A gas pressurization structure
Patent Information
- Application Number
- CN202521947430.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-10
AI Technical Summary
[0003]一氧化碳的增压通常采用压缩泵作为动力部件,并在出口处设置总管路压力表检测出气压力,无法精确控制增压过程,并且检测结果具有滞后性,容易使气体压力过大引发安全隐患
[0014] The advantages of this utility model are: by setting a first pressure gauge, a second pressure gauge, and a third pressure gauge in the air intake channel, the air delivery channel, and the drive unit, the air intake pressure, the air outlet pressure, and the drive pressure of the drive unit are monitored, thereby ensuring the accuracy of the gas pressurization process, avoiding insufficient or excessive gas pressurization, and determining the location of the fault based on the abnormal data location, which facilitates maintenance and improves production safety.
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Figure CN224730466U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of turbocharger technology, and in particular to a gas boosting structure. Background Technology
[0002] Carbon monoxide is an important industrial raw material and specialty gas, widely used in organic chemical industry, metallurgy, and various scientific research experiments. In industrial production, carbon monoxide often needs to be pressurized to a high pressure to meet the pressure requirements of downstream equipment and reaction processes.
[0003] Carbon monoxide pressurization typically uses a compressor pump as the power source, with a main pipeline pressure gauge installed at the outlet to detect the gas pressure. This method cannot accurately control the pressurization process, and the detection results are delayed, which can easily lead to excessive gas pressure and safety hazards. Utility Model Content
[0004] To address the shortcomings of existing technologies, the purpose of this utility model is to provide a gas pressurization structure, the technical solution of which is as follows: A gas boosting structure includes a drive unit, an air inlet, an air inlet channel, a boosting unit, a gas delivery channel, a gas storage tank, an air outlet channel, and an air outlet. The air inlet channel connects the air inlet and the boosting unit, the gas delivery channel connects the boosting unit and the gas storage tank, and the air outlet channel connects the gas storage tank and the air outlet. The drive unit is pneumatically connected to the boosting unit. The air inlet channel is equipped with a first pressure gauge, the gas delivery channel is equipped with a second pressure gauge, and the drive unit is equipped with a third pressure gauge. The air inlet receives the gas to be boosted, and the air outlet outputs the boosted gas.
[0005] Furthermore, the booster unit is a two-stage booster pump, which includes a first booster zone, a second booster zone, a connecting channel, and a pneumatic control valve. The connecting channel connects the first booster zone and the second booster zone, the air inlet channel connects to the first booster zone, the air outlet channel connects to the second booster zone, and the drive unit is connected to the pneumatic control valve.
[0006] Furthermore, the air intake channel package includes a first main channel and a first secondary channel. The first main channel connects the air intake port and the air intake port of the booster unit, and the first secondary channel connects the first pressure gauge and the first main channel.
[0007] Furthermore, the air intake channel also includes an air intake switch, which is disposed on the first main channel, and the first pressure gauge is located between the air intake switch and the booster unit.
[0008] Furthermore, the gas transmission channel includes a second main channel and a second auxiliary channel. The second main channel is connected to the gas outlet of the pressurization unit and the gas storage tank, and the second auxiliary channel is connected to the second pressure gauge and the second main channel.
[0009] Furthermore, the gas transmission channel also includes an output switch, which is disposed on the second main channel, and the second pressure gauge is located between the output switch and the gas storage tank.
[0010] Furthermore, the air outlet channel includes a third main channel and an air outlet switch. The third main channel connects the air storage tank and the air outlet, and the air outlet switch is disposed on the third main channel.
[0011] Furthermore, the drive unit includes an air pump, a fourth main channel, and a fourth auxiliary channel. The air pump is pneumatically connected to the pressurization unit through the fourth main channel, and the fourth auxiliary channel is connected to the third pressure gauge and the fourth main channel.
[0012] Furthermore, the drive unit also includes a drive switch, which is disposed on the fourth main channel, and the third pressure gauge is located between the drive switch and the booster unit.
[0013] Furthermore, the gas pressurization structure according to any one of the above claims also includes a housing, wherein the air inlet, the air outlet, the first pressure gauge, the second pressure gauge, and the third pressure gauge are installed on the outside of the housing, the air inlet channel, the pressurization unit, the air delivery channel, the air storage tank, and the air outlet channel are disposed inside the housing, the power end of the drive unit is disposed on the outside of the housing, and the output end of the drive unit is disposed inside the housing.
