A container storage device for high-pressure gas-filled bottles
By designing a high-pressure inflatable cylinder container storage device, using the first unit and the air leakage detection component, the problems of traditional container rack leakage and inconvenient replacement are solved, the stability and safety of gas supply are achieved, and the reliability and efficiency of the gas supply system are improved.
Patent Information
- Application Number
- CN202510024571.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2045-01-08
AI Technical Summary
Traditional high-pressure inflatable cylinder container racks are prone to leakage problems in long-term high-pressure environments, and the gas cylinder is inconvenient to replace, which affects the reliability and efficiency of the gas supply system.
A high-pressure inflatable cylinder container storage device is designed, including a storage rack, a carrier rack, a connecting rack and multiple valves. Through the configuration of the first unit and the leakage detection component, rapid assembly and leakage detection of the gas flow pipe and valve are realized to ensure the stability and safety of gas supply.
It effectively prevents the expansion of gas leakage accidents, simplifies the gas cylinder replacement process, improves the reliability and working efficiency of the gas supply system, and reduces operation and maintenance costs and downtime risks.
Smart Images

Figure CN119435985B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of high-pressure gas-filled bottle storage, and more specifically, to a container storage device for high-pressure gas-filled bottles. Background Art
[0002] In the process of industrial production, the use of industrial gases is very common, such as nitrogen, helium, oxygen, etc. These industrial gases are generally in gaseous state under normal conditions. In order to achieve more convenient transportation and storage, and at the same time increase the gas content per unit volume, they are usually compressed into high-pressure gas cylinders with the help of specific compression processes.
[0003] However, although the traditional single gas supply cylinder can meet the gas storage and supply needs to a certain extent in terms of design, the amount of compressed gas that can be stored inside it is relatively limited. During the production process, the gas supply cylinder often needs to be replaced continuously, which is very troublesome and seriously affects the production efficiency. Therefore, in the prior art, it is necessary to use a gas supply rack to centrally supply gas to multiple high-pressure gas cylinders to achieve centralized allocation and stable supply of gas in these cylinders.
[0004] However, when using a gas supply rack to carry out centralized gas supply operations for multiple high-pressure gas cylinders, since the gas supply rack is in a high-pressure environment for a long time and the gas is corrosive, the sealing materials at the pipe joints are easily corroded, aged and deformed, resulting in reduced sealing performance, which is prone to leakage and causes multiple gases to escape, which not only wastes gas resources, but may also cause safety accidents and environmental pollution, requiring the gas cylinders to be removed for maintenance or replaced.
[0005] However, the internal space of the container is compact and the gas cylinders are closely arranged. When the gas cylinders inside need to be replaced, it is extremely inconvenient to remove them due to the restrictions of the surrounding gas cylinders and pipelines. It is often necessary to disassemble a large number of peripheral components and pipelines first. This process is time-consuming and labor-intensive, which reduces the reliability and work efficiency of the overall gas supply system and increases operation and maintenance costs and downtime risks. Summary of the invention
[0006] The present invention provides a high-pressure gas cylinder container storage device, which solves the technical problem in the related art that the gas supply container rack is in a high-pressure environment for a long time and the gas is corrosive, and its pipeline connection is prone to leakage, and the gas cylinder needs to be taken out for maintenance or replaced.
[0007] The present invention provides a container storage device for high-pressure gas bottles, comprising a storage rack, the storage rack comprising a load-bearing rack, and a connecting rack installed on the load-bearing rack, two groups of first valves installed on the connecting rack, a first inflation tube installed between the two groups of first valves, a plurality of gas circulation tubes also installed on the first inflation tube, and a plurality of supporting racks installed on the load-bearing rack; a plurality of high-pressure gas bottle bodies are placed on the load-bearing rack, each of which is equipped with a second valve; a first unit is arranged on the supporting rack, and the gas circulation tube is connected to the second valve through the first unit; the first unit comprises a second inflation tube installed on the supporting rack, and an assembly component is provided between the second inflation tube and the second valve; a plurality of third valves are also installed on the second inflation tube, a plurality of air cavities are opened in the second inflation tube, a plurality of leakage detection components are provided on the second inflation tube, and the leakage detection component is communicated with the inside of the air cavity for detecting the airflow pressure inside the air cavity.
