREA)
  • Cultivation Receptacles Or Flower-Pots, Or Pots For Seedlings (AREA)
  • Greenhouses (AREA)

Abstract

[Problem] To provide a multi-tiered shelf type plant growth device, which can efficiently radiate heat from artificial illuminators into the atmosphere and prevent temperature increases in a nutrient solution flowing in trays directly on top of the artificial illuminators and in the root region of plants placed on the trays, and a plant growth system having this multi-tiered shelf type plant growth device. [Solution] Multi-tiered shelf type plant growth devices (3 - 6) have artificial illuminators (13) provided on the lower surface of each shelf, each artificial illuminator (13) being provided with: a box (13a) provided on the lower surface side of a irrigation tray (31) of a respective shelf; florescent lamps (13c); and power supply units (13g). The power supply units (13g) are provided on a bottom plate (13e) of the box (13a), and a top plate (13d) and the power supply units (13g) are spaced away from each other. The bottom plate (13e) also serves as a reflective plate for the fluorescent lamps (13c).

Description

多段棚式植物育成装置及び植物育成システムMultistage shelf type plant growing device and plant growing system
 本発明は、人工照明器を有する育苗装置等の多段棚式植物育成装置に係り、特に人工照明器の構造を改良した多段棚式植物育成装置に関する。また、本発明は、この多段棚式植物育成装置を備えた植物育成システムに関する。 The present invention relates to a multistage shelf type plant growing apparatus such as a seedling apparatus having an artificial illuminator, and more particularly to a multistage shelf type plant growing apparatus having an improved structure of the artificial illuminator. The present invention also relates to a plant growing system provided with this multistage shelf type plant growing apparatus.
 棚を多段に設け、各棚の上面にトレイを設置し、該トレイ上に苗を配置し、潅水すると共に、蛍光灯などの人工照明器からの光を照射して育苗する多段棚式植物育成装置が特許文献1~3に記載されている。人工照明器は、各棚の下面側に設置され、当該棚よりも1つだけ下段側の棚上の植物に光を照射するよう構成されている。なお、最上段の棚上の植物に対しては、多段棚式植物育成装置の天面部に設置された人工照明器から光が照射される。 Multistage shelf-type plant breeding where shelves are arranged in multiple stages, trays are installed on the upper surface of each shelf, seedlings are placed on the trays, water is irrigated, and light is emitted from an artificial illuminator such as a fluorescent lamp. The apparatus is described in Patent Documents 1 to 3. The artificial illuminator is installed on the lower surface side of each shelf, and is configured to irradiate light on the plants on the shelf on the lower side of the shelf. In addition, light is irradiated to the plant on the uppermost shelf from an artificial illuminator installed on the top surface portion of the multistage shelf-type plant growing device.
 この人工照明器からは熱が発生する。この熱によって植物の生育環境温度が設定範囲よりも上昇することを防止するために、特許文献1には、人工照明器からの熱を、該人工照明器の直上のトレイを流れる養液に伝達させ、養液の循環経路に養液の冷却ユニットを設けることが記載されている。しかしながら、この方式では、冷却ユニットが必要であり、設備コストが高くなる。養液を間欠的に供給する方式にて植物を育成する場合には、養液の供給を止めた際、人工照明器から伝達した熱がトレイを通して植物の根圏部の温度を上昇させ、植物の生育に悪影響が生じ易い。 熱 Heat is generated from this artificial illuminator. In order to prevent the growth environment temperature of the plant from rising above the set range due to this heat, Patent Document 1 discloses that heat from the artificial illuminator is transferred to the nutrient solution flowing in the tray immediately above the artificial illuminator. And providing a nutrient solution cooling unit in the nutrient solution circulation path. However, this method requires a cooling unit and increases the equipment cost. When a plant is grown by supplying a nutrient solution intermittently, when the supply of the nutrient solution is stopped, the heat transmitted from the artificial illuminator increases the temperature of the root zone of the plant through the tray, and the plant It is easy to have an adverse effect on the growth.
 人工照明器からの熱がその直上のトレイに伝達することを防止するために、該トレイと人工照明器とを離間させることも考えられる。しかしながら、この場合には、棚の上下間隔が大きくなり、単位空間当りの生育植物数が減少してしまう。 In order to prevent the heat from the artificial illuminator from being transferred to the tray immediately above, it may be possible to separate the tray from the artificial illuminator. However, in this case, the vertical space between the shelves increases, and the number of growing plants per unit space decreases.
特開2009-34064JP 2009-34064 A 特開2003-52253JP 2003-52253 A WO2004/026023WO2004 / 026023
 本発明は、人工照明器からの熱を大気に効率よく放散させ、人工照明器直上のトレイを流れる養液の温度、およびトレイ上の植物の根圏部の温度の上昇を防止することができる多段棚式植物育成装置と、この多段棚式植物育成装置を有する植物育成システムを提供することを目的とする。 The present invention efficiently dissipates heat from the artificial illuminator to the atmosphere, and can prevent an increase in the temperature of the nutrient solution flowing through the tray directly above the artificial illuminator and the temperature of the root zone of the plant on the tray. It is an object of the present invention to provide a multistage shelf type plant growing apparatus and a plant growing system having the multistage shelf type plant growing apparatus.
