Optimised greenhouse air treatment chamber, and corresponding greenhouse.
20230044520 · 2023-02-09
Inventors
Cpc classification
Y02A40/25
GENERAL 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
International classification
Abstract
An air treatment chamber of a cultivation greenhouse. The air treatment chamber includes: at least one inlet for recycling air, delivering air from at least one cultivation zone of the greenhouse; at least one fresh air inlet, delivering air from outside of the greenhouse; and at least one air outlet for feeding the at least one cultivation zone. The fresh air inlet is formed in a lower part of the chamber. An upper part of the chamber, extending above the air inlet, is equipped with elements for passing light to the interior of the greenhouse.
Claims
1. An air treatment chamber for a cultivation greenhouse, comprising: at least one inlet for recycling air, delivering air from at least one cultivation zone of said greenhouse; at least one fresh air inlet, delivering air from outside said greenhouse, wherein said at least one fresh air inlet is formed in a lower part of said chamber; and at least one air outlet for feeding said at least one cultivation zone; and an upper part of said chamber, which extends above said at least one fresh air inlet, and is equipped with elements for passing light to an interior of said greenhouse.
2. The air treatment chamber according to claim 1, comprising a seal, which seals said fresh air inlet and which can assume at least three positions: a closed position, in which said at least one fresh air inlet is completely sealed; at least one first open position, in which an upper part of said at least one fresh air inlet is open, for passing air therethrough; and at least one second open position, in which a lower part of said at least one fresh air inlet is open, for passing air therethrough.
3. The air treatment chamber according to claim 2, wherein the seal can assume at least two first open positions and/or at least two second open positions, so as to modulate amount of air from outside.
4. The air treatment chamber according to claim 2, wherein the seal comprises a flap sliding in parallel to said at least one fresh air inlet, movable so as to be able to assume said closed position and said first and second open positions.
5. The air treatment chamber according to claim 2, further comprising an air heater, mounted in front of said at least one air inlet so that: in at least one of the at least one first open position, fresh air circulates inside said air heater; and in at least one of the at least one second open position, fresh air is not treated by said air heater.
6. The air treatment chamber according to claim 1, further comprising at least one recycling air conduit, connecting the upper part of said greenhouse to said at least one inlet for recycling air, the latter being placed in close proximity to the upper part of said at least one fresh air inlet.
7. The air treatment chamber according to claim 4, further comprising at least one recycling air conduit, connecting the upper part of said greenhouse to said at least one inlet for recycling air, the latter being placed in close proximity to the upper part of said at least one fresh air inlet; and said at least one inlet for recycling air is placed so that said flap seals said at least one inlet for recycling air in at least one of said second open positions.
8. The air treatment chamber according to claim 1, wherein the at least one fresh air inlet comprises at least a first and a second fresh air inlets, the first fresh air inlet being equipped with cooling and/or dehumidification element, and the second fresh air inlet being placed so that fresh air circulates into a heater.
9. The air treatment chamber according to claim 4, wherein the at least one fresh air inlet comprises at least a first fresh air inlet and a second fresh air inlet, the first fresh air inlet being equipped with cooling and/or dehumidification element, and the second fresh air inlet being placed so that fresh air circulates into a heater, and wherein said flap seals both the first and second fresh air inlets or selectively releases one of said first fresh air inlet or said second fresh air inlet.
10. A cultivation greenhouse comprising: at least one cultivation zone; and at least one air treatment chamber, comprising: at least one inlet for recycling air, delivering air from the at least one cultivation zone of said greenhouse; at least one fresh air inlet, delivering air from outside said greenhouse, wherein said at least one fresh air inlet is formed in a lower part of said chamber; and at least one air outlet for feeding said at least one cultivation zone; and an upper part of said chamber, which extends above said at least one fresh air inlet and is equipped with elements for passing light to an interior of said greenhouse.
