API ultrahigh pressure water vapor performance test system and plant

By dividing the test room into equipment group areas and using partition walls to isolate noise and vibration equipment, the problems of crowded equipment layout and noise interference in the existing equipment were solved, and efficient detection accuracy and space utilization were achieved.

CN223449454UActive Publication Date: 2025-10-17DRESSER MACHINERY SUZHOU
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Patent Information

Application Number
CN202421855360.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-10-17
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

Existing API ultra-high pressure water vapor performance testing equipment has difficulty balancing space utilization, testing accuracy, and production flexibility, resulting in crowded equipment layout, noise interference, and deviations in test results.

Method used

By setting up partition walls in the test room, the equipment group area is divided into independent but interconnected test spaces, isolating equipment that is prone to noise and vibration from equipment that requires a stable environment. Through reasonable layout, pipes and wires between equipment are connected to reduce the floor space.

Benefits of technology

It achieves the advantages of reasonable equipment layout, stable working environment, high detection accuracy and large operating space, reduces the equipment footprint and reduces noise and vibration interference.

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Abstract

The utility model provides an API ultrahigh pressure water vapor performance test system and workshop, comprising: a test room comprising an outer wall body and a partition wall body, the outer wall body and the partition wall body jointly enclosing a first test space and a second test space; the first equipment group is arranged in the first test space; and the second equipment group is arranged in the second test space. According to the test room, the corresponding equipment groups are arranged in the test room, the different equipment groups are subjected to regional layout division, and meanwhile, the equipment which is easy to generate noise and vibration is separated from the equipment which needs to stabilize the test environment through the partition wall body, so that a plurality of relatively independent test spaces which are connected with one another are created in the test room; in addition, the overall occupied area of the system can be reduced, and the limited plant space is fully utilized. Therefore, the application has the remarkable advantages of small occupied area, reasonable layout, stable working environment, high detection precision, large operable space and the like.
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Description

TECHNICAL FIELD

[0001] The utility model relates to test equipment technical field, specifically points to a kind of API superhigh pressure water gas performance test system and factory building. BACKGROUND

[0002] Under the background of the rapid development of today's industry, API superhigh pressure water gas performance test as the key link to ensure the quality of valve, pipeline and other key components, its importance is self-evident. The test involves the accurate measurement and adjustment of water pressure and air pressure to ensure that the product can maintain stable performance under extreme working conditions. However, the existing water pressure parts test bench, water pressure valve test bench, air pressure valve test bench and pilot valve test equipment generally adopt independent low-pressure test system design, which exposes a series of problems in actual application, limiting the optimization of production efficiency and space utilization.

[0003] At present, these independent test systems are each equipped with independent pressure source, operation electric cabinet, test port and test instrument, resulting in a large number of equipment in production workshop, crowded layout. This not only occupies a large area of site, but also makes the expansion and adjustment of production line extremely difficult. In addition, each test system needs independent maintenance and spare parts reserve, which not only increases the operating cost of enterprise, but also causes a lot of waste of resources. Under the market trend of increasing diversification and high-end of product demand, this traditional test equipment layout has been unable to meet the flexible production demand.

[0004] On the other hand, due to the noise and vibration interference between different test equipment, if they are placed in the same space, it will inevitably cause mutual influence between adjacent equipment, which leads to large deviation of test results. In view of this, the existing API superhigh pressure water gas performance test equipment is difficult to balance its space utilization, detection accuracy and production flexibility, which is the problem to be solved in the industry at present. SUMMARY

[0005] Therefore, the technical problem to be solved by the utility model lies in overcoming the problem that the existing API superhigh pressure water gas performance test equipment is difficult to balance its space utilization, detection accuracy and production flexibility, and providing a kind of API superhigh pressure water gas performance test system and factory building.

[0006] The utility model provides a kind of API superhigh pressure water gas performance test system, it includes: test room, the test room includes outer wall and at least one partition wall, the outer wall and at least one the partition wall jointly enclose at least one first test space and at least one second test space;First equipment group, the first equipment group is set in the first test space;Second equipment group, the second equipment group is set in the second test space, the first equipment group and the second equipment group are mutually shielded interference by at least one the partition wall.

[0007] In an embodiment of the utility model, the first equipment group includes pressure-increasing equipment and setting test equipment, the pressure-increasing equipment is oppositely arranged with the setting test equipment valve body.

[0008] In an embodiment of the utility model, the pressure-increasing equipment is fluid pressure-increasing station, and the setting test equipment includes water pressure valve setting test table and air pressure valve setting test table.

[0009] In an embodiment of the utility model, the second equipment group includes console and part test equipment, wherein the console is connected with the part test equipment.

[0010] In an embodiment of the utility model, the console is valve test console, and the part test equipment is water pressure valve part test table.

