A UPS power distribution testing device for intelligent engineering
By designing a UPS power distribution test device that automatically adjusts the angle and position of the connector, the problem of cumbersome testing procedures caused by the different tilt angles of the UPS power inlet and outlet interfaces was solved, and efficient automation of UPS power distribution testing was achieved.
Patent Information
- Application Number
- CN202510517492.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2045-04-23
AI Technical Summary
Existing technologies for UPS power distribution testing involve cumbersome testing procedures due to the different tilt angles between the UPS power inlet and outlet interfaces, resulting in reduced testing efficiency and reliability.
A UPS power distribution test device was designed, which includes a charging component, a power supply detection component, and an interface cleaning component. By automatically adjusting the angle and position of the plug, the plug can be automatically inserted into the UPS's power inlet and outlet interfaces, thus achieving automated testing.
This improves the efficiency and reliability of UPS power distribution testing, eliminates the need for manual plugging and unplugging of connectors, and greatly enhances testing speed and accuracy.
Smart Images

Figure CN120178091B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of power distribution testing technology, and in particular relates to a UPS power distribution testing device for intelligent engineering. Background Technology
[0002] In intelligent engineering, uninterruptible power supplies (UPS) play a crucial role, ensuring that critical equipment can continue to operate when the mains power is interrupted, thus guaranteeing system stability and data security.
[0003] Before a UPS is manufactured and put into service, it is usually necessary to test its power supply speed under mains power failure to ensure that the UPS can supply power to the load at the required speed. However, in the current technology, the tilt angle of the sides of different batches of UPS is not the same, which will cause the tilt angle of the UPS's power inlet and outlet interfaces to be different. At this time, the staff needs to manually insert the power inlet and outlet interfaces with current sensors into the UPS's power inlet and outlet interfaces in sequence, and then power on the power inlet interface. At this time, the current sensor on the outlet interface will detect the current. After a period of power supply, the power inlet interface is turned off. The time it takes for the current sensor on the outlet interface to detect the current again is recorded to obtain the UPS's power supply speed. After that, the staff needs to manually unplug the power inlet and outlet interfaces and continue to test the next UPS. The process is cumbersome and greatly reduces the testing efficiency and reliability of UPS power distribution testing.
[0004] To address these issues, we propose a UPS power distribution testing device for intelligent engineering. Summary of the Invention
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A UPS power distribution testing device for intelligent engineering includes a test frame. Multiple fixed frames are rotatably connected to the bottom inner wall of the test frame. Multiple second motors are fixedly connected to the bottom side wall of the test frame. The output ends of the second motors penetrate the side wall of the test frame and are fixedly connected to the bottom side wall of the corresponding fixed frames. A first U-plate is fixedly connected to the inner wall of each fixed frame. A first round rod is rotatably connected to the inner wall of each first U-plate. A first motor is fixedly connected to the side wall of each first U-plate. The output end of the first motor penetrates the side wall of the first U-plate and is fixedly connected to one end of the first round rod. A first electric telescopic rod is fixedly connected to the rod wall of each first round rod. A fixed plate is fixedly connected to the telescopic end of each first electric telescopic rod. A charging component and a power supply detection component are fixedly connected to the bottom inner wall of the test frame. An interface cleaning component is fixedly connected to the top side wall of the test frame.
[0007] Preferably, the charging assembly includes a plurality of first mounting plates fixedly connected to the inner wall of the bottom end of the test frame. A first electric slide rail is fixedly connected to the inner wall of the first mounting plate. A first slide plate is slidably connected to the side wall of the first electric slide rail. A second mounting plate is fixedly connected to the side wall of the first slide plate. A second electric slide rail is fixedly connected to the inner wall of the second mounting plate. A second slide plate is slidably connected to the side wall of the second electric slide rail. A second electric telescopic rod is fixedly connected to one end of the side wall of the second slide plate.
[0008] Preferably, the telescopic ends of the second electric telescopic rod are all fixedly connected to a second U-plate, the inner wall of the second U-plate is rotatably connected to a second round rod, the side wall of the second U-plate is fixedly connected to a third motor, the output end of the third motor passes through the side wall of the second U-plate and is fixedly connected to one end of the second round rod, the rod wall of the second round rod has a first groove, the inner wall of the first groove is fixedly connected to a fourth motor, the output end of the fourth motor is fixedly connected to a third electric telescopic rod, the telescopic end of the third electric telescopic rod is fixedly connected to a first current sensor, and one end of the first current sensor is provided with a first socket.