[0008] As a further optimization scheme of the present invention, the assembly component includes a first connecting tube installed on the second inflation tube and a second connecting tube installed on the second valve, and a conducting component arranged in the first connecting tube and the second connecting tube, the first connecting tube is provided with a sleeve, and a first groove is opened on the inner wall of the sleeve, a plurality of groups of ball grooves are opened in a ring shape in the first connecting tube, and steel balls are arranged in the ball grooves, a second groove is opened on the outer wall of the second connecting tube, a third spring is arranged between the first connecting tube and the sleeve, and the initial state of the third spring is an expanded state.
[0009] As a further optimization scheme of the present invention, a first annular sealing groove is opened on the inner wall of the first connecting tube, and a second sealing ring is arranged in the annular sealing groove; a second annular sealing groove is opened on the outer wall of the first connecting tube, and a third sealing ring is arranged in the second annular sealing groove.
[0010] As a further optimization solution of the present invention, a support plate is further provided on the second air-filling tube, and a guide rod is slidably connected inside the support plate. The guide rod is installed on the second air-filling tube, and a first spring is provided on the guide rod.
[0011] As a further optimization scheme of the present invention, the conducting component includes a bracket arranged inside the first connecting tube and the second connecting tube, and a limiting ring is installed on the bracket, and the limiting ring is fixedly connected to the inner walls of the first connecting tube and the second connecting tube respectively, and a sliding sleeve is also installed on the bracket, and a sliding rod is slidably connected in the sliding sleeve, a conical head is installed on the sliding rod, and a guide column is installed at the end close to the conical head, and a second spring is provided on the sliding rod.
[0012] As a further optimization scheme of the present invention, the air leakage detection assembly includes a detection cylinder installed on the second inflation tube, and a piston block is provided in the detection cylinder, a piston rod is installed on the piston block, and the piston rod is slidably connected in the detection cylinder, a top plate is installed at one end of the piston rod away from the piston block, and a pressure sensor is installed on the side of the detection cylinder close to the top plate.
[0013] As a further optimization scheme of the present invention, the second unit includes multiple movable plates arranged on the supporting frame, and a movable frame is arranged on the movable plate, and a positioning component is provided on the movable frame for clamping and fixing the high-pressure gas bottle body, and a supporting plate is installed on the movable frame.
[0014] As a further optimization scheme of the present invention, a first slide rail is installed on the movable plate, a first slide channel matched with the first slide rail is opened on the supporting frame, the first slide channel and the first slide rail are slidably connected, and a locking assembly is provided between the movable plate and the supporting frame for limiting the position of the movable plate.
[0015] As a further optimization solution of the present invention, a second slideway is provided on the movable plate, and a second slide rail is slidably connected in the second slideway, and the second slide rail is fixedly connected to the movable frame.
[0016] As a further optimization scheme of the present invention, the positioning assembly includes a connecting plate installed on a movable frame, and a plurality of top blocks are provided on the connecting plate, inclined blocks are provided on both sides of the top blocks, and a clamping plate is installed on the inclined blocks for clamping and fixing the high-pressure gas bottle body, and a plurality of groups of pressure rods are slidably connected in the bearing plate, and the pressure rods are fixedly connected to the top blocks.
