The present invention relates to a nutriculture device for crops.
Conventionally, as a method for cultivating crops, nutriculture in which crops are cultivated using a nutrient solution is known, as well as soil culture in which crops are cultivated on soil. Known as nutriculture are solid medium culture using a solid medium and hydroponic culture in which crops are cultivated by immersing the roots of the crops in a nutrient solution without using the solid medium. Japanese Patent Application Laid-Open No. H5-176641 describes an example of such a nutriculture device.
The device described in Japanese Patent Application Laid-Open No. H5-176641 is a culture device in which two kinds of root of a crop, consisting of a root in a medium (or a root in water) and a root in a humid atmosphere, are generated from the crop, and in which each of the roots is fed with water to cultivate the crop. Such a culture device can make use of the characteristics of these two kinds of root to encourage growth of the crop.
However, in the device described in Japanese Patent Application Laid-Open No. H5-176641, water is fed collectively utilizing a liquid feeding pump to a nutrient solution feeding body (medium) in which a plurality of crops are planted. Therefore, it is difficult to finely control the amount of irrigation water to each crop. For example, it is difficult to feed an amount of water required to each crop in accordance with the variation in transpiration rate of water depending on the difference in planting time, planting position, and cultivation environment of each crop.
As a result, surplus water may adversely affect growth of crops, and an excessive amount of water fed to the crops may lead to drainage water. Suppression of drainage water amount generated at the time of cultivating crops is a world-wide goal from the viewpoint of environmental conservation.
Also, it is generally known that, by applying appropriate water stress on crops by reducing the amount of water fed to the crops, an increase in sugar content and improvement in quality can be expected. However, in a case where the water content around the roots of the crops cannot be adjusted to an appropriate amount, it is difficult to control the water stress on the crops.
Taking such circumstances into consideration thereof, the present invention provides a nutriculture device that can cultivate high-quality crops while suppressing the drainage water generated.
(1) A nutriculture device according to an aspect of the present invention includes: a device main body that is provided with an opening which is facing upward and that is formed in a container shape; a cover that is arranged to cover the opening of the device main body, that includes a through hole having a crop pass therethrough, and that is configured to define an internal space between the cover and the device main body; a water retention mat that is provided inside the internal space and that is configured to retain water; a plurality of culture containers each of which supports the crop having passed through the through hole, each of which is arranged in the internal space, and each of which is provided with a connection portion that connects an inside thereof to an outside thereof on an upper side of the water retention mat and on a lower side of the cover; a medium or a nutrient solution that is housed in each of the culture containers; a mat-side water irrigation unit configured to feed water to the water retention mat; and a container-side water irrigation unit configured to feed water into each of the culture containers per container unit including some of the culture containers or per the culture container.
(2) In the nutriculture device described in (1) above, the culture container may include a sidewall portion configured to separate an in-container area inside the culture container from an aerial area outside of the culture container in the internal space.
(3) In the nutriculture device described in (2) above, the container-side water irrigation unit may include: a container water feeding path that has an opening for feeding water to the medium or the nutrient solution inside the culture container; a water sensor configured to measure the amount of water in the in-container area; and a container water feeding control unit configured to adjust the amount of water to be fed from the container water feeding path to the medium or the nutrient solution on the basis of a measurement value of the water sensor to control the amount of water in the in-container area.
(4) In the nutriculture device described in (2) or (3) above, the mat-side water irrigation unit may include: an aerial water feeding path that has an opening for feeding water to the water retention mat; a humidity sensor configured to measure a humidity in the aerial area; and an aerial water feeding control unit configured to adjust an amount of water to be fed from the aerial water feeding path to the water retention mat on the basis of a measurement value of the humidity sensor to control a humidity in the aerial area.
(5) The nutriculture device described in any one of (2) to (4) above may further include an air feeding unit configured to feed air to the aerial area.
(6) In the nutriculture device described in any one of (1) to (5) above, each of the culture containers may be a pot, configured to house the medium and to pass through the through hole, that is put on the water retention mat to be supported by the device main body, and may be provided with a bottom hole, as the connection portion, that penetrates a bottom portion of the pot in an up-down direction.
(7) In the nutriculture device described in (6) above, an upper edge of the pot that is put on the water retention mat may be located further upward than the through hole.