11. The cultivation greenhouse according to claim 10, wherein said at least one air treatment chamber is provided inside said greenhouse between at least one peripheral wall of said greenhouse and an inner partition wall separating said at least one cultivation zone from said at least one air treatment chamber.
12. The cultivation greenhouse according to claim 10, wherein said at least one air treatment chamber is provided outside said greenhouse between a peripheral wall of said greenhouse and outer partition walls separating said at least one air treatment chamber from outside.
13-38. (canceled)
Description
4. DESCRIPTION OF THE FIGURES
[0131] Other purposes, characteristics and advantages of the invention will become clearer upon reading the following description, given by way of simple illustrative, and in no way limiting, example in connection with the figures, among which:
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5. DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0155] A—First Aspect
5.1 Structure of the Chamber
[0156] A first aspect of the invention is set forth in connection with
[0157] As illustrated in the embodiment of
[0158] According to the invention, the opening 13 allowing fresh air, or external air, to enter, conventionally equipped with cooling means 14, also ensuring dehumidification, for example in the form of a radiator, is placed in the bottom part PB of the chamber, so as to release an essentially transparent zone in the top part PH, allowing passage of light 15 through a transparent wall.
[0159] Thus, whereas according to prior art it is considered that the fresh air inlet and the associated cooling means have to be placed at the upper part, as well as the heating means to allow, where appropriate, air (fresh and/or recycled) to be heated before it is sucked in by fans ensuring diffusion in the greenhouse, the invention provides a new and efficient approach, consisting in placing the air inlet and the cooling means as close as possible to the ground, which has numerous advantages, and in particular: [0160] Greater passage of light to the cultivation zone; [0161] Easier maintenance; [0162] Temperature optimisation at the outlet of the chamber.
[0163] Indeed, this approach makes it possible to mount the air heating means 17, for example an air heater, in the bottom part PB of the chamber, for example, in front of the upper part of the air inlet 13. In this way, the space in the top part PH remains free, and allows passage of light to the cultivation zone. Maintenance of the air heater 17 and of the cooling means 14 is done at man's height, and the distance travelled by the air cooled and/or dehumidified by the cooling means 14 and/or heated by the air heater 17 follows a reduced path in the bottom part PB, which allows the selected temperature at the outlet of the cooling means 14 and/or of the air heater 17 to be weakly modified at the air outlet corresponding to the fan 16, which sends air into the air diffusion pipe 19 in the cultivation zone.
[0164] According to the different implementations, and as will be described in more detail later, air diffused in the pipe 19 may come, completely or partly, from inside the greenhouse. This air is then recovered from the upper part of the chamber 12, via an opening 110, which can be open or closed, or assume an intermediate open position, using an adapted sealing means 111, for example, a pivoting hatch.
[0165] It is also possible to introduce fresh or external air through the opening 13. Means for sealing this opening 13 are also provided, for example in the form of a vertically sliding flap 114 allowing all or part of the opening 13 to be released. In the embodiment illustrated in
[0166] The sealing means can of course be adapted, and in particular two distinct flaps may be provided, one associated with the lower part and the other with the upper part of the opening. Other opening mechanisms than with a sliding movement can be contemplated. The flap(s) may furthermore be mounted outwardly of the chamber (as in
5.2 First Embodiment
[0167] In the embodiment of
[0171] In the different modes, intermediate situations can of course be defined, by opening the hatch 111 to a greater or lesser extent (different positions are illustrated as examples in
5.3 Second Embodiment
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[0173] In this embodiment, the flap 111 is placed inside the chamber, along cooling means 14, and mounted so that, depending on its positions, it closes or releases, completely or partially, the recycled air outlet. Thus, a single flap, and therefore simple actuation and control, make it possible to manage opening and closing of all the air inlets, nevertheless with two restrictions: [0174] the inlets for recycling air and fresh air inlets cannot be closed at the same time; [0175] the recycled air and fresh air mixing mode (
[0176] Thus, four main modes of operation can be defined: [0177]
[0181] In the different modes, intermediate situations can of course be defined, depending on the position of the flap, in order to modulate amounts of recycled air and fresh air, heated or not, introduced into the greenhouse via the air outlet.