[0014] The advantages of this utility model are: by setting a first pressure gauge, a second pressure gauge, and a third pressure gauge in the air intake channel, the air delivery channel, and the drive unit, the air intake pressure, the air outlet pressure, and the drive pressure of the drive unit are monitored, thereby ensuring the accuracy of the gas pressurization process, avoiding insufficient or excessive gas pressurization, and determining the location of the fault based on the abnormal data location, which facilitates maintenance and improves production safety. Attached Figure Description
[0015] Figure 1 This is a perspective view of a gas booster mechanism according to the present invention; Figure 2 for Figure 1 Another perspective view of a gas booster mechanism; Figure 3 for Figure 1 Another perspective view of a gas booster mechanism; Figure 4for Figure 1 A schematic diagram of gas flow during pressurization in a gas booster mechanism.
[0016] In the diagram: 1. Housing; 2. Air inlet; 3. Air inlet channel; 31. First main channel; 32. First auxiliary channel; 33. Air inlet switch; 34. First pressure gauge; 4. Pressurization unit; 41. First pressurization zone; 42. Second pressurization zone; 43. Connecting channel; 44. Air control valve; 5. Air delivery channel; 51. Second main channel; 52. Second auxiliary channel; 53. Air delivery switch; 54. Second pressure gauge; 6. Air outlet channel; 61. Third main channel; 62. Air outlet switch; 7. Air storage tank; 8. Drive unit; 81. Air pump; 82. Fourth main channel; 83. Fourth auxiliary channel; 84. Drive switch; 85. Third pressure gauge; 9. Air outlet. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / as well" as used herein includes any and all combinations of one or more of the associated listed items.
[0019] The following describes the embodiments in conjunction with the appendix. Figure 1-4 This utility model will be described in further detail.
[0020] A gas pressurization structure includes a housing 1, an air inlet 2, an air inlet channel 3, a pressurization unit 4, an air delivery channel 5, an air outlet channel 6, an air storage tank 7, a drive unit 8, and an air outlet 9.
[0021] The intake passage 3 includes a first main passage 31, a first secondary passage 32, an intake switch 33, and a first pressure gauge 34. The intake switch 33 is disposed on the first main passage 31, and the first pressure gauge 34 is connected to the first main passage 31 through the first secondary passage 32.
[0022] The booster unit 4 is a two-stage booster pump. The booster unit 4 includes a first booster zone 41, a second booster zone 42, and a connecting channel 43. The first booster zone 41 and the second booster zone 42 perform secondary boosting of the gas to increase the gas pressure. The connecting channel 43 connects the first booster zone 41 and the second booster zone 42, so that the gas boosted by the first booster zone 41 enters the second booster zone 42. This ensures that the boosted gas is free of oil and contamination when it comes into contact with the components, thus ensuring the cleanliness of the boosted gas. The pneumatic control valve 44 is used to connect to the power source.
[0023] The gas transmission channel 5 includes a second main channel 51, a second auxiliary channel 52, a gas transmission switch 53, and a second pressure gauge 54. The gas transmission switch 53 is installed on the second main channel 51 and is connected to the second main channel 51 through the second auxiliary channel 52.
[0024] The air outlet channel 6 includes a third main channel 61 and an air outlet switch 62, with the air outlet switch 62 located on the third main channel 61.
[0025] The drive unit 8 includes an air pump 81, a fourth main channel 82, a fourth auxiliary channel 83, a drive switch 84, and a third pressure gauge 85. The fourth main channel 82 is connected to the air pump 81, the drive switch 84 is located on the fourth main channel 82, and the third pressure gauge 85 is connected to the fourth main channel 82 through the fourth auxiliary channel 83.
[0026] Structural relationship of a gas pressurization structure: The air inlet 2 and the air outlet 9 are located on the outside of the housing 1. The first main channel 31 of the air inlet channel 3 connects the air inlet 2 and the first pressurization zone 41 of the pressurization unit 4. The first pressure gauge 34 is located between the air inlet switch 33 and the pressurization unit 4 to monitor the air inlet pressure. The second main channel 51 of the air delivery channel 5 connects the second pressurization zone 42 of the pressurization unit 4 and the air storage tank 7. The second pressure gauge 54 is located between the air delivery switch 53 and the pressurization unit 4 to monitor the gas pressure after pressurization. The third main channel 61 of the air outlet channel 6 connects the air storage tank 7 and the air outlet 9.