(8) In the nutriculture device described in any one of (1) to (7) above, the water retention mat may include a water retention layer configured to retain water and a surface layer that is stacked on an upper side of the water retention layer and that has moisture permeability and root barrier performance, and the surface layer may be made of a cloth obtained by weaving polyester fibers and may be in an irregular shape on a surface thereof.
(9) The nutriculture device described in any one of (1) to (8) above may further include a heating and cooling unit that is arranged on a lower side of the water retention mat in the internal space, and the heating and cooling unit may include a heat storage body that is arranged between a bottom surface of the device main body and the water retention mat, and a temperature control flow path through which a temperature-controlled liquid that exchanges heat with the heat storage body flows.
(10) The nutriculture device described in (9) above may further include a waterproof sheet configured to separate the water retention mat from the heating and cooling unit.
The nutriculture device according to the aspect can cultivate high-quality crops while suppressing generation of drainage water.
Hereinbelow, embodiments of the present invention will be described with reference to the accompanying drawings.
(Entire Configuration)
As illustrated in
(Culture Bed)
As illustrated in
(Planting Panel) Returning to
(Heating and Cooling Unit)
As illustrated in
The heat storage body 41 is made of a material, which has a heat storage effect, such as metal or ceramic. The heat storage body 41 is provided to cover the entire bottom surface 2a of the culture bed 2. The temperature control flow path 42 is a pipe or the like provided to run through the heat storage body 41.
The temperature control flow path 42 is made to extend from the inside of the heat storage body 41 toward the outside of the culture bed 2. The temperature control flow path 42 enables the heat medium to pass therethrough. As the heat medium, water is used, for example.
The temperature control unit 43 is provided outside of the culture bed 2. The temperature control unit 43 includes a not-illustrated heat exchanger that heats and cools the heat medium. For example, when temperatures are low in winter, the temperature control unit 43 stores the heat medium that has been heated by means of heat inside the plastic greenhouse, having installed the nutriculture device 1 therein, during sunny periods at which the temperature rises in the plastic greenhouse, or heats the heat medium by means of a heater (not illustrated). Also, when temperatures are high in summer, the temperature control unit 43 cools the heat medium with use of a heat pump or the like. The temperature control unit 43 adjusts the temperature of the heat medium to be at an appropriate level, and flows the heat medium through the temperature control flow path 42 to circulate the heat medium in the heat storage body 41, thereby enabling the heat storage body 41 to be heated or cooled by the heat medium. In this manner, the temperature control unit 43 controls the temperature or the relative humidity inside the internal space S.
(Waterproof Sheet)
As illustrated in
(Water Retention Mat)
As illustrated in
Here, the root barrier performance means performance of inhibiting the roots of a crop P from entering and getting entangled. Note that the surface layer 62 according to the present embodiment does not have to completely prevent the roots from entering and getting entangled with the water retention mat 6 but only requires an increased effectiveness of inhibiting the roots from entering and getting entangled compared to the water retention layer 61. As illustrated in
(Culture Container)
Returning to
In the present embodiment, each culture container 8 is a pot which is opened upward and in which (the seedling of) the crop P has been planted in advance. The outside diameter of the pot is slightly smaller than the inside diameter of the through hole 3a. The outside diameter of the pot and the inside diameter of the through hole 3a may be substantially equal to each other to allow for the pot to be fitted in the through hole 3a, so that the internal space S is completely shielded from the outside of the culture bed 2 and becomes a sealed space. As illustrated in
In a state where the culture container 8 is inserted in the through hole 3a, the sidewall portion 81 extends further upward than the planting panel 3, and the upper edge of the sidewall portion 81 is located further upward than the through hole 3a. Consequently, the culture containers 8 divide the internal space S into an in-container area SP inside the culture containers 8 and an aerial area SA outside of the culture containers 8 formed between the culture containers 8 arranged in the certain direction. The in-container area SP is a space in which the below-mentioned medium M is provided while the aerial area SA is a space in which a below-mentioned humid-atmosphere root (a fine root) R2 of the crop P grows.
