WO2005082136A1 - Equipement de culture a cage tous temps pour poissons - Google Patents

Equipement de culture a cage tous temps pour poissons Download PDF

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Publication number
WO2005082136A1
WO2005082136A1 PCT/KR2005/000567 KR2005000567W WO2005082136A1 WO 2005082136 A1 WO2005082136 A1 WO 2005082136A1 KR 2005000567 W KR2005000567 W KR 2005000567W WO 2005082136 A1 WO2005082136 A1 WO 2005082136A1
Authority
WO
WIPO (PCT)
Prior art keywords
weather
driving
culture equipment
cage culture
shaft
Prior art date
Application number
PCT/KR2005/000567
Other languages
English (en)
Inventor
Jung-Ho Jung
Original Assignee
Jung-Ho Jung
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Jung-Ho Jung filed Critical Jung-Ho Jung
Publication of WO2005082136A1 publication Critical patent/WO2005082136A1/fr

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Classifications

    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K61/00Culture of aquatic animals
    • A01K61/60Floating cultivation devices, e.g. rafts or floating fish-farms
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D29/00Independent underground or underwater structures; Retaining walls
    • E02D29/02Retaining or protecting walls
    • E02D29/0225Retaining or protecting walls comprising retention means in the backfill
    • E02D29/0241Retaining or protecting walls comprising retention means in the backfill the retention means being reinforced earth elements
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D2300/00Materials
    • E02D2300/0085Geotextiles
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A40/00Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
    • Y02A40/80Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in fisheries management
    • Y02A40/81Aquaculture, e.g. of fish