 本発明は、植物育成用棚が上下多段に配置され、各棚上に養液を流すための潅水装置が設けられた多段棚式植物育成装置であって、下段側の該棚上の植物に光を照射するための人工照明器が棚の下面に設置されている多段棚式植物育成装置において、該人工照明器は、該棚の下面側に設置されたボックスと、該ボックスの下面側に配置された発光体と、該ボックス内に設置された発光体作動用電源ユニットとを備えており、該ボックスは、天板及び底板を有しており、前記電源ユニットは該底板に設置され、該電源ユニットと該天板とが離隔している多段棚式植物育成装置を提供する。 The present invention is a multi-stage shelf-type plant growing device in which plant growing shelves are arranged in multiple upper and lower stages, and an irrigation device for flowing nutrient solution on each shelf is provided. In the multi-shelf-type plant growing device in which an artificial illuminator for irradiating light is installed on the lower surface of the shelf, the artificial illuminator has a box installed on the lower surface side of the shelf, and a lower surface side of the box A light emitter disposed in the box and a power supply unit for operating the light emitter, the box having a top plate and a bottom plate, and the power unit is installed on the bottom plate, Provided is a multistage shelf type plant growing apparatus in which the power supply unit and the top plate are separated from each other.
 この多段棚式植物育成装置では、各棚の上側のスペースに空気流を形成するための空気流形成手段が設けられていることが好ましい。 In this multi-stage shelf type plant growing apparatus, it is preferable that an air flow forming means for forming an air flow is provided in an upper space of each shelf.
 本発明では、前記ボックスが前記棚の下面に当接していることが好ましい。また、前記ボックスの底板が前記発光体からの光を反射するための反射板となっていることが好ましい。 In the present invention, the box is preferably in contact with the lower surface of the shelf. Moreover, it is preferable that the bottom plate of the box is a reflection plate for reflecting light from the light emitter.
 本発明の植物育成システムでは、かかる多段棚式植物育成装置が閉鎖型建物構造物内に設置されている。 In the plant growing system of the present invention, such a multi-shelf plant growing device is installed in a closed building structure.
 本発明によれば、次の効果が奏される。
(1) 本発明の多段棚式植物育成装置にあっては、棚の下面側に設置された人工照明器が、ボックスと、該ボックスの下面側に配置された発光体と、該ボックス内に設置された電源ユニットとを有し、該電源ユニットが該ボックスの底板に設置されており、電源ユニットはボックスの天板から離隔している。そのため、人工照明器の電源ユニットの熱が主としてボックスの底板から下方に放熱され、人工照明器の上側の棚に伝達する熱が少ない。これにより、棚上(トレイ上)を流れる養液、およびトレイ上に載せられた植物の根圏部が人工照明器の熱で温まることが防止され、植物が効率よく育成される。
According to the present invention, the following effects are exhibited.
(1) In the multistage shelf-type plant growing device of the present invention, an artificial illuminator installed on the lower surface side of the shelf includes a box, a light emitter disposed on the lower surface side of the box, and the box. The power supply unit is installed on the bottom plate of the box, and the power supply unit is separated from the top plate of the box. Therefore, the heat of the power supply unit of the artificial illuminator is mainly radiated downward from the bottom plate of the box, and the heat transferred to the upper shelf of the artificial illuminator is small. Thereby, it is prevented that the nutrient solution which flows on a shelf (on a tray) and the rhizosphere part of the plant mounted on the tray are warmed by the heat of the artificial illuminator, and the plant is efficiently grown.
 養液を冷却するための冷却ユニットが不要となり、設備コストを減少させることができる。ここで言う養液とは、肥料分を含む水や真水等のことを言う。 A cooling unit for cooling the nutrient solution becomes unnecessary, and the equipment cost can be reduced. The nutrient solution as used herein refers to water containing fertilizer, fresh water, or the like.
 トレイに流す養液を間欠的に止める方式にて植物を育成することができるため、1日あたりトレイに養液を流す時間を短時間にすることにより植物に与える水分量を制限することができる。このため、圃場や温室に移植した後も乾燥に強い品質の良い苗を栽培することができる。 Since the plant can be grown by intermittently stopping the nutrient solution flowing in the tray, the amount of water given to the plant can be limited by shortening the time for flowing the nutrient solution to the tray per day. . For this reason, it is possible to cultivate seedlings of good quality that are resistant to drying even after transplanting in a field or greenhouse.
 一般の育苗用では、苗への「水のやり過ぎ」を防ぐために、苗の根圏部が養液に浸っている時間を短時間にすることが好ましい。このため、トレイ上に養液を流す時間を育てる苗の種類により適宜調整し、根圏部をできるだけ乾燥した状態に保つのが好ましい。 For general raising seedlings, it is preferable to shorten the time during which the root zone of the seedling is soaked in the nutrient solution in order to prevent the seedling from being “too much water”. For this reason, it is preferable to appropriately adjust the flow time of the nutrient solution on the tray according to the type of seedling to be cultivated, and to keep the root zone as dry as possible.
(2) 棚の上側のスペースに気流を流すことにより、人工照明器の熱で温まった空気を該スペースから排出し、該スペースの温度をより一定に保つことができる。 (2) By flowing an air current in the space above the shelf, air warmed by the heat of the artificial illuminator can be discharged from the space, and the temperature of the space can be kept more constant.