As illustrated in
(Medium)
Returning to
(Mat-side Water Irrigation Unit)
As illustrated in
The humidity sensor 73 is installed in the culture bed 2. The humidity sensor 73 measures the humidity in the aerial area SA. The aerial water feeding control unit 74 is provided outside of the culture bed 2. The aerial water feeding control unit 74 controls the amount of water to be fed from the water feeding source 72 to the aerial water feeding path 71 according to the measurement value of the humidity sensor 73 so that the humidity in the aerial area SA may be an appropriate value. The aerial water feeding control unit 74 also feeds as much nutrient solution as can be retained in the water retention mat 6, into the aerial area SA, that is, as much nutrient solution as possible without causing any liquid water to exist in the aerial area SA.
(Container-side Water Irrigation Unit)
As illustrated in
As illustrated in
Returning to
(Effects)
In the nutriculture device 1 according to the present embodiment described above, the container-side water irrigation unit 9 can adjust the amount of water to be fed to the medium M in each culture container 8 per container unit 8U or per culture container 8. Therefore, it is possible to prevent an excessive amount of water from being fed into the medium root R1 of the crop P, and generation of drainage water can be suppressed. Also, since the amount of water to be fed to the medium root R1 can be adjusted appropriately by the container-side water irrigation unit 9, water stress can be applied to the crop P. This can lead to an increase in sugar content and improvement in quality of the crop P. Furthermore, a situation in which the medium M is left in an excessively humid condition can be prevented, which can reduce the possibility of generating bacteria and pests.
Furthermore, without the necessity of separately installing the partition wall in the culture bed 2, the internal space S between the culture bed 2 and the planting panel 3 can be divided into the aerial area SA and the in-container area SP by the sidewall portion 81 of the culture container 8. Hence, the humid-atmosphere root R2 can be extended in the aerial area SA.
As a result, even in a case where the amount of the medium root R1 is lessened by reduction in the amount of the medium M, the amount of the humid-atmosphere root R2 can be increased by letting the humid-atmosphere root R2 extend inside the aerial area SA, and a required amount of water for the crop P can be secured. Hence, the crop P can be cultivated while the cost can be reduced by reducing the amount of the medium M.
Also, by dividing the internal space S into the aerial area SA and the in-container area SP by means of the culture container 8, extension of the humid-atmosphere root R2 to the outside of the aerial area SA can be prevented. Hence, by managing the humidity inside the aerial area SA by means of the mat-side water irrigation unit 7, the amount of water to be fed to the humid-atmosphere root R2 can be managed appropriately.
Also, the culture container 8 is a pot, and planting the crop P can be done simply by inserting and setting the culture container 8 into the through hole 3a of the planting panel 3. That is, planting can be completed simply by inserting into the through hole 3a the culture container (pot) 8 in which the seedling of the crop P has been planted in advance and putting the culture container 8 on the water retention mat 6, which greatly facilitates the work.
Also, since the crop P is planted simply by putting the culture container 8 on the water retention mat 6, the humid-atmosphere root R2 can grow easily from the bottom hole 82a of the culture container 8 toward the outside of the culture container 8. Since the pot is normally provided with the bottom hole 82a, there is no need to separately form a connection portion for the humid-atmosphere root R2 to pass through the culture container 8, but the bottom hole 82a itself of the pot can function as a connection portion, which can contribute to cost reduction.
Furthermore, since the water retention mat 6 is installed, the water retention mat 6 can feed water to the humid-atmosphere root R2 in a vaporized state, and no liquid water exists inside the aerial area SA. Therefore, generation of drainage water can be suppressed. Furthermore, since the water retention mat 6 includes the surface layer 62, the surface layer 62 can prevent the humid-atmosphere root R2 from reaching and getting entangled with the water retention layer 61 while enabling water to transpire from the water retention layer 61 of the water retention mat 6 to the aerial area SA. As a result, as illustrated in
Also, since the heating and cooling unit 4 is provided in the internal space S, the temperatures of the roots R1 and R2 of the crop P can be kept at appropriate levels, and growth of the crop P can be promoted even during the high-temperature period in summer or during the deep-winter period. In the present embodiment, since the heating and cooling unit 4 heats or cools the internal space S indirectly by means of the heat storage body 41, the entire temperature distribution in the internal space S can be made uniform. This is more preferable for growth of the crop P.