Definitions

  • the present invention relates to all-weather cage culture equipment for fishes and shellfishes, and more particularly to all-weather cage culture equipment for fishes and shellfishes having following features.
  • all-weather cage culture equipment used for breeding fishes and shellfishes in fresh water or a sea can be moved in emergency, such as a windstorm, a typhoon, or a tidal wave.
  • Such all-weather cage culture equipment of the present invention is fabricated by using synthetic resin materials including ceramic materials having an antibiotic property and an infectious disease prevention function and capable of preventing harmful bacteria from being introduced into the all-weather cage culture equipment and promoting the growth of the fishes and shellfishes when breeding the fishes and shellfishes in the all-weather cage culture equipment.
  • seawater is prevented from being introduced into the all-weather cage culture equipment during a red tide and a green tide of fresh water.
  • a water wheel is installed in the all-weather cage culture equipment of the present invention in order to activate water and to make pleasant environment for breeding the fishes and shellfishes while preventing mass mortalities of the fishes and shellfishes bred in the all-weather cage culture equipment, thereby expanding life span of the fishes and shellfishes.
  • a thermal insulation unit is provided in the all-weather cage culture equipment in order to prevent the all-weather cage culture equipment from freezing and to prevent the fishes and shellfishes from being frozen to death.
  • a roof frame is made from a non-slip member and is provided with a handrail in order to ensure safety and convenience of persons who walk or work on the roof frame.
  • reinforcement iron cores are inserted into frames forming the all-weather cage culture equipment through an insert molding process, so that the frames have superior strength and endurance against twist.
  • the frames are made from synthetic resin having a superior corrosion-resistant property, life span of the frames can be expanded.
  • FIG. 1 is a perspective view illustrating all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 2 is a plan view illustrating all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 3 is a front view illustrating all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 4 is a perspective view illustrating a lower base frame of all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 5 is a perspective view illustrating a net wall forming a reservoir of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 6 is a perspective view illustrating a fish gathering plate installed in a fish cage in order to gather fishes in a predetermined region of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 7 is a sectional view illustrating a wire for driving a fish gathering plate of all- weather cage culture equipment according to one embodiment of the present invention
  • FIG. 8 is an exploded perspective view illustrating a water wheel installed in a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 8 is an exploded perspective view illustrating a water wheel installed in a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 9 is a perspective view illustrating all-weather cage culture equipment having a reservoir, a net wall and a door according to one embodiment of the present invention
  • FIG. 10 is a perspective view illustrating a sidewall, a door installed in the sidewall and a driving unit for the door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 11 is a partially enlarged and exploded perspective view illustrating a structure of a door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 12 is a perspective view illustrating a wire for driving a door and a guide unit of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 13 is a perspective view illustrating a clamp for connecting a door driving wire of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 14 is an exploded perspective view illustrating a clamp of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 15 is a sectional view illustrating a coupling state of a clamp of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 16 is a sectional view illustrating a lower base frame provided with a net wall and a fish gathering plate and assembled with a sidewall having a door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 14 is an exploded perspective view illustrating a clamp of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 15 is a sectional view illustrating a coupling state of a clamp of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 16 is a sectional view illustrating a lower base frame provided with a net wall and a
  • FIG. 17 is a perspective view illustrating an alignment of a wire for driving a door installed in a sidewall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 18 is a perspective view illustrating an alignment of a driving unit for driving a door installed in a sidewall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 19 is an exploded perspective view illustrating a wire connection unit of all- weather cage culture equipment according to one embodiment of the present invention
  • FIG. 20 is a perspective view illustrating a structure of a door driving unit of all- weather cage culture equipment according to one embodiment of the present invention
  • FIG. 21 is a sectional view illustrating an operational state of a driving drum for explaining an operational principle of a door driving unit of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 22 is a perspective view illustrating a roof frame installed on an upper portion of all-weather cage culture equipment according to one embodiment of the present inve ntion;
  • FIG. 23 is a perspective view illustrating a window installed at an upper roof frame of all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 24 is a perspective view illustrating a door sealing unit installed at a sidewall of all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 25 is a side-sectional view of all-weather cage culture equipment according to one embodiment of the present invention.
  • FIG. 26 is an exploded sectional view illustrating an internal structure of a door installed in a sidewall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIGS. 27 and 28 are sectional views illustrating an operational state of a door installed in a sidewall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 29 is an exploded perspective view illustrating a lower base frame, a sidewall and a part of an upper roof frame, which are assembled with each other in all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 30 is an exploded perspective view illustrating a lower base frame, a sidewall, a net and a part of an upper roof frame, which are assembled with each other in all- weather cage culture equipment according to one embodiment of the present invention
  • FIG. 31 is an exploded perspective view illustrating a housing section used supporting a window installed in an upper roof frame in such a manner that the window can be angularly opened/closed in all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 32 is an exploded perspective view illustrating the structure of a fish gathering plate driving wire and a door driving wire installed in an upper roof frame of all- weather cage culture equipment according to one embodiment of the present invention