(3) 人工照明器を棚の下面に当接させても、人工照明器から棚に伝達する熱が少ない。人工照明器を棚の下面に当接させることにより、棚の上側のスペースの高さを小さくすることなく多段棚式植物育成装置の高さを低くしたり、多段棚式植物育成装置の高さを大きくすることなく棚の段数を多くしたりすることができる。 (3) Even if the artificial illuminator is brought into contact with the lower surface of the shelf, little heat is transmitted from the artificial illuminator to the shelf. By bringing the artificial illuminator into contact with the lower surface of the shelf, the height of the multi-shelf plant growing device can be reduced without reducing the height of the space above the shelf, or the height of the multi-shelf shelf plant growing device. The number of shelves can be increased without increasing the size.
(4) 人工照明器のボックスの底板を発光体からの光を反射させる反射板とすることにより、発光体からの光を植物育成に効率よく利用することができる。 (4) By making the bottom plate of the box of the artificial illuminator a reflecting plate that reflects the light from the light emitter, the light from the light emitter can be efficiently used for plant growth.
実施の形態に係る多段棚式植物育成装置を備えた植物育成システムの平面図である。It is a top view of the plant cultivation system provided with the multistage shelf type plant cultivation device concerning an embodiment. 図1のII-II線断面図である。FIG. 2 is a sectional view taken along line II-II in FIG. 実施の形態に係る多段棚式植物育成装置の正面図である。It is a front view of the multistage shelf type plant growing device concerning an embodiment. 図3のIV-IV線断面図である。FIG. 4 is a sectional view taken along line IV-IV in FIG. 3. 実施の形態に係る多段棚式植物育成装置のトレイの平面図である。It is a top view of the tray of the multistage shelf type plant growing device concerning an embodiment. 図5のトレイの斜視図である。It is a perspective view of the tray of FIG. 図5のVII-VII線断面図である。FIG. 7 is a sectional view taken along line VII-VII in FIG. 5. 人工照明器の底面図である。It is a bottom view of an artificial illuminator. 図8のIX-IX線断面図である。FIG. 9 is a sectional view taken along line IX-IX in FIG. 8. 別の実施の形態に係る多段棚式植物育成装置のトレイの断面図である。It is sectional drawing of the tray of the multistage shelf type plant growing apparatus which concerns on another embodiment.
 図1~10を参照して、本発明の好ましい形態を説明する。図1,2の通り、断熱性壁面で囲まれた完全遮光性とされた閉鎖型建物構造物1の部屋内に、複数個(図示の例では4個)の箱形の多段棚式植物育成装置3、4、5、6が設置されている。この実施の形態では、植物育成装置は育苗装置である。 A preferred embodiment of the present invention will be described with reference to FIGS. As shown in FIGS. 1 and 2, a plurality of (four in the illustrated example) box-shaped multistage shelf-type plants are grown in a room of a closed building structure 1 surrounded by a heat insulating wall and made completely light-shielding. Devices 3, 4, 5, 6 are installed. In this embodiment, the plant growing device is a seedling raising device.
 図1では、2個の多段棚式植物育成装置3、4をそれらの開放前面が同方向を向くように配列して1列とし、2個の多段棚式植物育成装置5、6もそれらの開放前面が同方向を向くように配列して1列とし、開放前面が互いに対向するように二つの列を部屋内に配置している。また、これら二つの列の間に、一人または複数の作業者が作業できる程度の作業空間を設けてある。部屋の壁面と各多段棚式植物育成装置3~6の背面との間に、50~500mm程度の幅の空間を設けて、多段棚式植物育成装置3~6を通過した空気の通路を形成する。 In FIG. 1, two multi-stage shelf type plant growing apparatuses 3 and 4 are arranged in a row so that their open front faces in the same direction, and the two multi-stage shelf type plant growing apparatuses 5 and 6 are also arranged. One row is arranged so that the open front faces in the same direction, and two rows are arranged in the room so that the open front faces each other. In addition, a working space that allows one or more workers to work is provided between these two rows. A space with a width of about 50 to 500 mm is provided between the wall of the room and the back of each of the multi-shelf plant growing devices 3 to 6 to form an air passage through the multi-shelf plant growing devices 3 to 6. To do.
 部屋に出入りするためのドア2の内側にエアーカーテンを設置すると、作業者が出入りする際に外気が入らないようにできるので好ましい。 It is preferable to install an air curtain inside the door 2 for entering / exiting the room because the outside air can be prevented from entering when the operator enters / exits.
 部屋の壁面の上部には、部屋内の空気を調温調湿し、設定条件に調温調湿した空気を循環させる機能を備えた空調装置7~10が設置されている。 Air conditioners 7 to 10 having a function of adjusting the temperature of the air in the room and circulating the temperature-controlled air according to the set conditions are installed above the wall surface of the room.
 多段棚式植物育成装置3~6は、図3,4に示すように、それぞれ台座3c、左右の側面パネル3a、背面の背面パネル3b及び天頂部のトップパネル3eを有し、前面は開放した箱形構造体を備えている。この箱形構造体の内部に、複数の育苗棚12が上下方向に一定間隔で多段に配置されている。 As shown in FIGS. 3 and 4, each of the multistage shelf-type plant growing apparatuses 3 to 6 has a pedestal 3c, left and right side panels 3a, a back panel 3b on the back, and a top panel 3e on the zenith, and the front is open. It has a box-shaped structure. Inside the box-shaped structure, a plurality of seedling racks 12 are arranged in multiple stages at regular intervals in the vertical direction.
