JPWO2019139031A1 - Hydroponic cultivation method of cultivated plants and culture solution for hydroponic cultivation - Google Patents

Hydroponic cultivation method of cultivated plants and culture solution for hydroponic cultivation Download PDF

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JPWO2019139031A1
JPWO2019139031A1 JP2019564716A JP2019564716A JPWO2019139031A1 JP WO2019139031 A1 JPWO2019139031 A1 JP WO2019139031A1 JP 2019564716 A JP2019564716 A JP 2019564716A JP 2019564716 A JP2019564716 A JP 2019564716A JP WO2019139031 A1 JPWO2019139031 A1 JP WO2019139031A1
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剛 竹葉
剛 竹葉
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Abstract

本発明は、播種から収穫までの期間、植物体の生育に必要な肥料成分を含む培養液を用いて栽培する方法であって、前記期間を、育苗装置にて播種から発芽まで栽培する発芽期間、育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する育苗期間、所定の大きさに成長した苗を育苗装置から生育装置に移植し、該生育装置にて収穫するまで栽培する生育期間に分けたとき、育苗期間において、マグネシウムイオンの濃度が24ppm〜120ppmの範囲であり、硝酸性窒素の濃度が4〜50ppmの範囲にある育苗用培養液を用いること、或いは生育期間において、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある生育用培養液を用いることを特徴とする。The present invention is a method of cultivating using a culture solution containing a fertilizer component necessary for the growth of a plant during the period from sowing to harvesting, and the above period is the germination period in which the seedling raising device is used to cultivate from sowing to germination. , The seedlings germinated by the seedling raising device are cultivated by the seedling raising device until they grow to a predetermined size. During the seedling raising period, the seedlings grown to the predetermined size are transplanted from the seedling raising device to the growing device and harvested by the growing device. When divided into growing periods for cultivating until seedlings, use a seedling raising culture solution in which the magnesium ion concentration is in the range of 24 ppm to 120 ppm and the nitrate nitrogen concentration is in the range of 4 to 50 ppm during the seedling raising period. During the growing period, a growth culture solution having a magnesium ion concentration in the range of 48 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 150 ppm to 200 ppm is used.

Description

本発明は、野菜や花卉等の栽培植物の養液栽培方法及びこれに用いられる養液栽培用培養液に関する。 The present invention relates to a hydroponic cultivation method for cultivated plants such as vegetables and flowers, and a culture solution for hydroponic cultivation used thereto.

マグネシウムは、タンパク質合成(リボソーム粒子の会合)、DNA合成、RNA合成、300以上の酵素活性の調節、ATPの安定化に関与する元素であり、また、クロロフィルの構成元素である等、生命活動を支える必須の元素であることが知られている。 Magnesium is an element involved in protein synthesis (association of ribosomal particles), DNA synthesis, RNA synthesis, regulation of more than 300 enzyme activities, stabilization of ATP, and is a constituent element of chlorophyll. It is known to be an essential element to support.

植物では、細胞が分裂する部位が茎頂分裂組織と根端分裂組織に局在しているため、高い細胞分裂の活性を維持するためには、それらの組織にマグネシウムが比較的高濃度で供給される必要がある。特に、細胞分裂に直接関わるDNAポリメラーゼは、その触媒活性に比較的高濃度のマグネシウムイオンを必要とすることが判明している(参考として、Taq DNAポリメラーゼの触媒活性に必要なマグネシウムの至適濃度は 4mM(=96ppm))。従って、茎頂分裂組織および根端分裂組織へのマグネシウムの供給が不十分であれば、細胞の分裂速度は遅くなり、ひいては植物個体としての成長速度が小さくなる。逆に、上記組織にマグネシウムが十分に供給されれば、植物個体の成長速度は大きくなる。 In plants, the site of cell division is localized in shoot apical and root meristems, so in order to maintain high cell division activity, these tissues are supplied with relatively high concentrations of magnesium. Need to be done. In particular, DNA polymerase directly involved in cell division has been found to require a relatively high concentration of magnesium ions for its catalytic activity (for reference, the optimum concentration of magnesium required for the catalytic activity of Taq DNA polymerase). Is 4 mM (= 96 ppm)). Therefore, if the supply of magnesium to the shoot apical meristem and the apical meristem is insufficient, the cell division rate will be slowed down, and the growth rate as an individual plant will be reduced. On the contrary, if magnesium is sufficiently supplied to the above tissues, the growth rate of individual plants will increase.

マグネシウムは根から吸収される。根から吸収されたマグネシウムの多くは、茎頂分裂組織および根端分裂組織に直接運搬されるのではなく、まずは、蒸散流によって葉に移行し、その後、篩管流に乗って茎頂分裂組織および根端分裂組織に供給される。篩管流は溶質濃度の高い側から低い側へと流れるため、分裂組織(シンク側)で必要とされるマグネシウム濃度よりも、供給側である葉(ソース側)の方が高いマグネシウム濃度が必要となる。つまり、高い細胞分裂活性(ひいては速い成長速度)を維持するためには、シンク側とソース側のマグネシウム濃度の落差が必要となる。 Magnesium is absorbed from the roots. Most of the magnesium absorbed from the roots is not transported directly to the shoot apical meristem and root apical meristem, but first migrates to the leaves by transpiration and then rides on the phloem flow to the shoot apical meristem. And supplied to the root meristem. Since the phloem flow flows from the side with high solute concentration to the side with low solute concentration, the magnesium concentration on the leaf (source side) on the supply side is higher than the magnesium concentration required on the meristem (sink side). It becomes. In other words, in order to maintain high cell division activity (and thus a high growth rate), a difference in magnesium concentration between the sink side and the source side is required.

野菜や花卉等の栽培植物の栽培方法の一つに養液栽培がある(例えば特許文献1)。養液栽培で用いられる培養液処方には、園芸試験場処方、山崎処方、大塚ハウスA処方などがあるが、これらの処方の成分組成はいずれも、栽培植物の生育に必須の三要素(窒素、リン酸、カリウム)を中心に、対象となる栽培植物の種類に応じた適宜の肥料成分を組み合わせて構成される。マグネシウムは、植物の成長に大きく寄与するという理由から、三要素に次いで培養液処方に多く含まれる肥料成分の一つである。 Hydroponic cultivation is one of the cultivation methods for cultivated plants such as vegetables and flowers (for example, Patent Document 1). The culture solution prescriptions used in hydroponic cultivation include horticultural test site prescriptions, Yamazaki prescriptions, and Otsuka House A prescriptions, and all of the component compositions of these prescriptions are the three essential elements for the growth of cultivated plants (nitrogen, It is composed mainly of phosphoric acid and potassium) by combining appropriate fertilizer components according to the type of target cultivated plant. Magnesium is one of the fertilizer components contained in the culture solution formulation next to the three elements because it greatly contributes to the growth of plants.

各処方の肥料成分の組成は、各肥料成分に関する栽培植物の分析結果や根からの吸収速度などを参考に、経験的に定められたものであり、通常の発育が確認される組成とされている。特に、必須の三要素である窒素、リン酸、カリウムは、古くから様々な種類の植物の肥料成分として用いられている。養液栽培の事業者の間には、従来の処方は経験的にベストな処方であり、それ以外の処方を試す余地はないという強い思い込みがあったため、従来の培養液処方が見直されることなく、使用され続けているのが実状である。 The composition of the fertilizer component of each prescription is empirically determined with reference to the analysis results of cultivated plants for each fertilizer component and the absorption rate from the roots, and is considered to be a composition that confirms normal growth. There is. In particular, the three essential elements, nitrogen, phosphoric acid, and potassium, have long been used as fertilizer components for various types of plants. There was a strong belief among the hydroponic growers that the conventional prescription was the best empirically and there was no room to try other prescriptions, so the conventional culture solution prescription was not reviewed. , The reality is that it continues to be used.

特開2003-174827号公報Japanese Unexamined Patent Publication No. 2003-174827 特開2017-221177号公報JP-A-2017-221177

本発明は上記事情に鑑みてなされたものであり、その目的は、野菜や花卉等の栽培植物の成長の促進に有効な成分組成の養液栽培用培養液及びそれを用いた養液栽培方法を提供することである。 The present invention has been made in view of the above circumstances, and an object of the present invention is a culture solution for hydroponic cultivation having a component composition effective for promoting the growth of cultivated plants such as vegetables and flowers, and a hydroponic cultivation method using the same. Is to provide.

本発明は、野菜類の品質の向上、及び野菜類の生育期間(栽培期間)の短縮を目標に、野菜類の養液栽培において従来から用いられてきた培養液処方を見直した結果、見い出したものである。野菜類の品質を表す指標には様々なものが考えられるが、本発明者は、まずは、抗酸化成分増加、残留硝酸塩の低下を目標とした。また、生育期間を30〜50%短縮することを目標とした。その結果、養液栽培用培養液に含まれるマグネシウムイオンが野菜類の成長を促進すること、さらには、野菜類の成長の時期によっては、培養液に含まれる硝酸イオンの存在がマグネシウムイオンによる成長促進作用を低下させることを見い出し、本発明を完成するに至った。 The present invention has been found as a result of reviewing the culture solution formulation conventionally used in the hydroponic cultivation of vegetables with the aim of improving the quality of vegetables and shortening the growing period (cultivation period) of vegetables. It is a thing. There are various possible indicators of the quality of vegetables, but the present inventor first aimed at increasing the antioxidant component and decreasing the residual nitrate. We also aimed to shorten the growing period by 30 to 50%. As a result, magnesium ions contained in the culture solution for nutrient solution cultivation promote the growth of vegetables, and further, depending on the time of growth of vegetables, the presence of nitrate ions contained in the culture solution causes growth by magnesium ions. We have found that it reduces the promoting action, and have completed the present invention.

すなわち、本発明に係る栽培植物の栽培方法の第1態様は、播種から収穫までの期間、植物体の生育に必要な肥料成分を含む培養液を用いて栽培する方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて収穫するまで栽培する期間である生育期間に分けたとき、
前記育苗期間において、マグネシウムイオンの濃度が24ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が4〜50ppmにある育苗用培養液を用いることを特徴とする。
That is, the first aspect of the cultivation method of a cultivated plant according to the present invention is a method of cultivating using a culture solution containing a fertilizer component necessary for the growth of a plant during the period from sowing to harvesting.
The period is the germination period, which is the period from sowing to germination in the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated in the seedling raising device until they grow to a predetermined size. When seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device and divided into a growing period, which is a period for cultivating until harvesting with the growing device.
During the seedling raising period, a seedling raising culture solution having a magnesium ion concentration in the range of 24 ppm to 120 ppm and a nitrate nitrogen concentration of 4 to 50 ppm is used.

栽培植物とは、一般的には野菜類、花卉類、果樹類、飼料作物等をいうが、本発明においては、その性質上、野菜類、花卉類等の養液栽培が行われる栽培植物を指す。育苗装置は、培養液を用いて、栽培植物を種子から発芽させ、所定の大きさの苗まで成長させることができる装置であればどのようなものでも良い。また、生育装置は、育苗装置において所定の大きさまで成長した苗を、培養液を用いて、収穫可能な状態まで生育させることができる装置であればどのようなものでも良い。さらに、本発明に係る養液栽培方法は、固定培地耕、水耕、噴霧耕のいずれの養液栽培にも適用可能である。なお、本明細書では、「ppm」は重量比の濃度を表す。 The cultivated plant generally refers to vegetables, flowers, fruit trees, forage crops, etc. However, in the present invention, a cultivated plant in which vegetables, flowers, etc. are hydrolyzed due to their nature is used. Point to. The seedling raising device may be any device as long as it can germinate cultivated plants from seeds and grow seedlings of a predetermined size using a culture solution. Further, the growth device may be any device as long as it can grow seedlings grown to a predetermined size in the seedling raising device to a state where they can be harvested by using a culture solution. Furthermore, the hydroponic cultivation method according to the present invention can be applied to any of the hydroponic cultivation of fixed medium cultivation, hydroponics, and spray cultivation. In addition, in this specification, "ppm" represents the concentration of the weight ratio.

本発明において注目すべきは、育苗用培養液に含まれる硝酸性窒素の濃度を従来処方よりも低くしたことである。野菜類や花卉類の養液栽培に用いられる一般的な従来処方の養液栽培用培養液における、硝酸性窒素の濃度は60〜240ppmの範囲にあり、特に、果菜類、葉菜類、花卉類の養液栽培に広く使用されている大塚A処方(OATアグリオ株式会社)による培養液(EC=1.8)の硝酸性窒素の濃度は161ppmであるところ、本発明に係る栽培植物の栽培方法では、育苗用培養液の硝酸性窒素の濃度は4〜50ppmと従来処方よりも低濃度の範囲にある。また、前記育苗用培養液のマグネシウムイオンの濃度は24ppm〜120ppmの範囲にある。野菜類や花卉類の養液栽培に用いられる一般的な従来処方の養液栽培用培養液におけるマグネシウムイオンの濃度は10〜40ppmの範囲にあるから、本発明に係る栽培植物の栽培方法で用いられる育苗用培養液のマグネシウムイオンの濃度範囲の下限付近の値は、従来処方の濃度範囲に含まれる。 What should be noted in the present invention is that the concentration of nitrate nitrogen contained in the culture solution for raising seedlings is lower than that of the conventional formulation. The concentration of nitrate nitrogen in the culture solution for hydroponic cultivation of general conventional formulations used for hydroponic cultivation of vegetables and flowers is in the range of 60 to 240 ppm, and in particular, fruit vegetables, leafy vegetables, and flowers. The concentration of nitrate nitrogen in the culture solution (EC = 1.8) according to the Otsuka A formulation (OAT Agrio Co., Ltd.), which is widely used for hydroponic cultivation, is 161 ppm. The concentration of nitrate nitrogen in the culture solution for raising seedlings is 4 to 50 ppm, which is in a lower concentration range than the conventional formulation. The concentration of magnesium ions in the seedling raising culture solution is in the range of 24 ppm to 120 ppm. Since the concentration of magnesium ions in the culture solution for hydroponic cultivation of a general conventional formulation used for hydroponic cultivation of vegetables and flowers is in the range of 10 to 40 ppm, it is used in the cultivation method of cultivated plants according to the present invention. The value near the lower limit of the magnesium ion concentration range of the seedling raising culture solution is included in the concentration range of the conventional formulation.