[0017] The beneficial effects of the present invention are as follows: through the setting of the first unit, the present invention can monitor the gas transmission link, timely discover and warn of potential gas leakage, and take measures to repair the leakage in the early stage, effectively preventing the expansion of gas leakage accidents, and through the setting of the leakage detection component, it can mark the location of the leakage, which is convenient for staff to quickly check, and at the same time facilitates the rapid assembly of the gas circulation pipe and the second valve, and facilitates the replacement of the high-pressure gas cylinder body that is leaking or needs to be repaired. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic diagram of a three-dimensional structure from a first viewing angle of the present invention;
[0019] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention;
[0020] Figure 3 is a schematic diagram of a partial three-dimensional structure of the first unit of the present invention;
[0021] Figure 4 is a schematic diagram of a partial three-dimensional structure of the second unit of the present invention;
[0022] Figure 5 It is a three-dimensional cross-sectional structural schematic diagram of the assembly component, the conduction component and the air leakage detection component of the present invention;
[0023] Figure 6 The present invention Figure 5 A magnified view of the structure at center;
[0024] Figure 7 It is a schematic diagram of the three-dimensional structure of the conduction component of the present invention;
[0025] Figure 8 It is a schematic diagram of a three-dimensional cross-sectional structure of a conducting component of the present invention;
[0026] Fig. 9 It is a schematic diagram of the three-dimensional structure of the positioning component of the present invention;
[0027] Fig.10 The present invention Fig. 9 A magnified view of the structure at B in the middle;
[0028] Fig.11 is a schematic diagram of a second viewing angle stereoscopic structure of the present invention;
[0029] Fig.12 The present invention Fig.11 Enlarged view of the structure at point C in the middle.
[0030] In the figure: 100, storage rack; 110, bearing rack; 120, connecting rack; 130, first valve; 140, first gas filling pipe; 150, pressure gauge; 160, high pressure gas filling bottle body; 1601, second valve; 170, base; 180, gas circulation pipe; 190, support frame; 200, first unit; 210, second gas filling pipe; 2101, support plate; 2102, guide rod; 2103, first spring; 220, assembly component; 221, first connecting pipe; 222, second connecting pipe; 223, conduction component; 2231, bracket; 2232, limit ring; 2233, sliding sleeve; 2234, sliding rod; 2235, conical head; 2236, guide column; 2237, first sealing ring; 2238, second spring; 224, sleeve; 225, first groove; 226, Steel ball; 227, second groove; 228, third spring; 229, second sealing ring; 2210, third sealing ring; 230, third valve; 240, leakage detection assembly; 241, detection tube; 242, piston block; 243, piston rod; 244, top plate; 245, pressure sensor; 250, two-way ventilation membrane valve assembly; 300, second unit; 310, movable plate; 320, movable frame; 330, bearing plate; 340, first slide rail; 350, second slide rail; 360, positioning assembly; 361, connecting plate; 362, top block; 363, tilting block; 364, slider; 365, slide groove; 366, fourth spring; 367, splint; 368, pressure rod; 370, locking assembly; 371, clamping plate; 372, pressure plate; 373, limit rod; 374, fifth spring. DETAILED DESCRIPTION
[0031] The subject matter described herein will now be discussed with reference to example embodiments. It should be understood that the discussion of these embodiments is only to enable those skilled in the art to better understand and implement the subject matter described herein, and the functions and arrangements of the elements discussed may be changed without departing from the scope of protection of the contents of this specification. Each example may omit, replace or add various processes or components as needed. In addition, the features described relative to some examples may also be combined in other examples.
[0032] according to Figure 1As shown, a container storage device for high-pressure gas cylinders includes a storage rack 100, the storage rack 100 includes a load-bearing rack 110, and a connecting rack 120 is installed on the load-bearing rack 110, and a plurality of first valves 130 are installed on the connecting rack 120. Specifically, at least two groups of first valves 130 are provided, a first gas filling pipe 140 is installed between the two groups of first valves 130, and a plurality of gas circulation pipes 180 are also installed on the first gas filling pipe 140; through the arrangement of the plurality of first valves 130, the first gas filling pipe 140 and the gas flow connecting pipe, the centralized gas supply management of the plurality of high-pressure gas cylinders can be realized, so that the gas supply process is more orderly and efficient, and the risk of production interruption caused by unstable gas supply of a single gas cylinder or frequent switching of gas cylinders can be effectively reduced, which greatly improves the continuity and stability of gas supply in industrial production and ensures the smooth progress of the production process.