5.4 Third Embodiment
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[0183] In one alternative, a single opening may be provided, the upper part of which does not face any cooling means.
[0184] The flap 114 is adapted to be able to seal both openings 13 and 41 simultaneously.
[0185] Three main modes of operation can therefore be defined: [0186]
[0189] In the different modes, intermediate situations can of course be defined, by opening the hatch 111 and/or the flap 114 to a greater or lesser extent, so as to modulate amounts of recycled air and fresh air, heated or not, introduced into the greenhouse via the air outlet.
[0190] B—Second Aspect
[0191] An example of a cultivation greenhouse air treatment device according to a second aspect of the invention is set forth in connection with
[0192] As is represented, such a device 100 comprises a box 4.
[0193] This box 4 comprises an upper face 41, a lower face 42 for resting on the ground 9, a bottom 43 for coming in proximity to a wall of a cultivation greenhouse and two lateral sides 44, 45. Opposite to the bottom 43, the box comprises an opening 46. This opening preferably extends from the lower face 42 to the upper face 43 and from the side 44 to the side 45. In one alternative, it could have smaller dimensions.
[0194] The opening 46 is closed by means of two planar heat exchangers 8, preferably evaporative cooling means. These heat exchangers are not parallel to the bottom 43 and form an angle α. The angle α is the angle formed between the heat exchanger and an axis parallel to the bottom. The value of the angle α is preferably between 25° and 70°.
[0195] One or both heat exchangers 8 are covered with an optional insect net 17.
[0196] In one alternative, only one heat exchanger may be implemented, the second heat exchanger being replaced with an insect net 17.
[0197] In another alternative, only one heat exchanger may be implemented to close the box. In this case, the upper 41 and the lower 42 faces will be trapezoid-shaped. This heat exchanger may or may not be covered with an insect net.
[0198] The box further comprises at least one inlet for recycling air 3 able to cooperate with a cultivation zone 20 of a greenhouse. This inlet 3 is preferably provided through the upper face 41. However, it could also be provided through the bottom 43 or through one of the sides 44, 45 although this is less practical.
[0199] The box comprises at least one fresh air inlet able to cooperate with the outside of said greenhouse. This inlet consists of the heat exchanger(s) or net 17.
[0200] The box comprises an air outlet 11 for being connected to a ventilation pipe 13 having a perforated peripheral wall provided to extend into the cultivation zone 20.
[0201] The heat exchanger(s) and/or insect net may be fixedly secured to the box. However, at least one of them, and preferably both where appropriate, constitute(s) a door or doors 7 for access to the interior of the box.
[0202] For this, the exchanger, possibly covered with an insect net, or the net is connected to the box, and in particular to the sides 44, 45 by means of hinges 16, pin hinges or the like. Locking means, such as a hook, a lock, a strike-bolt system or the like, could also be implemented to keep the door(s) closed.
[0203] The implementation of this door or these doors can allow an operator to enter the box to carry out for example maintenance operations therein.
[0204] The box comprises an inner partition wall 19. This inner partition wall extends vertically to delimit inside the box a fresh air intake zone 21 into which the fresh air inlet opens and a mixing zone 10 (also called mixing zone) into which the inlet for recycling air 3 opens. The inner partition wall is preferably removable to facilitate maintenance of the device.
[0205] The inner partition wall has at least one opening 5 passing therethrough, fluidly communicating the intake 21 and mixing 10 zones.
[0206] The device comprises a flap 6 for sealing the opening 5. It is herein a sliding flap. However, it could be replaced with a pivoting flap.
[0207] The device comprises a flap 2 for sealing the inlet for recycling air 3. It is herein a pivoting flap. However, it could be replaced with a sliding flap.
