Vessel mounted artemia harvest device
11470830 · 2022-10-18
Inventors
- Thomas M. J. G. Bosteels (Ogden, UT, US)
- Philip D. Brown (Ogden, UT, US)
- Shawn G. Smith (Ogden, UT, US)
Cpc classification
Y02A40/81
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A01K75/00
HUMAN NECESSITIES
A01K73/04
HUMAN NECESSITIES
International classification
A01K75/00
HUMAN NECESSITIES
A01K73/04
HUMAN NECESSITIES
Abstract
A device mounted to a vessel for harvesting a subsurface concentration of artemia cysts. In certain embodiments, the device includes a vertically adjustable front net support, a vertically adjustable rear net support and a net having a first end secured to the front net support and a second end secured to the rear net support. A conduit can be coupled to the second end of the net whereby the concentrated artemia cysts are drawn from the second end of net to a processing destination. In certain embodiments, the net has an aspect ratio of at least approximately 4:1. The processing destination could be the vessel or some other destination. In certain embodiments, the vessels are equipped with a dewatering station to which the concentrated cysts are directed for further processing. In some embodiments, the net is secured to a frame which is in turn coupled to the front net support. The front net support can include one or more arms. In certain embodiments, the front net support includes a brace which can be attached to the vessel. The brace can include one more sleeves that correspond to the one or more arms and be hingedly attached to the vessel.
Claims
1. A device mounted to a vessel for harvesting a subsurface concentration of artemia cysts comprising: a) a vertically adjustable front net support including a net frame; b) a rear net support having a vertical adjuster and a lateral adjuster, wherein the lateral adjuster comprises a winch in communication with a beam coupled to the vertical adjuster; c) a net having a first end secured to the vertically adjustable front net support and a second end secured to the rear net support and wherein the lateral adjuster allows the net to remain substantially taut when in use; d) a conduit coupled to the second end of the net whereby the subsurface concentration of artemia cysts is drawn from the second end of the net to a processing destination.
2. The device of claim 1, wherein the net frame is coupled on a first side thereof to a first arm and coupled on a second side thereof to a second arm and a brace attached to the vessel, wherein the brace includes a first sleeve that corresponds to the first arm and a second sleeve that corresponds to the second arm.
3. The device of claim 2, wherein the front net support includes a first wing and a second wing and wherein the first wing is attached to the front net support on the first side of the net frame and the second wing is attached to the front net support on the second side of the net frame opposite the first side of the net frame.
4. The device of claim 1, wherein the vertical adjuster comprises a rear connector frame secured to a shaft capable of being raised and lowered, thereby raising or lowering the rear connector frame.
5. The device of claim 4, wherein the vertical adjuster further comprises a hydraulic ram coupled to the shaft.
6. The device of claim 4, wherein the second end of the net is secured to the rear connector frame of the rear net support.
7. The device of claim 1, wherein the winch further includes a line attached at a first end thereof to the vertical adjuster and at a second end thereof to the beam establishing the communication of the winch with the beam.
8. The device of claim 1, wherein the beam is coupled to the vertical adjuster at approximately a ninety-degree angle.
9. The device of claim 1 wherein the lateral adjuster further comprises one or more low friction spools to guide and ease movement of the beam as it is extended and retracted.
10. The device of claim 1, wherein the net has a mesh size of 200 microns or less.
11. A device mounted to a vessel for harvesting a subsurface concentration of artemia cysts comprising: a) a vertically adjustable front net support comprising a net frame coupled on a first side thereof to a first arm and coupled on a second side thereof to a second arm and a brace attached to the vessel, wherein the brace includes a first sleeve that corresponds to the first arm and a second sleeve that corresponds to the second arm; b) a rear net support having a vertical adjuster and a lateral adjuster, wherein the lateral adjuster comprises a winch in communication with a beam coupled to the vertical adjuster; c) a net having a first end secured to the vertically adjustable front net support and a second end secured to the rear net support and wherein the net has a mesh size of 200 microns or less and wherein the lateral adjuster allows the net to remain substantially taut when in use; d) a conduit coupled to the second end of the net whereby the subsurface concentration of artemia cysts is drawn from the second end of the net to a processing destination.
12. The device of claim 11, wherein the vertical adjuster comprises a rear connector frame secured to a shaft capable of being raised and lowered, thereby raising or lowering the rear connector frame.
13. The device of claim 12, wherein the vertical adjuster further comprises a hydraulic ram coupled to the shaft.
14. The device of claim 12, wherein the second end of the net is secured to the rear connector frame of the rear net support.
15. The device of claim 11, wherein the winch further includes a line attached at a first end thereof to the vertical adjuster and at a second end thereof to the beam establishing the communication of the winch with the beam.
16. The device of claim 11, wherein the beam is coupled to the vertical adjuster at approximately a ninety-degree angle.
17. The device of claim 11 wherein the lateral adjuster further comprises one or more low friction spools to guide and ease movement of the beam as it is extended and retracted.