[0033] A pressure gauge 150 is installed on the first inflation pipe 140. The installation of the pressure gauge 150 can monitor the gas supply pressure in real time, making it convenient for the operator to timely grasp the pressure status of the gas supply system so as to accurately adjust and control it according to actual needs, thereby ensuring that the gas is transported under appropriate pressure conditions, thereby avoiding safety hazards caused by excessive pressure and preventing insufficient pressure from affecting production efficiency and product quality. A base 170 is also installed on the support frame 110.
[0034] Specifically, the high-pressure gas bottle container storage device also includes a plurality of high-pressure gas bottle bodies 160 placed on the carrier 110. In the present embodiment, sixteen groups of high-pressure gas bottle bodies 160 are provided, and a second valve 1601 is installed on each high-pressure gas bottle body 160.
[0035] Furthermore, a plurality of support frames 190 are mounted on the carrier frame 110, and a first unit 200 is disposed on the support frame 190, and the gas flow pipe 180 is connected to the second valve 1601 through the first unit 200. In this embodiment, the gas flow pipe 180 is used to input or output high-pressure gas in the high-pressure gas cylinder body 160; and, through the provision of the first unit 200, it is convenient to quickly assemble the gas flow pipe 180 and the second valve 1601, and at the same time, the gas transmission link can be detected to avoid leakage.
[0036] Among them, the first unit 200 not only greatly simplifies the connection operation between the gas circulation pipe 180 and the second valve 1601, shortening the assembly time and labor costs, but also its gas transmission monitoring function can timely detect and warn of potential gas leaks, and take measures to repair them in the early stage of the leakage, effectively preventing the expansion of gas leakage accidents, and avoiding the waste of resources, environmental pollution and possible safety accidents caused by large-scale gas leakage.
[0037] according to Figure 2 and Figure 3As shown, the first unit 200 includes a second air-filling tube 210 installed on the support frame 190, and an assembly component 220 is provided between the second air-filling tube 210 and the second valve 1601, and a plurality of third valves 230 are also installed on the second air-filling tube 210, and the positions of the third valves 230 and the second valve 1601 correspond to each other, a plurality of air cavities are opened in the second air-filling tube 210, and the positions of the air cavities and the second valve 1601 and the third valve 230 correspond to each other, a plurality of leakage detection components 240 are provided on the second air-filling tube 210, and the leakage detection components 240 are connected to the inside of the air cavity for monitoring the air flow pressure inside the air cavity.
[0038] according to Figure 5 and Figure 6 As shown, the assembly component 220 includes a first connecting pipe 221 installed on the second inflation pipe 210 and a second connecting pipe 222 installed on the second valve 1601, and a conducting component 223 arranged in the first connecting pipe 221 and the second connecting pipe 222; specifically, a sleeve 224 is provided on the first connecting pipe 221, and a first groove 225 is provided on the inner wall of the sleeve 224, a plurality of groups of ball grooves are provided in an annular shape in the first connecting pipe 221, and steel balls 226 are provided in the ball grooves, and a second groove 227 is provided on the outer wall of the second connecting pipe 222. In this embodiment, by providing the sleeve 224, the steel balls 226, the first groove 225 and the second groove 227, fast installation and disassembly are achieved while ensuring the firmness of the connection, significantly reducing the downtime and improving the overall operation efficiency of the equipment.
[0039] It should be noted that when the driving sleeve 224 reaches the initial position, that is, when the driving sleeve 224 moves toward the position of the second valve 1601, the first groove 225 moves outside the first connecting tube 221, pushing the steel ball 226 to move in the ball groove, and the steel ball 226 enters the second groove 227. At this time, the first groove 225 and the second groove 227 are staggered with each other, and the steel ball 226 and the second groove 227 are snap-connected, so that the first connecting tube 221 and the second connecting tube 222 are snap-connected and fixed.