[0011] In an embodiment of the utility model, the partition wall includes sound insulation layer and shock-absorbing layer.

[0012] In an embodiment of the utility model, the partition wall is provided with door body.

[0013] In an embodiment of the utility model, the partition wall is provided with communication hole, and the first equipment group and the second equipment group are connected by communication pipeline and / or wire.

[0014] In an embodiment of the utility model, the test room further includes at least one third test room, and third equipment group is arranged in the third test room.

[0015] The utility model further provides an API superhigh pressure water gas performance test plant, which comprises the API superhigh pressure water gas performance test system.

[0016] The above technical solution of the utility model has the following advantages compared with the prior art:

[0017] The utility model discloses API superhigh pressure water gas performance test system and factory building, through setting up corresponding equipment group in the test room inside, the regional layout division of different equipment group is carried out, and through at least one partition wall simultaneously, the equipment of easy producing noise, vibration and the equipment needing stable test environment are separated, thereby creating multiple relatively independent, but each other's contact test space in its inside, in addition, the application can also realize the connection of pipeline or wire between equipment through above-mentioned reasonable layout, when ensuring that each equipment group stable operation, the floor area of system whole has been reduced, and the limited factory building space is fully utilized. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to make the content of the utility model more easily be clearly understood, below according to the specific embodiment of the utility model and combining with the attached drawing, the utility model is further detailed.

[0019] Figure 1 It is the three-dimensional structure schematic diagram of API superhigh pressure water gas performance test system in the preferred embodiment of the utility model;

[0020] Figure 2 It is Figure 1 The plane structure distribution diagram of API superhigh pressure water gas performance test system shown in the figure.

[0021] Description of the Drawings: 100, test room;110, first test space;120, second test space;130, third test space;140, outer wall;150, partition wall;200, first equipment group;210, booster equipment;220, setting test equipment;300, second equipment group;310, control cabinet;320, part test equipment. DETAILED DESCRIPTION

[0022] The utility model is further explained in conjunction with the attached drawing and specific embodiment, so that the person skilled in the art can better understand the utility model and can be implemented, but the embodiment is not as the limitation of the utility model.

[0023] Example one

[0024] Referring to Figure 1 And Figure 2As shown, this embodiment provides an API ultra-high pressure water and gas performance testing system, which includes: a test room 100, the test room 100 includes an outer wall 140 and at least one partition wall 150, the outer wall 140 and at least one partition wall 150 together enclose at least one first test space 110 and at least one second test space 120; a first equipment group 200, the first equipment group 200 is arranged in the first test space 110; a second equipment group 300, the second equipment group 300 is arranged in the second test space 120, and the first equipment group 200 and the second equipment group 300 are shielded from interference by each other through at least one partition wall 150.

[0025] The API ultra-high pressure water vapor performance test system described in this embodiment divides the different equipment groups into regional layouts by setting up corresponding equipment groups inside the test room 100, and at the same time separates the equipment that is prone to noise and vibration from the equipment that requires a stable test environment through at least one partition wall 150, thereby creating multiple relatively independent but interconnected test spaces inside. In addition, the present application can also achieve the connection of pipes or wires between equipment through the above-mentioned reasonable layout, while ensuring the stable operation of each equipment group, reducing the overall footprint of the system and making full use of the limited factory space. Compared with conventional API ultra-high pressure water vapor performance testing technology, the present application has significant advantages such as small footprint, reasonable layout, stable operating environment, high detection accuracy and large operating space.

[0026] See also Figure 1 and Figure 2 As shown, the test room 100 in this embodiment is of conventional factory size, which includes an outer wall 140 and a plurality of partition walls 150. Figure 2 The API ultra-high pressure water and gas performance test system shown is a reference. This application includes a rectangular outer wall 140 and two mutually perpendicular partition walls 150 disposed within the outer wall 140. Thus, the two partitions in this application divide the interior of the test room into a first test space 110, a second test space 120, and a third test space 130. The first test space 110 is located in the upper left portion, the second test space 120 is located in the lower left portion, and the third test space 130 is located in the right portion. In other embodiments, the test rooms 100 can be set to other corresponding numbers or set in other specific locations based on actual usage requirements, and this application does not impose specific limitations.

[0027] Further, the partition wall 150 in the present application comprises a sound insulation layer and a shock absorption layer, so as to realize the noise reduction and shock absorption effect between adjacent test spaces. In the present embodiment, the partition wall 150 is provided with a door (not shown in the figure), and the operator can enter and exit the corresponding test space through the door. Specifically, the door is embedded in the door mounting port provided on the partition wall 150. Further, the door between the first test space 110 and the second test space 120 is arranged in the middle of the corresponding partition wall 150, and the door between the second test space 120 and the third test space 130 is arranged at the end of the corresponding partition wall 150, so as to realize the communication between the first test space 110, the second test space 120 and the third test space 130, so as to facilitate the equipment assembly adjustment or maintenance.