しかしながら、本発明では、育苗用培養液に含まれる硝酸性窒素の濃度が従来処方よりも低いため、マグネシウムイオンの濃度が従来処方と同程度であっても、従来処方よりも植物の成長を促進することができ、さらに、マグネシウムイオンの濃度が従来処方よりも高濃度であるときには、成長促進作用が増大する。
これは、培養液中に含まれる硝酸イオンを少なくすることで、分裂組織において細胞分裂が進んだことが理由であると考えられる。つまり、培養液中に硝酸イオンが多く含まれると、植物にとって優先順位の高い硝酸の吸収・還元に多くのエネルギーが消費され、細胞分裂に必要なエネルギーが不足する結果、分裂組織における細胞分裂が抑えられるため、植物に取り込まれたマグネシウムイオンによる細胞分裂の促進作用が発揮されない。しかし、分裂組織において細胞分裂が進むと、植物に取り込まれたマグネシウムイオンによって細胞分裂が速められ、その結果、成長が促進される。
However, in the present invention, since the concentration of nitrate nitrogen contained in the nursery culture solution is lower than that of the conventional formulation, even if the concentration of magnesium ions is about the same as that of the conventional formulation, the plant growth is promoted as compared with the conventional formulation. Furthermore, when the concentration of magnesium ions is higher than that of the conventional formulation, the growth promoting effect is increased.
It is considered that this is because the cell division progressed in the meristem by reducing the nitrate ion contained in the culture medium. In other words, if the culture medium contains a large amount of nitrate ions, a large amount of energy is consumed for absorption and reduction of nitrate, which is a high priority for plants, and as a result of lack of energy required for cell division, cell division in the meristem occurs. Since it is suppressed, the action of promoting cell division by magnesium ions taken up by plants is not exhibited. However, as cell division progresses in meristems, magnesium ions taken up by plants accelerate cell division, resulting in accelerated growth.

なお、植物に取り込まれたマグネシウムイオンは茎頂分裂組織及び根端分裂組織に独立的に作用して地上部の成長及び根の伸長を促進する。このとき、地上部の成長促進作用を発揮するマグネシウムイオンの至適濃度と根の伸長促進作用を発揮するマグネシウムイオンの至適濃度が異なる。
従って、地上部の成長促進が望まれる栽培植物(例えば葉物野菜)、或いは根の成長が望まれる栽培植物(例えば根菜類)によって、前記育苗用培養液のマグネシウムイオンの濃度を調整すると良い。また、マグネシウムイオンの濃度だけでなく、硝酸性窒素の濃度についても、栽培植物の種類によって調整すると良い。
Magnesium ions taken up by plants act independently on shoot apical meristems and root apical meristems to promote above-ground growth and root elongation. At this time, the optimum concentration of magnesium ion that exerts the growth promoting action of the above-ground part and the optimum concentration of magnesium ion that exerts the root elongation promoting action are different.
Therefore, it is preferable to adjust the concentration of magnesium ions in the seedling raising culture solution depending on the cultivated plant (for example, leafy vegetables) for which growth promotion of the above-ground part is desired or the cultivated plant (for example, root vegetables) for which root growth is desired. Moreover, not only the concentration of magnesium ions but also the concentration of nitrate nitrogen may be adjusted according to the type of cultivated plant.

ところで、植物が大きく成長すると光合成が活発になるため、硝酸の吸収・還元にエネルギーが消費されても、細胞分裂に必要なエネルギーが不足することがない。しかも、窒素は、植物の葉の成長に必要な肥料成分であることから、生育期間で用いる培養液には十分な量の窒素が含まれることが望ましい。 By the way, when a plant grows large, photosynthesis becomes active, so even if energy is consumed for absorption and reduction of nitric acid, the energy required for cell division is not insufficient. Moreover, since nitrogen is a fertilizer component necessary for the growth of plant leaves, it is desirable that the culture solution used during the growth period contains a sufficient amount of nitrogen.

そこで、本発明に係る栽培植物の養液栽培方法の第2態様は、播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて収穫するまで栽培する期間である生育期間に分けたとき、
前記生育期間において、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある生育用培養液を用いることを特徴とする。
上述の硝酸性窒素の濃度範囲は、経験的に植物の生育効率が優れているとされている範囲(つまり従来処方の濃度範囲)である。一方、マグネシウムイオンの上記濃度範囲は、従来処方の濃度範囲よりも高濃度の範囲である。培養液中の硝酸性窒素及びマグネシウムイオンの濃度範囲を上記濃度範囲にすることにより、従来処方の培養液を用いたときよりも生育期間を短縮することができる。
Therefore, the second aspect of the hydroponic cultivation method for cultivated plants according to the present invention is a method of cultivating using a culture solution containing a fertilizer component necessary for plant growth during the period from sowing to harvesting.
The period is the germination period, which is the period from sowing to germination in the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated in the seedling raising device until they grow to a predetermined size. When seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device and divided into a growing period, which is a period for cultivating until harvesting with the growing device.
During the growth period, a growth culture solution having a magnesium ion concentration in the range of 48 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 150 ppm to 200 ppm is used.
The above-mentioned concentration range of nitrate nitrogen is a range empirically considered to be excellent in plant growth efficiency (that is, the concentration range of the conventional formulation). On the other hand, the above-mentioned concentration range of magnesium ion is a range of higher concentration than the concentration range of the conventional formulation. By setting the concentration range of nitrate nitrogen and magnesium ions in the culture solution to the above concentration range, the growth period can be shortened as compared with the case of using the culture solution of the conventional formulation.

なお、上述の育苗用培養液及び生育用培養液には、マグネシウムイオン及び硝酸性窒素以外に、育苗期間における栽培植物の生育に必要な元素が必要に応じて含まれる。例えば、上記育苗用培養液及び生育用培養液には窒素以外の肥料の三要素であるリン、カリウムが含まれていても良い。また、硝酸性窒素だけでなく、アンモニア性窒素が含まれていても良い。さらに、マグネシウム以外の金属元素(カルシウムやホウ素、鉄、亜鉛、マンガン、銅、セレン、ニッケル、モリブデン等)のイオンが含まれていても良い。 In addition to magnesium ions and nitrate nitrogen, the above-mentioned seedling raising culture solution and growth culture solution contain elements necessary for the growth of cultivated plants during the seedling raising period, if necessary. For example, the seedling raising culture solution and the growth culture solution may contain phosphorus and potassium, which are three elements of fertilizer other than nitrogen. Further, not only nitrate nitrogen but also ammoniacal nitrogen may be contained. Further, ions of metal elements other than magnesium (calcium, boron, iron, zinc, manganese, copper, selenium, nickel, molybdenum, etc.) may be contained.

また、育苗用培養液は、育苗期間の全期間において用いても良いが、一部の期間にのみ用いても良い。同様に、生育用培養液は、生育期間の全期間において用いても良いが、一部の期間にのみ用いても良い。 Further, the culture solution for raising seedlings may be used for the entire period of the seedling raising period, but may be used only for a part of the period. Similarly, the growth culture medium may be used for the entire growth period, but may be used only for a part of the growth period.

また、栽培植物の根から吸収されたマグネシウムイオンは蒸散流によって葉まで運ばれるため、葉に含まれるマグネシウムの含有量の増加を期待できる。従って葉を食用とする葉物野菜であって、葉に含まれるマグネシウムの含有量の増加が望まれる植物を栽培する場合に、本発明に係る栽培方法は有効である。 In addition, since magnesium ions absorbed from the roots of cultivated plants are carried to the leaves by transpiration, an increase in the magnesium content in the leaves can be expected. Therefore, the cultivation method according to the present invention is effective when cultivating a leafy vegetable whose leaves are edible and in which an increase in the content of magnesium contained in the leaves is desired.

葉に含まれるマグネシウムの含有量の増加が望まれる植物の例として、コマツナを含むアブラナ科の野菜類が挙げられる。コマツナは本来、マグネシウムの含有量が多いところ、本発明に係る養液栽培方法を用いることにより、マグネシウム含有量を一層多くすることができる。また、コマツナ以外にも、チマサンチュ、コスレタス、グリーンバタビア等、種々の葉物野菜を上述の栽培方法を用いて栽培することにより、葉に含まれるマグネシウムイオンの量を高めた葉物野菜を得ることができる。 Examples of plants for which an increase in the magnesium content in leaves is desired include cruciferous vegetables including komatsuna. Komatsuna originally has a high magnesium content, but the magnesium content can be further increased by using the hydroponic cultivation method according to the present invention. In addition to komatsuna, various leafy vegetables such as chimasanchu, kosletas, and green batavia are cultivated using the above-mentioned cultivation method to obtain leafy vegetables with an increased amount of magnesium ions contained in the leaves. Can be done.

また、本発明に係る栽培植物の養液栽培方法の第3態様は、播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて、収穫時よりも所定時間前まで生育する期間である生育期間、該生育装置にて前記収穫時よりも所定時間前から該収穫時まで栽培する期間である収穫前期間に分けたとき、
前記育苗期間において、マグネシウムイオンの濃度が24ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が4〜50ppmの範囲にある育苗用培養液を用い、
前記収穫前期間において、窒素を含有せず、カルシウムを含有する養液を用い、さらに波長が490nm以下の可視光を照射することを特徴とする。
The third aspect of the hydroponic cultivation method for cultivated plants according to the present invention is a method of cultivating using a culture solution containing a fertilizer component necessary for plant growth during the period from sowing to harvesting.
The period is the germination period, which is the period from sowing to germination by the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated by the seedling raising device until they grow to a predetermined size. Seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device, and the growing period is a period during which the seedlings grow up to a predetermined time before the time of harvesting in the growing device, and from the time of harvesting in the growing device. When divided into the pre-harvest period, which is the period of cultivation from the predetermined time before to the time of harvest,
During the seedling raising period, a seedling raising culture solution having a magnesium ion concentration in the range of 24 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 4 to 50 ppm was used.
In the pre-harvest period, a nutrient solution containing calcium without containing nitrogen is used, and visible light having a wavelength of 490 nm or less is further irradiated.

また、本発明に係る栽培植物の養液栽培方法の第4態様は、播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて、収穫時よりも所定時間前まで生育する期間である生育期間、該生育装置にて前記収穫時よりも所定時間前から該収穫時まで栽培する期間である収穫前期間に分けたとき、
前記生育期間において、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある生育用培養液を用い、
前記収穫前期間において、窒素を含有せず、カルシウムを含有する養液を用い、さらに波長が490nm以下の可視光を照射することを特徴とする。
The fourth aspect of the hydroponic cultivation method for cultivated plants according to the present invention is a method of cultivating using a culture solution containing a fertilizer component necessary for plant growth during the period from sowing to harvesting.
The period is the germination period, which is the period from sowing to germination by the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated by the seedling raising device until they grow to a predetermined size. Seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device, and the growing period is a period during which the seedlings grow up to a predetermined time before the time of harvesting in the growing device, and from the time of harvesting in the growing device. When divided into the pre-harvest period, which is the period of cultivation from the predetermined time before to the time of harvest,
During the growth period, a growth culture medium having a magnesium ion concentration in the range of 48 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 150 ppm to 200 ppm was used.
In the pre-harvest period, a nutrient solution containing calcium without containing nitrogen is used, and visible light having a wavelength of 490 nm or less is further irradiated.

第3及び第4態様の栽培方法においては、前記波長が490nm以下の可視光を含む光の強度が、1平方メートル当たり80μmol以上であることが好ましい。 In the cultivation methods of the third and fourth aspects, the intensity of light including visible light having a wavelength of 490 nm or less is preferably 80 μmol or more per square meter.

第3及び第4態様の栽培方法における発芽期間、育苗期間、生育期間は、第1及び第2態様の栽培方法におけるそれらの期間と同じである。また、第3及び第4態様における収穫前期間は、1日間から5日間程度である。
第3及び第4態様の栽培方法は、収穫前期間を設けた点が、第1及び第2態様の栽培方法と異なる。詳しくは後述するように、収穫前期間における養液栽培は、収穫された栽培植物に含まれる抗酸化成分の含有量を増大させるために行われる。収穫前期間を設けたことにより、第3及び第4態様の栽培方法の栽培期間は、第1及び第2態様の栽培方法の栽培期間よりも長くなる。しかしながら、第3態様の栽培方法では育苗期間において上記育苗用培養液を用いたことにより、従来処方の培養液を用いて育苗期間の養液栽培を行った場合よりも生育期間が短縮される。また、第4態様の栽培方法では生育期間において上記生育用培養液を用いたことにより、従来処方の培養液を用いて生育期間の養液栽培を行った場合よりも生育期間が短縮される。第3態様及び第4態様のいずれの栽培方法においても、生育期間の短縮分により収穫前期間による延長分が相殺されるため、栽培期間全体としてみると、従来の栽培方法による栽培期間と同じか、もしくは従来の栽培方法による栽培期間よりも短縮することができる。
The germination period, seedling raising period, and growing period in the cultivation methods of the third and fourth aspects are the same as those periods in the cultivation methods of the first and second aspects. The pre-harvest period in the third and fourth aspects is about 1 to 5 days.
The cultivation methods of the third and fourth aspects differ from the cultivation methods of the first and second aspects in that a pre-harvest period is provided. As will be described in detail later, hydroponic cultivation in the pre-harvest period is carried out in order to increase the content of antioxidant components contained in the harvested cultivated plants. By providing the pre-harvest period, the cultivation period of the cultivation methods of the third and fourth aspects is longer than the cultivation period of the cultivation methods of the first and second aspects. However, in the cultivation method of the third aspect, since the above-mentioned seedling raising culture solution is used in the seedling raising period, the growing period is shortened as compared with the case where the seedling raising period is hydroponic cultivation using the culture solution of the conventional formulation. Further, in the cultivation method of the fourth aspect, since the above-mentioned growth culture solution is used in the growth period, the growth period is shortened as compared with the case where the nutrient solution cultivation in the growth period is carried out using the culture solution of the conventional formulation. In both the third and fourth aspects of the cultivation method, the shortened growth period offsets the extension due to the pre-harvest period. Therefore, the overall cultivation period is the same as the cultivation period by the conventional cultivation method. Or, it can be shortened compared to the cultivation period by the conventional cultivation method.