18. The device of claim 11, wherein the front net support includes a first wing and a second wing and wherein the first wing is attached to the front net support on the first side of the net frame and the second wing is attached to the front net support on the second side of the net frame opposite the first side of the net frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF ILLUSTRATED EMBODIMENTS
(25) Referring to
(26) The vessel includes a front net support 109 located substantially at the bow and a rear net support 119 (
(27) As best seen in
(28) In the embodiments illustrated in
(29) The vertical adjustability of the net 100 allows the harvesting device to capture cysts while floating on the surface and also beneath the surface. The maximum range of the net's adjustability is determined by the vessel's size and strength as well as the depth of the water body being harvested. Thus, the net 100 can be positioned (1) where it is skimming along the surface; (2) at the maximum depth accommodated by the vessel; or (3) anywhere in between.
(30) The net 100 in the illustrated embodiment is also laterally adjustable. The lateral adjustability range is depicted with arrows 182. Lateral adjustment serves a different purpose than the vertical adjustment. In particular, as noted above, keeping the net taut allows improved self-cleaning performance. The lateral adjustments are done to preserve the tautness of the net. This capability also allows nets 100 to have increased longevity. Specifically, over time, the net will begin stretching to some degree. By allowing for lateral adjustment, a net 100 that has started stretching can still be used and remain taut without compromising the fluid connectivity between the cod end 106 and the conduit 134 which provides suction and through which the catch is brought onto the harvest vessel. Lateral adjustability also allows the net 100 to be temporarily loosened as may become necessary to remove foreign objects. Lastly, it allows the net 100 to be more easily de-coupled from the conduit 134 and retrieved to be stored on the vessel.
(31) Referring now to
(32) In the illustrated embodiments, the sleeves 116 are substantially flanking the brace 114. However, in other embodiments, the sleeves 116 may be located elsewhere on the brace 114. In yet other embodiments, the sleeves 116 may be directly fastened to the vessel without any brace 114. However, the brace 114 is advantageous in that it provides added strength against the strain on the arms 112 and sleeves 116 as the vessel moves through the water. The presently illustrated brace 114 has five holes 121. These are provided to maximize strength relative to materials used. However, in other embodiments, more or fewer or no holes may be utilized.
(33) The sleeves 116 in the illustrated embodiment include one or more ridges 115. These ridges 115 give the sleeves 116 more strength. It is noted that the arm 112/sleeve 116 configuration is preferable in that it allows easy installation of the net and adjustability once installed. However, in certain embodiments, it may be desirable to have the front net support 109 in a reverse configuration—i.e. the frame 110 is instead coupled to sleeves 116 that engage arms or posts mounted on the brace 114. In yet other embodiments, hybrids of these connection mechanisms may be utilized.
(34) In the illustrated embodiment, the brace 114 is also attached by a hinge to the vessel. Specifically, the brace 114 is attached with hinging mechanism 117 (
(35) While helpful, a hinging mechanism is not required. In other embodiments, the brace 114 or a brace-less front net support 109 can simply be welded or otherwise immovably secured to the bow of the boat—whether on the deck or some other location.
(36) As seen in
(37) Referring to
(38) It is noted that the nets for zooplankton are fragile and prone to tearing. One additional advantage to the present invention is the inclusion of net panels. As best seen in
(39) Referring now to
(40) In the illustrated embodiment, coupling 120 connects the cod end 106 of the net 100 on one end and has a quick-disconnect coupling 132 on the other that attaches to the conduit 134 (
(41) It is also noted that the coupling 120 need not necessarily be “tubular”—i.e. substantially round in its cross-sectional shape. It could be a variety of cross-sectional shapes provided it can be joined (directly or by including additional fittings) with the cod end 106 and the conduit 134 to create a substantially sealed, fluid connection between the net 100 and the conduit 134.
(42) Referring to
(43) As noted previously, the harvest device can also include a lateral net adjustment mechanism 137. Referring to
(44) As the winch 148 is reeled in a first direction, it winds up line 150 attached to the beam 146 thereby pulling the beam 146 toward the stern of the vessel. This motion is translated to the vertical adjustment mechanism 138 moving it—and thus the rear connector frame 118 and cod end 106 of net 100—out away from the stern of the vessel. As the winch is reeled in the first direction, the cable secured to the vertical adjustment mechanism 138 simultaneously unwinds allowing the vertical adjustment mechanism 138 to freely move.
(45) Turning the winch 148 in the opposite direction creates the opposite motion—i.e. it winds up the line connected to the vertical adjustment mechanism 138 and simultaneously unwinds the line connected to the beam 146, thereby pulling the vertical adjustment mechanism 138 back toward the stern of the vessel and allowing the beam 146 to return to its previous position.
(46) In the illustrated embodiment, line 150 includes an anchor shackle 154 at its end whereby line is secured to the eyehook 152. It is noted that numerous other connection mechanisms as would be apparent to one skilled in the art could be utilized to secure the winch lines to both the beam 146 and the vertical adjustment mechanism 138. In the illustrated embodiment, low friction guides or spools 158 are included to guide and ease movement of the beam 146 as it is extended and retracted. As noted previously, this lateral movement of the net 100 is advantageous in that it allows a user to keep the net taut when in use.