  • FIG. 33 is a perspective view illustrating a driving control unit for controlling an operation of a door and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 34 is a plan view illustrating a driving control unit for a door used for controlling an operation of the door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 35 is a plan view illustrating a driving control unit for a fish gathering plate used for controlling an operation of the fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 36 is a perspective view illustrating a driving control unit for a window used for controlling an operation of the window of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 37 is a perspective view illustrating a driving control unit for a fish gathering plate used for controlling an operation of the fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 38 is a perspective view illustrating a driving drum section, which is a main part of a driving control unit for a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 48 is a perspective view illustrating a driving drum section, which is a main part of a driving control unit for a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 39 is a perspective view illustrating a driving control unit for controlling a lateral operation of a door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 40 is an enlarged perspective view illustrating a main part of a driving control unit used for controlling a lateral operation of a door of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 41 is a perspective view illustrating a connection state between a fish gathering plate and a driving control unit of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 42 is a perspective view illustrating a slider guider of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 43 is a perspective view illustrating a braking unit for a window and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIGS. 44 and 45 are front views illustrating operational states of a braking unit for a window and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 46 is an exploded perspective view illustrating a braking unit for a window and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 47 is a front view illustrating a driving control unit of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 44 and 45 are front views illustrating operational states of a braking unit for a window and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 46 is an exploded perspective view illustrating a braking unit for a window and a fish gathering plate of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 47
  • FIG. 48 is a perspective view illustrating reinforcement iron cores inserted into elements forming a driving control unit of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 49 is a perspective view illustrating a reinforcement iron core inserted into an upper roof frame of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 50 is a perspective view illustrating a reinforcement iron core inserted into an upper roof frame of all-weather cage culture equipment according to another embodiment of the present invention
  • FIG. 51 is a perspective view illustrating a reinforcement iron core inserted into an upper roof frame of all-weather cage culture equipment according to still another embodiment of the present invention
  • FIG. 60 is a perspective view illustrating reinforcement iron core inserted into an upper roof frame of all-weather cage culture equipment according to still another embodiment of the present invention.
  • FIG. 52 is a perspective view illustrating a reinforcement iron core inserted into a sidewall cover of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 53 is a perspective view illustrating a reinforcement iron core inserted into a net wall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 54 is a perspective view illustrating a reinforcement iron core inserted into a slider of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 55 is a perspective view illustrating reinforcement iron cores inserted into a sidewall of all-weather cage culture equipment according to one embodiment of the present invention
  • FIG. 64 is a perspective view illustrating reinforcement iron cores inserted into a sidewall of all-weather cage culture equipment according to one embodiment of the present invention.
  • the all-weather cage culture equipment of the present invention prevents water from being introduced into the all-weather cage culture equipment by shielding the all-weather cage culture equipment, thereby preventing fishes and shellfishes from being damaged by harmful bacteria and infectious disease.
  • the all-weather cage culture equipment of the present invention has a means for controlling a water temperature according to external environment and a means for preventing the all- weather cage culture equipment from freezing and fishes and shellfishes from being frozen to death caused by a cold wave in the cold season.
  • the all-weather cage culture equipment of the present invention can optimize breeding environment for the fishes and shellfishes, so that it is possible to improve quality of the fishes and shellfishes, thereby increasing an income of fishermen.
  • the all-weather cage culture equipment of the present invention may consist of elements made from materials having the superior strength and corrosion-resistant property, so that life span of the all-weather cage culture equipment of the present invention can be expanded and environment-friendly all-weather cage culture equipment can be obtained.
  • all-weather cage culture equipment for breeding various fishes and shellfishes
  • the all-weather cage culture equipment comprising: a base frame provided at a lower portion of the all-weather cage culture equipment; a net wall section provided at an upper portion of the base frame in order to form a fish cage; a fish gathering plate installed in the net wall section in order to gather the fishes and shellfishes in a predetermined place in the fish cage; a water wheel installed at one side of the fish gathering plate in order to feed oxygen into the fish cage and to circulate water in the fish cage; a sidewall section surrounding the net wall section and having a plurality of doors opened/closed in front, rear, left or right direction in order to allow seawater to be circulated through the doors; a roof frame installed at an upper portion of the sidewall section and provided with a plurality of windows, which are angularly closed/opened; a driving control unit installed at one side of the sidewall section in order to control operations of the fish gathering plate,
  • the all-weather cage culture equipment 1 according to the present invention has advantages as follows:
  • the all-weather cage culture equipment 1 of the present invention is fabricated by using synthetic materials including ceramic materials, so the all-weather cage culture equipment 1 can prevent the harmful bacteria and infectious disease while promoting the growth of the fishes and shellfishes, thereby improving the meat quality of the fishes and shellfishes.
  • the all-weather cage culture equipment 1 of the present invention can be moved into the safety zone in emergency, such as the windstorm or typhoon, by fastening the rope to the hook 7 formed at the outer peripheral portion of the all-weather cage culture equipment 1.
  • the all-weather cage culture equipment 1 of the present invention can prevent seawater from being introduced into the all-weather cage culture equipment 1 when the red tide of the sea or the grin tide of fresh water occurs, thereby preventing loss of the fishes and shellfishes.
  • the water wheel 34 is installed in the all-weather cage culture equipment 1 of the present invention in order to feed oxygen and circulate water, so that it is possible to prevent the mass mortalities of the fishes and shellfishes bred in the all-weather cage culture equipment 1 while expanding life span of the fishes and the shellfishes and improving environment for the fishes and the shellfishes.
  • the windows 4 installed in the roof frame 3 and the doors 11 installed in the sidewall section 12 are closed so that cold air or cold water is not introduced into the all-weather cage culture equipment 1.
  • the all-weather cage culture equipment 1 of the present invention is prevented from freezing and the fishes and the shellfishes can be prevented from being frozen to death due to the adiabatic float members 10 accommodated in the all-weather cage culture equipment 1.
  • the fishes and shellfishes can be easily inspected and taken out of the all-weather cage culture equipment 1 by moving the fish gathering plate 18 in the left or right direction.