本発明の第1態様の栽培方法では、硝酸性窒素の濃度を、従来処方の養液栽培用培養液よりも低くし、且つマグネシウムイオンの濃度を、従来処方の養液栽培用培養液と同程度か、それよりも高くした育苗用培養液を用いて育苗期間の養液栽培を行ったことにより、マグネシウムイオンによる植物の地上部の成長及び根の伸長の促進作用を有効に発揮することができる。特に、培養液に含まれるマグネシウムイオンの濃度を従来処方の培養液に含まれるマグネシウムイオンの濃度よりも高くしたときは、マグネシウムを多く含む植物を作り出すことができる。 In the cultivation method of the first aspect of the present invention, the concentration of nitrate nitrogen is lower than that of the culture solution for nutrient solution cultivation of the conventional formulation, and the concentration of magnesium ion is the same as that of the culture solution for nutrient solution cultivation of the conventional formulation. By cultivating the seedlings in a nutrient solution during the seedling raising period using a culture solution for raising seedlings at a higher level or higher, it is possible to effectively exert the action of promoting the growth of the above-ground part of the plant and the growth of roots by magnesium ions. it can. In particular, when the concentration of magnesium ions contained in the culture solution is higher than the concentration of magnesium ions contained in the culture solution of the conventional formulation, a plant containing a large amount of magnesium can be produced.

本発明の第2態様の栽培方法では、硝酸性窒素の濃度を、植物の生育効率が優れている濃度範囲とし、且つ、マグネシウムイオンの濃度を、従来処方の養液栽培用培養液よりも高くした生育用培養液を用いて生育期間の養液栽培を行ったことにより、従来処方の養液栽培用培養液を用いたときよりも育成期間を短縮することができる。しかも、マグネシウムイオンの濃度を高めることで植物の成長を促進したため、植物の成長促進に加えて、マグネシウムを多く含む植物を作り出すことができるという効果が得られる。 In the cultivation method of the second aspect of the present invention, the concentration of nitrate nitrogen is set in the concentration range in which the growth efficiency of the plant is excellent, and the concentration of magnesium ion is higher than that of the conventional culture solution for hydroponic cultivation. By performing the hydroponic cultivation during the growing period using the grown culture solution, the growing period can be shortened as compared with the case where the conventionally formulated nutrient solution for hydroponic cultivation is used. Moreover, since the growth of plants is promoted by increasing the concentration of magnesium ions, in addition to promoting the growth of plants, it is possible to produce a plant containing a large amount of magnesium.

また、本発明の第3及び第4態様の栽培方法は、第1及び第2態様の栽培方法において、さらに、収穫前に、窒素を含有せず、カルシウムを含有する養液を用い、さらに波長が490nm以下の可視光を照射して養液栽培を行う期間(収穫前期間)を設けたものである。このような収穫前期間を設けたことにより、本発明の第3及び第4態様の栽培方法では、上述した第1及び第2態様の栽培方法によって得られる効果に加えて、グルタチオンに代表される抗酸化成分を多く含む植物を作り出すことができるという効果が得られる。 Further, in the cultivation methods of the third and fourth aspects of the present invention, in the cultivation methods of the first and second aspects, a nutrient solution containing calcium without containing nitrogen is used before harvesting, and further wavelengths are used. Is provided with a period (pre-harvest period) for hydroponic cultivation by irradiating visible light of 490 nm or less. By providing such a pre-harvest period, in the cultivation methods of the third and fourth aspects of the present invention, in addition to the effects obtained by the cultivation methods of the first and second aspects described above, glutathione is typified. The effect of being able to produce a plant containing a large amount of antioxidant components can be obtained.

本発明の一実施例に係る養液栽培方法の栽培期間の説明図。The explanatory view of the cultivation period of the nutrient solution cultivation method which concerns on one Example of this invention. 実験1の結果を示すものであり、Mg濃度が12ppmの培養液を用いて養液栽培した4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の播種から2週間後の発育の様子を示す写真。It shows the result of Experiment 1 and shows the state of growth 2 weeks after sowing of 4 kinds of vegetables (Chimasanchu, Komatsuna, Kosletas, Green Batavia) cultivated in a hydroponic solution using a culture solution having a Mg concentration of 12 ppm. Photo. 実験1の結果を示すものであり、Mg濃度が24ppmの培養液を用いて養液栽培した4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の播種から2週間後の発育の様子を示す写真。It shows the result of Experiment 1 and shows the state of growth 2 weeks after sowing of 4 kinds of vegetables (Chimasanchu, Komatsuna, Kosletas, Green Batavia) cultivated in a hydroponic solution using a culture solution having a Mg concentration of 24 ppm. Photo. 実験1の結果を示すものであり、Mg濃度が36ppmの培養液を用いて養液栽培した4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の播種から2週間後の発育の様子を示す写真。It shows the result of Experiment 1 and shows the state of growth 2 weeks after sowing of 4 kinds of vegetables (Chimasanchu, Komatsuna, Kosletas, Green Batavia) cultivated in a hydroponic solution using a culture solution having a Mg concentration of 36 ppm. Photo. 実験1の結果を示すものであり、Mg濃度が48ppmの培養液を用いて養液栽培した4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の播種から2週間後の発育の様子を示す写真。It shows the result of Experiment 1 and shows the state of growth 2 weeks after sowing of 4 kinds of vegetables (Chimasanchu, Komatsuna, Kosletas, Green Batavia) cultivated in a hydroponic solution using a culture solution having a Mg concentration of 48 ppm. Photo. 実験1の結果を示すものであり、Mg濃度が96ppmの培養液を用いて養液栽培した4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の播種から2週間後の発育の様子を示す写真。It shows the result of Experiment 1 and shows the state of growth 2 weeks after sowing of 4 kinds of vegetables (Chimasanchu, Komatsuna, Kosletas, Green Batavia) cultivated in a hydroponic solution using a culture solution having a Mg concentration of 96 ppm. Photo. 実験1の結果を示すものであり、コマツナの地上部(a)と根(b)の生重量と培養液中のマグネシウムイオン濃度との関係を示すグラフ。It shows the result of Experiment 1, and is the graph which shows the relationship between the raw weight of the above-ground part (a) and root (b) of Komatsuna, and the magnesium ion concentration in a culture solution. 実験1の結果を示すものであり、Mg濃度と根及び地上部の発育促進効果の関係を示す図。The figure which shows the result of Experiment 1 and shows the relationship between Mg concentration and the growth promotion effect of a root and an above-ground part. 実験2の結果を示すものであり、Mg濃度が48ppm、硝酸性N濃度が3.05〜78.2ppmの培養液を用いて育苗装置で養液栽培したコマツナの成長の様子を示す写真(a)〜(f)。The result of Experiment 2 is shown, and the photograph (a) which shows the growth state of the Japanese mustard spinach which was hydroly cultivated by the seedling raising device using the culture solution of Mg concentration 48ppm and nitrate N concentration 3.05-78.2ppm. )-(F). 実験2の結果を示すものであり、Mg濃度が12ppm、硝酸性N濃度が4.6〜184ppmの培養液を用いて育苗装置で養液栽培したコマツナの成長の様子を示す写真。It shows the result of Experiment 2, and is a photograph which shows the growth state of the Japanese mustard spinach cultivated by a seedling raising device using a culture solution having a Mg concentration of 12 ppm and a nitrate N concentration of 4.6 to 184 ppm. 実験2の結果を示すものであり、Mg濃度が24ppm、硝酸性N濃度が4.6〜184ppmの培養液を用いて育苗装置で養液栽培したコマツナの成長の様子を示す写真。It shows the result of Experiment 2, and is a photograph which shows the growth state of the Japanese mustard spinach cultivated by a seedling raising device using a culture solution having a Mg concentration of 24 ppm and a nitrate N concentration of 4.6 to 184 ppm. 実験2の結果を示すものであり、Mg濃度が48ppm、硝酸性N濃度が4.6〜184ppmの培養液を用いて育苗装置で養液栽培したコマツナの成長の様子を示す写真。It shows the result of Experiment 2, and is a photograph which shows the growth state of Komatsuna which was cultivated by a seedling raising device using a culture solution having a Mg concentration of 48 ppm and a nitrate N concentration of 4.6 to 184 ppm. 実験2の結果を示すものであり、N濃度と根の伸長促進効果の関係を示す図。It shows the result of Experiment 2, and is the figure which shows the relationship between N + concentration and root growth promotion effect. 実験3の結果を示すものであり、生育期間におけるチマサンチュの成長量を示すグラフ。The graph which shows the result of Experiment 3 and shows the growth amount of Chimasanchu in the growth period. 実験4の結果を示すものであり、生育期間におけるチマサンチュの成長量を示すグラフ。The graph which shows the result of Experiment 4 and shows the growth amount of Chimasanchu in the growth period. 実験5の結果を示すものであり、生育期間におけるチマサンチュの成長量を示すグラフ。The graph which shows the result of Experiment 5 and shows the growth amount of Chimasanchu in the growth period. 実験6の結果を示すものであり、生育期間におけるチマサンチュの成長量を示すグラフ。The graph which shows the result of Experiment 6 and shows the growth amount of Chimasanchu in the growth period. 実験7の結果を示すものであり、生育期間におけるコマツナの成長量を示すグラフ。The graph which shows the result of Experiment 7 and shows the growth amount of Japanese mustard spinach in the growing period. 実験8の結果を示すものであり、生育期間におけるコスレタスの成長量を示すグラフ。The graph which shows the result of Experiment 8 and shows the growth amount of the lettuce in the growing period. 実験9の結果を示すものであり、生育期間におけるグリーンバタビアの成長量を示すグラフ。The graph which shows the result of Experiment 9 and shows the growth amount of green Batavia in the growth period. 実験10の結果を示すものであり、生育装置で3週間養液栽培した後、収穫した4種類の葉物野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)のMg含有量とその増加倍数を示す図。It shows the result of Experiment 10, and shows the Mg content of four kinds of leafy vegetables (Chimasanchu, Komatsuna, Kosletas, and Green Batavia) harvested after hydroponic cultivation for 3 weeks in a growing device and the multiplication factor thereof. .. 実験11の結果を示すものであり、生育期間におけるコマツナの成長量を示すグラフ。The graph which shows the result of experiment 11 and shows the growth amount of Japanese mustard spinach in the growing period. 実験12の結果を示すものであり、生育期間におけるグリーンウェーブの成長量を示すグラフ。The graph which shows the result of Experiment 12 and shows the growth amount of the green wave in the growth period. 実験13の結果を示すものであり、実験区及び比較区のコマツナのORAC値と、抗酸化成分の含有量を示すグラフ。The graph which shows the result of experiment 13 and shows the ORAC value of Komatsuna in the experimental group and the comparative group, and the content of an antioxidant component. 実験13の結果を示すものであり、実験区及び比較区のグリーンバタビアのORAC値と、抗酸化成分の含有量を示すグラフ。The graph which shows the result of experiment 13 and shows the ORAC value of green Batavia of the experimental group and the comparative group, and the content of an antioxidant component. 通常の栽培方法で得られた野菜に含まれるグルタチオンの含有量。The content of glutathione contained in vegetables obtained by normal cultivation methods. 特許文献2に記載されている方法を用いてコマツナ、コマツナ紫、チマサンチュを養液栽培したときの、培養液中のCa量と収穫後のコマツナ、コマツナ紫、チマサンチュのORAC値との関係を示す図。The relationship between the amount of Ca in the culture solution and the ORAC value of Komatsuna, Komatsuna purple, and Chimasanchu after harvesting when Komatsuna, Komatsuna purple, and Chimasanchu are cultivated in a hydroponic solution using the method described in Patent Document 2 is shown. Figure.

以下、本発明に係る栽培方法及び養液栽培用培養液について、野菜類を用いた実施例を参照しつつ説明するが、本発明は、野菜類、花卉などの養液栽培が可能な栽培植物全般に適用可能である。 Hereinafter, the cultivation method and the culture solution for hydroponic cultivation according to the present invention will be described with reference to examples using vegetables, but the present invention is a cultivated plant capable of hydroponic cultivation of vegetables, flowers and the like. Applicable to all.

実施例では、野菜類として葉物野菜であるチマサンチュ、コマツナ、コスレタス、グリーンバタビア、チンゲンサイ、リーフレタス、シュンギク、グリーンウェーブを用いた。チマサンチュ、コスレタス、グリーンバタビア、リーフレタス、シュンギク、グリーンウェーブはキク科の野菜であり、コマツナ、チンゲンサイはアブラナ科の野菜である。 In the examples, leafy vegetables such as chimasanchu, komatsuna, komatsuna, green batavia, bok choy, leaf lettuce, garland chrysanthemum, and green wave were used as vegetables. Chimasanchu, Kosletas, Green Batavia, Leaf Lettuce, Crowndaisy, and Green Wave are vegetables of the Asteraceae family, and Komatsuna and Bok Choy are vegetables of the Brassicaceae family.

(1)栽培装置
育苗装置:この装置は、培養液が貯留される容器本体と、その上に配置される複数の育苗ベースと、容器本体に接続された培養液の供給路及び排出路並びにポンプを備えて、供給路及び排出路によって容器本体内に対する培養液の供給や排出が行われる。各育苗ベースには播種用の穴を有し、その穴に1個ずつ種が収容される。育苗ベースはその下部が培養液内に浸漬しており、前記穴に入れられた種は培養液中に浸漬する。育苗装置は、野菜類の栽培期間のうち播種から発芽までの期間(発芽期間)及び発芽から所定の大きさに成長するまでの期間(育苗期間)、用いられる。
(1) Cultivation device Seedling raising device: This device includes a container body in which the culture solution is stored, a plurality of seedling raising bases arranged on the container body, a supply path and a discharge path of the culture solution connected to the container body, and a pump. The culture solution is supplied and discharged into the container body through the supply channel and the discharge channel. Each seedling raising base has a hole for sowing, and one seed is housed in the hole. The lower part of the seedling raising base is immersed in the culture solution, and the seeds placed in the holes are immersed in the culture solution. The seedling raising device is used during the period from sowing to germination (germination period) and the period from germination to growth to a predetermined size (seedling raising period) in the cultivation period of vegetables.