[0009] Preferably, the power supply detection assembly includes multiple third mounting plates fixedly connected to the inner wall of the bottom end of the test frame. Each of the two end side walls of the third mounting plate is fixedly connected to a first side rod. One end of each first side rod is fixedly connected to a third U-plate. The inner wall of the third U-plate is rotatably connected to a third round rod. A fifth motor is fixedly connected to the side wall of the third U-plate. The output end of the fifth motor passes through the side wall of the third U-plate and is fixedly connected to one end of the third round rod. A second side rod is fixedly connected to the wall of the third round rod. One end of each second side rod is fixedly connected to a fourth mounting plate.
[0010] Preferably, the inner walls of the third mounting plate and the fourth mounting plate are both fixedly connected to a third electric slide rail, the side wall of the third electric slide rail is slidably connected to a third sliding plate, the side wall of the third sliding plate is fixedly connected to a fifth mounting plate, the inner wall of the fifth mounting plate is fixedly connected to a fourth electric slide rail, the side wall of the fourth electric slide rail is slidably connected to a fourth sliding plate, the side wall of the fourth sliding plate is fixedly connected to a fourth electric telescopic rod, and the telescopic end of the fourth electric telescopic rod is fixedly connected to a fourth U-plate.
[0011] Preferably, a fourth round rod is rotatably connected to the inner wall of the fourth U-plate, a sixth motor is fixedly connected to the side wall of the fourth U-plate, the output end of the sixth motor passes through the side wall of the fourth U-plate and is fixedly connected to one end of the fourth round rod, a second groove is provided on the rod wall of the fourth round rod, a seventh motor is fixedly connected to the inner wall of the second groove, a fifth electric telescopic rod is fixedly connected to the output end of the seventh motor, a second current sensor is fixedly connected to the telescopic end of the fifth electric telescopic rod, and a second socket is provided at one end of the second current sensor.
[0012] Preferably, the interface cleaning assembly includes multiple fifth U-plates fixedly connected to the top sidewall of the test frame. A fifth round rod is rotatably connected to the inner wall of each fifth U-plate. An eighth motor is fixedly connected to the sidewall of each fifth U-plate. The output end of the eighth motor passes through the sidewall of the fifth U-plate and is fixedly connected to one end of the fifth round rod. A connecting rod is fixedly connected to the rod wall of the fifth round rod. A sixth mounting plate is fixedly connected to one end of the connecting rod. A fifth electric slide rail is fixedly connected to the inner wall of the sixth mounting plate. A fifth sliding plate is slidably connected to the sidewall of the fifth electric slide rail. A seventh mounting plate is fixedly connected to the sidewall of the fifth sliding plate. A sixth electric slide rail is fixedly connected to the inner wall of the seventh mounting plate. A sixth sliding plate is slidably connected to the sidewall of the sixth electric slide rail.
[0013] Preferably, a sixth electric telescopic rod is fixedly connected to the side wall of the sixth sliding plate, a sixth U-plate is fixedly connected to the telescopic end of the sixth electric telescopic rod, a sixth round rod is rotatably connected to the inner wall of the sixth U-plate, a ninth motor is fixedly connected to the side wall of the sixth U-plate, the output end of the ninth motor passes through the side wall of the sixth U-plate and is fixedly connected to one end of the sixth round rod, a seventh electric telescopic rod is fixedly connected to the rod wall of the sixth round rod, and a cleaning air gun is fixedly connected to the telescopic end of the seventh electric telescopic rod.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0015] By incorporating charging, power supply detection, and interface cleaning components, the device can adjust the angle and position of the cleaning air gun based on the location and tilt angle of the UPS's power inlet and outlet interfaces during power distribution testing. This facilitates the cleaning of dust from the UPS's power inlet and outlet interfaces, preventing dust from affecting the UPS's power-on performance. Furthermore, the device can adjust the position and tilt angle of the first and second connectors based on the location and tilt angle of the UPS's power inlet and outlet interfaces, allowing them to automatically insert into the interfaces. This facilitates testing the UPS's power-on speed and eliminates the need for manual insertion and removal of the connectors after testing, which significantly improves testing efficiency and reliability. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0017] Figure 2 This is a schematic diagram of the structure of the present invention from other angles;
[0018] Figure 3 This is a partial structural diagram of the present invention. Figure 1 ;
[0019] Figure 4 This is a partial structural diagram of the present invention. Figure 2 ;
[0020] Figure 5 This is a partial structural diagram of the present invention. Figure 3 ;
[0021] Figure 6 This is a partial structural diagram of the present invention. Figure 4 ;
[0022] Figure 7 This is an enlarged view of part A in Figure 6 of the present invention;
[0023] Figure 8 This is a partial structural diagram of the present invention. Figure 5 .