 各多段棚式植物育成装置3~6の高さは、作業者が作業できる程度の高さである2000mm程度とし、育苗棚12の幅は、数十から数百個のセル(小鉢)を格子状に配列させた樹脂製のセルトレイを複数枚並べて載置できるとともに、各棚12の上側スペースの温度・湿度を一定に調節できる幅、例えば1000mm~2000mm程度とし、育苗棚12の奥行きは500mm~1000mmとするのが好ましい。各育苗棚12には複数枚のセルトレイ40(図1参照)がほぼ水平に載置されている。セルトレイ1枚の寸法は、一般的には幅が300mm、長さが600mm程度である。 The height of each of the multi-shelf-type plant growing devices 3 to 6 is about 2000 mm, which is high enough for an operator to work, and the width of the nursery shelf 12 is a grid of tens to hundreds of cells (small bowls). A plurality of resin cell trays arranged in a line can be placed side by side, and the temperature and humidity of the upper space of each shelf 12 can be adjusted to a constant width, for example, about 1000 mm to 2000 mm, and the depth of the seedling rack 12 is 500 mm to The thickness is preferably 1000 mm. A plurality of cell trays 40 (see FIG. 1) are placed substantially horizontally on each seedling shelf 12. The dimensions of one cell tray are generally about 300 mm in width and about 600 mm in length.
 最下段の育苗棚12は、台座3cに載置されている。台座3cに設けたアジャスター(図示略)によって育苗棚12の水平度を調整できるよう構成されている。 The bottom nursery shelf 12 is placed on the pedestal 3c. The adjuster (not shown) provided on the pedestal 3c is configured so that the level of the seedling rack 12 can be adjusted.
 各育苗棚12には、後述する潅水装置30が設けられている。 Each seedling shelf 12 is provided with a watering device 30 described later.
 下から2段目以上の各育苗棚12及びトップパネル3eの下面には、人工照明器13が設置され、各人工照明器13の直下の育苗棚12のセルトレイ40で生育する植物に光を照射するよう構成されている。この実施の形態では、最上部以外の人工照明器13は後述の潅水トレイ31の下面に取り付けられている。 Artificial illuminators 13 are installed on the lower surfaces of the seedling shelves 12 and the top panel 3e that are the second and higher tiers from the bottom, and light is emitted to the plants that grow on the cell tray 40 of the seedling shelves 12 directly below each artificial illuminator 13. It is configured to In this embodiment, the artificial illuminators 13 other than the uppermost part are attached to the lower surface of an irrigation tray 31 described later.
 人工照明器13の発光体としては蛍光灯、LED等が好ましいが、この実施の形態では光源として直管状の蛍光灯が用いられている。 Fluorescent lamps, LEDs, and the like are preferable as the light emitter of the artificial illuminator 13, but in this embodiment, a straight tube fluorescent lamp is used as the light source.
 この人工照明器13の構成の詳細を図8,9に示す。なお、図8は人工照明器13の底面図、図9は図8のIX-IX線断面図である。この人工照明器13は、ボックス13aの下面に複数対(この実施の形態では6対)のソケット13bを取り付け、蛍光灯13cの両端をソケット13b,13bに装着したものである。ボックス13aの下面にスイッチ13sが設置されている。 Details of the configuration of the artificial illuminator 13 are shown in FIGS. 8 is a bottom view of the artificial illuminator 13, and FIG. 9 is a cross-sectional view taken along the line IX-IX of FIG. The artificial illuminator 13 has a plurality of pairs (six pairs in this embodiment) of sockets 13b attached to the lower surface of the box 13a, and both ends of the fluorescent lamp 13c are attached to the sockets 13b and 13b. A switch 13s is installed on the lower surface of the box 13a.
 ボックス13aは、天板13d及び底板13eを有した箱状体であり、底板13eは蛍光灯13cの光を反射する反射板を兼ねている。このボックス13a内に、安定器、インバータ、定電流回路、定電圧回路、電流制限抵抗等の電気回路部材13fを内蔵した電源ユニット13gが設置されている。この実施の形態では、3個の電源ユニット13gが蛍光灯13c同士の間、すなわち1列目と2列目の蛍光灯13cの間、3列目と4列目の蛍光灯13cの間及び5列目と6列目の蛍光灯13cの間に配置されている。各電源ユニット13gはボックス13aの底板13eに取り付けられている。各電源ユニット13gとボックス13aの天板13dとの間には3~30mm程度の隙間があいている。この人工照明器13にあっては、電源ユニット13gで発生する熱は、底板13eに伝わり、該底板13eから放散される。即ち、人工照明器13の下側の育苗スペースを流れる空気に伝達される。なお、蛍光灯13cからの熱もこの空気の流れに伝達される。 The box 13a is a box-like body having a top plate 13d and a bottom plate 13e, and the bottom plate 13e also serves as a reflector that reflects the light from the fluorescent lamp 13c. In this box 13a, a power supply unit 13g incorporating an electric circuit member 13f such as a ballast, an inverter, a constant current circuit, a constant voltage circuit, and a current limiting resistor is installed. In this embodiment, three power supply units 13g are provided between the fluorescent lamps 13c, that is, between the first and second fluorescent lamps 13c, between the third and fourth fluorescent lamps 13c, and 5th. It arrange | positions between the fluorescent lamps 13c of the row | line | column and the 6th row | line. Each power supply unit 13g is attached to the bottom plate 13e of the box 13a. A gap of about 3 to 30 mm is provided between each power supply unit 13g and the top plate 13d of the box 13a. In this artificial illuminator 13, heat generated by the power supply unit 13g is transmitted to the bottom plate 13e and is dissipated from the bottom plate 13e. That is, it is transmitted to the air flowing through the nursery space below the artificial illuminator 13. The heat from the fluorescent lamp 13c is also transmitted to this air flow.