[0208] The mixing zone houses heating means 18 which may, for example, comprise an air heater or any other adapted means.
[0209] The device comprises a fan 12. This fan is preferably positioned in the air outlet 11. However, the fan could be positioned in the mixing zone upstream of the air outlet for example below the heating means. In this case, it could for example be placed in the opening of a horizontal partition wall which would separate the mixing zone into an upper mixing zone and a lower zone forming a plenum.
[0210] Preferably, each heat exchanger is connected to a heat transfer fluid feed flexible pipe 23 and a heat transfer fluid discharge pipe 22, the connection of the heat exchangers to their respective pipes being made in proximity to the link of the heat exchanger with the box.
[0211] The height H of the box is preferably between 1.8 and 2.7 metres. Its thickness E could preferably be between C and D metres. Its width L could preferably be between 1.3 and 2 metres.
[0212] The height h of the exchangers is preferably between 1.6 and 2.5 metres. Their width I could preferably be between 1 and 1.8 metres.
[0213] Motor means for moving the sealing flaps and regulation means are conventionally implemented to control opening/closing of the various flaps and to control implementation of the cooling means (heat exchanger) and the heating means to generate the desired atmosphere. Such regulation means are known per se and are not described in detail herein.
[0214] It is possible to move the heat exchangers 8 closer to the fan 12 to increase air cooling in the mixing zone.
[0215] One or more treatment devices could be leant against a peripheral wall of a greenhouse (front or gable wall), preferably butt-joined to each other. However, they could be spaced apart from each other.
[0216] The inlets for recycling air 3 will be connected to the cultivation zone of the greenhouse by means of conduits 1. The inlet of each of these conduits 1 will be connected to an opening 15 provided through the greenhouse wall 14 against which the box is leaning.
[0217] These ducts could extend outside the greenhouse as is represented in
[0218] The different air treatment devices could be regulated identically. Thereby, they will operate identically.
[0219] The different air treatment devices could also each operate specifically. Each row of crops (each pipe) will then have a dedicated air treatment device to create a particular atmosphere air. However, at least some of the air treatment devices will be regulated differently, either for location reasons or for functional reasons, for example to allow different atmospheres to be created in different ventilation pipes in the greenhouse and consequently in different parts of the cultivation zone.
[0220] For example, a group of two treatment devices could be dedicated to the west wall. For example, one out of five treatment devices could be used for cooling the greenhouse, and four out of five treatment devices would recycle air from the greenhouse to recycle it, each operating without mixing, with mixing taking place in the greenhouse.
[0221] Any other combination of operation is possible.
[0222] The implementation of the invention provides many advantages, including the following. Because of the optimisation of the exchange surface area of the exchanger(s) by means of their tilt, it is possible to reduce to a minimum the height of the box, which will preferably be at man's height. This allows more light to enter the greenhouse and increases production yield.
[0223] The implementation of doors 7 facilitates maintenance.
[0224] In addition, maintenance is selective since it is possible to operate on a single air treatment device without affecting operation of the others.
[0225] This technique also makes it possible to provide targeted air treatment for each row of crops, i.e. for each pipe or for groups of pipes in order to create zones of different atmospheres in the greenhouse to create different cultivation zones. This allows the treatment zone to be functionalised by dividing it into several portions of different atmospheres to produce different crops in a same greenhouse. This may more simply allow creation of a homogeneous atmosphere/climate in the greenhouse despite the fact that climatic conditions outside the greenhouse are not uniform therearound.
[0226] In alternatives, it will be possible to mechanically and functionally gather several treatment devices. For example, the flaps 6 of juxtaposed treatment devices, having concentric motor spindles, could be linked gradually and actuated by a single motor in the case where a group of boxes have a dedicated operation. This principle is applicable to flap 2.
[0227] An air treatment device according to the invention is particularly compact. It can also be delivered fully equipped and ready for use by connecting the fluid and electrical connections.
[0228] The alternative of creating a plenum in the box has many advantages.