[0024] In the diagram: 1. Test frame; 2. Fixing frame; 3. Second motor; 4. First U-plate; 5. First round rod; 6. First motor; 7. First electric telescopic rod; 8. Fixing plate; 9. Charging assembly; 91. First mounting plate; 92. First electric slide rail; 93. First sliding plate; 94. Second mounting plate; 95. Second electric slide rail; 96. Second sliding plate; 97. Second electric telescopic rod; 98. Second U-plate; 99. Second round rod; 910. Third motor; 911. First groove; 912. Fourth motor; 913. Third electric telescopic rod; 914. First current sensor; 915. First socket; 10. Power supply detection assembly; 101. Third mounting plate; 102. First side rod; 103. Third U-plate; 104. Third round rod; 105. Fifth motor; 106. Second side rod; 107. Fourth mounting plate; 108. Third electric slide rail; 109. Third sliding plate; 010, Fifth mounting plate; 1011, Fourth electric slide rail; 1012, Fourth sliding plate; 1013, Fourth electric telescopic rod; 1014, Fourth U-plate; 1015, Fourth round rod; 1016, Sixth motor; 1017, Second groove; 1018, Seventh motor; 1019, Fifth electric telescopic rod; 1020, Second current sensor; 1021, Second socket; 11, Interface cleaning assembly; 111, Fifth U-plate; 1 12. Fifth round rod; 113. Eighth motor; 114. Sixth mounting plate; 115. Fifth electric slide rail; 116. Fifth sliding plate; 117. Seventh mounting plate; 118. Sixth electric slide rail; 119. Sixth sliding plate; 1110. Sixth electric telescopic rod; 1111. Sixth U-plate; 1112. Sixth round rod; 1113. Ninth motor; 1114. Seventh electric telescopic rod; 1115. Cleaning air gun; 1116. Connecting rod. Detailed Implementation
[0025] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0026] The following electrical components are all electrically connected to the external PLC controller.
[0027] Reference Figure 1 - Figure 8A UPS power distribution testing device for intelligent engineering includes a test frame 1. Multiple fixed frames 2 are rotatably connected to the bottom inner wall of the test frame 1. Multiple second motors 3 are fixedly connected to the bottom side wall of the test frame 1. The output ends of the second motors 3 penetrate the side wall of the test frame 1 and are fixedly connected to the bottom side wall of the corresponding fixed frame 2. A first U-plate 4 is fixedly connected to the inner wall of each fixed frame 2. A first round rod 5 is rotatably connected to the inner wall of each first U-plate 4. A first motor 6 is fixedly connected to the side wall of the first U-plate 4. The output end of the first motor 6 penetrates the side wall of the first U-plate 4 and is fixedly connected to one end of the first round rod 5. A first electric telescopic rod 7 is fixedly connected to the rod wall of each first round rod 5. A fixed plate 8 is fixedly connected to the telescopic end of each first electric telescopic rod 7. A charging component 9 is fixedly connected to the bottom inner wall of the test frame 1. A power supply detection component 10 is fixedly connected to the bottom inner wall of the test frame 1. An interface cleaning component 11 is fixedly connected to the top side wall of the test frame 1.
[0028] In this embodiment, the charging assembly 9 includes a plurality of first mounting plates 91 fixedly connected to the inner wall of the bottom end of the test frame 1. A first electric slide rail 92 is fixedly connected to the inner wall of the first mounting plate 91. A first slide plate 93 is slidably connected to the side wall of the first electric slide rail 92. A second mounting plate 94 is fixedly connected to the side wall of the first slide plate 93. A second electric slide rail 95 is fixedly connected to the inner wall of the second mounting plate 94. A second slide plate 96 is slidably connected to the side wall of the second electric slide rail 95. A second electric telescopic rod 97 is fixedly connected to one end of the side wall of the second slide plate 96.