 電源ユニット13gとボックス天板13dとの間には隙間があいているため、電源ユニット13gから天板13dに伝わる熱は著しく少ない。そのため、潅水トレイ31上を流れる養液、およびセルトレイ40に植えられた植物の根圏部が人工照明器13の熱で温められることが防止される。 Since there is a gap between the power supply unit 13g and the box top plate 13d, the heat transferred from the power supply unit 13g to the top plate 13d is extremely small. Therefore, the nutrient solution flowing on the irrigation tray 31 and the rhizosphere part of the plant planted in the cell tray 40 are prevented from being heated by the heat of the artificial illuminator 13.
 図4の通り、各育苗棚12同士の間、及び最上段の育苗棚12と天板パネル3eとの間のスペース(育苗スペース)の後方の背面パネル3bに通気口が設けられ、各通気口にそれぞれ空気ファン15が取り付けられている。空気ファン15を稼働させることにより、部屋内に図2の矢印で示したような空気の循環流が生じる。すなわち、空調装置7~10によって調温調湿された空気は、多段棚式植物育成装置3~6の開放前面側より育苗棚12各段の育苗スペース内に吸引され、通気口から背面パネル3bの後方へ排出され、背面パネル3bの後方と建物壁面との間を通って上昇し、空調装置7~10に吸い込まれ、調温調湿されたのち、再び多段棚式植物育成装置3~6の開放前面側に吹き出される。 As shown in FIG. 4, vents are provided in the rear panel 3 b behind each of the nursery shelves 12 and between the uppermost nursery shelves 12 and the top panel 3 e (nursing seedling space). An air fan 15 is attached to each. By operating the air fan 15, a circulating air flow as shown by the arrow in FIG. 2 is generated in the room. That is, the air whose temperature is controlled by the air conditioners 7 to 10 is sucked into the seedling space of each stage of the seedling rack 12 from the open front side of the multi-stage shelf type plant growing apparatuses 3 to 6, and the rear panel 3b from the vent hole. Are exhausted to the rear of the rear panel 3b and rise between the back of the back panel 3b and the wall of the building, sucked into the air conditioners 7 to 10 and temperature-controlled, and then the multi-shelf plant growing devices 3 to 6 again. Is blown out to the open front side.
 図1,2のように、2列の多段棚式植物育成装置3、4と多段棚式植物育成装置5、6をそれらの間に作業空間が形成されるように配列した場合には、この作業空間が空気の循環路としても機能し、効果的な循環流が形成される。 As shown in FIGS. 1 and 2, when two rows of multi-stage shelf type plant growing apparatuses 3 and 4 and multi-stage shelf type plant growing apparatuses 5 and 6 are arranged so that a work space is formed between them, The work space also functions as an air circulation path, and an effective circulation flow is formed.
 循環流が多段棚式植物育成装置3~6の各育苗スペースを通過する際に、潅水装置、培地、植物などから蒸発した水蒸気や人工照明器13から放出される熱が循環流に同伴され、この循環流を空調装置7~10によって調温調湿して絶えず循環させることによって、部屋内を植物体生育に最適な温度湿度環境に保つことができる。育苗スペースを流れる空気の流速は、0.1m/sec以上であることが好ましく、0.2m/sec以上であることがより好ましく、0.3m/sec以上が更に好ましい。気流の速度が速すぎると、植物の育成に問題が生じるおそれがあるため、一般的には2.0m/sec以下であることが好ましい。 When the circulating flow passes through each nursery space of the multi-stage shelf type plant growing devices 3 to 6, water vapor evaporated from the irrigation device, medium, plant, etc., or heat released from the artificial illuminator 13 is accompanied by the circulating flow, The circulating flow is conditioned and humidity-controlled by the air conditioners 7 to 10 and continuously circulated, so that the room can be maintained in a temperature and humidity environment optimum for plant growth. The flow rate of the air flowing through the nursery space is preferably 0.1 m / sec or more, more preferably 0.2 m / sec or more, and further preferably 0.3 m / sec or more. If the air flow rate is too high, there is a possibility that a problem may occur in plant growth, and therefore it is generally preferably 2.0 m / sec or less.
 この実施の形態では、気流を育苗スペースの前面からファン15を経て棚背面側へ負圧の状態で流しているが、逆に棚背面側から前面側へ正圧の状態で流してもよい。ただし、前面側から負圧の状態で棚背面側へ流す方が、育苗スペースにおける気流が均一になる。 In this embodiment, the airflow is passed from the front of the nursery space through the fan 15 to the back side of the shelf in a negative pressure state, but conversely, the airflow may be passed from the back side of the shelf to the front side in a positive pressure state. However, the airflow in the nursery space becomes more uniform when flowing from the front side to the back side of the shelf in a negative pressure state.
 この実施の形態では、潅水装置(底面潅水装置)30の潅水トレイ31によって各育苗棚12の棚板が構成され、該潅水トレイ31に載置されたセルトレイ40の底面から潅水を行うよう構成されている。この潅水装置30の構成例を図5~7を参照して説明する。なお、図5は潅水装置の平面図、図6は斜視図、図7は図5のVII-VII線断面図である。 In this embodiment, a shelf plate of each seedling shelf 12 is configured by the irrigation tray 31 of the irrigation device (bottom irrigation device) 30, and irrigation is performed from the bottom surface of the cell tray 40 placed on the irrigation tray 31. ing. A configuration example of the irrigation apparatus 30 will be described with reference to FIGS. 5 is a plan view of the irrigation apparatus, FIG. 6 is a perspective view, and FIG. 7 is a sectional view taken along line VII-VII in FIG.
