CN214385599U - Deep sea in situ large-scale organism culture device based on ROV - Google Patents

Deep sea in situ large-scale organism culture device based on ROV Download PDF

Info

Publication number
CN214385599U
CN214385599U CN202023176701.0U CN202023176701U CN214385599U CN 214385599 U CN214385599 U CN 214385599U CN 202023176701 U CN202023176701 U CN 202023176701U CN 214385599 U CN214385599 U CN 214385599U
Authority
CN
China
Prior art keywords
fixing pin
bag box
upper cover
marking
end plate
Prior art date
Legal status (The legal status 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 status listed.)
Active
Application number
CN202023176701.0U
Other languages
Chinese (zh)
Inventor
李超伦
连超
王敏晓
徐峥
张峘
周丽
陈浩
曹磊
王昊
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Institute of Oceanology of CAS
Original Assignee
Institute of Oceanology of CAS
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 Institute of Oceanology of CAS filed Critical Institute of Oceanology of CAS
Priority to CN202023176701.0U priority Critical patent/CN214385599U/en
Application granted granted Critical
Publication of CN214385599U publication Critical patent/CN214385599U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Apparatus Associated With Microorganisms And Enzymes (AREA)

Abstract

The utility model belongs to deep sea normal position macrobiosis cultivates experimental research field, and specifically speaking is a deep sea normal position macrobiosis culture apparatus based on ROV, including upper cover and macrobiosis cultivation bucket for macrobiosis's normal position is acquireed and is cultivateed, and according to the clamp plate, press the depression bar, press the clamp plate pinion rack, mark bag box upper end plate through-hole and mark bag box lower extreme plate through-hole be coaxial centre of a circle, presses circular shape to drive and press the puncture and the extrusion work of clamp bar pinion rack completion mark bag according to the clamp plate, accomplishes macrobiosis's mark work. The utility model discloses it is little influenced by the sample depth, and the material is mostly non-metallic material, and corrosion resisting property is strong, and is with low costs, and the culture volume is adjustable to can be fast, acquire, long time series is cultivateed, the mark sample effectively.