[0029] The telescopic ends of the second electric telescopic rod 97 are all fixedly connected to the second U-plate 98. The inner wall of the second U-plate 98 is rotatably connected to the second round rod 99. The side wall of the second U-plate 98 is fixedly connected to the third motor 910. The output end of the third motor 910 passes through the side wall of the second U-plate 98 and is fixedly connected to one end of the second round rod 99. The rod wall of the second round rod 99 is provided with a first groove 911. The inner wall of the first groove 911 is fixedly connected to the fourth motor 912. The output end of the fourth motor 912 is fixedly connected to the third electric telescopic rod 913. The telescopic end of the third electric telescopic rod 913 is fixedly connected to the first current sensor 914. One end of the first current sensor 914 is provided with a first socket 915.
[0030] The power supply detection assembly 10 includes multiple third mounting plates 101 fixedly connected to the inner wall of the bottom end of the test frame 1. First side rods 102 are fixedly connected to both side walls of the third mounting plates 101. A third U-plate 103 is fixedly connected to one end of the first side rod 102. A third round rod 104 is rotatably connected to the inner wall of the third U-plate 103. A fifth motor 105 is fixedly connected to the side wall of the third U-plate 103. The output end of the fifth motor 105 passes through the side wall of the third U-plate 103 and is fixedly connected to one end of the third round rod 104. A second side rod 106 is fixedly connected to the rod wall of the third round rod 104. A fourth mounting plate 107 is fixedly connected to one end of each of the second side rods 106.
[0031] The inner walls of the third mounting plate 101 and the fourth mounting plate 107 are both fixedly connected to the third electric slide rail 108. The side wall of the third electric slide rail 108 is slidably connected to the third slide plate 109. The side wall of the third slide plate 109 is fixedly connected to the fifth mounting plate 1010. The inner wall of the fifth mounting plate 1010 is fixedly connected to the fourth electric slide rail 1011. The side wall of the fourth electric slide rail 1011 is slidably connected to the fourth slide plate 1012. The side wall of the fourth slide plate 1012 is fixedly connected to the fourth electric telescopic rod 1013. The telescopic ends of the fourth electric telescopic rod 1013 are all fixedly connected to the fourth U-plate 1014.
[0032] A fourth round rod 1015 is rotatably connected to the inner wall of the fourth U-plate 1014. A sixth motor 1016 is fixedly connected to the side wall of the fourth U-plate 1014. The output end of the sixth motor 1016 passes through the side wall of the fourth U-plate 1014 and is fixedly connected to one end of the fourth round rod 1015. A second groove 1017 is provided on the rod wall of the fourth round rod 1015. A seventh motor 1018 is fixedly connected to the inner wall of the second groove 1017. A fifth electric telescopic rod 1019 is fixedly connected to the output end of the seventh motor 1018. A second current sensor 1020 is fixedly connected to the telescopic end of the fifth electric telescopic rod 1019. A second socket 1021 is provided at one end of the second current sensor 1020.
[0033] Specifically, the device can adjust the position and tilt angle of the first connector 915 and the second connector 1021 according to the position and tilt angle of the UPS's power inlet and outlet interfaces. This allows the first connector 915 and the second connector 1021 to automatically insert into the UPS's power inlet and outlet interfaces, facilitating the testing of the UPS's power-on speed. This avoids the need for operators to manually insert the connectors into the UPS's power inlet and outlet interfaces and then manually remove them after testing, which would affect the testing speed of the UPS. This greatly improves the testing efficiency and reliability of the device when testing the UPS.
[0034] In this embodiment, the interface cleaning component 11 includes multiple fifth U-plates 111 fixedly connected to the top sidewall of the test frame 1. A fifth round rod 112 is rotatably connected to the inner wall of the fifth U-plate 111. An eighth motor 113 is fixedly connected to the sidewall of the fifth U-plate 111. The output end of the eighth motor 113 passes through the sidewall of the fifth U-plate 111 and is fixedly connected to one end of the fifth round rod 112. A connecting rod 1116 is fixedly connected to the rod wall of the fifth round rod 112. A sixth mounting plate 114 is fixedly connected to one end of the connecting rod 1116. A fifth electric slide rail 115 is fixedly connected to the inner wall of the sixth mounting plate 114. A fifth sliding plate 116 is slidably connected to the sidewall of the fifth electric slide rail 115. A seventh mounting plate 117 is fixedly connected to the sidewall of the fifth sliding plate 116. A sixth electric slide rail 118 is fixedly connected to the inner wall of the seventh mounting plate 117. A sixth sliding plate 119 is slidably connected to the sidewall of the sixth electric slide rail 118.