 この潅水装置30は、後辺及び左右両側辺に側壁31a、31b、31cが立設された底版31dを有する四角形の潅水トレイ31を備えている。潅水トレイ31の側壁のない前辺には底版31dに連接して排水溝32が設けられており、排水溝32の一端には排水口32aが形成されている。排水溝32と底版31dとは堰34により仕切られ、堰34の両端部の切欠部34aから養液が排水溝32に流出するよう構成されている。また、潅水トレイ31の後辺の側壁31aに沿って、養液を潅水トレイ31内に供給する給水管33が設けられており、給水管33に設けた複数の小孔33aから養液がトレイ31上に供給されるようになっている。 The irrigation apparatus 30 includes a rectangular irrigation tray 31 having a bottom plate 31d with side walls 31a, 31b, 31c standing on the rear side and the left and right sides. A drainage groove 32 is provided on the front side of the irrigation tray 31 without a side wall and connected to the bottom plate 31 d, and a drainage port 32 a is formed at one end of the drainage groove 32. The drainage groove 32 and the bottom plate 31 d are partitioned by a weir 34, and the nutrient solution flows into the drainage groove 32 from the notches 34 a at both ends of the weir 34. A water supply pipe 33 for supplying nutrient solution into the irrigation tray 31 is provided along the side wall 31 a on the rear side of the irrigation tray 31, and the nutrient solution is supplied to the tray from a plurality of small holes 33 a provided in the water supply pipe 33. 31 is supplied.
 潅水トレイ底版31dの上面に高さ約7mm程度の複数のリブ35が、排水溝32に向って互いに平行に延設されており、これらリブ35の上にセルトレイ40が載置されるようになっている。 A plurality of ribs 35 having a height of about 7 mm extend in parallel to each other toward the drainage grooves 32 on the upper surface of the irrigation tray bottom plate 31d, and the cell tray 40 is placed on these ribs 35. ing.
 この潅水装置30は、図4の通り、潅水トレイ31を多段棚式植物育成装置3~6の育苗棚12に載置したときに、排水溝32が育成装置3~6の開放前面から突出する寸法とされている。排水溝32を育成装置の開放前面から突出させることにより、育苗棚12各段に載置した潅水トレイ31の排水溝32の排水口32aから排出される養液を集めて建物構造物1外部へ排出しやすくなる。 In this irrigation device 30, as shown in FIG. 4, when the irrigation tray 31 is placed on the seedling rack 12 of the multi-stage shelf type plant growing device 3-6, the drainage groove 32 protrudes from the open front surface of the growing device 3-6. It is a dimension. By projecting the drainage groove 32 from the open front surface of the growing device, the nutrient solution discharged from the drainage port 32a of the drainage groove 32 of the irrigation tray 31 placed on each stage of the seedling rack 12 is collected to the outside of the building structure 1 It becomes easy to discharge.
 潅水装置30の給水管33に設けた小孔33aから養液を連続的に供給すると、養液は堰34によって堰き止められて所定水位まで溜まりプール状態となる。給水管33から養液を供給している間、切欠部34aから養液が少しずつ排水溝32へ流出する。養液供給量と切欠部34aからの流出量を調節することによって、潅水トレイ31内に例えば10~12mm程度の水位のプール状態が維持されるようにするのが好ましい。リブ35の上に載置されているセルトレイ40の各セル41底面に形成されたセル穴42からセル内の培地へ毛管作用により水が吸い上げられ、短時間ですべてのセル41内の培地が水分飽和状態になる。 When the nutrient solution is continuously supplied from the small hole 33a provided in the water supply pipe 33 of the irrigation apparatus 30, the nutrient solution is blocked by the weir 34 and accumulated to a predetermined water level to be in a pool state. While supplying the nutrient solution from the water supply pipe 33, the nutrient solution gradually flows out from the notch 34 a into the drainage groove 32. It is preferable to maintain a pool state with a water level of, for example, about 10 to 12 mm in the irrigation tray 31 by adjusting the nutrient solution supply amount and the outflow amount from the notch 34a. Water is sucked up by the capillary action from the cell hole 42 formed on the bottom surface of each cell 41 of the cell tray 40 placed on the rib 35 to the medium in the cell, and the medium in all the cells 41 becomes water in a short time. It becomes saturated.
 この潅水トレイ31の底版31dの下面に人工照明器13が取り付けられている。この実施の形態では、人工照明器13のボックス13aの天板13dが潅水トレイ31の下面に直接に当接しているが、スペーサや断熱材を介在させてもよい。 The artificial illuminator 13 is attached to the lower surface of the bottom plate 31d of the irrigation tray 31. In this embodiment, the top plate 13d of the box 13a of the artificial illuminator 13 is in direct contact with the lower surface of the irrigation tray 31, but a spacer or a heat insulating material may be interposed.