Description

Deep sea in situ large-scale organism culture device based on ROV
Technical Field
The utility model belongs to deep sea normal position macrobiosis cultivates experimental research field, specifically speaking is a deep sea normal position macrobiosis culture apparatus based on ROV.
Background
The special environment of deep sea shapes the special life form and ecosystem. Under the continuous support of deep sea detection platforms of various units at home and abroad, the characteristics, the biological composition and the potential functions of a deep sea ecosystem are preliminarily recognized; but the lack of reliable large-scale biological in-situ experimental platform and continuous dynamic observation has become a bottleneck problem which is concerned by research teams at home and abroad and restricts deep development of deep sea research for a long time. The use of isotopic labeling is one of the important experimental techniques for studying life processes and bioproduction processes. However, so far, no report is found on large-scale biological isotope labeling culture experiments in situ in deep sea, and the fundamental reason is that the lack of related culture equipment is more indiscriminate in the aspect of matching the equipment with an ROV (remote operated vehicle).
SUMMERY OF THE UTILITY MODEL
To the big biological normal position mark culture technique bottleneck problem of deep sea normal position that present deep sea life science research meets, the utility model aims to provide a big biological culture apparatus of deep sea normal position based on ROV.
The purpose of the utility model is realized through the following technical scheme:
the utility model comprises an upper cover and a large-scale organism culture barrel, wherein the upper cover is hermetically spliced with the large-scale organism culture barrel and is connected with the large-scale organism culture barrel through a fixed pin arranged on the large-scale organism culture barrel; the upper cover is respectively provided with a resettable pressing mechanism and a handle A for the ROV manipulator to grab, and the large-scale organism culture barrel is provided with a handle B for the ROV manipulator to grab; the lower surface of the upper cover is provided with a marking bag box, an upper end plate of the marking bag box can slide up and down relative to a lower end plate of the marking bag box, the upper end plate of the marking bag box and the lower end plate of the marking bag box are respectively provided with a through hole of the upper end plate of the marking bag box and a through hole of the lower end plate of the marking bag box, and a space between the upper end plate of the marking bag box and the lower end plate of the marking bag box is a marking bag placing position for placing a marking bag; the lower end of the pressing mechanism is respectively connected with a pressing rod baffle for pushing the upper end plate of the marking bag box to extrude the marking bag and a pressing rod toothed plate for puncturing the marking bag in the marking bag placing position.
Wherein: pressing means is including pressing the clamp plate, pressing the depression bar and pressing the spring, should press the depression bar middle-end by the upper cover passes, and with the sealed sliding connection of upper cover, the upper end of pressing the depression bar is connected with presses the clamp plate, press the depression bar baffle and press the depression bar pinion rack and connect in the lower extreme of pressing the depression bar, press the spring housing and locate on pressing the depression bar, should press the spring both ends respectively with press the upper surface butt of clamp plate and upper cover.
The inside of upper cover is equipped with the cover and presses the depression bar sealing washer on pressing the depression bar, should press the depression bar sealing washer and be in press the depression bar middle-end and slide the in-process from top to bottom and realize sealed to the water below the upper cover.
According to the axial direction collineation of press bar baffle, press bar pinion rack, mark bag box upper end plate through-hole and mark bag box lower end plate through-hole, the diameter of this mark bag box upper end plate through-hole equals with the diameter of mark bag box lower end plate through-hole, and is greater than press bar pinion rack's diameter, and be less than press bar baffle's diameter.
Two side plates of the marking bag box are fixedly connected to the lower surface of the upper cover, side chutes of the marking bag box are formed in the two side plates, and upper end plate sliding blocks of the marking bag box, which slide in the side chutes of the marking bag box, are arranged on two sides of an upper end plate of the marking bag box.
The fixing pin comprises a fixing pin lifting ring, a fixing pin outer sleeve, a fixing pin pressure spring and a fixing pin column, the fixing pin outer sleeve is in threaded connection with a fixing pin hole formed in the large biological culture bucket, a stepped through hole is formed in the fixing pin outer sleeve, the fixing pin column is inserted into the fixing pin outer sleeve in a relatively movable mode, the outer end of the fixing pin outer sleeve is connected with the fixing pin lifting ring, a fixing pin groove is formed in the inner section of the fixing pin outer sleeve, a seam allowance is formed between the fixing pin groove and the fixing pin column, and the seam allowance serves as the end face of the fixing pin pressure spring; the fixing pin pressure spring is accommodated in the fixing pin jacket and sleeved on the fixing pin column, and two ends of the fixing pin pressure spring are respectively abutted against the end face of the fixing pin pressure spring and the step of the step through hole in the fixing pin jacket.