  • the handrail 6 and the upper portion of the roof frame 3 are made from a non- slip member in order to ensure safety and convenience of persons who walk or work on the roof frame 3.
  • Elements forming the all-weather cage culture equipment 1 are made from synthetic resin having a superior corrosion-resistant property, so the life span of the elements can be expanded.
  • the all-weather cage culture equipment 1 of the present invention can be managed with the reduced number of workers and the water wheel 34 is operated by means of the hydraulic motor 35, so that the all-weather cage culture equipment 1 can be easily managed.
  • the all-weather cage culture equipment 1 of the present invention is designed by taking water contamination into consideration, so that it is possible to prevent the fishes and shellfishes from being contaminated, thereby minimizing loss of the fishes and shellfishes.
  • a waste tire is interposed between all-weather cage culture equipments 1 so that the all-weather cage culture equipments 1 are bound with each other in the form of a raft.
  • the all-weather cage culture equipment 1 of the present invention can be moved into a harbor or the safety zone in emergency, such as the windstorm, typhoon or tidal waves, by using a ship. That is, the all-weather cage culture equipment 1 of the present invention can be towed by fastening one end of the rope to the hook of the all-weather cage culture equipment 1 and fixing the other end of the rope to the anchor installed in the safety zone.
  • the fishes and the shellfishes can be prevented from being damaged even if relatively high waves are generated.
  • FIG. 1 is a perspective view illustrating the structure of the all-weather cage culture equipment 1 according to the present invention.
  • the all-weather cage culture equipment 1 of the present invention has a substantially rectangular structure.
  • Fishes and shellfishes are inputted into the all-weather cage culture equipment 1 in such a manner that the fishes and shellfishes can be bred in the all- weather cage culture equipment 1 installed in a sea or fresh water.
  • Elements of the all-weather cage culture equipment 1 of the present invention are coupled with each other by means of bolts 2. At this time, the bolts 2 do not protrude out of the all-weather cage culture equipment 1 in order to prevent wastes and impurities from being caught by the bolts 2 and to prevent persons or workers who walk or work on a roof frame 3 from being interrupted by the bolts 2, thereby ensuring the safety of persons or workers.
  • a plurality of windows 4 are installed in the roof frame 3 in such a manner that the windows 4 have a triangular structure when viewed from a side of the all-weather cage culture equipment 1.
  • the roof frame 3 equipped with the windows 4 has a triangular water drain path 5 in order to easily drain water.
  • a handrail 6 is fixedly installed at an outer peripheral portion of the roof frame 3 by means of handrail supports 6a in order to ensure the safety of the workers.
  • a plurality of hooks 7 are fixed to the all-weather cage culture equipment 1.
  • the hooks 7 are used when moving the all-weather cage culture equipment 1 into a safety zone by means of a ship in emergency, such as a windstorm, a typhoon, or a tidal wave.
  • the all-weather cage culture equipment 1 of the present invention mainly includes a base frame 8 provided at a lower portion of the all-weather cage culture equipment 1, a net wall section 9 assembled with an upper portion of the base frame 8 in order to form fish cages 17 for breeding fishes and shellfishes, a sidewall section 12 having an adiabatic float member 10 allowing the net wall section 9 to have thermal insulation and float functions and a plurality of doors 11, which are slidably opened/closed in the front, rear, left or right direction, and the roof frame 3 assembled with an upper portion of the sidewall section 12, provided at front and rear portions thereof with a plurality of windows 4, which can be angularly opened/closed, and formed at an inner portion thereof with the adiabatic float member 10.
  • the adiabatic float member 10 can be attached to the windows 4 in order to keep the temperature of the all-weather cage culture equipment 1 in the winter season and to shield light in the summer season.
  • the base frame 8 forming the lower portion of the all-weather cage culture equipment 1 is fabricated by using a plurality of frames 8a, which are connected with each other.
  • the base frame 8 is formed at an inner portion thereof with receiving chambers 13 in which the adiabatic float member 10, such as Styrofoam, is accommodated and an upper cover frame 14 is assembled.
  • a plurality of clamps 16 capable of receiving a plurality of artificial seaweeds 15 are provided at an upper portion of the cover frame 14 with a predetermined interval.
  • the artificial seaweeds 15 are made from a ceramic material.
  • the artificial seaweeds 15 have an elongated shape so that the artificial seaweeds 15 can easily float in water.
  • the artificial seaweeds 15 have a flexible property so that the artificial seaweeds 15 do not interrupt the movement of a fish gathering plate 18, which moves in the left or right direction for gathering the fishes. That is, the artificial seaweeds 15 get bent when they make contact with the fish gathering plate 18, and then, return to their initial positions.
  • the net wall section 9 is assembled with the upper portion of the base frame 8, thereby forming the fish cages 17 for breeding fishes and shellfishes.
  • the fish cages 17 formed in the all-weather cage culture equipment 1 are defined by means of the net wall section 9 so that water may pass through the fish cages 17 and the fishes cannot pass through the fish cages 17.
  • the fish gathering plate 18, which slidably moves in the left or right direction, is installed in the fish cage 17 in order to gather the fishes and shellfishes for inspecting the fishes and shellfishes and for carrying the fishes and shellfishes out of the fish cage 17.
  • a frame 19 having a substantially rectangular shape and forming the fish gathering plate 18 is formed at an upper portion thereof with a slide slot 21, into which a net 20 is slidably inserted.
  • guide rollers 22 are rotatably installed at upper and lower parts of front and rear portions of the frame 19 in such a manner that the frame 19 may slidably move along a guide slot 23, which is formed lengthwise along the net wall section 9.
  • brackets 24 are provided at upper and lower parts of front and rear portions of the frame 19 in order to fix both ends of a wire 25.
  • the wire 25 is wound around a driving drum 28, which is installed in a gear housing 27 forming a driving control unit 26. Accordingly, the fish gathering plate 18 may slidably move in the left or right direction according to the reversible operation of the driving drum 28.
  • Locking protrusions 29 having a ball-shape are formed in the wire 25 with a predetermined interval.
  • the locking protrusions 29 are coupled with locking slots 30 formed at an outer peripheral portion of the driving drum 28 with a predetermined interval in order to drive the wire 25.
  • a partition plate 30a is formed in the driving drum 28.
  • FIG. 7 illustrates a screw-type fixing pipe 44 and a screw-type bracket 45 used for fixing the guide pipe 31 to one side of the net wall section 9.
  • a water wheel 34 having a fish protecting net 33 is installed at one side of the fish gathering plate 18 by means of a bracket 32 in order to circulate or control a water flow in the fish cage 17 and to sufficiently feed oxygen into the fish cage 17.
  • the water wheel 34 is connected to a hydraulic motor 35 installed on the driving control unit 26.
  • a spur gear 37 is fixed to a shaft 36 of the hydraulic motor 35 and two spur gears 38 and 39 engage with the spur gear 37 in order to drive the water wheel 34 installed in the fish cage 17.
  • Driving shafts 40 and 41 of the spur gears 38 and 39 and the water wheel 34 are connected to each other through cables 42 and 43 (see, FIG. 8).