 この潅水装置30では、図7の通り、潅水トレイ31の底版31dの上面を排水溝32の方向へ傾斜させている。これにより、潅水停止時に養液を排水溝32へ短時間で排出させることができる。底版31dの上面に傾斜をもたせた場合には、リブ35の高さを変化させてリブの頂部35aが水平となるようにすることにより、リブ35の上に載置したセルトレイ40を水平に保持できる。 In this irrigation apparatus 30, the upper surface of the bottom plate 31d of the irrigation tray 31 is inclined in the direction of the drainage groove 32 as shown in FIG. Thereby, the nutrient solution can be discharged to the drain groove 32 in a short time when irrigation is stopped. When the upper surface of the bottom plate 31d is inclined, the cell tray 40 placed on the rib 35 is held horizontally by changing the height of the rib 35 so that the top portion 35a of the rib becomes horizontal. it can.
 図10は、本発明で用いる潅水装置の別例を示すものであり、図5~図7における部材と同じ部材には、同じ符号を付してある。この潅水装置30’においては、潅水トレイ底版31dにセルトレイ40を載置する際に、潅水トレイ底版31dとセルトレイ40との間にアンダートレイ50を介在させる。このアンダートレイ50は各セル41内に培地を入れたセルトレイ40を支持し得る程度の剛性を備えており、その底面には複数の小孔51が形成されているとともに、その裏面には複数の突起52が形成されている。これらの突起52は、セルトレイ40をアンダートレイ50とともに潅水トレイ内に収容するときに、潅水トレイ底版31dとセルトレイ40底面との間に間隙を保持する間隙保持手段として機能する。 FIG. 10 shows another example of the irrigation apparatus used in the present invention. The same members as those in FIGS. 5 to 7 are given the same reference numerals. In the irrigation apparatus 30 ′, when the cell tray 40 is placed on the irrigation tray bottom plate 31 d, the under tray 50 is interposed between the irrigation tray bottom plate 31 d and the cell tray 40. The under tray 50 has a rigidity sufficient to support the cell tray 40 in which the culture medium is placed in each cell 41. A plurality of small holes 51 are formed on the bottom surface, and a plurality of small holes 51 are formed on the back surface. A protrusion 52 is formed. These protrusions 52 function as gap holding means for holding a gap between the irrigation tray bottom plate 31d and the bottom surface of the cell tray 40 when the cell tray 40 is accommodated in the irrigation tray together with the under tray 50.
 図10の潅水装置30’においても、給水管33から養液を供給して所定水位のプール状態となった場合には、アンダートレイ50の小孔51からアンダートレイ50内に養液が導かれ、セルトレイ40の各セル41底面に形成されたセル穴42からセル内の培地へ毛管作用により水が吸い上げられる。 Also in the irrigation apparatus 30 ′ of FIG. 10, when the nutrient solution is supplied from the water supply pipe 33 and becomes a pool state at a predetermined water level, the nutrient solution is guided into the under tray 50 from the small hole 51 of the under tray 50. Water is sucked up by the capillary action from the cell hole 42 formed on the bottom surface of each cell 41 of the cell tray 40 to the medium in the cell.
 図10においても、潅水トレイ底版31dの下面に人工照明器13が取り付けられている。 Also in FIG. 10, the artificial illuminator 13 is attached to the lower surface of the irrigation tray bottom plate 31d.
 潅水トレイ31に載置されるセルトレイ40は、前述したように、数十から数百のセル41を格子状に配列させてトレイ形状に一体化したものであり、セルトレイ1枚の寸法は幅が300mm、長さが600mm前後とされているが、これに限定されない。 As described above, the cell tray 40 placed on the irrigation tray 31 is formed by arranging several tens to several hundreds of cells 41 in a lattice shape and integrating them into a tray shape. Although it is set as 300 mm and length is about 600 mm, it is not limited to this.
 苗が光合成で消費する炭酸ガスを人為的に供給するために、図1に示すように、建物構造物1の外部に液化炭酸ガスボンベ16を設置し、炭酸ガス濃度計測装置により計測した部屋内の炭酸ガス濃度が一定濃度となるように、炭酸ガスボンベ16から炭酸ガスを供給する。 In order to artificially supply the carbon dioxide consumed by the seedling in photosynthesis, as shown in FIG. 1, a liquefied carbon dioxide cylinder 16 is installed outside the building structure 1 and the inside of the room measured by the carbon dioxide concentration measuring device is used. Carbon dioxide gas is supplied from the carbon dioxide gas cylinder 16 so that the carbon dioxide gas concentration is constant.
 この育苗装置を使用して苗を育成することによって、苗の生育に好適な光量、温度、湿度、炭酸ガス、水分などの環境条件を自動的に調節することが可能である。各育苗棚の苗は全て同一環境下で生育することができるので、得られた苗質の均一性を高めることができる。 By growing seedlings using this seedling raising device, it is possible to automatically adjust environmental conditions such as light quantity, temperature, humidity, carbon dioxide gas and moisture suitable for seedling growth. Since all the seedlings in each nursery shelf can grow under the same environment, the uniformity of the obtained seedling quality can be enhanced.
 この多段棚式植物育成装置では、人工照明器13の熱が反射板を兼ねるボックス底板13eに伝達され、該底板13eから育苗スペースを流れる空気に伝わる。人工照明器13から上側の潅水トレイ31に伝わる熱は著しく少ない。そのため、潅水トレイ31上の養液の温度が所定範囲にコントロールされる。 In this multi-stage shelf type plant growing apparatus, the heat of the artificial illuminator 13 is transmitted to the box bottom plate 13e which also serves as a reflector, and is transmitted from the bottom plate 13e to the air flowing through the seedling raising space. The heat transferred from the artificial illuminator 13 to the upper irrigation tray 31 is extremely small. Therefore, the temperature of the nutrient solution on the irrigation tray 31 is controlled within a predetermined range.