[0040] When the driving sleeve 224 moves toward the side away from the second valve 1601, the first groove 225 is aligned with the position of the ball groove, so that the first groove 225 is connected to the inside of the ball groove. When the second connecting tube 222 moves out of the first connecting tube 221, the steel ball 226 is forced to move out of the ball groove and into the first groove 225, thereby releasing the engagement between the first connecting tube 221 and the second connecting tube 222.
[0041] Among them, a third spring 228 is provided between the first connecting tube 221 and the sleeve 224, and the initial state of the third spring 228 is the expanded state; that is, when the third spring 228 is in the initial state, the first groove 225 and the ball groove are staggered and not connected to each other; one end of the third spring 228 is fixedly connected to the first connecting tube 221, and the other end of the third spring 228 is fixedly connected to the sleeve 224.
[0042] Furthermore, a first annular sealing groove is provided on the inner wall of the first connecting tube 221, and a second sealing ring 229 is provided in the annular sealing groove, which is used to seal the connection between the first connecting tube 221 and the second connecting tube 222; a second annular sealing groove is provided on the outer wall of the first connecting tube 221, and a third sealing ring 2210 is provided in the second annular sealing groove, which is used to seal the connection between the sleeve 224 and the first connecting tube 221.
[0043] according to Figure 3 As shown, a support plate 2101 is also provided on the second air-filling tube 210, and a guide rod 2102 is slidably connected inside the support plate 2101, the guide rod 2102 is installed on the second air-filling tube 210, a first spring 2103 is provided on the guide rod 2102, and one end of the first spring 2103 is fixedly connected to the second air-filling tube 210, and the other end of the first spring 2103 is fixedly connected to the support plate 2101, and multiple sets of sleeves 224 are fixedly connected to the support plate 2101.
[0044] It should be understood that when the support plate 2101 is pulled to move, the support plate 2101 is slidably connected to the outside of the guide rod 2102, squeezing the first spring 2103, causing the first spring 2103 to produce elastic deformation, and driving the sleeve 224 to move outside the first connecting tube 221, thereby facilitating the synchronous movement control of the sleeve 224, so that the first connecting tube 221 and the second connecting tube 222 are synchronously released from the engaging connection, thereby facilitating the replacement of the high-pressure gas bottle body 160.
[0045] according to Figures 6 to 8 As shown, the conduction component 223 includes a bracket 2231 arranged inside the first connecting tube 221 and the second connecting tube 222, and a limit ring 2232 is installed on the bracket 2231, and the limit ring 2232 is fixedly connected to the inner walls of the first connecting tube 221 and the second connecting tube 222 respectively, and a sliding sleeve 2233 is also installed on the bracket 2231, and a sliding rod 2234 is slidably connected in the sliding sleeve 2233, a conical head 2235 is installed on the sliding rod 2234, and a guide column 2236 is installed at the end close to the conical head 2235, a second spring 2238 is provided on the sliding rod 2234, and one end of the second spring 2238 is fixedly connected to the bracket 2231, and the other end of the second spring 2238 is fixedly connected to the conical head 2235.
[0046] It should be noted that a first sealing ring 2237 is installed on the conical head 2235. When the conical head 2235 is in the initial state, the conical head 2235 is elastically connected to the inner wall of the first connecting tube 221 and the inner wall of the second connecting tube 222 through the second spring 2238, and the first sealing ring 2237 is set to seal the inside of the first connecting tube 221 and the second connecting tube 222 to avoid gas leakage.
[0047] That is to say, when the first connecting tube 221 and the second connecting tube 222 are being assembled and connected, the second connecting tube 222 is inserted into the first connecting tube 221 to make the guide column 2236 contact with each other. Under the action of extrusion, the guide column 2236 drives the conical head 2235 to move, and squeezes the second spring 2238, so that the second spring 2238 produces elastic deformation, and the abutment between the conical head 2235 and the first connecting tube 221 and the second connecting tube 222 is released, so that the first connecting tube 221 and the second connecting tube 222 are internally connected, so as to facilitate the input or output of gas.