生育装置:この装置は、培養液が貯留される容器本体と、該容器本体の上に配置されるプラスチック製のパネルと、容器本体に接続された培養液の供給路及び排出路並びにポンプを備えている。育苗装置と同様、培養液の供給路及び排出路によって容器本体内に対する培養液の供給や排出が行われる。パネルは多数の孔を有し、各孔の上に上記育苗ベースが配置される。育苗ベースで成長した植物体の根は孔を通して培養液中に浸漬される。上述の育苗装置にて所定の大きさに成長した苗は生育装置に移植され、該生育装置にて収穫まで栽培される。つまり、生育装置は、野菜類の栽培期間のうち、所定の大きさに成長した苗を収穫するまで栽培する期間(生育期間)、用いられる。 Growth device: This device includes a container body in which the culture solution is stored, a plastic panel arranged on the container body, a supply path and a discharge path for the culture solution connected to the container body, and a pump. ing. Similar to the seedling raising device, the culture solution is supplied and discharged into the container body through the culture solution supply path and the discharge path. The panel has a large number of holes, and the seedling raising base is placed on each hole. The roots of plants grown on a nursery basis are immersed in the culture medium through the pores. Seedlings grown to a predetermined size by the above-mentioned seedling raising device are transplanted to the growing device and cultivated by the growing device until harvest. That is, the growing device is used during the growing period of vegetables until the seedlings grown to a predetermined size are cultivated (growth period).

(2)培養液の調製
本実施例では、培養液として、大塚アグリテクノA処方(以下「大塚A処方」)を標準処方として、この大塚A処方による培養液(以下「大塚A処方培養液」という)、大塚A処方培養液のマグネシウム(Mg)濃度を変更した培養液(以下「Mg調整A処方培養液」という)、及び本発明者の独自の処方による培養液(以下「TO処方培養液」という)を用いた。以下の表1に大塚A処方の窒素(N)濃度及びMg濃度を示す。なお、表1中、ppmは、重量比率を示す。また、各処方による培養液に含まれるマグネシウムはイオン(Mg2+)として存在するが、本明細書では、便宜上、マグネシウム及びマグネシウムイオンの両方を「Mg」と表記することとする。
(2) Preparation of culture solution In this example, the Otsuka Agritechno A prescription (hereinafter, “Otsuka A prescription”) is used as the standard prescription, and the culture solution according to this Otsuka A prescription (hereinafter, “Otsuka A prescription culture solution”” is used. ), A culture solution in which the magnesium (Mg) concentration of the Otsuka A prescription culture solution is changed (hereinafter referred to as "Mg-adjusted A prescription culture solution"), and a culture solution according to the present invention's original formulation (hereinafter "TO prescription culture solution"). ") Was used. Table 1 below shows the nitrogen (N) concentration and Mg concentration of Otsuka A formulation. In Table 1, ppm indicates a weight ratio. Further, magnesium contained in the culture solution according to each formulation exists as an ion (Mg 2+ ), but in the present specification, both magnesium and magnesium ion are referred to as "Mg" for convenience.

Mg調整A処方培養液は、A処方培養液に塩化マグネシウムを添加してMg濃度を変更した。また、TO処方培養液は、以下に示す薬剤を用い、以下の手順で調製した。 Magnesium chloride was added to the Mg-adjusted A-formulation culture solution to change the Mg concentration. In addition, the TO prescription culture solution was prepared by the following procedure using the following drugs.

(2−1)ストック養液の調製
2種類のストック養液を調製した。各ストック養液の成分組成は以下の通りである。
<第1ストック養液>
・KNO 5g/L
・KSO 50g/L
・リン酸カリウム 30g/L
・EDTA−Fe(Na) 20g/L
・微量元素溶液 10mL/L
なお、微量元素溶液は、銅、亜鉛、マンガン等の肥料成分として一般的な元素を含有する。
(2-1) Preparation of stock nutrient solution Two types of stock nutrient solution were prepared. The composition of each stock nutrient solution is as follows.
<1st stock nutrient solution>
· KNO 3 5g / L
・ K 2 SO 4 50g / L
・ Potassium phosphate 30g / L
・ EDTA-Fe (Na) 20 g / L
・ Trace element solution 10mL / L
The trace element solution contains elements that are common as fertilizer components such as copper, zinc, and manganese.

<第2ストック養液>
・大塚ハウス2号 X g/L
・MgCl・6HO Y g/L (X+Y=140g/L)
<Second stock nutrient solution>
・ Otsuka House No. 2 X g / L
· MgCl 2 · 6H 2 O Y g / L (X + Y = 140g / L)

(2−2)TO処方培養液の調製
XとYの比率を異ならせた複数の第2ストック養液を調製し、該第2ストック養液と1種類の第1ストック養液を同量ずつ水に加えて、各ストック溶液を約150倍に希釈することにより、様々なMg濃度の培養液を調製した。
例えば、以下の表2に示すように、大塚ハウス2号を100g/L、80g/L、60g/L、MgCl・6HOを40g/L、60g/L、80g/L含有する3種類の第2ストック養液(第2−1〜第2−3養液とする)を調製する。そして、約9Lの水に、第1ストック養液及び第2ストック養液をそれぞれ67mLずつ加えた後、全量が10Lとなるように水を追加する。この結果、第1ストック養液と第2−1〜第2−3ストック養液を用いて調製された培養液中のMg濃度は、それぞれ、31.9ppm、47.8ppm、63.7ppmとなり、硝酸性N濃度は、いずれも4.6ppmとなる。
(2-2) Preparation of TO-prescribed culture solution Prepare a plurality of second stock nutrient solutions having different ratios of X and Y, and add the same amount of the second stock nutrient solution and one type of first stock nutrient solution. Cultures of various Mg concentrations were prepared by diluting each stock solution about 150-fold in addition to water.
For example, as shown in Table 2 below, Otsuka House No. 2 to 100g / L, 80g / L, 60g / L, MgCl 2 · 6H 2 O and 40g / L, 60g / L, 80g / L containing three kinds 2nd stock nutrient solution (referred to as 2-1 to 2-3 nutrient solution) is prepared. Then, 67 mL each of the first stock nutrient solution and the second stock nutrient solution is added to about 9 L of water, and then water is added so that the total volume becomes 10 L. As a result, the Mg concentrations in the culture broth prepared using the first stock nutrient solution and the 2-1 to 2-3 stock nutrient solutions were 31.9 ppm, 47.8 ppm, and 63.7 ppm, respectively. The nitrate N concentration is 4.6 ppm in each case.

一方、TO処方培養液中の硝酸性N濃度は、上述した方法でMg濃度を調整する際に、KNOを適量追加することにより調整するか、もしくは、第1ストック養液中のKNO濃度を調整することにより行った。On the other hand, the nitrate N concentration in the TO prescription culture solution is adjusted by adding an appropriate amount of KNO 3 when adjusting the Mg concentration by the above-mentioned method, or the KNO 3 concentration in the first stock nutrient solution. Was performed by adjusting.

なお、本実施例では、大塚ハウス2号とMgCl・6HOの比率を変更した複数種の第2ストック養液を作製し、これらと1種類の第1ストック養液を水で150倍に希釈することにより、種々のMg濃度の培養液を作製した。第1ストック養液を1種類にした理由は、マグネシウムによる野菜類の促進効果に対する第1ストック養液に含まれる成分組成の影響を抑えるためであるが、上述した以外の方法で培養液を調製しても良い。例えば、それぞれ1種類の第1ストック養液及び第2ストック養液を調製し、第1ストック養液と第2ストック養液を同量ずつ水で希釈する場合の希釈倍率を異ならせる方法、それぞれ1種類の第1ストック養液及び第2ストック養液を調製し、培養液中に含まれる第1ストック養液の量と第2ストック養液の量を異ならせる(つまり、第1ストック養液と第2ストック養液の希釈倍率を異ならせる)ことにより、Mgの濃度や硝酸性Nの濃度が異なる培養液を調製する方法、等が挙げられる。In this embodiment, to prepare a second stock nutrient solution more kinds of different ratios of Otsuka House No. 2 and MgCl 2 · 6H 2 O, 0.99 times these and one of the first stock nutrient solution with water By diluting with, culture solutions having various Mg concentrations were prepared. The reason for using one type of the first stock nutrient solution is to suppress the influence of the component composition contained in the first stock nutrient solution on the promoting effect of magnesium on vegetables, but the culture solution is prepared by a method other than the above. You may. For example, a method in which one type of first stock nutrient solution and second stock nutrient solution are prepared, and the same amounts of the first stock nutrient solution and the second stock nutrient solution are diluted with water at different dilution ratios. Prepare one kind of first stock nutrient solution and second stock nutrient solution, and make the amount of the first stock nutrient solution and the amount of the second stock nutrient solution contained in the culture solution different (that is, the first stock nutrient solution). And a method of preparing a culture solution having a different concentration of Mg and a concentration of nitrate N by different dilution ratios of the second stock nutrient solution and the like.

(3)栽培期間
図1に示すように、栽培期間を、播種から発芽までの期間(発芽期間)、発芽から移植までの期間(育苗期間)、移植から収穫までの期間(生育期間)に分けた。例えばコマツナを従来の一般的な成分組成の培養液で養液栽培した場合、発芽期間は約3〜5日間、育苗期間は約9〜10日間、生育期間は4週間程度であり、播種から収穫までは約6週間である。ただし、複数の種子を育苗装置に播種した場合、全ての種子が一斉に発芽するわけではない。
(3) Cultivation period As shown in Fig. 1, the cultivation period is divided into the period from sowing to germination (germination period), the period from germination to transplantation (seedling raising period), and the period from transplantation to harvest (growth period). It was. For example, when komatsuna is cultivated in a nutrient solution with a conventional culture solution having a general composition, the germination period is about 3 to 5 days, the seedling raising period is about 9 to 10 days, and the growing period is about 4 weeks. It takes about 6 weeks. However, when a plurality of seeds are sown in a seedling raising device, not all seeds germinate at the same time.

そこで、以下の実験では、栽培日数を揃えるため、播種から4日目までを発芽期間とし、播種後4日目から14日目までを育苗期間とした。そして、播種後14日目に育苗装置で成長した植物体を該育苗装置から生育装置に移植し、その後3週間ないし4週間、生育装置で養液栽培した。つまり、播種後14日目からの3〜4週間が生育期間となる。また、実験13では、生育期間の後、さらに3日間、所定の収穫前処理養液を用いて養液栽培を行った(収穫前期間)。収穫前処理溶液については後述する。発芽期間では、発芽種子に対する培養液の成分組成の影響を揃えるため、水を用い、育苗期間及び生育期間ではTO処方培養液、A処方培養液、又はMg調整A処方培養液を用いた。 Therefore, in the following experiments, in order to make the number of cultivation days uniform, the germination period was set to the 4th day after sowing, and the seedling raising period was set to the 4th to 14th days after sowing. Then, on the 14th day after sowing, the plants grown in the seedling raising device were transplanted from the seedling raising device to the growing device, and then hydroponic cultivation was carried out in the growing device for 3 to 4 weeks. That is, the growing period is 3 to 4 weeks from the 14th day after sowing. Further, in Experiment 13, hydroponic cultivation was carried out using a predetermined pre-harvest-treated nutrient solution for another 3 days after the growing period (pre-harvest period). The pre-harvest treatment solution will be described later. In the germination period, water was used in order to make the influence of the component composition of the culture solution on the germinated seeds uniform, and in the seedling raising period and the growing period, the TO prescription culture solution, the A prescription culture solution, or the Mg-adjusted A prescription culture solution was used.

<実験1>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、4種類の野菜(チマサンチュ、コマツナ、コスレタス、グリーンバタビア)の養液栽培を行った。
育苗期間の培養液として、Mg濃度が12ppm、24、36、48、96ppm、120ppmのTO処方培養液を用い、生育期間の培養液としてA処方培養液(EC=1.8)を用いた。TO処方培養液の硝酸性N濃度は4.6ppm、A処方培養液の硝酸性N濃度は161ppmである。
なお、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 1>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of four kinds of vegetables (chimasanchu, komatsuna, komatsuna, green batavia) over the above-mentioned cultivation period (germination period, seedling raising period and growing period). went.
TO-prescribed cultures having Mg concentrations of 12 ppm, 24, 36, 48, 96 ppm, and 120 ppm were used as the cultures during the seedling raising period, and A-prescribed cultures (EC = 1.8) were used as the cultures during the growing period. The nitrate N concentration of the TO prescription culture solution is 4.6 ppm, and the nitrate N concentration of the A formulation culture solution is 161 ppm.
In the entire cultivation period, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting.

(2)結果
図2A〜図2Eは、育苗期間においてMg濃度が12ppm〜96ppmのTO処方培養液を用いて養液栽培を行った4種類の野菜の、播種から2週間経過した時点における発育の様子を示す写真である。図2A〜図2Eから明らかなように、Mg濃度が12ppmのTO処方培養液を用いた場合より、Mg濃度が24〜96ppmのTO処方培養液を用いた場合の方が地上部及び根の両方の発育が良かった。
(2) Results FIGS. 2A to 2E show the growth of four kinds of vegetables that were hydroponicly cultivated using a TO prescription culture solution having a Mg concentration of 12 ppm to 96 ppm during the seedling raising period, two weeks after sowing. It is a photograph showing the situation. As is clear from FIGS. 2A to 2E, when the TO prescription culture solution having a Mg concentration of 24 to 96 ppm was used, both the above-ground part and the root were used, as compared with the case where the TO prescription culture solution having a Mg concentration of 12 ppm was used. The growth was good.