[0035] The sixth electric telescopic rod 1110 is fixedly connected to the side wall of the sixth sliding plate 119. The telescopic end of the sixth electric telescopic rod 1110 is fixedly connected to the sixth U-plate 1111. The inner wall of the sixth U-plate 1111 is rotatably connected to the sixth round rod 1112. The side wall of the sixth U-plate 1111 is fixedly connected to the ninth motor 1113. The output end of the ninth motor 1113 passes through the side wall of the sixth U-plate 1111 and is fixedly connected to one end of the sixth round rod 1112. The rod wall of the sixth round rod 1112 is fixedly connected to the seventh electric telescopic rod 1114. The telescopic end of the seventh electric telescopic rod 1114 is fixedly connected to the cleaning air gun 1115.
[0036] Specifically, when a power distribution test of the UPS is required, the angle and position of the cleaning air gun 1115 can be adjusted according to the position and tilt angle of the UPS power inlet and outlet interfaces. This makes it easier to use the cleaning air gun 1115 to clean the dust inside the UPS power inlet and outlet interfaces, preventing dust from affecting the UPS's power supply performance.
[0037] The operating principle of the present invention is described as follows:
[0038] In this invention, when a UPS needs to be tested, multiple UPSs to be tested are placed sequentially into the fixed frame 2. Then, the first motor 6 is started, driving the first round rod 5 to rotate. During the rotation of the first round rod 5, the fixed plate 8 will rotate. After the tilt angle of the fixed plate 8 matches the tilt angle of the corresponding UPS side wall, the first motor 6 is turned off. Then, the first electric telescopic rod 7 is started, driving the fixed plate 8 to move and fix the UPS. Then, the second motor 3 is started, driving the UPS to rotate so that the UPS power input interface faces the side of the fifth U-plate 111. Then, the eighth motor 113 is started, driving the fifth round rod 112 to rotate 90 degrees and then stop. Finally, the fifth electric slide rail 1 is controlled to rotate. 15 and the sixth electric slide rail 118 are activated, driving the corresponding fifth slide plate 116 and sixth slide plate 119 to move, positioning the cleaning air gun 1115 to one side of the UPS power inlet interface. Then, the ninth motor 1113 is activated, driving the sixth round rod 1112 to rotate, aligning the air outlet of the cleaning air gun 1115 perpendicular to the UPS power inlet interface. Next, the sixth electric telescopic rod 1110 is activated, moving the cleaning air gun 1115 towards the power inlet interface. The cleaning air gun 1115 is then activated to blow away dust from the power inlet interface, preventing excessive dust from affecting the UPS's power supply. Finally, the second motor 3 is activated again, positioning the UPS power outlet interface to one side of the cleaning air gun 1115. Next, clean the dust inside the UPS power input interface according to the above steps. After cleaning, control the cleaning air gun 1115 to return to its original position. Then, control the second motor 3 to start again, driving the fixed frame 2 to rotate, so that the UPS power input interface faces the first socket 915. Then, control the first electric slide rail 92 and the second electric slide rail 95 to start, driving the corresponding first slide plate 93 and the second slide plate 96 to move, so that the first socket 915 corresponds to the UPS power input interface. Then, control the second electric telescopic rod 97 to start, so that the first socket 915 moves closer to the UPS power input interface. Then, control the third motor 910 to start, driving the second round rod 99 to rotate, so that the tilt angle of the first socket 915 corresponds to the tilt angle of the UPS power input interface. Similarly, the fourth motor 912 is then started, causing the first connector 915 to rotate, aligning it with the UPS power inlet connector at the same angle. Next, the third electric telescopic rod 913 is started, inserting the first connector 915 into the UPS power inlet. Then, the fifth motor 105 is started, rotating the corresponding third round rod 104 90 degrees before stopping. At this point, the third electric slide rail 108 and the fourth electric slide rail 1011 on one side of the UPS power outlet are started, moving the third sliding plate 109 and the fourth sliding plate 1012, positioning the second connector 1021 on one side of the UPS power outlet. Finally, the fourth electric telescopic rod 1013 is started, moving the second connector 1021 closer to the UPS power outlet.Then, the seventh motor 1018 is started, driving the second connector 1021 to rotate, so that the second connector 1021 is at the same angle as the UPS power output connector. Next, the fifth electric telescopic rod 1019 is started, moving the second connector 1021 and inserting it into the UPS power input connector. Then, power is supplied to the UPS power input connector through the first connector 915. At this time, the UPS will supply power to the second connector 1021. When the first connector 915 supplies power to the UPS, the first current sensor 914 will detect the current. After power is supplied, the second current sensor 1020 will detect the current. By recording the time between the first current sensor 914 detecting the current and the second current sensor 1020 detecting the current, the power-on speed of the UPS can be detected. Then, the first socket 915 is controlled to stop supplying power to the UPS, simulating a mains power failure. At this time, the first current sensor 914 cannot detect the