[0229] Such a plenum provides a calming zone allowing air contained in the mixing chamber to enter the ventilation pipes under the effect of a predominantly static pressure. This makes the penetration of air into a pipe more linear and less turbulent. As a result, the air diffuses through the peripheral perforations of the pipe essentially homogeneously along the entire pipe, from the inlet of the pipe. Indeed, the velocity vectors of the air jets through these perforations are almost perpendicular to the axis of the pipe along the same.
[0230] The homogeneous diffusion of the air along the entire length of the pipes avoids hot or cold spots in the cultivation zone and creates a homogeneous climate therein.
[0231] This is conducive to crop development and increased production yield.
[0232] In addition, a pipe is no longer directly interconnected to a fan. Thus it is not necessary to implement a bulky connection cone between the pipe and the fan.
[0233] This allows the pipes to be disposed lower to the ground, thus lowering the gutters above the pipes containing the substrate in which the crops grow. Crops, which are set lower, are thus more easily accessible to the operators working on their maintenance and harvesting.
[0234] This also makes it possible to place gutters closer to the inlet of the pipes and thus to increase the cultivable surface area of the cultivation zone for a given ground surface area of the greenhouse. This increases the yield of the greenhouse for a given ground surface area.
[0235] According to one particular embodiment, a treatment device according to the invention comprises a unitary and independently constructed box gathering all the air treatment means necessary for feeding a diffusion tube in a cultivation greenhouse in order to create therein a homogeneous climate conducive to uniform plant growth. At the inlet, this box has a door for access to the machinery and includes a heat exchanger providing the function of cooling air passing therethrough. Its tilted position increases the air treatment surface area, and therefore reduces the height of the box. By design, the boxes can cooperate in sub-groups to control climate of specific zones in the greenhouse. By design, their maintenance from outside is simple and can be done unitarily without shutting down the whole facility.
[0236] C—Third Aspect
[0237] A third aspect of the invention is set forth in connection with
[0238] A first example of a cultivation greenhouse air treatment chamber according to the invention is set forth in connection with
[0239] As is represented, such a treatment chamber 1 forms an enclosure.
[0240] This treatment chamber comprises an upper zone A.
[0241] This upper zone A comprises at least one inlet for recycling air 11 able to cooperate with a cultivation zone 20 of a greenhouse. It also comprises at least one fresh air inlet 3 able to cooperate with outside of the greenhouse.
[0242] The chamber also comprises a lower zone B.
[0243] This lower zone B comprises at least one air outlet 6 for being connected to at least one ventilation pipe 8 having a perforated peripheral wall provided to extend into the cultivation zone. It will generally comprise several air outlets 6, each of which being connected to a separate ventilation pipe.
[0244] The link between each pipe 8 and the corresponding outlet 6 is made by means of a simple connector 13 of the collar, ferrule or other type, but no longer requires the implementation of a more cumbersome, more complex and more expensive cone. This reduces the distance D between the gutter 14 and the beginning of the pipe.
[0245] At least one air passage 13 is provided between the upper zone A and the lower zone B. This passage is provided through a partition wall 9 separating the upper A and the lower B zones. The chamber comprises at least one fan 5 disposed between the upper A and lower B zones. This fan 5 is configured to induce passage of the air contained in said upper zone into said lower zone through the passage 13.
[0246] In this embodiment, the fan 5 comprises a rotor 50 the axis of rotation of which is substantially vertical. However, in alternatives, the axis of the rotor could extend in a tilted manner or essentially horizontally. In the latter case, the upper chamber A could partly extend laterally along the lower chamber B to the ground 7.
[0247] The number of fans could be equal to the number of air outlets and thus the number of ventilation pipes. However, preferentially, the number of fans could be less than the number of air outlets and thus the number of ventilation pipes. More generally, the number of fans can be uncorrelated to the number of pipes. This could allow optimisation of the characteristics of the fans.