The outer end of the fixed pin outer sleeve is provided with a notch, a fixed pin bumping post hole is formed in the fixed pin bumping post, and a fixed pin bumping post is inserted into the fixed pin bumping post hole.
The outer surface of the upper cover is fixedly connected with an upper end fixing hoop, and a positioning column is fixedly connected on the upper end fixing hoop; the outer surface of the large biological culture barrel is fixedly connected with a lower end fixing hoop, and the outer surface of the lower end fixing hoop is fixedly connected with a positioning ring; and when the upper cover is installed with the large-scale biological culture barrel, the positioning needle is inserted into the positioning ring hole.
And the upper surface of the upper cover is provided with a one-way valve and a ball valve respectively.
The utility model discloses an advantage does with positive effect:
the utility model discloses integrated deep sea normal position macrobiosis culture apparatus who acquires, long time sequence is cultivateed, is marked satisfies the symbiosis of macrobiosis among the deep sea ecosystem, cultivates, isotope mark experiment demand, and the material energy who understands deep sea symbiotic system through isotope adding cultivation acquires and the transfer mode, and culture apparatus receives the sample depth to influence for a short time, and the vast majority corrosion resisting property of material is strong, and is with low costs, and the volume is adjustable to can be fast, acquire effectively, long time sequence is cultivateed, mark the sample.
Drawings
FIG. 1 is a front view of the structure of the present invention;
FIG. 2 is a left side view of the structure of the present invention;
fig. 3 is a top view of the structure of the present invention;
fig. 4 is a bottom view of the structure of the present invention;
fig. 5 is a schematic view of the overall structure of the present invention;
fig. 6 is one of the schematic three-dimensional structures of the upper cover and the upper mounting component of the present invention;
fig. 7 is a second schematic perspective view of the upper cover and the upper mounting member of the present invention;
FIG. 8 is a schematic view of the three-dimensional structure of the upper cover of the present invention
FIG. 9 is a front view of the upper cover of the present invention;
fig. 10 is one of the structural diagrams of the fixing pin of the present invention;
fig. 11 is a second schematic structural view of the fixing pin of the present invention;
fig. 12 is a third schematic structural view of the fixing pin of the present invention;
wherein: 1 is a pressing plate, 2 is a pressing rod, 3 is a pressing spring, 4 is a handle A, 5 is a check valve, 6 is a ball valve, 7 is an upper cover, 8 is an upper end fixing hoop, 9 is an upper end fixing hoop fixing bolt, 10 is a handle B, 11 is an upper cover side end, 12 is an upper cover sealing end, 13 is a fixing pin hole, 14 is a fixing pin groove, 15 is a sealing ring groove A, 16 is a sealing ring groove B, 17 is a fixing pin, 1701 is a fixing pin lifting ring, 1702 is a fixing pin retaining post, 1703 is a fixing pin jacket, 1704 is a fixing pin bevel, 1705 is a fixing pin pressure spring end face, 1706 is a fixing pin pressure spring, 1707 is a fixing pin retaining post hole, 1708 is a fixing pin post, 1709 is a notch, 18 is a positioning post, 1801 is a positioning post end, 1802 is a positioning pin, 19 is a lower end fixing hoop, 20 is a lower end fixing hoop fixing bolt, 21 is a positioning ring, 2101 is a positioning ring hole, 22 is a pressing rod middle end, 23 is a pressing rod sealing ring A, 24 is a pressing rod sealing ring B, 25 is a pressing rod baffle, 26 is a pressing rod toothed plate, 27 is a marking bag box fixing bolt, 28 is a marking bag box, 29 is a marking bag box upper end plate, 30 is a marking bag box lower end plate, 31 is a marking bag box upper end plate sliding block, 32 is a marking bag box side sliding groove, 33 is a marking bag box upper end plate through hole, 34 is a marking bag box lower end plate through hole, 35 is a marking bag placing position, and 36 is a large-scale biological culture barrel.
Detailed Description
The present invention will be described in detail with reference to the accompanying drawings.