current. After the second current sensor 1020 detects the current, the time between the second current sensor 1020 not detecting the current and then detecting the current is recorded. This allows the determination of whether the UPS's power supply speed after a mains power failure meets the requirements. Then, the first socket 915, the second socket 1021, and the fixing plate 8 are controlled to return to their original positions, and the tested UPS can be removed. This facilitates testing of the next batch of UPS. When power distribution testing of the UPS is required, the angle and position of the cleaning air gun 1115 can be adjusted according to the position and tilt angle of the UPS's power inlet and outlet interfaces. This allows for the cleaning of dust inside the UPS's power inlet and outlet interfaces using the cleaning air gun 1115, preventing dust from affecting the UPS's power-on performance. It can also be adjusted according to the position and tilt angle of the UPS's power inlet and outlet interfaces. The position and tilt angle of the first connector 915 and the second connector 1021 are adjusted to allow them to automatically insert into the UPS's power inlet and outlet interfaces. This facilitates testing the UPS's power-on speed and eliminates the need for manual insertion and removal of the connectors after testing, which would otherwise slow down the testing process. This significantly improves the efficiency and reliability of UPS testing.
[0039] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A UPS power distribution testing device for intelligent engineering, comprising a test frame (1), characterized in that, The bottom end inner wall of the test frame (1) is rotationally connected with a plurality of fixed frames (2), the bottom end side wall of the test frame (1) is fixedly connected with a plurality of second motors (3), the output end of the second motor (3) penetrates the side wall of the test frame (1) and is fixedly connected with the bottom end side wall of the corresponding fixed frame (2), the inner wall of the fixed frame (2) is fixedly connected with a first U plate (4), the inner wall of the first U plate (4) is rotationally connected with a first circular rod (5), the side wall of the first U plate (4) is fixedly connected with a first motor (6), the output end of the first motor (6) penetrates the side wall of the first U plate (4) and is fixedly connected with one end of the first circular rod (5), the rod wall of the first circular rod (5) is fixedly connected with a first electric telescopic rod (7), the telescopic end of the first electric telescopic rod (7) is fixedly connected with a fixed plate (8), the bottom end inner wall of the test frame (1) is fixedly connected with a charging assembly (9), the bottom end inner wall of the test frame (1) is fixedly connected with a power supply detection assembly (10), and the top end side wall of the test frame (1) is fixedly connected with an interface cleaning assembly (11); The charging assembly (9) comprises a plurality of first mounting plates (91) fixedly connected to the bottom end inner wall of the test frame (1), the inner wall of the first mounting plate (91) is fixedly connected with a first electric sliding rail (92), the side wall of the first electric sliding rail (92) is slidingly connected with a first sliding plate (93), the side wall of the first sliding plate (93) is fixedly connected with a second mounting plate (94), the inner wall of the second mounting plate (94) is fixedly connected with a second electric sliding rail (95), the side wall of the second electric sliding rail (95) is slidingly connected with a second sliding plate (96), and one end side wall of the second sliding plate (96) is fixedly connected with a second electric telescopic rod (97); The telescopic end of the second electric telescopic rod (97) is fixedly connected with a second U plate (98), the inner wall of the second U plate (98) is rotationally connected with a second circular rod (99), the side wall of the second U plate (98) is fixedly connected with a third motor (910), the output end of the third motor (910) penetrates the side wall of the second U plate (98) and is fixedly connected with one end of the second circular rod (99), the rod wall of the second circular rod (99) is provided with a first groove (911), the inner wall of the first groove (911) is fixedly connected with a fourth motor (912), the output end of the fourth motor (912) is fixedly connected with a third electric telescopic rod (913), the telescopic end of the third electric telescopic rod (913) is fixedly connected with a first current sensor (914), and one end of the first current sensor (914) is provided with a first socket (915). The power supply detection assembly (10) includes a plurality of third mounting plates (101) fixedly connected to the inner wall of the bottom end of the test frame (1), both ends of the third mounting plate (101) are fixedly connected with a first side rod (102), one end of the first side rod (102) is fixedly connected with a third U-shaped plate (103), the inner wall of the third U-shaped plate (103) is rotatably connected with a third circular rod (104), the side wall of the third U-shaped plate (103) is fixedly connected with a fifth motor (105), the output end of the fifth motor (105) penetrates the side wall of the third U-shaped plate (103) and is fixedly connected with one end of the third circular rod (104), the rod wall of the third circular rod (104) is fixedly connected with a second side rod (106), and one end of the second side rod (106) is fixedly connected with a fourth mounting plate (107).