図3(a)、(b)は、生育期間を経て収穫したコマツナ(つまり、生育装置に移植した後、3週間目に収穫したコマツナ)の地上部と根の生重量と、育苗期間に用いたTO処方培養液中のMg濃度との関係を示している。図3(a)、(b)のグラフにおいて横軸はMg濃度(ppm)を、縦軸は地上部又は根の移植後3週間目の生重量(g)を表している。グラフ上の各点は3個体の平均値である。 3 (a) and 3 (b) show the raw weights of the above-ground parts and roots of Komatsuna harvested after the growing period (that is, Komatsuna harvested 3 weeks after being transplanted to the growing apparatus) and used for the seedling raising period. The relationship with the Mg concentration in the TO prescription culture solution was shown. In the graphs of FIGS. 3A and 3B, the horizontal axis represents the Mg concentration (ppm), and the vertical axis represents the raw weight (g) 3 weeks after the above-ground part or root transplantation. Each point on the graph is the average value of 3 individuals.

図4は、図3(a)、(b)の結果から求めた、Mg濃度と根及び地上部の発育促進効果の関係を示す。図4では、Mg濃度が12ppmのTO処方培養液を用いたときの発育量を基準とし、これに対する相対的促進度を「+」の数で表した。 FIG. 4 shows the relationship between the Mg concentration and the growth promoting effect of the root and the above-ground part, which was obtained from the results of FIGS. 3 (a) and 3 (b). In FIG. 4, the growth amount when a TO prescription culture solution having an Mg concentration of 12 ppm was used was used as a reference, and the relative promotion degree with respect to this was represented by the number of “+”.

実験1では、育苗期間(発芽から移植まで)においてTO処方培養液を用い、生育期間においてA処方培養液(Mg濃度=24ppm)を用いた。つまり、生育装置に移植後の3週間は全ての野菜をMg濃度が同じ培養液で養液栽培しているにもかかわらず、育苗期間に用いた培養液のMg濃度の違いによって地上部及び根の発育量が異なる結果となった。このことから、育苗期間において根から取り込まれたMg(マグネシウムイオン)は、移植後の植物体の成長・発育にも関与していることが推測された。 In Experiment 1, the TO prescription culture solution was used during the seedling raising period (from germination to transplantation), and the A prescription culture solution (Mg concentration = 24 ppm) was used during the growth period. In other words, even though all the vegetables were cultivated in nutrient solution with the same Mg concentration for 3 weeks after transplanting to the growth device, the above-ground part and roots were cultivated due to the difference in Mg concentration of the culture solution used during the seedling raising period. The result was that the amount of growth was different. From this, it was speculated that Mg (magnesium ion) taken in from the roots during the seedling raising period is also involved in the growth and development of the plant after transplanting.

また、地上部については、Mg濃度が12〜72ppmの範囲においてMg濃度の増加に伴い生重量が増加し、72〜120ppmの範囲においてMg濃度の増加に伴い生重量が減少した。また、根についてはMg濃度が12〜48ppmの範囲においてMg濃度の増加に伴い生重量が増加し、48〜120ppmの範囲においてMg濃度の増加に伴い生重量が減少した。つまり、発育促進効果を示す至適Mg濃度は根と地上部とで異なることが分かった。このことは、地上部に対するマグネシウムイオンの成長促進作用が根に及ぶのではなく、また、その逆でもないこと、言い換えると、地上部の分裂組織及び根の分裂組織のそれぞれにマグネシウムイオンが作用して成長が促進されることを意味すると思われた。 In the above-ground part, the raw weight increased as the Mg concentration increased in the range of 12 to 72 ppm, and the raw weight decreased as the Mg concentration increased in the range of 72 to 120 ppm. Regarding roots, the raw weight increased as the Mg concentration increased in the range of 12 to 48 ppm, and the raw weight decreased as the Mg concentration increased in the range of 48 to 120 ppm. In other words, it was found that the optimum Mg concentration showing the growth promoting effect differs between the root and the above-ground part. This means that the growth-promoting action of magnesium ions on the above-ground part does not extend to the roots, and vice versa, in other words, magnesium ions act on the meristems of the above-ground parts and the meristems of the roots, respectively. It seemed to mean that growth was promoted.

従って、根の成長が地上部の成長に優先する時期、あるいはその逆の時期に応じて、培養液のMg濃度を適切な値に設定することにより、野菜の発育速度を調整することが可能であり、播種から収穫までの期間を短縮することができることが推測された。 Therefore, it is possible to adjust the growth rate of vegetables by setting the Mg concentration of the culture solution to an appropriate value according to the time when root growth is prioritized over the growth of the above-ground part or vice versa. It was speculated that the period from sowing to harvesting could be shortened.

<実験2>
(1)条件
上述した育苗装置を用いて、発芽期間及び育苗期間、コマツナを養液栽培した。育苗期間では、Mg濃度を12ppm、24ppm、48ppmに調整するとともに、硝酸性N濃度を3.05ppm(KNO=3.8g/L)、4.6ppm(KNO=5g/L)、13.8ppm(KNO=15g/L)、23ppm(KNO=25g/L)、41.4ppm(KNO=45g/L)、78.2ppm(KNO=85g/L)、184ppm(KNO=200g/L)に調整したTO処方培養液を用いた。
なお、発芽期間及び育苗期間では、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 2>
(1) Conditions Komatsuna was cultivated in a hydroponic solution during the germination period, the seedling raising period, and the seedling raising device described above. During the seedling raising period, the Mg concentration was adjusted to 12 ppm, 24 ppm, and 48 ppm, and the nitrate N concentration was 3.05 ppm (KNO 3 = 3.8 g / L), 4.6 ppm (KNO 3 = 5 g / L), 13. 8 ppm (KNO 3 = 15 g / L), 23 ppm (KNO 3 = 25 g / L), 41.4 ppm (KNO 3 = 45 g / L), 78.2 ppm (KNO 3 = 85 g / L), 184 ppm (KNO 3 = 200 g) A TO prescription culture solution adjusted to / L) was used.
During the germination period and the seedling raising period, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting.

(2)結果
図5は、Mg濃度が48ppmであり、且つ硝酸性N濃度が3.05ppm、4.6ppm、13.8ppm、23ppm、41.4ppm、78.2ppmである6種類の培養液を用いたときの、種子の播種から2週間経過後のコマツナの成長の様子を示す写真である。これらの写真に示すように、地上部の成長量については、硝酸性N濃度が3.05ppm、41.4ppm、78.2ppmのときに大きく、硝酸性N濃度が4.6〜23ppmのときに小さかった。一方、根の伸長量については、硝酸性N濃度が4.6ppm〜23ppmのとき(図5の(b)〜(d))に大きく、硝酸性N濃度が3.05ppm、41.4ppm、78.2ppmのとき(図5の(a)、(e)、(f))に小さかった。
(2) Results Fig. 5 shows six types of culture solutions having a Mg concentration of 48 ppm and a nitrate N concentration of 3.05 ppm, 4.6 ppm, 13.8 ppm, 23 ppm, 41.4 ppm, and 78.2 ppm. It is a photograph which shows the state of the growth of Japanese mustard spinach two weeks after sowing of a seed when used. As shown in these photographs, the amount of growth in the above-ground part is large when the nitrate N concentration is 3.05 ppm, 41.4 ppm, and 78.2 ppm, and when the nitrate N concentration is 4.6 to 23 ppm. It was small. On the other hand, the amount of root elongation was large when the nitrate N concentration was 4.6 ppm to 23 ppm ((b) to (d) in FIG. 5), and the nitrate N concentration was 3.05 ppm, 41.4 ppm, 78. At 2 ppm ((a), (e), (f) in FIG. 5), it was small.

図6A〜図6Cは、Mg濃度が12ppm、24ppm、48ppmであり、且つそれぞれのMg濃度について硝酸性N濃度が4.6ppm(5g/L)、13.8ppm(15g/L)、23ppm(25g/L)、41.4ppm(45g/L)、78.2ppm(85g/L)、184ppm(200g/L)である18種類の培養液を用いたときの、種子の播種から2週間経過後のコマツナの成長の様子を示す写真である。 6A to 6C show Mg concentrations of 12 ppm, 24 ppm, and 48 ppm, and nitrate N concentrations of 4.6 ppm (5 g / L), 13.8 ppm (15 g / L), and 23 ppm (25 g) for each Mg concentration. / L), 41.4 ppm (45 g / L), 78.2 ppm (85 g / L), 184 ppm (200 g / L) when 18 kinds of culture solutions were used, 2 weeks after sowing of seeds. It is a photograph showing the growth of Komatsuna.

これらの写真から分かるように、Mg濃度に着目すると、低濃度(12ppm、24ppm)のときに比べて、高濃度(48ppm)のときの方が、全体的に地上部及び根の両方の成長量が大きくなる傾向がみられた。一方、硝酸性N濃度に着目すると、根の伸長量は、硝酸性N濃度が低いとき(4.6ppm、13.8ppm)の方が、高いとき(23ppm〜184ppm)よりも大きくなる傾向がみられ、逆に、地上部の成長量は、硝酸性N濃度が低いとき(4.6ppm、13.8ppm)の方が、高いとき(23ppm〜184ppm)よりも小さくなる傾向がみられた。 As can be seen from these photographs, focusing on the Mg concentration, the growth amount of both the above-ground part and the root is generally higher at the high concentration (48 ppm) than at the low concentration (12 ppm, 24 ppm). Tended to increase. On the other hand, focusing on the nitrate N concentration, the root elongation tends to be larger when the nitrate N concentration is low (4.6 ppm, 13.8 ppm) than when it is high (23 ppm to 184 ppm). On the contrary, the growth amount of the above-ground part tended to be smaller when the nitrate N concentration was low (4.6 ppm, 13.8 ppm) than when it was high (23 ppm to 184 ppm).

図7は、図5及び図6Cから求められた、硝酸性N濃度と根の伸長量との関係を示している。図7では、硝酸性N濃度が184ppmのときの根の伸長量を基準とし、これに対する相対的伸長量を「+」の数で表した。図5〜図7より、Mg濃度が同じであっても、硝酸性N濃度によって地上部及び根における成長量が異なることが分かった。特に、硝酸性N濃度が41.4ppm〜184ppmという高濃度のときのコマツナの成長量が小さかったことから、種子の播種から2週間という初期の成長においては、高濃度の窒素(あるいは硝酸イオン)は不要であることが推測された。 FIG. 7 shows the relationship between the nitrate N concentration and the root elongation amount determined from FIGS. 5 and 6C. In FIG. 7, the amount of root elongation when the nitrate N concentration was 184 ppm was used as a reference, and the relative elongation amount with respect to this was represented by the number of “+”. From FIGS. 5 to 7, it was found that even if the Mg concentration was the same, the amount of growth in the above-ground part and the root was different depending on the nitrate N concentration. In particular, since the amount of growth of Komatsuna was small when the nitrate N concentration was as high as 41.4 ppm to 184 ppm, the high concentration of nitrogen (or nitrate ion) was observed in the initial growth of 2 weeks after sowing the seeds. Was speculated to be unnecessary.

その理由として、(1)培養液中に硝酸イオンが多く含まれると、植物にとって優先順位の高い硝酸還元にエネルギーが消費され、細胞分裂に必要なエネルギーが不足した結果、細胞分裂が抑制されること、(2)窒素が十分量存在するときは根を伸長させない機構が存在すること、が考えられるが、詳細は不明である。 The reasons are as follows: (1) When the culture medium contains a large amount of nitrate ions, energy is consumed for nitrate reduction, which is a high priority for plants, and as a result of lack of energy required for cell division, cell division is suppressed. It is conceivable that (2) there is a mechanism that does not extend the roots when a sufficient amount of nitrogen is present, but the details are unknown.

<実験3>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、チマサンチュの養液栽培を行った。
実験区(+Mg区)では、育苗期間にMg濃度を48ppmに調整したTO処方培養液を用いた。一方、比較区(Cont区)では、Mg濃度を12ppmに調整したTO処方培養液を用いた。実験区及び比較区のいずれにおいても培養液中の硝酸性N濃度は4.6ppmである。
また、実験区及び比較区のいずれにおいても、生育期間はMg濃度を24ppmに調整したMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。なお、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 3>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Chimasanchu was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the experimental group (+ Mg group), a TO prescription culture solution having an Mg concentration adjusted to 48 ppm was used during the seedling raising period. On the other hand, in the comparative group (Cont group), a TO prescription culture solution having an Mg concentration adjusted to 12 ppm was used. The nitrate N concentration in the culture broth was 4.6 ppm in both the experimental group and the comparative group.
Further, in both the experimental group and the comparative group, an Mg-adjusted A prescription culture solution (EC = 1.8, nitrate N concentration = 161 ppm) in which the Mg concentration was adjusted to 24 ppm was used for the growth period. In the entire cultivation period, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting.

(2)結果
図8に、生育装置に移植した後の経過時間(週)と、チマサンチュの成長量との関係を示す。図8から明らかなように、実験区は比較区よりも移植後の成長及び発育が早く、実験区では移植後2.5週間目ほどで収穫ラインを超えたのに対して、比較区では移植後3.5週間を経過した時点で収穫ラインを超えた。以上の結果から、育苗期間における培養液中のMg濃度を増加させることにより、生育装置に移植してから収穫までの期間を短縮できることが分かった。
(2) Results Fig. 8 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of Chimasanchu. As is clear from FIG. 8, the experimental plots grew and developed faster after transplantation than the comparative plots, and the experimental plots crossed the harvest line about 2.5 weeks after transplantation, whereas the comparative plots were transplanted. The harvest line was crossed 3.5 weeks later. From the above results, it was found that the period from transplanting to the growing apparatus to harvesting can be shortened by increasing the Mg concentration in the culture solution during the seedling raising period.

<実験4>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、チマサンチュの養液栽培を行った。
第1実験区(+Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm)を用いた。
第2実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液を用い、生育期間にMg濃度を48ppmにしたMg調整A処方培養液(EC=1.8)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm)を用いた。
また、第1実験区及び比較区では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培し、第2実験区では、栽培期間の全てにおいてLED(レイトロン株式会社製)照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 4>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Chimasanchu was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the first experimental group (+ Mg group), a TO prescription culture solution having an Mg concentration of 48 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration = 24 ppm) was used during the growth period.
In the second experimental group (++ Mg group), a TO prescription culture solution having an Mg concentration of 48 ppm was used during the seedling raising period, and an Mg-adjusted A prescription culture solution (EC = 1.8) having an Mg concentration of 48 ppm was used during the growing period. ..
In the comparative group (Cont group), a TO prescription culture solution having an Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration = 24 ppm) was used during the growth period.
In addition, in the first experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period, and in the second experimental plot, LEDs (Raytron) were cultivated during the entire cultivation period. (Made by Co., Ltd.) Cultivated under the conditions of 12 hours in the light period and 12 hours in the dark period under lighting.