  • the bracket 32 is formed with a coupling hole 32a and connection brackets 42a and 43a are provided at end portions of the cables 42 and 43 in such a manner that fixing pins 32b having a T-shape are inserted into coupling holes 42b and 43b of the connection brackets 42a and 43a and the coupling hole 32a of the bracket 32.
  • the net wall section 9 forming the fish cages 17 has been installed at an upper portion of the base frame 8, the sidewall section 12 having a plurality of doors 11 is installed at an outer portion of the base frame 8. Although it is illustrated that a plurality of doors 11 are installed at both sides of the sidewall section 12, it is also possible to install the doors 11 only at one side of the sidewall section 12 in which the driving control unit 26 is not formed.
  • the sidewall section 12 can be constructed by assembling a plurality of sidewalls installed on the base frame 8 with each other by means of bolts 2.
  • the sidewall section 12 is formed at an inner portion thereof with a receiving chamber 46 in which the adiabatic float member 10 is accommodated.
  • a plurality of the doors 11 are installed lengthwise along the sidewall section 12 in such a manner that the doors 11 can be opened/closed in the front, rear, left or right direction.
  • door receiving parts 47 are formed in the sidewall section 12.
  • the doors 11 are installed between slider guiders 49 formed in sliders 48 in such a manner that the doors 11 can be slidably opened/closed in the front, rear, left or right direction in the door receiving parts 47.
  • the sealing device 51 includes a rubber packing 52 having a concave sectional shape and a rubber packing 53 having a convex sectional shape.
  • the rubber packing 53 is inserted into the rubber packing 52 in order to improve sealing performance.
  • Wires 54 are connected to upper and lower portions of the doors 11 in such a manner that the doors 11 can be slidably moved along the slider guiders 49 of the sliders 48 while selectively opening/closing the openings 50 of the sidewall section 12.
  • the doors 11 are slidably moved in the left or right direction by means of withdrawing force of the wires 54.
  • both ends of the wire 54 are connected to a door driving unit 55 installed in the driving control unit 26.
  • the doors 11 may primarily move in the front or rear direction together with the sliders 48.
  • the sliders 48 are elastically supported by means of sub-wires 56 installed in guide brackets 57 while interposing springs 58 therebetween.
  • the guide brackets 57 are provided at left and right parts of upper and lower portions of the door receiving parts 47.
  • Guide rollers 59 are installed at inner portions of the guide brackets 57 in order to guide the sub-wires 56 at a right angle while supporting the sub-wires 56 of the sliders 48.
  • connection rings 56a As shown in FIGS. 12 to 15, the sub-wires 56 are connected to main wires 60 through connection rings 56a and the positions of the connection rings 56a are determined by means of clamps 61 fixed to the main wires 60.
  • the clamp 61 is formed at an inner portion thereof with a plurality of pressing protrusions 62 and is divided into two semi-cylindrical parts, which are coupled with each other by means of a fixing pin 63 such that the clamp 61 cannot be separated from the main-wire 60.
  • Tension of the main wire 60 can be adjusted by using a screw-type connection tool 142 as shown in FIG. 19.
  • the screw-type connection tool 142 is used for jointing the main wire 60 made from steel having superior strength.
  • the main wire 60 is slidably moved in the front or rear direction according to the reversible operation of a door driving unit 64 as shown in FIGS. 20 and 21.
  • the door driving unit 64 is provided with an actuating lever 66b and a spur gear 67 engages with a spur gear 66 supported by a shaft 66a.
  • the spur gear 67 and a driving drum 69 are supported by means of a shaft 68 and an end portion of the main wire 60 is fixed to the driving drum 69. Accordingly, as a wire 65 connected to the actuating lever 66b and a door actuating lever 65a connected to the end portion of the wire 65 are pulled or released, the driving drum 69 may rotate in the forward or backward direction.
  • the main wire 60 is pulled or released so that the doors 11 are slidably moved in the rear direction or slidably moved in the front direction by means of bias force of the spring 58.
  • a part of the main wire 60 is formed as an elastic main wire 60a including an elastic material, such as vinyl or a flexible material.
  • the doors 11 and the sliders 48 are provided at inner portions thereof with the adiabatic float member 10.
  • the roof frame 3 having a plurality of windows 4 aligned lengthwise along the roof frame 3 with a predetermined interval is installed at the upper portion of the sidewall section 12.
  • the roof frame 3 is also provided at an inner portion thereof with the adiabatic float member 10 in such a manner that the roof frame 2 can float in water and the water temperature in the all-weather cage culture equipment 1 can be properly maintained.
  • the windows 4 are installed on the roof frame 3 having the triangular structure lengthwise along the roof frame 3 so that water can be easily drained.
  • a triangular drain path 5 is formed at a center of the roof frame 3 and handrail supports 6a for supporting the handrail 6 is installed at the outer peripheral portion of the roof frame 3 in order to ensure the safety of the workers who walk or work on the roof frame 3.
  • a housing 73 having bearings 72 aligned in the housing 73 with a predetermined interval is installed on the roof frame 3.
  • the windows 4 are fixed to a driving shaft 74, which is supported by the bearings 72, by means of a fixing bracket 75 in such a manner that the windows 4 can be selectively opened/closed according to a reversible operation of the driving shaft 74.
  • Rubber packing sections 76 are attached to outer peripheral portions of the windows 4 in order to prevent harmful bacteria or impurities from being introduced into the fish cages 17 even if high waves or a flood occurs.
  • the driving control unit 26 of the present invention is installed at one side of the sidewall section 12 of the all-weather cage culture equipment 1.
  • a control box 77 is provided at a center of the driving control unit 26 and gear housings 27 are installed at both sides of the control box 77.
  • the control box 77 has a driving shaft 78 installed in the longitudinal direction of the control box 77, and an adjustment handle 79 having a handle 79a is fixed to an upper portion of the driving shaft 78.
  • a driving bevel gear 80 for driving the windows 4 a driving bevel gear 81 for driving the fish gathering plates 18, and a driving bevel gear 82 for laterally driving the doors 11 are sequentially fixed around the driving shaft 78 from the upper portion of the driving shaft 78.
  • driven bevel gears 83, 84 and 85 engaged with the driving bevel gears 80, 81 and 82 are fixedly installed around driven shafts 86, 87 and 88, which are aligned vertically to the driving shaft 78.
  • the driven shaft 86 used for driving upper windows 4 is coupled with a chain sprocket 89, which is connected to a chain sprocket 91 of a connection shaft 90 installed in the gear housing 27 through a chain 92.
  • a bevel gear 93 is fixedly installed around the connection shaft 90.
  • the bevel gear 93 selectively engages with a bevel gear 95 fixedly installed around a clutch shaft 94, and the bevel gear 95 selectively engages with a bevel gear 96 fixedly installed around the driving shaft 74 used for driving the windows 4.
  • a spur gear 97 is fixedly installed around the driving shaft 74 used for driving the windows 4.
  • the spur gear 97 engages with a spur gear 98, which is fixedly installed around the driving shaft 74 adjacent to the spur gear 97, in such a manner that adjacent windows 4 can be simultaneously opened/closed according to the operation of the driving shaft 74.
  • the bevel gear 95 positioned around the clutch shaft 94 is elastically supported by means of a spring 99 in the gear housing 27.