Also, the waterproof sheet 5 is interposed between the water retention mat 6 and the heat storage body 41, and the waterproof sheet 5 separates the water retention mat 6 from the heat storage body 41. Thus, it is possible to prevent water from the water retention mat 6 from entering the side provided with the heat storage body 41. This can eliminate the possibility of the heat storage body 41 being heated or cooled by water that has entered the heat storage body 41, and the temperature in the internal space S can be controlled accurately by the heating and cooling unit 4.
Also, since the mat-side water irrigation unit 7 can measure the humidity in the aerial area SA of the internal space S and keep the humidity at an appropriate value, water stress can be applied to the crop P. This can lead to an increase in sugar content and improvement in quality of the crop P.
Furthermore, since the air feeding unit 10 can feed air to the aerial area SA, the crop P can absorb oxygen through the humid-atmosphere root R2 which has an excellent oxygen absorption ability, and growth of the crop P can thus be promoted.
Here, in the present embodiment, as illustrated in
Also, in the present embodiment, although the bottom hole 82a of the culture container 8 is used as a connection portion connecting the aerial area SA to the in-container area SP, a connection portion may be provided in the sidewall portion 81 of the culture container 8 to allow the humid-atmosphere root R2 to extend from the in-container area SP to the aerial area SA.
Next, a nutriculture device 1A according to a second embodiment of the present invention will be described. In the second embodiment, similar components to those in the first embodiment are labeled with the same reference numerals, and a detailed description of the duplicate components is omitted. The nutriculture device 1A according to the present embodiment differs from the nutriculture device 1 according to the first embodiment in that a nutrient solution N, instead of the medium M, is housed (stored) in a culture container 8A.
As illustrated in
A water sensor 93A of a container-side water irrigation unit 9A is a water level gauge measuring the water amount (water level) of the nutrient solution N in the main body portion 82A. The water sensor 93A penetrates the top surface portion 81A and is inserted into the main body portion 82A.
(Effects)
Similarly to the first embodiment, in the nutriculture device 1A according to the present embodiment described above, the container-side water irrigation unit 9A can adjust the amount of water to be fed to each culture container 8A per container unit or per culture container 8A. Therefore, it is possible to prevent the nutrient solution N from overflowing out of the culture container 8A, and generation of drainage water can be suppressed. Also, by adjusting the storage amount of the nutrient solution N, water stress can be applied to the crop P, which can lead to an increase in sugar content and improvement in quality of the crop P.
Although the embodiments of the present invention have been described above in detail with reference to the drawings, the respective components and the combination thereof in the above-described embodiments are illustrative only, and addition, omission, substitution, and other modifications of components can be made without departing from the scope of the present invention. Also, the present invention is limited not by the embodiments, but only by the patent claims.
For example, the water retention mat does not have to include the surface layer 62 but may include only the water retention layer 61. Also, as the heating and cooling unit, a heater may be installed inside the internal space S, for example. Also, the waterproof sheet 5 does not necessarily have to be provided.
Also, the air feeding unit 10 does not necessarily have to be provided. In particular, in a case where there is a space between the culture container 8 (8A) and the through hole 3a, air will enter the aerial area SA from this space, and the air feeding unit 10 can thus be dispensed with.
Also, the culture container 8 (8A) may be integral with the planting panel 3. In this case, the medium M or the nutrient solution N is directly put into the through hole 3a of the planting panel 3. Also, in this case, as illustrated in
Also, the culture containers 8 do not necessarily have to be arranged to be equally spaced apart in the certain direction. For example, the plurality of culture containers 8 may be arranged at random, or the adjacent culture containers 8 may be arranged to come into close contact with each other. Also, the through hole 3a may be an elongated hole extending in the certain direction, and the plurality of culture containers 8 may be inserted to be arranged in one elongated hole.
Also, instead of the planting panel 3, a cover such as a vinyl film may be used, and the shape, the material, and the like of the cover are not limited as long as the cover can define the internal space S.
The nutriculture device according to the present invention can cultivate high-quality crops while suppressing generation of drainage water during cultivation.
Number | Date | Country | Kind |
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2019-195848 | Oct 2019 | JP | national |
This application is a U.S. National Phase Application under 35 U.S.C. 371 of International Application No. PCT/JP2020/039744, filed on Oct. 22, 2020, which claims priority to Japanese Patent Application No. 2019-195848, filed on Oct. 29, 2019. The entire disclosures of the above applications are expressly incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/039744 | 10/22/2020 | WO |