[0048] according to Figure 5 As shown, the air leakage detection assembly 240 includes a detection cylinder 241 installed on the second inflation tube 210, and a piston block 242 is provided in the detection cylinder 241, a piston rod 243 is installed on the piston block 242, and the piston rod 243 is slidably connected in the detection cylinder 241, and a top plate 244 is installed at one end of the piston rod 243 away from the piston block 242.
[0049] It should be noted that a pressure sensor 245 is installed on the side of the detection cylinder 241 close to the top plate 244. When gas leakage occurs in the gas connecting tube, the pressure inside the air cavity changes, driving the piston block 242 to move downward, and the piston rod 243 can be slidably connected in the detection cylinder 241, so that the top plate 244 squeezes the pressure sensor 245. In specific implementation, an external controller is used to enable the pressure sensor 245 to transmit a signal to the controller, and the signal is transmitted to the third valve 230 through the controller, thereby controlling the third valve 230 to close, thereby blocking the connection between the gas supply source and the high-pressure filling bottle body 160, and avoiding a large amount of gas leakage.
[0050] Among them, the second inflation tube 210 is provided with a through hole connected to the leakage detection component 240, and a two-way ventilation valve assembly 250 is provided in the through hole. The two-way ventilation valve assembly 250 includes a plurality of monomer valves distributed in a ring shape, and the monomer valves are installed in the through hole. The arrangement of the two-way ventilation valve assembly 250 ensures the normal operation of the leakage detection component 240 without affecting the normal circulation of the gas inside the air cavity. Its unique structure allows the gas to freely enter and exit the air cavity under normal working conditions, and ensures that the pressure change is accurately transmitted to the piston block 242 during leak detection, which will not cause additional resistance or interference to the normal operation of the air supply system, thereby ensuring the efficient and stable operation of the entire system.
[0051] according to Figure 4 and Fig. 9 As shown, a second unit 300 is provided on the outside of the high-pressure gas bottle body 160, and the second unit 300 includes a plurality of movable plates 310 arranged on the supporting frame 110, and a movable frame 320 is arranged on the movable plate 310, and a positioning assembly 360 is provided on the movable frame 320 for clamping and fixing the high-pressure gas bottle body 160; specifically, a supporting plate 330 is installed on the movable frame 320, and a plurality of positioning grooves are opened on the side of the supporting plate 330 close to the high-pressure gas bottle body 160, and the positioning grooves correspond one-to-one to the position of the second valve 1601.
[0052] Furthermore, a first slide rail 340 is installed on the movable plate 310, and a first slideway adapted to the first slide rail 340 is provided on the carrier 110, and the first slideway and the first slide rail 340 are slidably connected; through the arrangement of the first slideway and the first slide rail 340, it is convenient to move the movable plate 310 out of the carrier 110. A second slideway is provided on the movable plate 310, and a second slide rail 350 is slidably connected in the second slideway, and the second slide rail 350 is fixedly connected to the movable frame 320; through the arrangement of the second slideway and the second slide rail 350, it is convenient to drive the movable frame 320 to slide laterally on the movable plate 310, so that the second connecting tube 222 can be completely removed from the first connecting tube 221. Among them, a locking assembly 370 is provided between the movable plate 310 and the carrier 110, which is used to limit the position of the movable plate 310.