(47) Referring now to
(48) In some embodiments, other dewatering methods can be utilized alone or in combination with harvest bags. For example, a water screen could be utilized that is placed after the manifold. The slurry is run over the screen allowing the water to seep through, while the cysts remain on top and can be easily gathered. Alternatively, running the slurry through a continuous centrifuge or over vibrating screens would further concentrate the cysts.
(49) Referring to
(50) In yet another embodiment depicted at 650, the wedge wire cylinder 654 includes axially oriented wire 656. It similarly allows water to pass through while retaining the catch. Thus, the slurry depicted at arrow 603 enters attachment 650 is dewatered and then the reduced water slurry depicted at arrow 610 can then be transported to harvest bags or other known dewatering techniques.
(51) In some embodiments, both radially and axially oriented wire cylinders may be utilized. Additionally, other dewatering devices could be used such as a continuous flow centrifuge, vibrating screens etc.
(52) Other dewatering devices could also be utilized alone or in combination with those described above. For example, in some embodiments, a manifold is not used and the entire slurry content is deposited in a single container or over some similar water shedding device. In other embodiments, after the manifold (or in embodiments without a manifold after being drawn from the cod end 106), a screen could be employed having a series of narrow slits. As noted above, once the slurry is poured onto screen, water drains through and cysts and any remaining water rest on top.
(53) It is noted that the pump 164 placement and number of pumps 164 could vary according to need and circumstance. In some configurations, the pumps 164 could be placed closer relative to the cod end 106 and effectively push the slurry the entire distance to the dewatering station 165. The pumps 164 could similarly be placed at any point along the conduit 134. A pump 164 suitable for use with the present invention is a Bowie ED4400 pump used either in combination with another pump (as illustrated) or singly in combination with jet nozzles to increase the volume of water to the desired range.
(54) Variations
(55) It is noted that the discussion above has focused primarily on harvesting brine shrimp. However, the present invention is not intended to be limited to any particular catch. While the greatest presently known utility is in the context of Artemia, the invention could also be utilized to harvest other small aquatic organisms including but not limited to various zooplankton species.
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(57) Other attachment mechanisms can also be used to secure net 100 to coupling 260. For example, in certain embodiments, a frame fitting is utilized where the cod end 106 is essentially sandwiched between a male frame piece and a corresponding female frame piece which are then secured with known fastening mechanisms. For example, the cod end 106 could be slipped through a substantially square shaped inner frame section (
(58) As best seen in
(59) In yet other embodiments, additional pumps could be installed at various points along the net 100. For example, as seen in
(60) Similarly,
(61) With the present device, it may be necessary to modify the harvest bags on the vessels to accommodate the larger volume of water that passes through the system. In particular, in typical harvesting activities, 1000-micron harvest bags are used. However, in certain conditions, it is preferable to include a smaller mesh bag inside the primary harvest bag. In one embodiment, a 200-micron mesh bag is placed inside the 1000-micron bags. While the 200-micron bags can tear easily, the 1000-micron bag on the outside provides reinforcement and also makes it usable with standard hooks, supports, and other equipment.
(62) In yet other embodiments, the net 100 can be equipped with a mesh backing on the outside to give it additional strength. A one-inch mesh has been found to provide favorable results, but other mesh sizes could be utilized. The net 100 can also be modular to allow for easier repair. For example, the net 100 can utilize zippered panels so that it is possible to change out a damaged section rather than the entire net. In some embodiments, a large mesh screen can be placed at the net opening 104 to keep out larger debris.
(63) The width of the net could be narrower than, substantially the same as or in some embodiments wider than the vessel. It could also vary in height depending on need and circumstances.
(64) The present harvesting device could accommodate wide variety of net shapes. “Conical” is not intended to be limited to specific geometric shape. Rather, any three dimensional net having an opening at one end and that narrows as it approaches the other end is considered “conical” for purposes of the present invention. The degree of tapering could vary widely depending on circumstances and preferences. However, as noted above, an aspect ratio of at least 4:1 is preferred for its self-cleaning characteristics.
(65) The front frame 110 is described above as being substantially square in shape, but could be other shapes including but not limited to substantially circular, oval or polygonal.
(66) The frame (front and rear) can be made of a variety of materials. Aluminum is suitable because it is relatively strong, lightweight and resistant to corrosion in the salty environments where used. Numerous other materials could also be utilized including but not limited to steel, wood, composites and carbon fiber alone or in combination.
(67) The net can be made of numerous materials including, but not limited to nylon, organic polyamides and wire. It is also noted that as used herein “net” does not necessarily mean a fibrous net as the term is widely known. A net could also be a screen, cloth, fabric or other semi-permeable material that allows water to pass through but that largely retains a catch.
(68) As noted above, dewatering mechanisms on the harvest vessel are used to shed additional water and further concentrate the slurry. Additionally, the vessel can also be equipped with separating screens or hydro cyclones in order to separate brine shrimp cysts from non-cyst material.