  • the bevel gear 95 is connected to a slider-guider 100 through a clutch cable 100a such that the bevel gear 95 can slidably move along the slider-guider 100.
  • the bevel gear 85 can selectively engage with the bevel gear 91 installed around the connection shaft 90 and the bevel gear 96 installed around the driving shaft 74 according to the intermittent operation of a clutch lever 101 installed at an upper portion of the control box 77, thereby transferring or shutting off the driving power.
  • a brake 102 capable of braking the driving shaft 74 is fixedly installed around the driving shaft 74 in the gear housing 27 in order to prevent the opened windows 4 from being unintentionally closed.
  • brake gears 103 are fixedly installed around the driving shaft 74 and brake blocks 105 having gears 104 engaged/disengaged with/from the brake gears 103 are installed around guide bars 106 in such a manner that the brake blocks 105 can slidably move along the guide bars 106.
  • a plurality of levers 107 and 108 are coupled to the driving shaft 74 such that the levers 107 and 108 may form a substantially X-shaped structure.
  • guide pins 110 provided at upper and lower sides of the brake blocks 105 are inserted into elongated holes 109 formed in the levers 107 and 108, and a brake cable 111 is connected to the levers 107 and 108 through guide rollers 112. Therefore, if a worker pulls a brake lever 113 installed in the control box 77, the gears 104 formed in the brake blocks 105 engage with the brake gears 103 installed around the driving shaft 74 so that the driving gear 74 can be fixed at a predetermined angular position.
  • the driving unit for driving the driving shaft 74, the braking unit, and the clutching unit are symmetrically installed at both sides of the driving control unit 26 as shown in FIG. 34.
  • the driven bevel gear 84 having the driven shaft 87 engages with the driving bevel gear 81 used for driving the fish gathering plate 18.
  • a chain sprocket 114 is fixedly installed around the driven shaft 87 in such a manner that the chain sprocket 114 is connected to a chain sprocket 116 installed around a connection shaft 115 in the gear housing 27 through a chain 117.
  • a bevel gear 118 is fixedly installed around the connection shaft 115.
  • the bevel gear 118 selectively engages with a bevel gear 120 fixedly installed around a clutch shaft 119.
  • the bevel gear 120 selectively engages with a bevel gear 122 fixedly installed around a driving shaft 121, which supports the driving drum 28 used for driving the fish gathering plate 18.
  • a tension roller 123 is installed below the driving drum 28 used for driving the fish gathering plate 18.
  • the tension roller 123 is elastically supported by means of a tension control spring 124 in such a manner that the locking protrusions 29 of the wires 25 can be securely inserted into the locking slots 30 of the driving drum 28.
  • a brake 125 is provided in the driving shaft 121, which supports the driving drum 28 used for driving the fish gathering plate 18, in order to prevent the fish gathering plate 18 from being unintentionally moved after the fish gathering plate 18 has been slidably moved into a predetermined position.
  • a braking unit for the fish gathering plate 18, that is, the brake 125 has a structure identical to that of the brake 102 for the windows 4 (see, FIGS. 43 to 46).
  • the driving shaft 74 shown in FIGS. 43 to 46 is replaced with the driving shaft 121 used for driving the driving drum 28 and the brake 125 is identical to the brake 102.
  • the brake blocks 105 engage with the brake gears 103 of the driving shaft 121 so that the driving shaft 121 can be fixed at a predetermined position.
  • the driving shaft 121 for driving the fish gathering plate 18 and the brake 125 are symmetrically installed at both sides of the driving control unit 26 as shown in FIG. 35.
  • the clutch shaft 119 is elastically supported by a spring 127 in the gear housing 27.
  • the clutch shaft 119 is connected to a slider-guider 128 through a clutch cable 128a such that the clutch shaft 119 can slidably move.
  • the bevel gear 120 of the clutch shaft 119 selectively engages with the bevel gear 118 installed around the connection shaft 115 and the bevel gear 122 installed around the driving shaft 121 according to the intermittent operation of a clutch lever 129 installed at an upper portion of the control box 77, thereby transferring or shutting off the driving power.
  • the driven bevel gear 85 supported by the driven shaft 88 engages with the driving bevel gear 82 installed around the driving shaft 78 in order to open/close the doors 11.
  • the driven shaft 88 acts as a clutch.
  • the driven shaft 88 is elastically supported by a spring 130 in the gear housing 27 in order to control driving power and connected to a slider-guider 131 through a clutch cable 131a such that the driven shaft 88 can slidably move.
  • the bevel gear 85 of the driven shaft 88 selectively engages with the bevel gear 134 installed around the connection shaft 133 according to the intermittent operation of a brake lever 132 installed at an upper portion of the control box 77, thereby transferring or shutting off the driving power.
  • a reinforcement iron core 141 is inserted into the above gears in order to improve the strength and endurance of the above gears.
  • the brake 135 having the structure identical to the structures of the brakes 102 and 125 is connected to one end of the connection shaft 133 in such a manner that the brake 135 may operate when the driving power applied to the driven shaft 88 is shut off, thereby braking the doors 11.
  • a plurality of chain sprockets 136 and 137 are fixedly installed around the connection shaft 144 and a plurality of chains 138 and 139 are coupled with the chain sprockets 136 and 137. Both ends of the chains 138 and 139 are connected to end portions of wires 54 through connection members 140 in order to slidably move the doors 11 in the left or right direction.
  • various reinforcement iron cores 141 are fabricated corresponding to shapes of elements of the all- weather cage culture equipment 1 through a pressing process and are inserted into the elements through an insert molding process when the elements are injection-molded by using synthetic resin including ceramic, thereby improving the strength and endurance against twist of the elements.
  • FIG. 48 shows the reinforcement iron cores 141 inserted into the driven bevel gears 83 and 84 and the driven shafts 86 and 87 installed at the driving shaft 78.
  • FIGS. 49 to 51 show the reinforcement iron cores 141 inserted into the elements forming the roof frame 3.
  • FIG. 52 shows the reinforcement iron frame 141 inserted into the sidewall cover 71.
  • FIG. 53 shows the reinforcement iron frame 141 inserted into the net wall section 9 forming the fish cages 17 provided in the all-weather cage culture equipment 1.
  • FIG. 54 shows the reinforcement iron frame 141 inserted into the slider 48, which guides the sliding movement of the doors 11 in the left or right direction while moving in the front or rear direction.
  • FIG. 55 shows the reinforcement iron frames 141 inserted into the doors 11 and sidewall section 12 forming the sidewall of the all-weather cage culture equipment 1, respectively.
  • FIG. 56 shows the reinforcement iron frame 141 inserted into the base frame 8 forming the lower portion of the all-weather cage culture equipment 1.
  • Such reinforcement iron cores 141 can be fabricated with various shapes according to the shapes of the elements forming the all-weather cage culture equipment 1.
  • Reference numeral 2a is a nut screw-coupled with the bolt 2
  • reference numeral 56a is a connection ring for connecting the sub-wire 56 to the main wire 60.
  • the all-weather cage culture equipment 1 having the above structure is used for breeding fishes and shellfishes in a sea, a river, a water reservoir, or a lake.
  • an operation of the all-weather cage culture equipment 1 according to the present invention will be described in detail.