[0028] Referring to Figure 1 In the present embodiment, the first device group 200 is arranged in the first test space 110, and the inside is used to place the device with noise. The second device group 300 is arranged in the second test space 120, and the inside is used to place the device requiring stable working environment. The third test space 130 is provided with a third device group (not shown in the figure), wherein the booster device 210 and the positive test device are connected to the wall, so as to improve the connection stability of the two, and the console 310 and the part test device 320 are arranged away from the wall, so as to further avoid the influence of the noise generated by the first device group 200. In the present embodiment, the third test space is adaptively adjusted as a standby test space to adaptively adjust the specific type of the third device group. Further, the partition wall 150 is provided with a communication hole, and the first device group 200 and the second device group 300 are connected through a communication pipeline and / or a wire. Based on this, the present application can realize the super-high pressure four-in-one test function.

[0029] Further, the first device group 200 in the present embodiment comprises a booster device 210 and a setting test device 220, and the booster device 210 and the setting test device 220 are arranged opposite to each other, so as to facilitate the reduction of the layout of the communication pipeline. Further, the booster device 210 is a fluid booster station, and the setting test device 220 comprises a water pressure valve setting test table and an air pressure valve setting test table. Correspondingly, the second device group 300 comprises a console 310 and a part test device 320, wherein the console 310 and the part test device 320 are connected to each other. Further, the console 310 is a valve test console 310, and the part test device 320 is a water pressure valve part test table. In other embodiments, the operator can adjust the placement direction, quantity and position of the corresponding device according to the actual use demand, and correspondingly, the communication pipeline and the wire can be adaptively adjusted.

[0030] Embodiment two

[0031] The embodiment provides an API superhigh pressure water gas performance test plant, which comprises the API superhigh pressure water gas performance test system in the embodiment one.

[0032] In conclusion, the API superhigh pressure water gas performance test system and plant have the advantages that: different equipment groups are arranged in the test room 100, and the equipment groups that are prone to produce noise and vibration are separated from the equipment groups that need stable test environment by the at least one partition wall 150, so that multiple relatively independent test spaces that are connected with each other are created in the test room 100, in addition, the pipes or wires between the equipment groups can be connected by the reasonable arrangement, the stable operation of the equipment groups is ensured, the overall land occupation area of the system is reduced, and the limited plant space is fully utilized. Compared with the conventional API superhigh pressure water gas performance test technology, the API superhigh pressure water gas performance test system and plant have the advantages of small land occupation area, reasonable layout, stable operation environment, high detection precision and large operation space.

[0033] Obviously, the above embodiment is only an example for clearly illustrating the present application, and is not a limitation to the embodiments. Based on the above description, other different forms of changes or variations can be made by those skilled in the art. All the embodiments do not need to be exhausted, and the obvious changes or variations derived therefrom are still within the protection scope of the present application.

Claims

1. An API ultra-high pressure water vapor performance testing system, characterized by: include: A test room, the test room comprising an outer wall and at least one partition wall, the outer wall and at least one partition wall together enclosing at least one first test space and at least one second test space, wherein the partition wall comprises a sound insulation layer and a shock absorption layer, and the partition wall is provided with a communication hole; a first equipment group, the first equipment group being disposed in the first test space; The second equipment group is arranged in the second test space, the first equipment group and the second equipment group are shielded from interference by at least one partition wall, and the first equipment group and the second equipment group are connected by connecting pipes and / or wires.

2. The API ultra-high pressure water vapor performance testing system according to claim 1, characterized in that: The first equipment group includes a boosting device and a setting test device, and the boosting device is arranged opposite to the valve body of the setting test device.

3. The API ultra-high pressure water vapor performance testing system according to claim 2, characterized in that: The boosting equipment is a fluid boosting station, and the setting and testing equipment includes a water pressure valve setting and testing bench and an air pressure valve setting and testing bench.

4. The API ultra-high pressure water vapor performance testing system according to claim 1, characterized in that: The second equipment group includes a control console and a parts testing device, wherein the control console and the parts testing device are connected to each other.

5. The API ultra-high pressure water vapor performance testing system according to claim 4, characterized in that: The console is a valve testing console, and the parts testing equipment is a water pressure valve parts testing bench.

6. The API ultra-high pressure water vapor performance testing system according to claim 1, characterized in that: A door body is provided on the partition wall.

7. The API ultra-high pressure water vapor performance testing system according to claim 1, characterized in that: The test room further includes at least one third test room, and the third equipment group is arranged in the third test room.

8. An API ultra-high pressure water and gas performance testing plant, characterized by: The invention comprises the API ultra-high pressure water-gas performance testing system as described in any one of claims 1 to 7.