METHOD FOR GROWING PLANTS
20220167572 · 2022-06-02
Inventors
- Frank Hendrikus Peter Janssen (Hedehusene, DK)
- Paul Jacques L.H. BOUWENS (Hedehusene, DK)
- Daan Louis DE KUBBER (Hedehusene, DK)
Cpc classification
A01G9/021
HUMAN NECESSITIES
International classification
A01G9/02
HUMAN NECESSITIES
Abstract
The invention relates to a coherent propagation growth substrate product (1) formed of man-made vitreous fibres (MMVF), the product (1) having two opposed top and bottom surfaces and at least one cavity (2) which is open at the top surface and which extends from the top surface towards the bottom surface, wherein a superabsorbent polymer (3) is provided in the cavity (2).
Claims
1. A coherent propagation growth substrate product formed of man-made vitreous fibres (MMVF), the product having two opposed top and bottom surfaces and at least one cavity which is open at the top surface and which extends from the top surface towards the bottom surface, wherein a superabsorbent polymer is provided in the cavity.
2. A growth substrate product according to claim 1, wherein the depth of the cavity is 20 to 80% of the height of the growth substrate.
3. A growth substrate product according to claim 1, wherein the volume of the growth substrate is in the range 3 to 150 cm.sup.3.
4. A growth substrate product according to claim 1, wherein the volume of the growth substrate is in the range 300 to 1500 cm.sup.3.
5. A growth substrate product according to claim 1, wherein the volume of the cavity is 3% to 60% of the volume of the growth substrate, preferably 10 to 50% of the volume of the growth substrate.
6. A growth substrate product according to claim 1, wherein the density of the MMVF immediately surrounding the cavity is greater than the density of the remainder of the MMVF forming the growth substrate product.
7. A growth substrate product according to claim 1, wherein the MMVF has an average density of from 50 to 140 kg/m.sup.3.
8. A growth substrate product according to claim 1, wherein 20% to 100% of the volume of the cavity is filled with hydrated superabsorbent polymer.
9. A growth substrate product according to claim 1, wherein the superabsorbent polymer is in dry granular form.
10. A method of cultivating plants comprising: propagating a seed by providing a product as defined in claim 1, positioning a seed in the cavity, irrigating the growth substrate product and allowing germination and growth of the seed to form a seedling; transplanting the seedling by positioning the growth substrate product on the ground; and irrigating the growth substrate product and allowing growth of the seedling and allowing the seedling to root into the ground.
11. A method of cultivating plants comprising: providing a product as defined in claim 1, positioning a seedling in the cavity, irrigating the growth substrate product and allowing growth of the seedling; transplanting the seedling by positioning the growth substrate product on the ground; and irrigating the growth substrate product and allowing growth of the seedling and allowing the seedling to root into the ground.
12. A process of making a growth substrate product as defined in claim 1, the process comprising providing a coherent mass of MMVF having opposed top and bottom surfaces and forming in the mass of MMVF a cavity extending from the top surface towards the bottom surface, and providing a superabsorbent polymer in the cavity.
13. A process according to claim 12, wherein the cavity is formed by punching or drilling.
14. A process according to claim 13, wherein an array of cavities are formed by holding one or more coherent mass of MMVF in position in a tray and forming the array cavities by punching or drilling.
15. A process according to claim 12, wherein the superabsorbent polymer is provided in dry granular form in the cavity.
16. A process according to claim 12, wherein the superabsorbent polymer is provided in hydrated form in the cavity, and wherein the superabsorbent polymer is preferably extruded into the cavity.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF DRAWINGS
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[0110] The invention will now be described with reference to the following non-limiting examples.
Example 1
[0111] The water holding capacity of a MMVF substrate and silt loam were tested in accordance with EN 13041-1999. The MMVF substrate was a stone wool fibre product with a phenol-urea formaldehyde (PUF) binder and a non-ionic surfactant wetting agent. The results are shown in
[0112] The MMVF substrate has a maximum water content of 90% vol. When the MMVF substrate gives off water, it retains about 2-5% vol of water. This means that the MMVF substrate has a buffering capacity of 85-87% vol. This shows that the MMVF substrate has a high maximum water content, as well as a lower water retention level.