(2)結果
図9に、生育装置に移植した後の経過時間(週)と、チマサンチュの成長量との関係を示す。図9から明らかなように、第1及び第2実験区は比較区よりも移植後の成長及び発育が早かった。また、第1実験区よりも第2実験区の方が、移植後の成長及び発育が早く、第2実験区では移植後2週間目ほどで収穫ラインを超えたのに対して、第1実験区では移植後2.5週間を経過した時点で収穫ラインを超えた。以上の結果から、育苗期間において培養液中のMg濃度を増加させることにより、チマサンチュの収穫時期を早めることができることが分かった。また、育苗期間及び生育期間の両方において培養液中のMg濃度を高めることにより、チマサンチュの収穫時期をさらに早めることができ、特にこの場合は、生育装置に苗を移植した後の、収穫までの栽培期間を半減できることが分かった。
(2) Results Fig. 9 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of Chimasanchu. As is clear from FIG. 9, the first and second experimental plots grew and developed faster after transplantation than the comparative plots. In addition, the growth and development after transplantation was faster in the second experimental plot than in the first experimental plot, and in the second experimental plot, the harvest line was crossed about two weeks after the transplantation, whereas in the first experimental plot. In the plot, the harvest line was crossed 2.5 weeks after transplantation. From the above results, it was found that the harvest time of Chimasanchu can be advanced by increasing the Mg concentration in the culture solution during the seedling raising period. In addition, by increasing the Mg concentration in the culture solution during both the seedling raising period and the growing period, the harvesting time of Chimasanchu can be further accelerated, and in this case in particular, after the seedlings are transplanted to the growing device, until the harvesting. It was found that the cultivation period could be halved.

<実験5>
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、チマサンチュの養液栽培を行った。
実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用いた。また、生育期間は、Mg濃度を48ppmにしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、Mg濃度が12ppmのTO処方培養液を用いた。また、生育期間は、A処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
また、実験区及び比較区のいずれにおいても、栽培期間の全てにおいて、LED(株式会社フィリップス・ジャパン製)照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 5>
Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Chimasanchu was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the experimental group (++ Mg group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having an Mg concentration of 48 ppm was used during the seedling raising period. For the growing period, an Mg-adjusted A prescription culture solution (EC = 1.8, nitrate N concentration = 161 ppm) having an Mg concentration of 48 ppm was used.
In the comparative group (Cont group), a TO prescription culture solution having a Mg concentration of 12 ppm was used. In addition, as the growing period, A prescription culture solution (EC = 1.8, Mg concentration = 24 ppm, nitrate N concentration = 161 ppm) was used.
In addition, in both the experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under LED (manufactured by Philips Japan Co., Ltd.) lighting during the entire cultivation period.

(2)結果
図10に、生育装置に移植した後の経過時間(週)と、チマサンチュの成長量との関係を示す。図10から明らかなように、実験区は比較区よりも移植後の成長及び発育が早く、実験区では移植後2週間目ほどで収穫ラインを超えたのに対して、比較区では移植後3.5週間を経過した時点で収穫ラインを超えた。
(2) Results Fig. 10 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of Chimasanchu. As is clear from FIG. 10, the experimental plots grew and developed faster after transplantation than the comparative plots, and the experimental plots crossed the harvest line about 2 weeks after transplantation, whereas the comparative plots 3 after transplantation. The harvest line was crossed after 5 weeks.

<実験6>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、チマサンチュの養液栽培を行った。
第1実験区(+Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
第2実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間(移植後)にMg濃度を48ppmに調整したMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
また、第1実験区、第2実験区、及び比較区では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 6>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Chimasanchu was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the first experimental group (+ Mg group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having an Mg concentration of 48 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg) was used during the growth period. Concentration = 24 ppm, nitrate N concentration = 161 ppm) was used.
In the second experimental group (++ Mg group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having an Mg concentration of 48 ppm was used during the seedling raising period, and the Mg concentration was adjusted to 48 ppm during the growing period (after transplantation). The adjusted A prescription culture solution (EC = 1.8, nitrate N concentration = 161 ppm) was used.
In the comparative group (Cont group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration =) during the growth period. 24 ppm, nitrate N concentration = 161 ppm) was used.
In addition, in the first experimental group, the second experimental group, and the comparative group, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period.

(2)結果
図11に、生育装置に移植した後の経過時間(週)と、チマサンチュの成長量との関係を示す。図11から明らかなように、第1及び第2実験区は比較区よりも移植後の成長及び発育が早かった。一方、第1実験区と第2実験区とでは、第2実験区の方が移植後の成長及び発育がやや早かったものの、その差はわずかであり、いずれも、移植後、2.5週目ほどで収穫ラインを超えた。これに対して比較区では、移植後3.6週間目ほどで収穫ラインを超えた。
(2) Results Fig. 11 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of Chimasanchu. As is clear from FIG. 11, the first and second experimental plots grew and developed faster after transplantation than the comparative plots. On the other hand, between the 1st experimental group and the 2nd experimental group, the growth and development after transplantation was slightly faster in the 2nd experimental group, but the difference was small, and both were 2.5 weeks after transplantation. I crossed the harvest line by eye. On the other hand, in the comparative plot, the harvest line was crossed about 3.6 weeks after transplantation.

また、実験4〜6の結果から、照明器具によっても生育装置に移植してからの成長量が異なることが分かった。具体的には、実験4〜6の++Mg区はいずれも育苗期間、及び生育期間にMg濃度が48ppmの培養液を用いているが、照明器具として蛍光灯を用いた場合(実験6、図11)よりもLEDを用いた場合(実験4、図9、実験5、図10)の方が成長量が大きく、また、レイトロン株式会社製のLEDを用いた場合(実験4、図9)よりも株式会社フィリップス・ジャパン製のLEDを用いた場合(実験5、図10)の方が成長量が大きかった。 In addition, from the results of Experiments 4 to 6, it was found that the amount of growth after transplanting to the growth device differs depending on the lighting equipment. Specifically, in each of the ++ Mg sections of Experiments 4 to 6, a culture solution having an Mg concentration of 48 ppm was used during the seedling raising period and the growing period, but when a fluorescent lamp was used as the lighting equipment (Experiment 6, FIG. 11). ), The growth amount is larger when the LED is used (Experiment 4, FIG. 9, Experiment 5, FIG. 10), and than when the LED manufactured by Raytron Co., Ltd. is used (Experiment 4, FIG. 9). The amount of growth was larger when the LED manufactured by Phillips Japan Co., Ltd. was used (Experiment 5, FIG. 10).

<実験7>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、コマツナの養液栽培を行った。
実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液を用い(硝酸性N濃度=4.6ppm)、生育期間(移植後)にMg濃度を48ppmとしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
実験区及び比較区では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 7>
(1) Conditions Using the above-mentioned seedling raising device and growing device, Komatsuna was cultivated in a hydroponic solution over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the experimental group (++ Mg group), a TO prescription culture solution having a Mg concentration of 48 ppm was used during the seedling raising period (nitrate N concentration = 4.6 ppm), and an Mg concentration of 48 ppm was set during the growing period (after transplantation). A culture solution (EC = 1.8, nitrate N concentration = 161 ppm) was used.
In the comparative group (Cont group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration =) during the growth period. 24 ppm, nitrate N concentration = 161 ppm) was used.
In the experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period.

(2)結果
図12に、生育装置に移植した後の経過時間(週)と、コマツナの成長量との関係を示す。図11から明らかなように、実験区では比較区よりも移植後の成長及び発育が早く、実験区では移植後2.7週間目ほどで収穫ラインを超えたのに対して、比較区では移植後3.5週間を経過した時点で収穫ラインを超えた。以上の結果から、育苗期間及び生育期間の両方においてMg濃度の高い培養液を用いることにより、コマツナの収穫時期を早めることができることが分かった。
(2) Results Fig. 12 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of Komatsuna. As is clear from FIG. 11, in the experimental group, the growth and development after transplantation was faster than in the comparative group, and in the experimental group, the harvest line was crossed about 2.7 weeks after the transplantation, whereas in the comparative group, the transplantation was performed. The harvest line was crossed 3.5 weeks later. From the above results, it was found that the harvest time of Komatsuna can be accelerated by using the culture solution having a high Mg concentration during both the seedling raising period and the growing period.

<実験8>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、コスレタスの養液栽培を行った。
実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間(移植後)にMg濃度を48ppmとしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
実験区及び比較区では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 8>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Kosletas was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the experimental group (++ Mg group), a TO formulation culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 48 ppm was used during the seedling raising period, and an Mg-adjusted A formulation having an Mg concentration of 48 ppm during the growing period (after transplantation). A culture solution (EC = 1.8, nitrate N concentration = 161 ppm) was used.
In the comparative group (Cont group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration =) during the growth period. 24 ppm, nitrate N concentration = 161 ppm) was used.
In the experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period.

(2)結果
図13に、生育装置に移植した後の経過時間(週)と、コスレタスの成長量との関係を示す。図13から明らかなように、実験区では比較区よりも移植後の成長及び発育が早く、実験区では移植後3.2週目ほどで収穫ラインを超えたのに対して、比較区では移植後4週目で収穫ラインを超えた。以上の結果から、育苗期間及び生育期間の両方において培養液中のMg濃度を増加させることにより、コスレタスの収穫時期を早めることができることが分かった。
(2) Results FIG. 13 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of cosletas. As is clear from FIG. 13, in the experimental group, the growth and development after transplantation was faster than in the comparative group, and in the experimental group, the harvest line was crossed about 3.2 weeks after the transplantation, whereas in the comparative group, the transplantation was performed. The harvest line was crossed in the fourth week. From the above results, it was found that the harvest time of Kosletas can be accelerated by increasing the Mg concentration in the culture solution during both the seedling raising period and the growing period.

<実験9>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、グリーンバタビアの養液栽培を行った。
実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間(移植後)にMg濃度を48ppmとしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にA処方培養液(EC=1.8、Mg濃度=24ppm、硝酸性N濃度=161ppm)を用いた。
実験区及び比較区では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 9>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of green Batavia was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In the experimental group (++ Mg group), a TO formulation culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 48 ppm was used during the seedling raising period, and an Mg-adjusted A formulation having an Mg concentration of 48 ppm during the growing period (after transplantation). A culture solution (EC = 1.8, nitrate N concentration = 161 ppm) was used.
In the comparative group (Cont group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1.8, Mg concentration =) during the growth period. 24 ppm, nitrate N concentration = 161 ppm) was used.
In the experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period.

(2)結果
図14に、生育装置に移植した後の経過時間(週)と、グリーンバタビアの成長量との関係を示す。図14から明らかなように、実験区では比較区よりも移植後の成長及び発育が早く、実験区では移植後3.7週目ほどで収穫ラインを超えたのに対して、比較区では移植後4週間を経過した時点でも収穫ラインを超えなかった。以上の結果から、育苗期間及び生育期間の両方において培養液中のMg濃度を増加させることにより、グリーンバタビアの収穫時期を早めることができることが分かった。
(2) Results Fig. 14 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of green Batavia. As is clear from FIG. 14, in the experimental group, the growth and development after transplantation was faster than in the comparative group, and in the experimental group, the harvest line was crossed about 3.7 weeks after the transplantation, whereas in the comparative group, the transplantation was performed. The harvest line was not crossed even after 4 weeks had passed. From the above results, it was found that the harvest time of green Batavia can be accelerated by increasing the Mg concentration in the culture solution during both the seedling raising period and the growing period.

実験1〜9の結果から、程度の差はあるものの、種々の葉物野菜の養液栽培において従来、一般的に用いられてきたA処方培養液のMg濃度及び硝酸性N濃度と比べて、育苗期間に用いる培養液のMg濃度を高く、且つ、硝酸性N濃度が低くすることにより、生育装置に移植した後の成長量を高めることができることが確認された。さらに、育苗期間において上述した高Mg濃度・低硝酸性N濃度の培養液を用いた場合であって、生育期間において用いる培養液のMg濃度を高くし、且つ、硝酸性N濃度はA処方培養液と同程度もしくはそれ以上にすることにより、生育装置に移植した後の成長量を高めることができることが確認された。ここでは、チマサンチュ、コマツナ、コスレタス、グリーンバタビアを用いて実験を行ったが、これら以外の葉物野菜においても同様の効果が期待できることが推測された。 From the results of Experiments 1 to 9, although there are some differences, the Mg concentration and nitrate N concentration of the A-formulation culture solution, which have been generally used in the hydroponic cultivation of various leafy vegetables, are compared with each other. It was confirmed that by increasing the Mg concentration of the culture solution used during the seedling raising period and decreasing the nitrate N concentration, the amount of growth after transplantation to the growth apparatus can be increased. Further, when the above-mentioned culture solution having a high Mg concentration and a low nitrate N concentration is used in the seedling raising period, the Mg concentration of the culture solution used in the growing period is increased, and the nitrate N concentration is A prescription culture. It was confirmed that the amount of growth after transplantation to the growth apparatus can be increased by making the concentration equal to or higher than that of the liquid. Here, experiments were conducted using Chimasanchu, Komatsuna, Komatsuna, and Green Batavia, and it was speculated that similar effects could be expected for leafy vegetables other than these.

<実験10>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、チマサンチュ、コマツナ、コスレタス、グリーンバタビアの養液栽培を行った。
いずれの葉物野菜も、育苗期間にはMg濃度を48ppmにしたTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にはMg濃度を48ppmにしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
<Experiment 10>
(1) Conditions Using the above-mentioned seedling raising device and growing device, hydroponic cultivation of Chimasanchu, Komatsuna, Kosletas, and Green Batavia was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
For all leafy vegetables, a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having an Mg concentration of 48 ppm was used during the seedling raising period, and an Mg-adjusted A prescription culture solution having an Mg concentration of 48 ppm during the growing period. (EC = 1.8, nitrate N concentration = 161 ppm) was used.