2. The UPS power distribution testing device for intelligent engineering of claim 1, wherein, The inner walls of the third mounting plate (101) and the fourth mounting plate (107) are fixedly connected with a third electric sliding rail (108), the side wall of the third electric sliding rail (108) is slidably connected with a third sliding plate (109), the side wall of the third sliding plate (109) is fixedly connected with a fifth mounting plate (1010), the inner wall of the fifth mounting plate (1010) is fixedly connected with a fourth electric sliding rail (1011), the side wall of the fourth electric sliding rail (1011) is slidably connected with a fourth sliding plate (1012), the side wall of the fourth sliding plate (1012) is fixedly connected with a fourth electric telescopic rod (1013), and both extension ends of the fourth electric telescopic rod (1013) are fixedly connected with a fourth U-shaped plate (1014).
3. The UPS power distribution testing device for intelligent engineering of claim 2, wherein, The inner wall of the fourth U-shaped plate (1014) is rotatably connected with a fourth circular rod (1015), the side wall of the fourth U-shaped plate (1014) is fixedly connected with a sixth motor (1016), the output end of the sixth motor (1016) penetrates the side wall of the fourth U-shaped plate (1014) and is fixedly connected with one end of the fourth circular rod (1015), the rod wall of the fourth circular rod (1015) is provided with a second groove (1017), the inner wall of the second groove (1017) is fixedly connected with a seventh motor (1018), the output end of the seventh motor (1018) is fixedly connected with a fifth electric telescopic rod (1019), the extension end of the fifth electric telescopic rod (1019) is fixedly connected with a second current sensor (1020), and one end of the second current sensor (1020) is provided with a second socket (1021).
4. The UPS power distribution testing device for intelligent engineering of claim 1, wherein, The interface cleaning assembly (11) includes a plurality of fifth U plates (111) fixedly connected to the top side wall of the test frame (1), the inner wall of the fifth U plate (111) is rotatably connected with a fifth circular rod (112), the side wall of the fifth U plate (111) is fixedly connected with an eighth motor (113), the output end of the eighth motor (113) penetrates the side wall of the fifth U plate (111) and is fixedly connected with one end of the fifth circular rod (112), the rod wall of the fifth circular rod (112) is fixedly connected with a connecting rod (1116), one end of the connecting rod (1116) is fixedly connected with a sixth mounting plate (114), the inner wall of the sixth mounting plate (114) is fixedly connected with a fifth electric sliding rail (115), the side wall of the fifth electric sliding rail (115) is slidably connected with a fifth sliding plate (116), the side wall of the fifth sliding plate (116) is fixedly connected with a seventh mounting plate (117), the inner wall of the seventh mounting plate (117) is fixedly connected with a sixth electric sliding rail (118), and the side wall of the sixth electric sliding rail (118) is slidably connected with a sixth sliding plate (119).
5. The UPS power distribution testing device for intelligent engineering of claim 4, wherein, The side wall of the sixth sliding plate (119) is fixedly connected with a sixth electric telescopic rod (1110), the telescopic end of the sixth electric telescopic rod (1110) is fixedly connected with a sixth U plate (1111), the inner wall of the sixth U plate (1111) is rotatably connected with a sixth circular rod (1112), the side wall of the sixth U plate (1111) is fixedly connected with a ninth motor (1113), the output end of the ninth motor (1113) penetrates the side wall of the sixth U plate (1111) and is fixedly connected with one end of the sixth circular rod (1112), the rod wall of the sixth circular rod (1112) is fixedly connected with a seventh electric telescopic rod (1114), and the telescopic end of the seventh electric telescopic rod (1114) is fixedly connected with a cleaning air gun (1115).
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