 上記実施の形態は本発明の一例であり、本発明はこれに限定されるものではない。例えば、部屋の大きさや、多段棚式植物育成装置の設置数は前記以外であってもよい。空調装置は天井に設置されてもよい。 The above embodiment is an example of the present invention, and the present invention is not limited to this. For example, the size of the room and the number of installed multistage shelf type plant growing devices may be other than those described above. The air conditioner may be installed on the ceiling.
 本発明を特定の態様を用いて詳細に説明したが、本発明の意図と範囲を離れることなく様々な変更が可能であることは当業者に明らかである。
 本出願は、2013年5月31日付で出願された日本特許出願2013-115787に基づいており、その全体が引用により援用される。
Although the present invention has been described in detail using specific embodiments, it will be apparent to those skilled in the art that various modifications can be made without departing from the spirit and scope of the invention.
This application is based on Japanese Patent Application No. 2013-115787 filed on May 31, 2013, which is incorporated by reference in its entirety.
 1 閉鎖型建物構造物
 3,4,5,6 多段棚式植物育成装置
 3a 側面パネル
 3b 背面パネル
 3c 台座
 3e トップパネル
 7~10 空調装置
 12 育苗棚
 13 人工照明器
 13a ボックス
 13b ソケット
 13c 蛍光灯
 13d 天板
 13e 底板
 13f 電気回路部材
 13g 電源ユニット
 13s スイッチ
 15 空気ファン
 16 炭酸ガスボンベ
 30,30’ 潅水装置
 31 潅水トレイ
 31d 底版
 32 排水溝
 32a 排水口
 33 給水管
 33a 小孔
 34 堰
 34a 切欠部
 35 リブ
 40 セルトレイ
 41 セル
 42 セル穴
 50 アンダートレイ
 51 小孔
 52 突起
DESCRIPTION OF SYMBOLS 1 Closed- type building structure 3,4,5,6 Multistage shelf type plant growing apparatus 3a Side panel 3b Rear panel 3c Base 3e Top panel 7-10 Air conditioner 12 Nursery rack 13 Artificial lighting device 13a Box 13b Socket 13c Fluorescent lamp 13d Top plate 13e Bottom plate 13f Electric circuit member 13g Power supply unit 13s Switch 15 Air fan 16 Carbon dioxide gas cylinder 30, 30 'Irrigation device 31 Irrigation tray 31d Bottom plate 32 Drain groove 32a Drain port 33 Water supply pipe 33a Small hole 34 Weir 34a Notch 35 Rib 40 Cell tray 41 Cell 42 Cell hole 50 Under tray 51 Small hole 52 Projection

Claims (5)

  1.  植物育成用棚が上下多段に配置され、各棚上に養液を流すための潅水装置が設けられた多段棚式植物育成装置であって、下段側の該棚上の植物に光を照射するための人工照明器が棚の下面に設置されている多段棚式植物育成装置において、
     該人工照明器は、該棚の下面側に設置されたボックスと、該ボックスの下面側に配置された発光体と、該ボックス内に設置された発光体作動用電源ユニットとを備えており、
     該ボックスは、天板及び底板を有しており、前記電源ユニットは該底板に設置され、該電源ユニットと該天板とが離隔していることを特徴とする多段棚式植物育成装置。
    The plant growth shelf is arranged in multiple upper and lower stages, and is a multi-stage shelf type plant growth apparatus provided with an irrigation device for flowing nutrient solution on each shelf, and irradiates light on the plants on the lower shelf side In a multi-stage shelf type plant growing device in which an artificial illuminator for
    The artificial illuminator includes a box installed on the lower surface side of the shelf, a light emitter disposed on the lower surface side of the box, and a power supply unit for operating the light emitter installed in the box,
    The box includes a top plate and a bottom plate, the power supply unit is installed on the bottom plate, and the power supply unit and the top plate are separated from each other.
  2.  請求項1において、各棚の上側のスペースに空気流を形成するための空気流形成手段が設けられていることを特徴とする多段棚式植物育成装置。 The multi-stage shelf type plant growing apparatus according to claim 1, wherein air flow forming means for forming an air flow is provided in a space above each shelf.
  3.  請求項1又は2において、前記ボックスが前記棚の下面に当接していることを特徴とする多段棚式植物育成装置。 The multi-stage shelf type plant growing device according to claim 1 or 2, wherein the box is in contact with a lower surface of the shelf.
  4.  請求項1ないし3のいずれか1項において、前記ボックスの底板が前記発光体からの光を反射するための反射板となっていることを特徴とする多段棚式植物育成装置。 4. A multistage shelf type plant growing apparatus according to any one of claims 1 to 3, wherein the bottom plate of the box is a reflecting plate for reflecting light from the light emitter.
  5.  請求項1ないし4のいずれか1項に記載の多段棚式植物育成装置が閉鎖建物構造物内に設置された植物育成システム。 A plant growing system in which the multistage shelf type plant growing apparatus according to any one of claims 1 to 4 is installed in a closed building structure.
PCT/JP2014/053442 2013-05-31 2014-02-14 Multi-tiered shelf type plant growth device and plant growth system WO2014192331A1 (en)

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