METHOD OF GROWING A CROP AND HARVESTING DEVICE FOR USE IN THE METHOD
20250268153 ยท 2025-08-28
Assignee
Inventors
- Johannes Adrianus Hendricus Maria VAN DER SANDE (Poeldijk, NL)
- Dirk VERMEULEN (Poeldijk, NL)
- Jeroen Wim VAN LENT (Poeldijk, NL)
Cpc classification
A01G22/05
HUMAN NECESSITIES
International classification
A01G22/05
HUMAN NECESSITIES
Abstract
The invention relates to a method of growing a crop comprising the steps of: growing a seedling (1) in a first growing substrate plug/pellet (2,4), placing the substrate plug/pellet (2,4) in a holder member (10,20), the holder member comprising a tubular body (11,23) and a flange (12,24) extending transversely to the tubular body, the body having a bottom (13, 22) with a root opening, placing a number of holder members in a growth tray (25; 35,36,37), the growth tray having a bottom (26) and upstanding sidewalls (27,28), defining an irrigation space that is adapted for receiving water and nutrients, and a top surface (29) spaced from the bottom (26), with openings (30,31) for receiving a holder member (10,20), the flange (12,24) being supported on the top surface (29), the bottom (26) being in fluid communication with the irrigation space, placing growth trays (25; 35,36,37) in a conditioned growth chamber (40) and exposing the plants to artificial light, after a predetermined period of time, removing of the growth trays to a harvesting area (50), removing the crop from the holder members (10,20) and transporting the crop through a harvesting device (52, 70) for separating fruit from leaves, and collecting the fruit.
Claims
1. Method of growing a fruit-bearing crop comprising the steps of: growing a seedling in a first growing substrate plug/pellet, placing the substrate plug/pellet in a holder member, the holder member comprising a tubular body and a flange extending transversely to the tubular body, the body having a bottom with a root opening, placing a number of holder members in a growth, the growth tray having a bottom and upstanding sidewalls, defining an irrigation space that is adapted for receiving water and nutrients, and a top surface spaced from the bottom, with openings for receiving a holder member, the flange being supported on the top surface, the bottom being in fluid communication with the irrigation space, placing growth trays in a conditioned growth chamber and exposing the plants to artificial light, after a predetermined period of time, removing of the growth trays to a harvesting area, and separating the fruit from the stems and the leaves in the harvesting area and collecting the fruit.
2. Method according to claim 1, comprising the step of removing the crop from the holder members and transporting the crop through a harvesting device in the harvesting area for separating fruit from stems and leaves.
3. Method according to claim 1, comprising excluding the entrance of sunlight from the growth chamber.
4. Method according to claim 1, the flange covering the area of the opening in the top surface.
5. Method according to claim 1, the growth tray being elongate, comprising a row of at least 3 holder members.
6. Method according to claim 1, comprising placing the growth trays at a height of about 1-2 m from a floor.
7. Method according to claim 1, the crop having at the moment of harvesting a height that is no larger than 1 m, the crop being transported with the growth trays to the harvesting area in an upright position.
8. Assembly of growth tray and holder members for use in the method of claim 1.
9. Holder member comprising a tubular body and a flange of a flexible material extending transversely to the tubular body, the body having a bottom with a root opening.
10. Holder member according to claim 9, comprising a guide member extending from the tubular body and/or the flange in an axial direction.
11. Harvesting device for separating crop from leaves, comprising a shaft with at a contact end a number of radial fingers that are pivotable about an axis of the shaft and a number of guide members extending along a circumferential path in the proximity of an end part of the fingers, from a contact position to an exit position, and a drive member for oscillating the shaft around its axis.
12. Harvesting device according to claim 11, the shaft at a drive end being provided with a servomotor with a variable frequency of oscillation and variable intervals between oscillations.
13. Harvesting device according to claim 11, comprising an infeed adjustment member for adjusting the height of an infeed position of the guide members.
14. Harvesting device according to claim 13, comprising an adjustment member for changing the vertical and sideways position of the shaft relative to the guide members.
15. Harvesting device according to claim 11, comprising a base member carrying two or more fingers, the base member being connected to the shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] An embodiment of a harvesting method and a harvesting device according to the invention will, by way of non-limiting example, be described in detail with reference to the accompanying drawing. In the drawing:
[0029]
[0030]
[0031]
[0032]
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[0034]
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[0039]
DETAILED DESCRIPTION
[0040]
[0041] In the sequence described above, relatively large amounts of substrate material 3 are used. In an alternative sequence, in order to save substrate material, the growing substrate 3 in stage I can be directly inserted into the holder member 10 of stage III, so that stage II is omitted.