As shown in fig. 1 to 12, the present invention comprises an upper cover 7 and a large-scale organism cultivation barrel 36, wherein the upper cover 7 is hermetically inserted into the large-scale organism cultivation barrel 36 and connected with the large-scale organism cultivation barrel 36 by a fixing pin 17 installed on the large-scale organism cultivation barrel 36; a resettable pressing mechanism and a handle a4 (the handle a4 in this embodiment is a round handle) for the ROV manipulator to grasp are respectively installed on the upper cover 7, the lower ends of the check valve 5 and the ball valve 6 are both in a threaded manner, the liquid installed in the large biological culture barrel 36 on the upper surface of the upper cover 7 can be discharged through the check valve 5, and oxygen can be supplied into the large biological culture barrel 36 through the ball valve 6. A handle B10 for being grabbed by an ROV manipulator is arranged on the large-scale biological cultivation barrel 36, and the handle B10 of the embodiment is a T-shaped handle; the lower surface of the upper cover 7 is provided with a marking bag box 28, a marking bag box upper end plate 29 of the marking bag box 28 can slide up and down relative to a marking bag box lower end plate 30, a marking bag box upper end plate through hole 33 and a marking bag box lower end plate through hole 34 are respectively formed in the marking bag box upper end plate 29 and the marking bag box lower end plate 30, and a space between the marking bag box upper end plate 29 and the marking bag box lower end plate 30 is a marking bag placing position 35 for placing a marking bag; the lower end of the pressing mechanism is respectively connected with a pressing rod baffle 25 for pushing the upper end plate 29 of the marking bag box to press the marking bag and a pressing rod toothed plate 26 for puncturing the marking bag in the marking bag placing position 35.
The upper cover 7 of this embodiment is fixed with the upper end fixing hoop 9, the upper end fixing hoop 9 is mounted on the upper cover 7 by using the upper end fixing hoop fixing bolt 9, two positioning columns 18 are uniformly welded on the upper end fixing hoop 9 along the circumferential direction, and each positioning column 18 is equally divided into a positioning column end 1801 located at the upper part and a positioning needle 1802 located at the lower part.
The outer surface upper end of the large-scale biological cultivation bucket 36 of this embodiment has evenly seted up four fixed pinhole 13 along the circumferencial direction, and every fixed pinhole 13 all adopts the screw thread to install a fixed pin 17. The middle part of the large-scale biological culture barrel 36 is provided with a lower end fixing hoop 19 by utilizing a lower end fixing hoop fixing bolt 20, two positioning rings 21 are uniformly welded on the lower end fixing hoop 19 along the circumferential direction, and a positioning ring hole 2101 is formed in the center of the inner part of each positioning ring 21.
The pressing mechanism of this embodiment includes pressing plate 1, pressing rod 2 and pressing spring 3, and this pressure plate 1 that connects is circular, adopts the screw thread mode to be connected with the upper end according to pressing rod 2, presses the lower extreme that press rod baffle 25 and press rod pinion rack 26 to connect in pressing rod 2, presses spring 3 cover to locate on pressing rod 2, and the both ends that should press spring 3 respectively with press plate 1 and the upper surface butt of upper cover 7 for produce resilience strength when pressing plate 1 to push down. The pressing rod middle end 22 is a part of the pressing rod 2, the pressing rod middle end 22 is penetrated by the upper cover 7, and is in sealing sliding connection with the upper cover 7, a pressing rod sealing ring A23 and a pressing rod sealing ring B24 which are sleeved on the pressing rod 2 are arranged inside the upper cover 7, and are used for sealing a water body below the upper cover 7 in the up-and-down sliding process of the pressing rod middle end 22, the lower end of the pressing rod middle end 22 is a pressing rod baffle 25 and a pressing rod toothed plate 26 which are connected, the axial center lines of the pressing rod baffle 25, the pressing rod toothed plate 26, the upper end plate through hole 33 of the marking bag box and the lower end plate through hole 34 of the marking bag box are collinear, and the diameter of the upper end plate through hole 33 of the marking bag box is equal to that of the lower end plate through hole 34 of the marking bag box and is larger than that of the pressing rod pressing toothed plate 26 and smaller than that of the pressing rod baffle 25.
The two side plates of the mark bag box 28 of this embodiment are respectively fixedly connected to the lower surface of the upper cover 7 by the mark bag box fixing bolts 27, two mark bag box side sliding grooves 32 are respectively formed in the two side plates, two (four in all) mark bag box upper end plate sliding blocks 31 are respectively arranged on the two sides of the mark bag box upper end plate 29, the mark bag box upper end plate sliding blocks 31 slide in the mark bag box side sliding grooves 32, a mark bag box upper end plate through hole 33 is formed in the middle of the mark bag box upper end plate 29, and a mark bag box lower end plate through hole 34 is formed in the middle of the mark bag box lower end plate 30.