  • the adiabatic float member 10 is inserted into the roof frame 3 provided with the windows 4, the sidewall section 12 having the doors 11 and the base frame 8, thereby preventing the fishes and shellfishes from being frozen to death in the winter season.
  • the adiabatic float member 10 shields the sunlight in order to keep the water temperature in the all-weather cage culture equipment 1 at a predetermined temperature adaptable for breeding the fishes and shellfishes, thereby preventing mass mortalities of the fishes and shellfishes bred in the all-weather cage culture equipment 1.
  • the roof frame 3 installed on the upper portion of the all-weather cage culture equipment 1 has a triangular structure when viewed from the side thereof and the water drain path 5 has a triangular shape, water can be easily drained even if the tide is high.
  • the roof frame 3 is provided with the handrail 6 so that workers who walk or work on the roof frame 3 can be prevented from falling down from the roof frame 3 caused by strong wind or water flow.
  • the all-weather cage culture equipment 1 can be moved into a safety zone in emergency, such as the windstorm or tidal waves, or can be shifted into other place by using the ship while fastening ropes to the hooks 7.
  • the driving bevel gear 80 supported by the driving shaft 78 may rotate so that the driven bevel gear 84, which is installed around the driven shaft 87 and engaged with the driving bevel gear 80, also rotates. Since the chain sprocket 114 supported by the driven shaft 87 is connected with the chain sprocket 116 supported by the connection shaft 115 through the chain 117, the driving drum 28 may rotate in the clockwise or counterclockwise direction.
  • the wire 25 wound around the driving drum 28 is also driven so that the fish gathering plate 18 is slidably moved in the left or right direction by means of withdrawing force of the wire 25 while being guided along the guide slot 23 formed in the net wall section 9 by means of the guide roller 22.
  • the fishes and shellfishes provided in the fish cage 17 are gathered in the predetermined place of the fish cage 17, so that the worker can easily inspect and take out the fishes and shellfishes.
  • the driving drum 28 is formed with locking slots 30, which are aligned while forming a predetermined interval therebetween in order to receive locking protrusions 29 formed in the wire 25, the wire 25 can be precisely driven without occurring the slip between the wire 25 and the driving drum 28 when the driving drum 28 rotates.
  • the driving drum 28 has the partition plate 30a so that the wire 25 can be prevented from being separated from the driving drum 28.
  • the brake 125 allows the brake gears 103 installed at one side of the driving shaft 74 or 121 to slidably move the slide blocks 105 towards the driving shaft 121 when the levers 107 and 108 are angularly moved by means of pulling force of the brake cable 111, so that the gears 104 formed in the brake blocks 105 engage with the brake gears 103 installed around the driving shaft 121, thereby braking the driving shaft 121. If the brake lever 126 is released from the braking state, the brake blocks 105 are slidably moved along the guide bars 106 away from each other so that the gears 103 are released from the gears 104. Thus, the driving shaft 121 can be rotated.
  • the windows 4 are designed such that the angular positions of the windows 4 can be adjusted.
  • the angular movement of the windows 4 will be described in detail.
  • the windows 4 installed in the roof frame 3 are provided at end portions thereof with rubber packings 76, so that the windows 4 are closely coupled with the roof frame 3, thereby preventing seawater from being introduced into the fish cage 17.
  • the clutch lever 101 installed on the control box 77 of the driving control unit 26 is shifted in the left or right direction from the neutral position thereof according to the opening direction of the windows 4.
  • the driving shaft 74 Since the chain sprocket 89 supported by the driven shaft 86 is connected with the chain sprocket 91 supported by the connection shaft 90 through the chain 92, the driving shaft 74 also rotates so that the fixing bracket 75 supported by the driving shaft 74 and the fixed windows 4 are angularly moved. Thus, the opening degree of the windows 4 can be adjusted.
  • the opening degree of the windows 4 aligned on the roof frame 3 in the triangular structure can be simultaneously or sequentially adjusted because the spur gear 97 is fixedly installed around the driving shaft 74 used for opening/closing the windows 4 and the spur gear 98 engaged with the spur gear 97 is fixedly installed around the driving shaft adjacent to the driving shaft 74.
  • the brake 102 is operated in order to fix the windows 4.
  • the brake 102 allows the brake gears 103 installed at one side of the driving shaft 74 to slidably move the slide blocks 105 towards the driving shaft 74 when the levers 107 and 108 are angularly moved by means of pulling force of the brake cable 111, so that the gears 104 formed in the brake blocks 105 engage with the brake gears 103 installed around the driving shaft 121, thereby braking the driving shaft 74.
  • the brake blocks 105 are slidably moved along the guide bars 106 away from each other so that the gears 103 are released from the gears 104.
  • the driving shaft 74 can be rotated and the windows 4 can be fixedly maintained after the windows 4 have been opened with the desired angle.
  • the all- weather cage culture equipment 1 prevents seawater from being introduced into the fish cage 17, thereby preventing the mass mortalities of the fishes and shellfishes bred in the all-weather cage culture equipment 1. At this time, all of the windows 4 and the doors 11 installed in the sidewall section 12 are closed.
  • the wire 54 having one end connected to the chains 138 and 139 through the connection member 140 and the other end connected to the left and right parts of the upper and lower portions of the doors 11 may pull the doors 11 so that the doors 11 are shifted into predetermined positions corresponding to the openings 50 formed in the sidewall section 12 and communicated with the fish cages 17 while being guided by the slider-guider 49 installed on the slider 48 (see, FIG. 28). In this state, in order to close the openings 50 by using the doors 11 as shown in FIG.
  • the door actuating lever 65a of the door driving unit 64 is operated so that the shaft 68 may rotate together with the spur gear 67 engaged with the spur gear 66 connected to the actuating lever 65a through the wire 65 and the actuating lever 66b as shown in FIGS. 20 and 21.
  • the driving drum 69 of the shaft 68 is rotated and the main wire 60 connected to both sides of the driving drum 69 is pulled. Accordingly, the sub-wire 56 used for driving the doors and connected to the sidewall section 12 is also pulled.
  • One end of the sub- wire 56 is fixed by means of the clamp 61 fixed to the main wire 60 and the other end of the sub-wire 56 extends while being bent at a right angle by means of the guide roller 59 installed on the guide bracket 57 so that the sub-wire 56 is connected to the slider 48 in which the door 11 is slidably installed. Therefore, as the main wire 60 is pulled, the sub-wire 56 is also pulled while overcoming the bias force of the spring 58, thereby shifting the slider 48 towards the opening so that the door 11 may close the opening 50. As shown in FIG.
  • the rubber packing 52 having the concave sectional shape and the rubber packing 53 having the convex sectional shape are interposed between the door 11 and the opening 50 so as to seal the opening 50, so that it is possible to prevent seawater from being introduced into the all-weather cage culture equipment 1.
  • the fishes and shellfishes provided in the fish cages 17 may perish due to the lack of oxygen. For this reason, the water wheel 34 installed in the fish cages 17 is operated in order to fed oxygen into the fish cages 17 and to circulate water. Thus, the fishes and shellfishes remain alive for a long time in the fish cages 17.