[0053] according to Fig.10As shown, the positioning assembly 360 includes a connecting plate 361 installed on the movable frame 320, and a plurality of top blocks 362 are provided on the connecting plate 361, tilting blocks 363 are provided on both sides of the top blocks 362, and sliders 364 are installed on the tilting blocks 363, a slide groove 365 adapted to the slider 364 is opened on the connecting plate 361, and the slide groove 365 is slidably connected to the slider 364, a fourth spring 366 is installed between the slider 364 and the slide groove 365, a clamping plate 367 is installed on the tilting block 363, and is used to clamp and fix the high-pressure gas bottle body 160, a plurality of pressure rods 368 are slidably connected in the bearing plate 330, and the pressure rods 368 are fixedly connected to the top blocks 362.
[0054] It should be understood that the contact surface between the top block 362 and the tilted block 363 is set to be inclined. When the high-pressure gas bottle body 160 is replaced, the pressure rod 368 is pushed downward to squeeze, and the top block 362 is controlled to squeeze the tilted block 363, so that the tilted block 363 moves in the slide groove 365 under the action of the slider 364, and squeezes the fourth spring 366, so that the fourth spring 366 produces elastic deformation, and the splint 367 is unfolded, thereby releasing the limit on the high-pressure gas bottle body 160, making it easier to replace the high-pressure gas bottle body 160.
[0055] according to Fig.11 and Fig.12 As shown, the locking assembly 370 includes a card plate 371 slidably connected to the support frame 110, and a pressure plate 372 is installed on the card plate 371, a limiting rod 373 is slidably connected to the pressure plate 372, and the limiting rod 373 is installed on the support frame 110, and a fifth spring 374 is provided on the limiting rod 373, one end of the fifth spring 374 is fixedly connected to the support frame 110, and the other end of the fifth spring 374 is fixedly connected to the pressure plate 372, and a slot is provided on the side of the movable plate 310 close to the card plate 371, and the card plate 371 passes through the support frame 110 and is engaged with the slot.
[0056] It should be noted that when the movable plate 310 needs to be moved, the pressure plate 372 can be squeezed downward to cause the fifth spring 374 to produce elastic deformation, and the card plate 371 can be moved out of the card slot, thereby releasing the limit on the movable plate 310, and then the first slide rail 340 is slidably connected to the first slide rail, and the movable frame 320 is pulled to move the movable plate 310 outward, so that the high-pressure gas bottle body 160 is completely removed, which is convenient for replacing or repairing one or more groups of high-pressure gas bottle bodies 160.
[0057] An example of the present specific implementation mode is described above, but the present embodiment is not limited to the above-mentioned specific implementation mode, which is merely illustrative and not restrictive. A person skilled in the art may make many forms inspired by the present embodiment, all of which are protected by the present embodiment.
Claims
1. A container storage device for high-pressure gas bottles, characterized in that: include: A storage rack (100), the storage rack (100) comprising a bearing rack (110), a connecting rack (120) being mounted on the bearing rack (110), two groups of first valves (130) being mounted on the connecting rack (120), a first inflation tube (140) being mounted between the two groups of first valves (130), a plurality of gas circulation tubes (180) being further mounted on the first inflation tube (140), and a plurality of support racks (190) being mounted on the bearing rack (110); A plurality of high-pressure gas bottle bodies (160) are placed on the support frame (110), and a second valve (1601) is installed on each high-pressure gas bottle body (160); The first unit (200) is arranged on the support frame (190), and the gas flow pipe (180) is connected to the second valve (1601) through the first unit (200); The first unit (200) comprises a second inflation tube (210) mounted on a support frame (190), and an assembly component (220) is provided between the second inflation tube (210) and the second valve (1601); A plurality of third valves (230) are also installed on the second inflation tube (210), a plurality of air cavities are opened in the second inflation tube (210), a plurality of air leakage detection components (240) are provided on the second inflation tube (210), and the air leakage detection components (240) are connected to the inside of the air cavity and are used to monitor the airflow pressure inside the air cavity; The assembly component (220) comprises a first connecting tube (221) installed on the second inflation tube (210) and a second connecting tube (222) installed on the second valve (1601), and