The fixing pin 17 of this embodiment includes a fixing pin lifting ring 1701, a fixing pin stop 1702, a fixing pin jacket 1703, a fixing pin pressure spring 1706 and a fixing pin 1708, the outer surface of the fixing pin jacket 1703 is provided with external threads, and is in threaded connection with a fixing pin hole 13 formed on a large-scale biological culture bucket 36, a step through hole is formed inside the fixing pin jacket 1703, the fixing pin 1708 is relatively movably inserted into the fixing pin jacket 1703, the outer end is connected with the fixing pin lifting ring 1701, the inner section is provided with a fixing pin bevel 1704, a seam allowance is formed between the fixing pin bevel 1704 and the fixing pin 1708, and the seam allowance is used as a fixing pin pressure spring end face 1705; the fixing pin compression spring 1706 is accommodated in the fixing pin outer sleeve 1703 and sleeved on the fixing pin column 1708, and two ends of the fixing pin compression spring 1706 are respectively abutted to the end face 1705 of the fixing pin compression spring and the step of the step through hole in the fixing pin outer sleeve 1703. The outer end of the fixing pin outer sleeve 1703 is provided with a gap 1709, a fixing pin pillar hole 1707 is formed in the fixing pin pillar 1708, and the fixing pin pillar hole 1707 is a blind hole and is internally inserted with a fixing pin pillar 1702. When the cover is closed, the fixing pin groove 1704 is inserted into the fixing pin groove 14 formed in the upper cover 7, and the sealing ring groove A15 and the sealing ring groove B16 in the upper cover 7 are closely contacted with the inner wall of the large biological cultivation barrel 36 for sealing the water body.
The pressing plate 1, the pressing rod 2, the check valve 5, the ball valve 6 and the fixing pin 17 of the embodiment are all made of metal materials (such as Ti alloy), so that the pollution of samples is avoided. The marking bag is made of soft material (such as plastic), and the upper cover 17 and the large biological culture barrel 36 are made of non-metal material (such as Teflon).
The utility model discloses deep sea normal position macrobiosis culture apparatus's based on ROV application method does:
firstly, integrally disassembling and cleaning a shore-based end; disassembling the whole culture device, and cleaning;
step two, assembling after cleaning, wherein in an initial state, the upper cover 7 and the large biological culture barrel 36 are in a separation state, the marking bag is in a base liquid loading state and is placed at a marking bag placing position 35, and the ball valve 6 is in an opening state;
step three, using an ROV to carry the culture device to a station site for operation, using an ROV manipulator to grab a handle B10, and placing the large-scale organism culture barrel 36 to a specified operation position; grasping large organisms (such as mussels) by a manipulator and placing the large organisms into the large organism culture barrel 36, and then grasping a handle A4 by an ROV manipulator to close the upper cover 7; when the device is closed, the positioning needle 1802 is inserted into a positioning ring hole 2101 in the positioning ring 21, the upper cover 7 pushes the fixing pin groove 1704 to overcome the elasticity of the fixing pin compression spring 1706 to move outwards in the insertion process, and after the upper cover 7 is inserted in place with the large-scale biological culture barrel 36, the fixing pin groove 1704 is reset under the action of the fixing pin compression spring 1706 to be inserted into the fixing pin groove 14 on the upper cover 7; the inner part of the upper cover 7 is in sealing contact with the inner wall of the large-scale organism culture barrel 36 and is used for sealing water; or, when the fixing pin is in an initial state, the fixing pin 1708 is moved outwards by pulling the fixing pin lifting ring 1701, and after the fixing pin blocking column 1702 is moved to the outer end face of the fixing pin outer sleeve 1703, the fixing pin blocking column 1702 is clamped on the outer end face of the fixing pin outer sleeve 1703 by driving the fixing pin 1708 to rotate through the fixing pin lifting ring 1701; after the upper cover 7 is inserted into the large-scale biological culture barrel 36, the fixing pin lifting ring 1701 is rotated to enable the fixing pin blocking column 1702 to be aligned with the opening 1709 on the fixing pin outer sleeve 1703, and after the fixing pin blocking column is loosened, the fixing pin groove 1704 is inserted into the fixing pin groove 14 on the upper cover 7 under the action of the fixing pin compression spring 1706;
pressing the pressing plate 1, driving the pressing rod 2 and the pressing rod toothed plate 26 to be inserted into the through hole 33 of the upper end plate of the marking bag box, puncturing the marking bag, driving the upper end plate 29 of the marking bag box to extrude marking bag liquid by the pressing rod baffle plate 25, discharging the marking bag liquid into a large-scale organism culture barrel 36, and performing large-scale organism culture; after a set time, it is brought back to the deck using an ROV or ELEVATOR (ELEVATOR).
The utility model discloses to the technological bottleneck of present deep sea life science research, break through normal position macrobiosis mark and sealing technique, solve that china's macrobiosis normal position experiment is not enough and time efficiency is not enough, is difficult to the problem that macrobiosis normal position mark was cultivateed. The utility model discloses a deep sea normal position macrobiosis culture apparatus combines the ROV operation under water, operates steadily, presses down circular pressing plate and drives puncture and the extrusion work of pressing the depression bar pinion rack and accomplishing the mark bag, accomplishes macrobiosis's mark work. The utility model discloses it is little influenced by the sample depth, and the material is mostly non-metallic material, and corrosion resisting property is strong, and is with low costs, and the culture volume is adjustable to can be fast, acquire, long time series is cultivateed, the mark sample effectively.