[0248] The chamber comprises at least one flap 12 for sealing the inlet for recycling air 11. A single flap could be used to seal one or more air inlets. However, there could be as many flaps as there are air inlets.
[0249] The chamber comprises at least one flap 4 for sealing the fresh air inlet 3. A single flap could be used to seal one or more air inlets. However, there may be as many flaps as there are air inlets. In this embodiment, the flap 12 is swinging while the flap 4 is sliding (guillotine type).
[0250] More generally, the flaps 12, 4 for sealing the inlet for recycling air and the fresh air inlet are of the swinging type or of the sliding type, wherein the flaps for sealing the inlet for recycling air and the fresh air inlet could be of identical or different types.
[0251] The chamber comprises recycling air heating means 10 housed in the upper zone A. This may, for example, be an air heater or any other adapted heating means.
[0252] The chamber comprises fresh air cooling means 2 housed in the lower zone B. This may, for example, be one or more air/water exchangers, in particular cardboard panels through which fresh air circulates and inside which cold water is circulated.
[0253] A second example of a greenhouse air treatment chamber according to the invention is set forth in connection with
[0254] This differs from that according to the first example in that in the first example, the renewal air inlet(s) is (are) provided in a lateral wall of the upper zone, whereas in the second example it (they) is (are) provided in an upper wall of the upper zone.
[0255] A treatment chamber according to either of these two exemplary embodiments may be implemented within different types of cultivation greenhouse.
[0256] A cultivation greenhouse 200 conventionally comprises four peripheral walls and is covered with a roof 21 generally made of glass or plastic film. The roof represented has tilted sides. However, it could be arched, gothic vaulted or otherwise. The four peripheral walls comprise two gables 22 and two front walls 23.
[0257] The treatment chamber 1 may be provided inside the greenhouse 200 between at least one peripheral wall 22, 23 of the greenhouse and an inner partition wall 24 separating the cultivation zone 20 from the air treatment chamber 1. The air inlet(s) 11 and air outlet(s) 6 are then provided through the partition wall 24 while the air inlet(s) 3 are provided through a peripheral wall 22, 23. The chamber 1 preferably extends between three peripheral walls and the inner partition wall. However, it may be segmented so that the greenhouse contains several juxtaposed chambers that are butt-joined or spaced apart from each other.
[0258] The chamber(s) may extend from the ground to the roof or stop before the roof. In the latter case, the upper part of zone A can be closed by a wall (see
[0259] The treatment chamber 1 may also be provided outside the greenhouse 200 between a peripheral wall 22, 23 of the greenhouse and outer partition walls 100, 101, 102, 103 separating the air treatment chamber from outside.
[0260] The chamber 1 preferably extends along the entire length or width of the greenhouse. However, it may be shorter or it may be segmented into several juxtaposed chambers that are either butt-joined or spaced apart from each other.
[0261] The height H of the upper zone A could preferably be between 1.5 and 4 metres. Its width L may preferably be between 0.90 and 2 metres.
[0262] The height h of the lower zone B may preferably be between 1.8 and 3 metres. Its width I may preferably be between 0.90 and 2 metres.
[0263] Under some aspects, the present invention relates to an air treatment chamber for a cultivation greenhouse separated into two distinct volumes, the upper, first stage mainly dedicated to the management of air flows, control of flow rate, temperature and hygrometry, the lower, second stage is essentially dedicated to pressurising this treated air, mainly statically, by reducing turbulence, in order to supply the diffusion pipes with air able to exit therefrom almost perpendicular at an angle alpha of between 75° and 90°, in order to avoid non-homogeneous distribution of the air thus treated in the greenhouse, along the crops. These two stages are separated by a wall equipped with a number of fans which could be optimised to achieve this aim. Motor means for moving the sealing flaps and regulation means are conventionally implemented to control opening/closing of the various flaps and to control the implementation of the cooling means and the heating means to generate the desired atmosphere. Such regulation means are known per se and are not herein described in detail.