[0042] Again, alternatively, instead of using a single holder member 10 in stage III, a number of interconnected holder members 10 can be used, each comprising a small crop. The interconnected holder members are placed onto a U-shaped growth tray or gutter 25 that is open at its top surface, the interconnected flanges 12 of the holder members forming a lid. The gutter 25 shown at stage IV comprises a bottom 26, upstanding sidewalls 27, 28 and a top surface 29 with openings 30, 31 for receiving the holder members 10, 20. When a holder member 10, 20 is placed in an opening 30, 31, the flanges 12, 24 are supported on the top surface 29 and the lower part 22 of the cylindrical body 23 is situated close to the bottom 26 so that the roots of the crop 21 can reach the water and nutrients flowing over the bottom 26. The flow of water and nutrients over the bottom 26 has been schematically indicated by the arrow L.
[0043] The flanges 12, 24 are of such dimensions that the openings 30, 31 are completely covered and access of light into the gutter 25 is blocked.
[0044] In stage V it is shown that a number of gutters 35,36, 37 are placed in a growth chamber 40, each on a respective support 41. An air conditioning unit 43 provides air with the required temperature and humidity into the growth chamber 40. Air tubes 42 may be provided extending along the length of the gutters 35-37 for providing an upward stream of air along the crops. Overhead lighting 44 10 provides the required amount for photosynthetically active (PAR) radiation to the crop, no daylight being admitted inside the growth chamber 40. A water and nutrient supply (not shown in the figure) supply a layer of water across the bottom of each gutter 35-37.
[0045] When the crop is full grown in stage V, they are moved from the growth chamber 40 to a harvesting area 50 either together with the gutters 35-37, that are shown in a stacked configuration, or by 15 taking the individual holder members 10, 20 to the harvesting area 50. This is shown in stage VI. In the harvesting area 50, the grown crop is removed from the holder members and placed on a conveyor belt 51 to be transported to an oscillating harvesting device 52 for separating the leaves from the fruit. The fruit is collected in a container 53 and is transported to a site for storage and/or transport.
[0046]
[0047] In zone A of
[0048] Groups 38 of parallel gutters 35,36,37 are transported by transport members 39 in the transport direction T to side conveyors 32, 32 that extend in the width direction W.sub.g along each transverse side of the growth chamber 40. The side conveyors 32 transport the crop, via rotating turning stations 64, to the harvesting area 50, in which the part of the crop bearing the fruit is cut from the stem and is released from the gutters 35-37. The fruit is separated from the leaves and the cut stem of the crop in the harvesting device 52.
[0049] After removal of the top surfaces of the gutters, the roots and remaining parts of the stems of the harvested crop are removed from the gutters, following which the gutters are cleaned in a washing station 54 using high pressure water jets and/or steam.
[0050] In the growth chamber 40, an agitating member 45 is provided for rustling of the leaves of the crop for pollination purposes. The agitating member 45 may be a vibrating device that is connected to a part the support of the gutters 35-37, for transferring vibrations to the gutters that are transported overhead of the vibrating device. The support is provided with rubber connectors for isolating the vibrations of the agitating member from the surrounding parts of the support.
[0051] Alternatively, the agitating member 45 may comprise a fan or blower, impinging air on the leaves of the crop.
[0052]
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[0055]
[0056]
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[0058] The holder member 10 comprises two holes 14, 14 in which guide members 16,16, such as straight sticks, are clamped. The holder member 10 is made of a flexible material that allows the guide members 16,16 to be placed at angle relative to the top surface 29. This provides sufficient play when the guide members 16 16 are pulled upward at an angle from holder member 10 by the removal device 66 that is shown in
[0059]
[0060]
[0061]
[0062] Adjustments are made to the position of the infeed of the crop and to the relative position of the guide member 82 along the circumferential path with respect to the end part of the fingers 71, to obtain good contact of the fruit with the oscillating fingers along the lower perimeter of the fingers and to provide efficient separation of the fruit from the leaves and stems, while avoiding damage to the fruit.
[0063]
[0064]
[0065] In a preferred embodiment, the shaft 100 is oscillated by a servomotor that is driven in an oscillating manner, in which the frequency of oscillation and the period between oscillations is adjusted in dependence of the type of fruit and the growing stage or the degree of ripening of the fruit.