a conducting component (223) arranged in the first connecting tube (221) and the second connecting tube (222); a sleeve (224) is provided on the first connecting tube (221), and a first groove (225) is provided on the inner wall of the sleeve (224); a plurality of groups of ball grooves are provided in an annular shape in the first connecting tube (221), and steel balls (226) are provided in the ball grooves; a second groove (227) is provided on the outer wall of the second connecting tube (222); a third spring (228) is provided between the first connecting tube (221) and the sleeve (224), and the initial state of the third spring (228) is an expanded state; The second air-filling tube (210) is further provided with a support plate (2101), and a guide rod (2102) is slidably connected inside the support plate (2101), the guide rod (2102) is mounted on the second air-filling tube (210), and a first spring (2103) is provided on the guide rod (2102); The conduction component (223) comprises a bracket (2231) arranged inside the first connecting tube (221) and the second connecting tube (222), and a limit ring (2232) is installed on the bracket (2231), and the limit ring (2232) is fixedly connected to the inner wall of the first connecting tube (221) and the inner wall of the second connecting tube (222), respectively; a sliding sleeve (2233) is also installed on the bracket (2231), and a sliding rod (2234) is slidably connected inside the sliding sleeve (2233), a conical head (2235) is installed on the sliding rod (2234), and a guide column (2236) is installed at one end close to the conical head (2235), and a second spring (2238) is provided on the sliding rod (2234).
2. A container storage device for high-pressure gas bottles according to claim 1, characterized in that: A first annular sealing groove is provided on the inner wall of the first connecting tube (221), and a second sealing ring (229) is provided in the annular sealing groove; a second annular sealing groove is provided on the outer wall of the first connecting tube (221), and a third sealing ring (2210) is provided in the second annular sealing groove.
3. A container storage device for high-pressure gas bottles according to claim 1, characterized in that: The air leakage detection assembly (240) comprises a detection cylinder (241) mounted on the second inflation tube (210), wherein a piston block (242) is provided in the detection cylinder (241), a piston rod (243) is mounted on the piston block (242), and the piston rod (243) is slidably connected in the detection cylinder (241), a top plate (244) is mounted on one end of the piston rod (243) away from the piston block (242), and a pressure sensor (245) is mounted on a side of the detection cylinder (241) close to the top plate (244).
4. A container storage device for high-pressure gas bottles according to claim 1, characterized in that: A second unit (300) is provided outside the high-pressure gas bottle body (160), the second unit (300) comprising a plurality of movable plates (310) arranged on the support frame (110), and a movable frame (320) is provided on the movable plates (310), a positioning assembly (360) is provided on the movable frame (320) for clamping and fixing the high-pressure gas bottle body (160), and a support plate (330) is installed on the movable frame (320).
5. A container storage device for high-pressure gas bottles according to claim 4, characterized in that: A first slide rail (340) is installed on the movable plate (310), a first slideway matched with the first slide rail (340) is provided on the support frame (110), the first slideway and the first slide rail (340) are slidably connected, and a locking assembly (370) is provided between the movable plate (310) and the support frame (110) for limiting the position of the movable plate (310).
6. A container storage device for high-pressure gas bottles according to claim 4, characterized in that: A second slideway is provided on the movable plate (310), and a second slide rail (350) is slidably connected in the second slideway. The second slide rail (350) is fixedly connected to the movable frame (320).
7. A container storage device for high-pressure gas bottles according to claim 4, characterized in that: The positioning assembly (360) comprises a connecting plate (361) mounted on the movable frame (320), and a plurality of top blocks (362) are provided on the connecting plate (361), tilting blocks (363) are provided on both sides of the top blocks (362), and clamping plates (367) are installed on the tilting blocks (363) for clamping and fixing the high-pressure gas bottle body (160), and a plurality of groups of pressure rods (368) are slidably connected in the bearing plate (330), and the pressure rods (368) are fixedly connected to the top blocks (362).
Citation Information
Patent Citations
Gas cylinder carrying and fixing device
CN114738667A
Gas quantitative filling device and filling method thereof
CN118912367A