Claims (9)

1. A deep sea normal position macrobiosis culture apparatus based on ROV, its characterized in that: comprises an upper cover (7) and a large-scale organism culture barrel (36), wherein the upper cover (7) is hermetically inserted into the large-scale organism culture barrel (36) and is connected with the large-scale organism culture barrel (36) through a fixing pin (17) arranged on the large-scale organism culture barrel; a resettable pressing mechanism and a handle A (4) for an ROV manipulator to grab are respectively arranged on the upper cover (7), and a handle B (10) for the ROV manipulator to grab is arranged on the large-scale organism culture barrel (36); a marking bag box (28) is mounted on the lower surface of the upper cover (7), a marking bag box upper end plate (29) of the marking bag box (28) can slide up and down relative to a marking bag box lower end plate (30), a marking bag box upper end plate through hole (33) and a marking bag box lower end plate through hole (34) are respectively formed in the marking bag box upper end plate (29) and the marking bag box lower end plate (30), and a space between the marking bag box upper end plate (29) and the marking bag box lower end plate (30) is a marking bag placing position (35) for placing a marking bag; the lower end of the pressing mechanism is respectively connected with a pressing rod baffle (25) for pushing an upper end plate (29) of the marking bag box to extrude the marking bag and a pressing rod toothed plate (26) for puncturing the marking bag in the marking bag placing position (35).
2. The ROV-based deep sea in situ large scale biological culture apparatus of claim 1, wherein: pressing means is including pressing according to clamp plate (1), pressing lever (2) and pressing spring (3), and this press according to press the clamp rod middle-end (22) of clamp rod (2) by upper cover (7) pass, and with the sealed sliding connection of upper cover (7), the upper end of pressing lever (2) is connected with presses clamp plate (1), press clamp rod baffle (25) and press clamp rod pinion rack (26) to connect in the lower extreme of pressing clamp rod (2), press spring (3) cover to locate on pressing clamp rod (2), should press the both ends of spring (3) respectively with the upper surface butt of pressing clamp plate (1) and upper cover (7).
3. The ROV-based deep sea in situ large scale biological culture apparatus of claim 2, wherein: the inside of upper cover (7) is equipped with the cover and presses the depression bar sealing washer on pressing depression bar (2), should press the depression bar sealing washer and be in press the depression bar middle-end (22) and slide the in-process from top to bottom and realize sealed to the water below upper cover (7).
4. The ROV-based deep sea in situ large scale biological culture apparatus of claim 2, wherein: the axial center line collineation of end plate through-hole (34) under pressing lever baffle (25), pressing lever pinion rack (26), the mark bag box and the mark bag box, the diameter of this mark bag box upper end plate through-hole (33) equals with the diameter of end plate through-hole (34) under the mark bag box, and is greater than the diameter of pressing lever pinion rack (26), and is less than the diameter of pressing lever baffle (25).
5. The ROV-based deep sea in situ large scale biological culture apparatus of claim 1, wherein: two side plates of the marking bag box (28) are fixedly connected to the lower surface of the upper cover (7), marking bag box side sliding grooves (32) are formed in the two side plates, and marking bag box upper end plate sliding blocks (31) which slide in the marking bag box side sliding grooves (32) are arranged on two sides of the marking bag box upper end plate (29).
6. The ROV-based deep sea in situ large scale biological culture apparatus of claim 1, wherein: the fixing pin (17) comprises a fixing pin lifting ring (1701), a fixing pin outer sleeve (1703), a fixing pin pressure spring (1706) and a fixing pin column (1708), the fixing pin outer sleeve (1703) is in threaded connection with a fixing pin hole (13) formed in the large-scale biological culture barrel (36), a step through hole is formed in the fixing pin outer sleeve (1703), the fixing pin column (1708) is inserted into the fixing pin outer sleeve (1703) in a relatively movable mode, the outer end of the fixing pin lifting ring (1701) is connected with the outer end of the fixing pin outer sleeve, a fixing pin groove (1704) is formed in the inner section of the fixing pin outer sleeve, a seam allowance is formed between the fixing pin groove (1704) and the fixing pin column (1708), and the seam allowance serves as a fixing pin pressure spring end face (1705); the fixing pin compression spring (1706) is accommodated in the fixing pin outer sleeve (1703) and sleeved on the fixing pin column (1708), and two ends of the fixing pin compression spring (1706) are respectively abutted with the end face (1705) of the fixing pin compression spring and a step of the step through hole in the fixing pin outer sleeve (1703).
7. The ROV-based deep sea in situ large scale organism culture device of claim 6, wherein: the outer end of the fixing pin outer sleeve (1703) is provided with a notch (1709), a fixing pin blocking column hole (1707) is formed in the fixing pin column (1708), and a fixing pin blocking column (1702) is inserted into the fixing pin blocking column hole (1707).
8. The ROV-based deep sea in situ large scale biological culture apparatus of claim 1, wherein: an upper end fixing hoop (8) is fixedly connected to the outer surface of the upper cover (7), and a positioning column (18) is fixedly connected to the upper end fixing hoop (8); the outer surface of the large biological culture barrel (36) is fixedly connected with a lower end fixing hoop (19), and the outer surface of the lower end fixing hoop (19) is fixedly connected with a positioning ring (21); a positioning ring hole (2101) is formed in the positioning ring (21), the positioning column (18) is divided into an upper positioning column end head (1801) and a lower positioning needle (1802), and when the upper cover (7) and the large-scale biological culture barrel (36) are installed, the positioning needle (1802) is inserted into the positioning ring hole (2101).
9. The ROV-based deep sea in situ large scale biological culture apparatus of claim 1, wherein: the upper surface of the upper cover (7) is respectively provided with a one-way valve (5) and a ball valve (6).
CN202023176701.0U 2020-12-25 2020-12-25 Deep sea in situ large-scale organism culture device based on ROV Active CN214385599U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202023176701.0U CN214385599U (en) 2020-12-25 2020-12-25 Deep sea in situ large-scale organism culture device based on ROV