[0027] The working process of a gas pressurization structure: such as Figure 4As shown, when the air inlet switch 33 is turned on, gas enters the air inlet channel 3 from the air inlet 2 and is delivered to the pressurization unit 4. The drive switch 84 of the drive unit 8 is turned on, the air pump 81 works, and the pressurization unit 4 starts pressurizing. The third pressure gauge 85 detects the drive pressure. After the gas is pressurized by the pressurization unit 4, the gas delivery switch 53 is turned on, and the gas enters the gas storage tank 7 for storage through the gas delivery channel 5. The second pressure gauge 54 detects the gas outlet pressure after pressurization. When the outlet switch 62 is turned on, the gas reaches the outlet 9 along the third main channel 61 and outputs high-pressure gas to the outside. The second pressure gauge 54 monitors the gas pressure after pressurization. The first pressure gauge 34 detects the air inlet pressure and indirectly detects the remaining material. When the second pressure gauge 54 reaches the preset value, the drive unit 8 stops working. When the second pressure gauge 54 is lower than the preset value, the drive unit 8 increases the drive intensity to make the pressurization unit 4 pressurize. The third pressure gauge 85 is used by the drive unit 8 to accurately adjust the drive pressure and improve the accuracy of the gas in the pressurization process.
[0028] The advantages of this utility model are: by setting a first pressure gauge 34, a second pressure gauge 54, and a third pressure gauge 85 in the air intake channel 3, the air delivery channel 5, and the drive unit 8, the gas intake pressure, the gas outlet pressure, and the drive pressure of the drive unit 8 are monitored, thereby ensuring the accuracy of the gas pressurization process, avoiding insufficient or excessive gas pressurization, and improving production safety.
[0029] The above embodiments only illustrate one implementation of the present utility model, and should not be construed as limiting the scope of the utility model patent. It should be noted that, for those skilled in the art, several modifications and improvements can be made without departing from the concept of the present utility model. These are all equivalent modifications and improvements made to the above embodiments based on the essential technology of the present utility model, and all of these fall within the protection scope of the present utility model.
Claims
1. A gas pressurization structure characterized by: The device includes a drive unit, an air inlet, an air inlet channel, a pressurization unit, an air delivery channel, an air storage tank, an air outlet channel, and an air outlet. The air inlet channel connects the air inlet and the pressurization unit, the air delivery channel connects the pressurization unit and the air storage tank, and the air outlet channel connects the air storage tank and the air outlet. The drive unit is pneumatically connected to the pressurization unit. The air inlet channel is equipped with a first pressure gauge, the air delivery channel is equipped with a second pressure gauge, and the drive unit is equipped with a third pressure gauge. The air inlet receives the gas to be pressurized, and the air outlet outputs pressurized gas.
2. The gas pressurization structure according to claim 1, wherein: The booster unit is a two-stage booster pump. The booster unit includes a first booster zone, a second booster zone, a connecting channel, and a pneumatic control valve. The connecting channel connects the first booster zone and the second booster zone. The air inlet channel connects to the first booster zone, and the air outlet channel connects to the second booster zone. The drive unit is connected to the pneumatic control valve.
3. The gas pressurization structure according to claim 1, characterized by: The air intake channel package includes a first main channel and a first secondary channel. The first main channel is connected to the air intake port and the air intake port of the booster unit. The first secondary channel is connected to the first pressure gauge and the first main channel.
4. The gas pressurization structure according to claim 3, characterized by: The air intake channel also includes an air intake switch, which is disposed on the first main channel, and the first pressure gauge is located between the air intake switch and the booster unit.
5. The gas pressurization structure according to claim 1, wherein: The gas transmission channel includes a second main channel and a second auxiliary channel. The second main channel is connected to the gas outlet of the pressurization unit and the gas storage tank. The second auxiliary channel is connected to the second pressure gauge and the second main channel.
6. The gas pressurization structure according to claim 5, wherein: The gas transmission channel also includes an output switch, which is installed on the second main channel, and the second pressure gauge is located between the output switch and the gas storage tank.
7. The gas pressurization structure according to claim 1, wherein: The air outlet channel includes a third main channel and an air outlet switch. The third main channel connects the air storage tank and the air outlet, and the air outlet switch is located on the third main channel.
8. The gas pressurization structure according to claim 1, wherein: The drive unit includes an air pump, a fourth main channel, and a fourth auxiliary channel. The air pump is pneumatically connected to the pressurization unit through the fourth main channel, and the fourth auxiliary channel is connected to the third pressure gauge and the fourth main channel.
9. The gas pressurization structure according to claim 8, wherein: The drive unit also includes a drive switch, which is disposed on the fourth main channel, and the third pressure gauge is located between the drive switch and the booster unit.
10. A gas pressurisation arrangement according to any one of claims 1 to 9, wherein: It also includes a housing, with the air inlet, the air outlet, the first pressure gauge, the second pressure gauge, and the third pressure gauge installed on the outside of the housing. The air inlet channel, the pressurization unit, the air delivery channel, the air storage tank, and the air outlet channel are located inside the housing. The power end of the drive unit is located on the outside of the housing, and the output end of the drive unit is located inside the housing.