(2)結果
図15は、生育装置に移植してから3週間目に4種類の葉物野菜を収穫し、各葉物野菜に含まれるMgの量(mg/100g生重量)をICP(Inductively Coupled Plasma)発光分析装置で測定した結果を示す。図15には、日本食品標準成分表(2015年)に掲載されている各野菜のMgの量、及び、日本食品標準成分表に掲載されているMgの量に対する本実験で収穫された各葉物野菜のMgの量の比率(増加倍数)を示している。図15から分かるように、全ての葉物野菜においてMgの含有量の増加が確認された。
(2) Results Fig. 15 shows that four kinds of leafy vegetables were harvested 3 weeks after transplantation to the growing apparatus, and the amount of Mg (mg / 100g raw weight) contained in each leafy vegetable was determined by ICP (Inductively). Coupled Plasma) The results measured by the luminescence analyzer are shown. FIG. 15 shows the amount of Mg of each vegetable listed in the Standard Tables of Food Composition in Japan (2015) and the amount of Mg listed in the Standard Tables of Food Composition in Japan for each leaf harvested in this experiment. It shows the ratio (increase multiple) of the amount of Mg in vegetables. As can be seen from FIG. 15, an increase in Mg content was confirmed in all leafy vegetables.

<実験11>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、コマツナの養液栽培を行った。
この実験では、育苗期間にMg濃度が48ppmのTO処方培養液を用い、生育期間にMg濃度を24−120ppmとしたMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
実験では、栽培期間の全てにおいて、蛍光灯照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 11>
(1) Conditions Using the above-mentioned seedling raising device and growing device, Komatsuna was cultivated in a hydroponic solution over the above-mentioned cultivation period (germination period, seedling raising period and growing period).
In this experiment, a TO prescription culture solution having a Mg concentration of 48 ppm was used during the seedling raising period, and an Mg-adjusted A prescription culture solution having a Mg concentration of 24-120 ppm during the growing period (EC = 1.8, nitrate N concentration = 161 ppm). Was used.
In the experiment, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period under fluorescent lighting during the entire cultivation period.

(2)結果
図16は、生育期間を経て収穫したコマツナ(つまり、生育装置に移植した後、3週間目に収穫したコマツナ)の成長量(生重量(g fw/3W)と、生育期間に用いた培養液中のMg濃度との関係を示している。グラフ上の各点は3個体の平均値である。図16から分かるように、生育期間に用いられる培養液中のMg濃度が24ppm〜72ppmの範囲ではMg濃度の増加に伴い成長量が増加したが、72ppm〜120ppmの範囲ではMg濃度の増加に伴い成長量が低下した。
(2) Results Fig. 16 shows the growth amount (raw weight (g fw / 3W)) of Komatsuna harvested after the growing period (that is, Komatsuna harvested 3 weeks after transplanting to the growing device) and the growing period. The relationship with the Mg concentration in the culture solution used is shown. Each point on the graph is the average value of three individuals. As can be seen from FIG. 16, the Mg concentration in the culture solution used during the growing period is 24 ppm. In the range of ~ 72 ppm, the amount of growth increased as the Mg concentration increased, but in the range of 72 ppm to 120 ppm, the amount of growth decreased as the Mg concentration increased.

上述したように、従来処方の培養液中のMg濃度は10〜40ppm、硝酸性N濃度は60〜240ppmであることから、少なくとも図16において、Mg濃度が40ppmのときの成長量よりも多ければ、従来処方よりも成長が促進されたと考えられる。つまり、生育期間においては、Mg濃度が48ppm〜120ppmの培養液を用いることにより、従来よりもコマツナの成長を早めることができることが推測された。 As described above, since the Mg concentration in the culture solution of the conventional formulation is 10 to 40 ppm and the nitrate N concentration is 60 to 240 ppm, at least in FIG. 16, if the amount of growth is larger than that when the Mg concentration is 40 ppm. , It is considered that the growth was promoted more than the conventional formulation. That is, it was speculated that during the growth period, the growth of Komatsuna could be accelerated by using a culture solution having a Mg concentration of 48 ppm to 120 ppm.

また、コマツナの収穫ライン(収穫に適した生重量)は約80gであるところ、本実験において3週間目の生重量が収穫ラインを超えるMg濃度は48ppm〜120ppmの範囲であった。このことより、生育期間においてMg濃度が48ppm〜120ppmの培養液を用いれば、通常は4週間の収穫期間を3週間もしくはそれよりも短い期間に短縮することができることが分かる。 The harvest line of Komatsuna (raw weight suitable for harvesting) was about 80 g, and the Mg concentration at which the raw weight at the third week exceeded the harvest line in this experiment was in the range of 48 ppm to 120 ppm. From this, it can be seen that the harvesting period, which is usually 4 weeks, can be shortened to 3 weeks or shorter by using a culture solution having a Mg concentration of 48 ppm to 120 ppm during the growing period.

<実験12>
(1)条件
上述した育苗装置及び生育装置を用いて、上述した栽培期間(発芽期間、育苗期間及び生育期間)にわたり、リーフレタス(キク科)の一種であるグリーンウェーブの養液栽培を行った。
実験区(++Mg区)では、育苗期間にMg濃度が48ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にMg濃度を72ppmに調整したMg調整A処方培養液(EC=1.8、硝酸性N濃度=161ppm)を用いた。
比較区(Cont区)では、育苗期間にMg濃度が12ppmのTO処方培養液(硝酸性N濃度=4.6ppm)を用い、生育期間にMg濃度が24ppmのA処方培養液(EC=1.8)を用いた。
実験区及び比較区では、栽培期間の全てにおいて、LED(レイトロン株式会社製)照明による明期12時間−暗期12時間の条件で栽培した。
<Experiment 12>
(1) Conditions Using the above-mentioned seedling raising device and growing device, green wave hydroponic cultivation, which is a kind of leaf lettuce (Asteraceae), was carried out over the above-mentioned cultivation period (germination period, seedling raising period and growing period). ..
In the experimental group (++ Mg group), a TO prescription culture solution having an Mg concentration of 48 ppm (nitrate N concentration = 4.6 ppm) was used during the seedling raising period, and an Mg-adjusted A prescription culture solution having an Mg concentration adjusted to 72 ppm during the growing period (Mg-adjusted A prescription culture solution). EC = 1.8, nitrate N concentration = 161 ppm) was used.
In the comparative group (Cont group), a TO prescription culture solution (nitrate N concentration = 4.6 ppm) having a Mg concentration of 12 ppm was used during the seedling raising period, and an A prescription culture solution (EC = 1. 8) was used.
In the experimental plot and the comparative plot, the plants were cultivated under the conditions of 12 hours in the light period to 12 hours in the dark period with LED (manufactured by Raytron Co., Ltd.) lighting during the entire cultivation period.

(2)結果
図17に、生育装置に移植した後の経過時間(週)と、グリーンウェーブの成長量との関係を示す。図17から明らかなように、実験区は比較区よりも移植後の成長及び発育が早く、実験区では移植後2.3週間目ほどで収穫ラインを超えたのに対して、第1実験区では移植後3.7週間を経過した時点で収穫ラインを超えた。以上の結果から、育苗期間及び生育期間の両方において培養液中のMg濃度を増加させることにより、グリーンウェーブの収穫時期を早めることができることが分かった。
(2) Results Fig. 17 shows the relationship between the elapsed time (weeks) after transplanting to the growth device and the growth amount of green waves. As is clear from FIG. 17, the experimental plots grew and developed faster after transplanting than the comparative plots, and the experimental plots crossed the harvest line about 2.3 weeks after transplanting, whereas the first experimental plots. Then, 3.7 weeks after the transplantation, the harvest line was crossed. From the above results, it was found that the harvest time of green wave can be accelerated by increasing the Mg concentration in the culture solution during both the seedling raising period and the growing period.

<実験13>
(1)条件
上述した育苗装置及び生育装置を用いて、発芽期間、育苗期間、生育期間、及び収穫前期間(3日間)にわたり、コマツナ及びグリーンバタビアの養液栽培を行った。
この実験では、上述した実験7の実験区(++Mg区)と同じ条件で、発芽期間、育苗期間及び生育期間の栽培を行った。そして、収穫前期間は、生育期間と同じ生育装置を用い、培養液及び照明条件を変更して養液栽培を行った。
<Experiment 13>
(1) Conditions Using the above-mentioned seedling raising device and growing device, Komatsuna and green Batavia were cultivated in a hydroponic solution over a germination period, a seedling raising period, a growing period, and a pre-harvest period (3 days).
In this experiment, cultivation was carried out during the germination period, the seedling raising period and the growing period under the same conditions as in the experimental group (++ Mg group) of Experiment 7 described above. Then, during the pre-harvest period, hydroponic cultivation was carried out by changing the culture solution and lighting conditions using the same growing device as during the growing period.

(2)収穫前期間の条件
培養液として、上述したA処方培養液から硝酸性窒素及びアンモニア性窒素を除去するとともに、塩化カルシウムを添加して、窒素をほとんど含まず、カルシウムの含有量が30、50、100、120、140mg/Lである養液(収穫前処理養液)を用いた。ここで、「窒素をほとんど含まない」とは、窒素の含有量が2.2g/mL以下であることをいう。なお、収穫前処理養液に含まれる窒素の量はできるだけ少ないことが好ましい。従って、生育期間から収穫前期間に移行する際は、生育期間に用いた培養液に含まれていた窒素が生育装置に残存しないように、生育装置の容器本体及び供給路を十分に洗浄した。
また、青色LEDを用いて波長が490nm以下の可視光を24時間、連続的に照明した。このときの光量子束密度は200μmol/m/秒であった。
(2) Conditions for the pre-harvest period As the culture solution, nitrate nitrogen and ammoniacal nitrogen were removed from the above-mentioned A formulation culture solution, and calcium chloride was added to contain almost no nitrogen and the calcium content was 30. , 50, 100, 120, 140 mg / L nutrient solution (pre-harvest treatment nutrient solution) was used. Here, "containing almost no nitrogen" means that the nitrogen content is 2.2 g / mL or less. The amount of nitrogen contained in the pre-harvest treatment nutrient solution is preferably as small as possible. Therefore, when shifting from the growing period to the early harvest period, the container body and the supply path of the growing device were thoroughly washed so that the nitrogen contained in the culture solution used during the growing period did not remain in the growing device.
In addition, a blue LED was used to continuously illuminate visible light having a wavelength of 490 nm or less for 24 hours. The photon flux density at this time was 200 μmol / m 2 / sec.

(3)結果
上述した収穫前処理液を用いて収穫前期間、養液栽培を行った後、収穫したコマツナ及びグリーンバタビア(以下、「実験区」)の地上部の生重量、ORAC(Oxygen Radical Absorbance Capacity:活性酸素吸収能力)値、及び抗酸化成分の量を測定した。また、比較のため、生育期間を経て(つまり、収穫前期間を経ずに)収穫したコマツナ及びグリーンバタビア(以下「比較区」とする)の地上部の生重量、ORAC値、及び抗酸化成分の量を測定した。
その結果、地上部の生重量は、コマツナ及びグリーンバタビアのいずれについても、実験区と比較区の間で大きな差はなかった。一方、ORAC値及び抗酸化成分の量は、実験区の方が比較区よりも大きかった。
(3) Results The raw weight of the above-ground parts of Komatsuna and Green Batavia (hereinafter referred to as "experimental plot") harvested after hydroponic cultivation using the above-mentioned pre-harvest treatment solution during the pre-harvest period, ORAC (Oxygen Radical) Absorbance Capacity) value and the amount of antioxidant component were measured. Also, for comparison, the raw weight, ORAC value, and antioxidant components of the above-ground parts of Komatsuna and Green Batavia (hereinafter referred to as "comparative plots") harvested after the growing period (that is, without the pre-harvest period). The amount of was measured.
As a result, there was no significant difference in the raw weight of the above-ground part between the experimental plot and the comparative plot for both Komatsuna and Green Batavia. On the other hand, the ORAC value and the amount of antioxidant component were larger in the experimental group than in the comparative group.

図18及び図19に、実験区の例として、カルシウムの含有量が50mg/Lの収穫前処理養液を用いて収穫前期間、養液栽培を行った後、収穫したコマツナ及びグリーンバタビアに含まれていた抗酸化成分の量及びORAC値を示す。図18及び図19には、比較区のコマツナ及びグリーンバタビアに含まれていた抗酸化成分の量及びORAC値も示している。 In FIGS. 18 and 19, as an example of the experimental plot, Komatsuna and Green Batavia harvested after hydroponic cultivation using a pre-harvest treatment nutrient solution having a calcium content of 50 mg / L during the pre-harvest period. The amount of antioxidant component and ORAC value that had been harvested are shown. 18 and 19 also show the amount and ORAC value of antioxidants contained in Komatsuna and Green Batavia in the comparative plot.

図18及び図19から明らかなように、実験区のコマツナ及びグリーンバタビアは、いずれも比較区に比べて抗酸化成分が多く含まれており、抗酸化成分の中でも特にグルタチオン(還元型)の量が増大していた。
なお、図18及び図19では、カルシウムの含有量が50mg/Lの収穫前処理養液を用いた例を示したが、カルシウムの含有量が50〜120mg/Lの範囲であれば、ほぼ同様の結果が得られた。
As is clear from FIGS. 18 and 19, both Komatsuna and Green Batavia in the experimental group contained a large amount of antioxidant components as compared with the comparative group, and among the antioxidant components, the amount of glutathione (reduced type) was particularly large. Was increasing.
Although FIGS. 18 and 19 show an example in which a pre-harvest treatment nutrient solution having a calcium content of 50 mg / L was used, the same is true as long as the calcium content is in the range of 50 to 120 mg / L. The result was obtained.