Landscapes

  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Environmental Sciences (AREA)
  • Civil Engineering (AREA)
  • Mining & Mineral Resources (AREA)
  • Paleontology (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Structural Engineering (AREA)
  • Marine Sciences & Fisheries (AREA)
  • Zoology (AREA)
  • Animal Husbandry (AREA)
  • Biodiversity & Conservation Biology (AREA)
  • Environmental & Geological Engineering (AREA)
  • Farming Of Fish And Shellfish (AREA)

Abstract

L'invention concerne un équipement de culture à cage tous temps destiné à cultiver divers poissons et mollusques dans l'eau. L'équipement à cage de culture tous temps comprend un cadre de base (8); une section latérale de filet (9) située sur une partie supérieure du cadre de base (8) pour former une cage à poissons (17); une plaque de collecte de poissons (18) montée sur la section latérale de filet (9) pour réunir les poissons et mollusques dans un endroit précis de la cage à poissons (17); une roue hydraulique (34) montée sur un côté de la plaque de collecte de poissons (18) pour alimenter la cage à poissons (17) en oxygène et y faire circuler l'eau; une section latérale (12) qui entoure la section latérale de filet (9) et qui comporte une pluralité de portes (11) ouvertes/fermées à l'avant, à l'arrière, à droite ou à gauche pour permettre à l'eau de mer de circuler entre les portes (11); un cadre de toit (3) monté sur une partie supérieure de la section latérale (12) et doté d'une pluralité de fenêtres (4), lesquelles sont fermées/ouvertes angulairement; une unité de commande d'entraînement (26) montée sur un côté de la section latérale (12) pour commander le fonctionnement de la plaque de collecte de poissons (18), des portes (11), des fenêtres (4) ainsi que de la roue hydraulique (34); et enfin, une pluralité de crochets (7) montés sur une partie périphérique de l'équipement de culture à cage tous temps (1) à des fins de remorquage. L'équipement de culture à cage tous temps empêche la prolifération des bactéries nuisibles et des maladies infectieuses, tout en stimulant la croissance des poissons et mollusques.
PCT/KR2005/000567 2004-03-02 2005-03-02 Equipement de culture a cage tous temps pour poissons WO2005082136A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
KR10-2004-0014049A KR100539410B1 (ko) 2004-03-02 2004-03-02 전천후 가두리 양식장
KR10-2004-0014049 2004-03-02

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WO (1) WO2005082136A1 (fr)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012007947A1 (fr) * 2010-07-13 2012-01-19 Bio Booot Ltd. Système de reproduction de faune aquatique
CN103636543A (zh) * 2013-12-18 2014-03-19 上海市水产研究所 一种舌鰕虎鱼室内人工育苗方法
CN108782392A (zh) * 2018-07-05 2018-11-13 镇江大全现代农业发展有限公司 一种河水养鱼用网箱
CN112056256A (zh) * 2020-10-12 2020-12-11 山东民瑞中药饮片有限公司 一种方便调节水温的水蛭幼苗养殖网箱
NL2035120A (en) * 2023-06-17 2023-06-30 Fishery Machinery & Instrument Res Inst Cafs Deep-sea fishing and breeding integrated system

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KR200455137Y1 (ko) 2009-04-01 2011-08-19 이한석 가두리 그물 케이지의 설치 구조
CN104054600B (zh) * 2014-04-23 2015-12-02 浙江省海洋水产研究所 提高颗粒状鱼饲料利用率的养殖网箱
KR101674342B1 (ko) * 2016-02-18 2016-11-08 김석문 양식장 겸용 방파제 구조물 및 그 어류 양식방법
CN108012967B (zh) * 2017-12-07 2020-12-08 吴林 大型休闲智能无害化水产养殖网箱
KR102145606B1 (ko) * 2018-11-08 2020-08-18 임채경 방파제 블록타입 양식장
CN114600828B (zh) * 2022-03-31 2023-05-05 九江星祥水产养殖有限公司 一种翘嘴鲌养殖的水质调配装置
KR102588547B1 (ko) 2022-12-13 2023-10-11 박해영 양식장용 등기구 장치

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WO1986004780A1 (fr) * 1985-02-18 1986-08-28 Senja Aquaservice A/S Enceinte d'elevage pour pisciculture et autre
JPH06185034A (ja) * 1992-12-15 1994-07-05 Shiro Miyazaki 多目的ブロック体
JPH07163267A (ja) * 1994-11-24 1995-06-27 Keisuke Ueno 活魚を集合させる方法
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WO1998006254A1 (fr) * 1996-08-12 1998-02-19 Leonid Jurievich Bugrov Dispositif a cage submersible pour la pisciculture
US6267079B1 (en) * 1999-08-26 2001-07-31 Lisa A. Eby Fish cage
WO2003067971A1 (fr) * 2002-02-14 2003-08-21 Brimer As Dispositif de culture d'organismes marins, en particulier, de poissons

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WO1986004780A1 (fr) * 1985-02-18 1986-08-28 Senja Aquaservice A/S Enceinte d'elevage pour pisciculture et autre
JPH06185034A (ja) * 1992-12-15 1994-07-05 Shiro Miyazaki 多目的ブロック体
JPH07163267A (ja) * 1994-11-24 1995-06-27 Keisuke Ueno 活魚を集合させる方法
US5628279A (en) * 1995-05-01 1997-05-13 Bones, Iv; John W. Fish cage
WO1998006254A1 (fr) * 1996-08-12 1998-02-19 Leonid Jurievich Bugrov Dispositif a cage submersible pour la pisciculture
US6267079B1 (en) * 1999-08-26 2001-07-31 Lisa A. Eby Fish cage
WO2003067971A1 (fr) * 2002-02-14 2003-08-21 Brimer As Dispositif de culture d'organismes marins, en particulier, de poissons

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012007947A1 (fr) * 2010-07-13 2012-01-19 Bio Booot Ltd. Système de reproduction de faune aquatique
US8770149B2 (en) 2010-07-13 2014-07-08 Bio Booot Ltd. System for breeding aquatic fauna
CN103636543A (zh) * 2013-12-18 2014-03-19 上海市水产研究所 一种舌鰕虎鱼室内人工育苗方法
CN108782392A (zh) * 2018-07-05 2018-11-13 镇江大全现代农业发展有限公司 一种河水养鱼用网箱
CN112056256A (zh) * 2020-10-12 2020-12-11 山东民瑞中药饮片有限公司 一种方便调节水温的水蛭幼苗养殖网箱
NL2035120A (en) * 2023-06-17 2023-06-30 Fishery Machinery & Instrument Res Inst Cafs Deep-sea fishing and breeding integrated system

Also Published As

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KR100539410B1 (ko) 2005-12-28
KR20040027752A (ko) 2004-04-01

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