[0113] The maximum water content of the silt loam is lower than the MMVF substrate. The capillarity of the silt loam is much higher than that of the MMVF substrate, which means a suction pressure of several meters is needed to withdraw water from the silt loam. This means that the silt loam soil will easily drain water from the MMVF substrate as soon as the soil is no longer fully saturated. This demonstrates that water will drain from a MMVF substrate into the ground when the soil is not saturated.
Example 2
[0114] SAP (Superabsorbent Polymer) Examples
[0115] Plugs made of a stone wool fibre product with a cured hydrophilic binder were provided. The plugs were cylindrical with a height of 28 mm and a diameter of 20 mm. Each plug was drilled to form a cylindrical cavity that had a height of 15 mm and a diameter of 5 mm. In the examples of the invention, five dry granules of superabsorbent polymer were positioned at the bottom of the cavity. The plugs were completely saturated with nutrient solution. A tomato seed was planted in each plug. After 14 days of growth, the plugs were planted in a garden soil mixture with a water content of either 30% or 50%. After a further 3, 7 and 14 days the weights of the plants were measured.
Reference Examples
[0116] The reference examples were plugs made of a stone wool fibre product with a cured hydrophilic binder. The plugs were cylindrical with a height of 28 mm and a diameter of 20 mm. No cavity was created in the reference samples and no SAP was present. The plugs were completely saturated with nutrient solution. A tomato seed was planted in each plug. After 14 days of growth, the plugs were planted in a garden soil mixture with a water content of either 30% or 50%. After a further 3, 7 and 14 days the weights of the plants were measured.
Results:
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TABLE-US-00001 TABLE 1 Overview planted tomato seeds in plugs Reference SAP Planted tomato seeds Number of plants Number of plants Planted 120 112 Usable 91 (76%) 90 (80%) Withered 18 (15%) 13 (12%) Not germinated 11 (9%) 9 (8%)
[0118] Table 1 shows that there were a greater proportion of usable plants when the SAP plugs were used than when the reference plugs were used.
TABLE-US-00002 TABLE 2 Average weight of the plants Reference SAP Average Plateau Plateau Plateau Plateau weight 1 2 Average 1 2 Average % Days g. g. g. g. g. g. 30 3 0.64 0.55 0.60 0.45 0.49 0.47 7 0.87 0.78 0.83 0.63 0.68 0.66 14 0.61 0.94 0.77 0.62 1.04 0.83 50 3 0.66 0.61 0.64 0.55 0.52 0.54 7 0.85 0.81 0.83 0.79 0.74 0.77 14 0.81 0.99 0.90 0.80 1.05 0.92
[0119] Table 2 shows that when the water content of the soil was 30%, after both 3 and 7 days, the reference plants seem to perform better than the SAP plants. However after 14 days the SAP plants perform better than the reference plants.
[0120] Table 2 shows that when the water content of the soil was 50%, after both 3 and 7 days, the reference plants seem to perform better than the SAP plants. However after 14 days the SAP plants perform about the same as the reference plants.
[0121] Example 1 shows that the suction pressure of silt loam and MMVF is equal at about 50% water content. This means that the water does not drain from the MMVF plugs when the water content of the soil is 50%. This means that there is the same level of water available in the MMVF substrate in both the SAP plugs and the reference plugs. The SAP therefore has a negligible effect when the water content of the soil is 50%. When the water content of the soil is 30%, water will drain from the MMVF to the soil.
[0122] The plants were larger when a larger amount of water is available as shown by comparing the values at 30% water content in the soil and 50% water content in the soil. This shows that when the soil contains 50% water, the growth substrate product contains sufficient water to maintain the plant and the SAP has negligible effect as water is maintained in the MMVF part of the plug. When the soil contains 30% water, water drains from the MMVF part of the plug, but is retained in the SAP. This means that the seed and seedling have access to the water in the SAP and thus the SAP has a positive effect on the growth of the plant. This shows the advantage of the plugs containing SAP when water drains from the MMVF part of the plug into the soil due to the higher suction pressure of soil.
[0123] The results therefore show that the plugs of the invention achieve the aim of providing a water source to seedlings transplanted into the soil when the water content in the soil is less than the suction pressure of MMVF.
[0124] It will be appreciated by the skilled person that any of the preferred features of the invention may be combined in order to produce a preferred method, product or use of the invention.