図20は、通常の栽培方法で得られた野菜に含まれるグルタチオンの含有量を示している。この図20に示されている数値から、本実験で得られたコマツナ及びグリーンバタビアに含まれるグルタチオンの含有量は、通常の野菜に比べて非常に多いことは明らかである。 FIG. 20 shows the content of glutathione contained in vegetables obtained by a usual cultivation method. From the numerical values shown in FIG. 20, it is clear that the content of glutathione contained in Komatsuna and Green Batavia obtained in this experiment is much higher than that of ordinary vegetables.

グルタチオン(還元型)は、過酸化物や活性酸素種を還元して消去する機能、解毒作用等を有することが知られており、以下に示す作用を有する医薬品、化粧品及びサプリメントに利用されている。
(a)医薬品:
慢性肝疾患における肝機能の改善
急性湿疹、慢性湿疹、皮膚炎、じんま疹などの炎症抑制
角膜炎、老人性白内障、角膜損傷の治療
パーキンソン病の治療
(b)化粧品成分
メラニン色素の形成抑制(美白効果)
ビタミンCの再生
アンチエイジング
(c)サプリメント
肝臓の解毒作用を高める
アルコールによる二日酔い防止
Glutathione (reduced form) is known to have a function of reducing and eliminating peroxides and reactive oxygen species, a detoxifying action, and the like, and is used in pharmaceuticals, cosmetics, and supplements having the following actions. ..
(A) Pharmaceuticals:
Improvement of liver function in chronic liver disease Suppression of inflammation such as acute eczema, chronic eczema, dermatitis, urticaria Treatment of keratitis, senile cataract, and corneal injury Treatment of Parkinson's disease (b) Suppression of melanin pigment formation in cosmetic ingredients (b) Whitening effect)
Vitamin C Regeneration Anti-Aging (c) Supplements Prevents hangover with alcohol, which enhances liver detoxification

実験13で得られたコマツナ及びグリーンバタビアはグルタチオンを多く含むことから、これらの野菜は、上述した医薬品、化粧品、サプリメントの材料として有用であり、また、これらの野菜自身が機能性野菜として有用となる。さらに、実験10の結果より、実験13で得られたコマツナ及びグリーンバタビアは、従来の野菜に比べてMgを多く含むことが見込まれる。このことから、実験13で得られたコマツナ及びグリーンバタビアは、グルタチオン及びMgの両方を多く含む、優れた機能性野菜となり得る。 Since Komatsuna and Green Batavia obtained in Experiment 13 contain a large amount of glutathione, these vegetables are useful as materials for the above-mentioned pharmaceuticals, cosmetics, and supplements, and these vegetables themselves are useful as functional vegetables. Become. Furthermore, from the results of Experiment 10, it is expected that Komatsuna and Green Batavia obtained in Experiment 13 contain a large amount of Mg as compared with conventional vegetables. From this, Komatsuna and Green Batavia obtained in Experiment 13 can be excellent functional vegetables containing a large amount of both glutathione and Mg.

図21は、コマツナ、コマツナ紫、チマサンチュを、一般的な従来処方による培養液を用いて育苗期間(播種後4日目から14日目まで)と生育期間(移植後4週間)栽培した後、3日間、収穫前処理を施したときのカルシウム量(Ca量)と抗酸化能力(ORAC(Oxygen Radical Absorbance Capacity)値)の関係を示している(特許文献2参照)。収穫前処理で用いた培養液は、Ca量が0〜140mg/L、窒素量が2.0mg/Lとなるように、硫酸カルシウムを水に溶解して調製されたものである。 FIG. 21 shows after cultivating Komatsuna, Komatsuna purple, and Chimasanchu in a seedling raising period (4th to 14th day after sowing) and a growing period (4 weeks after transplantation) using a culture solution according to a general conventional formulation. It shows the relationship between the amount of calcium (Ca amount) and the antioxidant capacity (ORAC (Oxygen Radical Absorbance Capacity) value) when pre-harvest treatment is performed for 3 days (see Patent Document 2). The culture broth used in the pre-harvest treatment was prepared by dissolving calcium sulfate in water so that the amount of Ca was 0 to 140 mg / L and the amount of nitrogen was 2.0 mg / L.

図21から分かるように、一般的な従来処方による培養液を用いて育苗期間及び生育期間の養液栽培を行った場合でも、収穫前期間に収穫前処理養液を用いた養液栽培を行うことにより、コマツナ以外の野菜(チマサンチュ)についても、抗酸化成分が増加した。このことから、コマツナ、グリーンバタビア以外の野菜であっても、実験13と同様の結果が得られることが推測された。 As can be seen from FIG. 21, even when hydroponic cultivation is carried out during the seedling raising period and the growing period using a culture solution according to a general conventional formula, hydroponic cultivation using the pre-harvest treated nutrient solution is carried out during the pre-harvest period. As a result, the antioxidant component also increased in vegetables other than komatsuna (chimasanchu). From this, it was speculated that the same results as in Experiment 13 could be obtained even with vegetables other than Komatsuna and Green Batavia.

<その他>
本発明は上記した実施例に限定されるものではなく、適宜の変更が可能である。
例えば、上記実施例では、チマサンチュ、コマツナ、コスレタス、グリーンバタビア、チンゲンサイ、リーフレタス、シュンギクを用いたが、これら以外の葉物野菜にも本発明は適用可能である。また、葉物野菜に限らず、ダイコン、ニンジン、カブ、ゴボウ、レンコン、ショウガ、ジャガイモ、サトイモ、サツマイモ、ヤマイモ、タマネギ等の根菜類、キュウリ、カボチャ、スイカ、メロン、トマト、ナス、ピーマン、オクラ、サヤインゲン、ソラマメ、エンドウ、エダマメ、シシトウ等の果菜類等、野菜類全般に適用可能であり、野菜以外の例えば花卉にも適用可能である。要するに、植物生理学の原理を考えると、本発明は、養液栽培が可能な栽培植物全般に適用可能である。
<Others>
The present invention is not limited to the above-described embodiment, and appropriate modifications can be made.
For example, in the above-mentioned examples, chimasanchu, komatsuna, komatsuna, green butatavia, bok choy, leaf lettuce, and garland chrysanthemum were used, but the present invention can be applied to leafy vegetables other than these. Not limited to leafy vegetables, root vegetables such as radish, carrot, turnip, gobo, lotus, ginger, potato, sweet potato, sweet potato, yam, onion, cucumber, pumpkin, watermelon, melon, tomato, eggplant, pepper, okura It can be applied to all vegetables such as fruit vegetables such as sweet potato, potato, pea, edamame, and shishito, and can also be applied to flowers other than vegetables, for example. In short, considering the principle of plant physiology, the present invention is applicable to all cultivated plants capable of hydroponic cultivation.

葉物野菜の葉に含まれるMgの量が多くなると、食したときに苦みを感じることが多い。従って、葉物野菜を養液栽培する場合であって、生育期間において従来処方よりもMg濃度が高い培養液を用いる場合は、例えば生育期間の前半にのみMg濃度の高い培養液を用い、後半(例えば収穫前の1週間程度)は従来処方のMg濃度の培養液を用いるようにしても良い。このようにすることで、収穫された葉物野菜の葉に含まれるMgの量を抑えることができる可能性がある。 When the amount of Mg contained in the leaves of leafy vegetables is large, bitterness is often felt when eating. Therefore, in the case of hydroponic cultivation of leafy vegetables, when a culture solution having a higher Mg concentration than the conventional formulation is used in the growing period, for example, a culture solution having a high Mg concentration is used only in the first half of the growing period, and the latter half. For (for example, about one week before harvesting), a culture solution having a Mg concentration of a conventional formulation may be used. By doing so, there is a possibility that the amount of Mg contained in the leaves of the harvested leafy vegetables can be suppressed.

Claims (8)

播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する栽培植物の養液栽培方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて収穫するまで栽培する期間である生育期間に分けたとき、
前記育苗期間において、マグネシウムイオンの濃度が24ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が4〜50ppmの範囲にある育苗用培養液を用いることを特徴とする栽培植物の養液栽培方法。
It is a hydroponic cultivation method for cultivated plants that is cultivated using a culture solution containing fertilizer components necessary for plant growth during the period from sowing to harvest.
The period is the germination period, which is the period from sowing to germination in the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated in the seedling raising device until they grow to a predetermined size. When seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device and divided into a growing period, which is a period for cultivating until harvesting with the growing device.
A method for hydroponic cultivation of cultivated plants, which comprises using a seedling raising culture solution in which the magnesium ion concentration is in the range of 24 ppm to 120 ppm and the nitrate nitrogen concentration is in the range of 4 to 50 ppm during the seedling raising period.
播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する栽培植物の養液栽培方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて収穫するまで栽培する期間である生育期間に分けたとき、
前記生育期間において、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある生育用培養液を用いる、栽培植物の養液栽培方法。
It is a hydroponic cultivation method for cultivated plants that is cultivated using a culture solution containing fertilizer components necessary for plant growth during the period from sowing to harvest.
The period is the germination period, which is the period from sowing to germination in the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated in the seedling raising device until they grow to a predetermined size. When seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device and divided into a growing period, which is a period for cultivating until harvesting with the growing device.
A hydroponic cultivation method for cultivated plants using a growth culture solution in which the magnesium ion concentration is in the range of 48 ppm to 120 ppm and the nitrate nitrogen concentration is in the range of 150 ppm to 200 ppm during the growth period.
発芽した苗を所定の大きさに成長するまで育苗装置で養液栽培するときに用いられる培養液であって、マグネシウムイオンの濃度が24ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が4〜50ppmの範囲にある、養液栽培用培養液。 A culture solution used for hydroponic cultivation of germinated seedlings in a seedling raising device until they grow to a predetermined size. The magnesium ion concentration is in the range of 24 ppm to 120 ppm, and the nitrate nitrogen concentration is 4 to 4. A culture solution for nutrient solution cultivation in the range of 50 ppm. 所定の大きさに成長した苗を生育装置で養液栽培するときに用いられる培養液であって、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある、養液栽培用培養液。 A culture solution used for hydroponic cultivation of seedlings grown to a predetermined size in a growth device, in which the concentration of magnesium ions is in the range of 48 ppm to 120 ppm and the concentration of nitrate nitrogen is in the range of 150 ppm to 200 ppm. Culture solution for nutrient solution cultivation in. 請求項1又は2に記載の養液栽培方法を用いて葉物野菜類を栽培することにより高マグネシウム葉物野菜類を製造する方法。 A method for producing high magnesium leafy vegetables by cultivating leafy vegetables using the hydroponic cultivation method according to claim 1 or 2. 播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する栽培植物の養液栽培方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて、収穫時よりも所定時間前まで生育する期間である生育期間、該生育装置にて前記収穫時よりも所定時間前から該収穫時まで栽培する期間である収穫前期間に分けたとき、
前記育苗期間において、マグネシウムイオンの濃度が24ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が4〜50ppmの範囲にある育苗用培養液を用い、
前記収穫前期間において、窒素を含有せず、カルシウムを含有する養液を用い、さらに波長が490nm以下の可視光を照射することを特徴とする栽培植物の養液栽培方法。
It is a hydroponic cultivation method for cultivated plants that is cultivated using a culture solution containing fertilizer components necessary for plant growth during the period from sowing to harvest.
The period is the germination period, which is the period from sowing to germination by the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated by the seedling raising device until they grow to a predetermined size. Seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device, and the growing period is a period during which the seedlings grow up to a predetermined time before the time of harvesting in the growing device, and from the time of harvesting in the growing device. When divided into the pre-harvest period, which is the period of cultivation from the predetermined time before to the time of harvest,
During the seedling raising period, a seedling raising culture solution having a magnesium ion concentration in the range of 24 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 4 to 50 ppm was used.
A method for hydroponic cultivation of cultivated plants, which comprises using a nutrient solution containing calcium and not containing nitrogen in the pre-harvest period, and further irradiating visible light having a wavelength of 490 nm or less.
播種から収穫までの期間、植物の生育に必要な肥料成分を含む培養液を用いて栽培する栽培植物の養液栽培方法であって、
前記期間を、育苗装置にて播種から発芽まで栽培する期間である発芽期間、前記育苗装置にて発芽した苗を所定の大きさに成長するまで該育苗装置で栽培する期間である育苗期間、前記所定の大きさに成長した苗を前記育苗装置から生育装置に移植し、該生育装置にて、収穫時よりも所定時間前まで生育する期間である生育期間、該生育装置にて前記収穫時よりも所定時間前から該収穫時まで栽培する期間である収穫前期間に分けたとき、
前記生育期間において、マグネシウムイオンの濃度が48ppm〜120ppmの範囲にあり、硝酸性窒素の濃度が150ppm〜200ppmの範囲にある生育用培養液を用い、
前記収穫前期間において、窒素を含有せず、カルシウムを含有する養液を用い、さらに波長が490nm以下の可視光を照射することを特徴とする栽培植物の養液栽培方法。
It is a hydroponic cultivation method for cultivated plants that is cultivated using a culture solution containing fertilizer components necessary for plant growth during the period from sowing to harvest.
The period is the germination period, which is the period from sowing to germination by the seedling raising device, the seedling raising period, which is the period in which the seedlings germinated by the seedling raising device are cultivated by the seedling raising device until they grow to a predetermined size. Seedlings grown to a predetermined size are transplanted from the seedling raising device to a growing device, and the growing period is a period during which the seedlings grow up to a predetermined time before the time of harvesting in the growing device, and from the time of harvesting in the growing device. When divided into the pre-harvest period, which is the period of cultivation from the predetermined time before to the time of harvest,
During the growth period, a growth culture medium having a magnesium ion concentration in the range of 48 ppm to 120 ppm and a nitrate nitrogen concentration in the range of 150 ppm to 200 ppm was used.
A method for hydroponic cultivation of cultivated plants, which comprises using a nutrient solution containing calcium and not containing nitrogen in the pre-harvest period, and further irradiating visible light having a wavelength of 490 nm or less.
請求項6又は7に記載の養液栽培法方を用いて葉物野菜類を栽培することにより高グルタチオン葉物野菜類を製造する方法。 A method for producing high glutathione leafy vegetables by cultivating leafy vegetables using the hydroponic cultivation method according to claim 6 or 7.
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