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202023176701.0U CN214385599U (en) 2020-12-25 2020-12-25 Deep sea in situ large-scale organism culture device based on ROV

Publications (1)

Publication Number Publication Date
CN214385599U true CN214385599U (en) 2021-10-15

Family

ID=78042579

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202023176701.0U Active CN214385599U (en) 2020-12-25 2020-12-25 Deep sea in situ large-scale organism culture device based on ROV

Country Status (1)

Country Link
CN (1) CN214385599U (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112616757A (en) * 2020-12-25 2021-04-09 中国科学院海洋研究所 ROV-based deep sea in-situ large-scale organism culture device and use method thereof

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112616757A (en) * 2020-12-25 2021-04-09 中国科学院海洋研究所 ROV-based deep sea in-situ large-scale organism culture device and use method thereof

Similar Documents

Publication Publication Date Title
CN107290174B (en) Novel water sample-sediment combined sampler and sampling method thereof
CN112616757A (en) ROV-based deep sea in-situ large-scale organism culture device and use method thereof
CN214385599U (en) Deep sea in situ large-scale organism culture device based on ROV
CN214162034U (en) Double-end assembling device for sealing and pressure testing of welded pipe fittings
CN110591893A (en) Deep sea microorganism sampling culture equipment
CN109482116A (en) Polyacrylate tests consersion unit
CN211005331U (en) Deep sea microorganism sampling culture equipment
CN101221098A (en) Device for sampling column shape samples of shallow water deposit
CN216386347U (en) Dangerous waste temporary storage warehouse sampling device
CN110763503A (en) ROV-based cutting type in-situ fixing device and fixing method for large organisms such as deep sea mussels
CN116008499A (en) Heavy metal detection equipment for grease-containing wastewater
CN206590527U (en) Steel plate turning mechanism for oil equipment
CN115931440A (en) Portable columnar sediment collection equipment
CN111855266B (en) Sediment sampler
CN214096720U (en) Food detects with many times random sampling device
CN212082899U (en) Coal petrography sample coring fixing device
CN205021503U (en) Impervious for detection handling equipment of test block
CN213456277U (en) Hydrogeology quick sampling equipment
CN212748432U (en) Sewage sampling device for environmental protection
CN219428621U (en) Portable wastewater sample preservation box
CN220437863U (en) Liquid dangerous waste sampling device
CN117451524B (en) Welding strength detecting system
CN114324013B (en) Tension detection device with limiting function for ultrafiltration membrane production
CN221258590U (en) Pipeline leakage detector for pipeline detection
CN220110928U (en) Pressurizing device of high-pressure homogenizer

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant