An all-in-one test tool

By designing the sliding body and positioning groove structure of the integrated machine test fixture, the height adjustment and fixation of the integrated machine in the drag loading test were realized, which solved the problem of the limitation of the sample holder in the existing technology and improved the adaptability and stability of the test.

CN224535378UActive Publication Date: 2026-07-21HUA TIANXIN INTELLIGENT IOT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUA TIANXIN INTELLIGENT IOT CO LTD
Filing Date
2025-08-01
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In the existing technology, the sample holder is difficult to cope with drag loading tests in different scenarios, which has limitations.

Method used

An integrated testing fixture was designed, including a frame, a sliding body, a drive device, and a positioning component. The sliding body is driven to move along the track component by the drive device, and the locking function of the positioning groove is combined to realize the height adjustment and fixation of the integrated machine.

Benefits of technology

By moving the sliding body and locking the positioning groove, the center height of the integrated machine can be adjusted to meet various drag test requirements, improve the limitations of the sample holder, and ensure stability during the test.

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Abstract

The utility model provides a kind of all-in-one machine test tool, it is related to test tool technical field.All-in-one machine test tool includes frame body, sliding main body, driving device and positioning piece.Frame body is equipped with vertical track piece, track piece is equipped with multiple first positioning slots, multiple first positioning slots are arranged in vertical direction with interval.Sliding main body is slidably connected in track piece;At least one second positioning slot is equipped in sliding main body;Sliding main body is used to install the all-in-one machine to be tested.Driving device is connected to frame body, driving device is drivingly connected with sliding main body, and driving device is used to drive sliding main body to move along track piece.Positioning piece is used to be transferred into corresponding intercommunication first positioning slot and second positioning slot, to lock sliding main body and track piece.The all-in-one machine test tool provided by the utility model can improve the technical problem that the sample support of existing technology is more limited to drag loading test.
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Description

Technical Field

[0001] This utility model relates to the field of testing tooling technology, and more specifically, to an integrated testing tooling. Background Technology

[0002] In existing technologies, drag-and-load tests require connecting the integrated machine to a specific bracket. However, the fixed position of the integrated machine on the existing bracket makes it difficult to handle drag-and-load tests in different scenarios, resulting in significant limitations. Utility Model Content

[0003] The technical problem solved by this utility model is how to improve the limitations of the existing technology in the sample holder for drag loading test.

[0004] The embodiments of this utility model can be implemented as follows: This utility model provides an integrated testing fixture, including: The frame is provided with a vertical track component, and the track component has multiple first positioning slots, which are arranged at intervals in the vertical direction. A sliding body is slidably connected to the track component; at least one second positioning groove is provided on the sliding body; the sliding body is used to mount the integrated machine to be tested; A driving device is connected to the frame and is throttle-connected to the sliding body. The driving device is used to drive the sliding body to move along the track. A positioning element is used to rotate into the corresponding connected first positioning groove and second positioning groove to lock the sliding body and the track element.

[0005] Optionally, the track component has a vertical groove, the width of the groove opening is smaller than the width of the groove bottom; the side of the sliding body is provided with a slider adapted to the groove, and the slider slides in cooperation with the groove.

[0006] Optionally, the driving device includes a support member and a driving assembly; the support member is connected to the top of the track member and spans across the sliding body; the driving assembly is connected to the support member and passes through the support member to be drively connected to the sliding body.

[0007] Optionally, the drive assembly includes a worm gear assembly and a screw; the worm gear assembly is connected to the support member, the worm gear assembly is in drive engagement with the screw, and the worm gear assembly is used to drive the screw to rotate; the screw passes through the support member and is threadedly engaged with the sliding body.

[0008] Optionally, the worm gear assembly includes a worm wheel and a worm that mesh with each other; the worm is rotatably connected to the support member, and the screw is driven by the worm wheel.

[0009] Optionally, the drive assembly further includes a transmission element connected to the worm gear to follow the rotation of the worm gear, and the transmission element is threadedly engaged with the screw.

[0010] Optionally, the drive assembly further includes a support base and a handheld part. The support base is fixedly connected to the support member, the worm gear is rotatably connected to the support base, and the handheld part is connected to the worm gear to drive the worm gear to rotate under the action of external force.

[0011] Optionally, there are two track components, and the sliding body is slidably engaged with both track components and disposed between the two track components; each of the two track components is provided with the first positioning groove, and the sliding body is provided with the second positioning groove on opposite sides.

[0012] Optionally, the multiple first positioning slots on the two track components correspond one-to-one, and the height of the two corresponding first positioning slots is the same.

[0013] Optionally, the frame further includes a support plate and a reinforcing member, the track member is vertically mounted on the support plate, and the track member is set at an angle to the support plate; the reinforcing member is connected to both the support plate and the track member.

[0014] The advantages of the integrated testing fixture provided by this utility model compared to the prior art include: In this integrated testing fixture, the drive device can drive the sliding body to slide up and down relative to the track component, thereby adjusting the position of the sliding body on the track component and consequently adjusting the height of the integrated fixture's center position on the sliding body. After adjustment, the sliding body and track component are locked and fixed by the positioning components engaging with the corresponding first and second positioning slots, ensuring the stability of the integrated fixture during the test. Based on this, the center height of the integrated fixture can be adjusted by moving the sliding body relative to the track component, thus meeting various drag-load test requirements and improving the limitations of existing sample holders for drag-load tests.

[0015] Furthermore, the screw is driven to rotate by a worm gear assembly, and the sliding body slides up and down through the threaded engagement between the screw and the sliding body. After the sliding body slides into place, it can also achieve self-locking through the thread between the screw and the sliding body, further improving the stability of the sliding body and the integrated machine. Attached Figure Description

[0016] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the integrated testing fixture of this utility model; Figure 2 This is an exploded view of the integrated testing fixture of this utility model; Icons: Integrated machine test fixture 1, integrated machine 2, frame 10, track component 110, first positioning groove 111, slide groove 112, support plate 120, reinforcing component 130, sliding body 20, slider 210, second positioning groove 220, drive device 30, support component 310, drive assembly 320, worm gear assembly 321, worm gear 3211, worm 3212, screw 322, transmission component 323, support base 324, handheld part 325, positioning component 40. Detailed Implementation

[0018] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0019] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.

[0020] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0021] In the description of this utility model, it should be noted that if terms such as "upper," "lower," "inner," or "outer" are used to indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the utility model product is usually placed during use, they are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0022] Furthermore, the terms "first" and "second" are used only to distinguish descriptions and should not be interpreted as indicating or implying relative importance.

[0023] It should be noted that, where there is no conflict, the features in the embodiments of this utility model can be combined with each other.

[0024] See Figures 1-2 This embodiment provides an integrated machine testing fixture 1, which can be applied to the drag loading test of the integrated machine 2 and can improve the technical problem that the sample holder of the drag loading test in the prior art has great limitations.

[0025] In this embodiment, see Figure 2 The integrated testing fixture 1 includes a frame 10, a sliding body 20, a drive device 30, and a positioning component 40. The frame 10 has a vertical track 110 with multiple first positioning slots 111 spaced apart vertically. The sliding body 20 is slidably connected to the track 110 and has at least one second positioning slot 220. The sliding body 20 is used to mount the integrated machine 2 to be tested. Notably, when the sliding body 20 is connected to the track 110, the outer surfaces of the first positioning slots 111 on the track 110 and the outer surfaces of the second positioning slots 220 on the sliding body 20 are coplanar, allowing the second positioning slot 220 to move to a position corresponding to the first positioning slot 111. The drive device 30 is connected to the frame 10 and is drively connected to the sliding body 20, driving the sliding body 20 to move along the track 110. The positioning element 40 is used to rotate into the corresponding connected first positioning groove 111 and second positioning groove 220 to lock the sliding body 20 and the track element 110.

[0026] As described above, under the driving action of the driving device 30, the sliding body 20 can slide up and down along the track component 110, thereby adjusting the installation height of the integrated machine 2 to meet various installation requirements of the integrated machine 2. After the sliding body 20 slides into place, the positioning component 40 is engaged with the corresponding first positioning groove 111 and second positioning groove 220 to lock the sliding body 20 and the track component 110, thus completing the fixation of the integrated machine 2. Based on this, the integrated machine test fixture 1 can adjust the height of the sliding body 20 according to the actual situation, thereby adjusting the center height of the installation position of the integrated machine 2, meeting the installation requirements of various integrated machines 2 for drag tests, and solving the technical problem of the limited sample holder for drag load tests in the prior art.

[0027] It should be noted that the multiple first positioning slots 111 can be equally spaced on the track component 110, or they can be unequally spaced. Furthermore, if there is only one second positioning slot 220, it can be paired with any one of the first positioning slots 111 for the positioning component 40 to engage; alternatively, if there are multiple second positioning slots 220, they can be individually engaged with the positioning component 40 to achieve fixation when multiple second positioning slots 220 correspond one-to-one with multiple first positioning slots 111, or some second positioning slots 220 can be individually engaged with the positioning component 40 to achieve fixation.

[0028] See also Figure 2 In this embodiment, the track component 110 has a vertical groove 112. The width of the opening of the groove 112 is smaller than the width of the bottom of the groove 112. For example, the groove 112 can be set as a dovetail groove or a T-shape. The side of the sliding body 20 is provided with a slider 210 that matches the groove 112. The slider 210 slides in conjunction with the groove 112. Correspondingly, the slider 210 on the side of the sliding body 20 can also be set as a dovetail or a T-shape. Based on this, the slider 210 can be prevented from dislodging from the groove 112 in the direction perpendicular to the groove 112, ensuring the sliding stability of the sliding body 20. It should be understood that in other embodiments, the shape of the groove 112 and the shape of the slider 210 can also adopt other shapes, such as a square or arc groove.

[0029] In this embodiment, the driving device 30 includes a support member 310 and a driving assembly 320. The support member 310 is connected to the top of the track member 110 and spans across the sliding body 20. The driving assembly 320 is connected to the support member 310 and passes through the support member 310 to be driveably connected to the sliding body 20. The support member 310 provides an installation location for the driving assembly 320 and ensures that the driving assembly 320 stably drives the sliding body 20 to slide.

[0030] In this embodiment, the drive assembly 320 includes a worm gear assembly 321 and a screw 322. The worm gear assembly 321 is connected to the support member 310, and the worm gear assembly 321 and the screw 322 are in a transmission engagement. The worm gear assembly 321 drives the screw 322 to rotate. The screw 322 passes through the support member 310 and is threadedly engaged with the sliding body 20. When the worm gear assembly 321 is running, it drives the screw 322 to rotate. As the screw 322 rotates, it drives the sliding body 20 to move up and down through the thread. At the same time, after the sliding body 20 moves into position, it can also achieve self-locking through the thread, further improving the stability of the sliding body 20.

[0031] Of course, in other embodiments, other driving devices 30 can be used to replace the worm gear assembly 321 and the screw 322. For example, the sliding body 20 can be driven by a combination of a motor and gears; or, for example, the sliding body 20 can be lifted and lowered by a hydraulic drive.

[0032] See Figure 2 Furthermore, the worm gear assembly 321 includes a worm gear 3211 and a worm 3212 that mesh with each other; the worm 3212 is rotatably connected to the support member 310, and the screw 322 is in a transmission engagement with the worm gear 3211. The drive assembly 320 also includes a transmission member 323, which is connected to the worm gear 3211 to follow its rotation, and the transmission member 323 is threadedly engaged with the screw 322.

[0033] In this embodiment, the transmission component 323 rotatably engages with the support component 310, and a threaded hole is provided at the center of the transmission component 323, through which the transmission component 323 engages with the screw 322. Furthermore, a mounting structure protrudes from one end of the transmission component 323, and a keyway is provided on the mounting structure. The worm gear 3211 is fitted onto the mounting structure, and a connecting key is provided in the keyway to achieve the engagement between the transmission component 323 and the worm gear 3211. Therefore, when the worm gear 3211 rotates, it drives the transmission component 323 to rotate synchronously, thus enabling the screw 322 to move up and down based on the thread.

[0034] In addition, in this embodiment, the drive assembly 320 also includes a support base 324 and a handheld part 325. The support base 324 is fixedly connected to the support member 310, and the worm gear 3212 is rotatably connected to the support base 324. The handheld part 325 is connected to the worm gear 3212 to drive the worm gear 3212 to rotate under the action of external force. The support base 324 provides support for the worm gear 3212, facilitating its rotation and the transmission between the worm gear 3212 and the worm wheel 3211. Through the connection between the handheld part 325 and the worm gear 3212, the operator can rotate the worm gear 3212 through the handheld part 325, thereby transmitting power sequentially to the worm wheel 3211, the transmission member 323, the screw 322, and the sliding body 20, realizing the up and down sliding of the sliding body 20.

[0035] In this embodiment, there are two track components 110, and the sliding body 20 is slidably engaged with both track components 110 and positioned between them. Each track component 110 has a first positioning groove 111, and the sliding body 20 has second positioning grooves 220 on opposite sides. By using two track components 110, the sliding body 20 is positioned between them, ensuring that both ends of the sliding body 20 are supported by the track components 110, thus ensuring the overall stability of the sliding body 20. Correspondingly, the worm gear assembly 321 also has two worm gears 3211 and two screws 322. The two screws 322 are positioned close to the two sides of the sliding body 20, which balances the vertical forces acting on the sliding body 20, facilitating smooth control of the sliding body 20's movement.

[0036] Furthermore, each of the two track components 110 is provided with multiple first positioning grooves 111, and the multiple first positioning grooves 111 on the two track components 110 correspond one-to-one, with the height of the corresponding two first positioning grooves 111 being the same. In addition, second positioning grooves 220 are also provided on both sides of the sliding body 20 to facilitate locking and fixing from both sides of the sliding body 20, ensuring the stability of the sliding body 20 after it slides into place.

[0037] In this embodiment, the frame 10 further includes a support plate 120 and a reinforcing member 130. The track member 110 is vertically mounted on the support plate 120, and the track member 110 is set at an angle to the support plate 120. The reinforcing member 130 is connected to both the support plate 120 and the track member 110. The support plate 120 can be placed on a load-bearing surface such as the ground, while the reinforcing member 130 connects the track member 110 and the support plate 120 to reinforce the track member 110 and improve its stability.

[0038] In summary, in this integrated testing fixture 1, the driving device 30 can drive the sliding body 20 to slide up and down relative to the track component 110, thereby adjusting the position of the sliding body 20 on the track component 110, and consequently adjusting the height of the center position of the integrated machine 2 on the sliding body 20. After adjustment, the positioning component 40 is engaged with the corresponding first positioning groove 111 and second positioning groove 220 to lock and fix the sliding body 20 and the track component 110, ensuring the stability of the integrated machine 2 during the test. Based on this, the center height of the integrated machine 2 can be adjusted by moving the sliding body 20 relative to the track component 110, thereby meeting the needs of various drag tests and improving the technical problem of the limited sample holder for drag load tests in the prior art. Furthermore, the worm gear assembly 321 drives the screw 322 to rotate, and the screw 322 and the sliding body 20 slide up and down through the threaded engagement of the sliding body 20. After the sliding body 20 slides into place, it can also achieve self-locking through the thread between the screw 322 and the sliding body 20, further improving the stability of the sliding body 20 and the integrated machine 2.

[0039] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.

Claims

1. An integrated testing fixture (1), characterized in that, include: The frame (10) is provided with a vertical track component (110), and the track component (110) is provided with a plurality of first positioning grooves (111), which are arranged at intervals in the vertical direction; A sliding body (20) is slidably connected to the track component (110); at least one second positioning groove (220) is provided on the sliding body (20); the sliding body (20) is used to install the integrated machine to be tested; A drive device (30) is connected to the frame (10). The drive device (30) is connected to the sliding body (20) in a transmission manner. The drive device (30) is used to drive the sliding body (20) to move along the track (110). Positioning element (40) is used to rotate into the corresponding connected first positioning groove (111) and second positioning groove (220) to lock the sliding body (20) and the track element (110).

2. The integrated testing fixture (1) according to claim 1, characterized in that, The track component (110) has a vertical groove (112) with the width of the opening of the groove (112) being smaller than the width of the bottom of the groove (112); the side of the sliding body (20) is provided with a slider (210) that is adapted to the groove (112), and the slider (210) slides in cooperation with the groove (112).

3. The integrated testing fixture (1) according to claim 1, characterized in that, The drive device (30) includes a support member (310) and a drive assembly (320); the support member (310) is connected to the top of the track member (110) and spans across the sliding body (20); the drive assembly (320) is connected to the support member (310) and passes through the support member (310) to be connected to the sliding body (20) in a transmission connection.

4. The integrated machine testing fixture (1) according to claim 3, characterized in that, The drive assembly (320) includes a worm gear assembly (321) and a screw (322); the worm gear assembly (321) is connected to the support member (310), the worm gear assembly (321) and the screw (322) are in a transmission engagement, the worm gear assembly (321) is used to drive the screw (322) to rotate; the screw (322) passes through the support member (310) and is threadedly engaged with the sliding body (20).

5. The integrated testing fixture (1) according to claim 4, characterized in that, The worm gear assembly (321) includes a worm wheel (3211) and a worm (3212) that mesh with each other; the worm (3212) is rotatably connected to the support (310), and the screw (322) is in a transmission engagement with the worm wheel (3211).

6. The integrated testing fixture (1) according to claim 5, characterized in that, The drive assembly (320) further includes a transmission component (323) connected to the worm gear (3211) to follow the rotation of the worm gear (3211), and the transmission component (323) is threadedly engaged with the screw (322).

7. The integrated testing fixture (1) according to claim 4, characterized in that, The drive assembly (320) further includes a support base (324) and a handheld part (325). The support base (324) is fixedly connected to the support member (310). The worm gear (3212) is rotatably connected to the support base (324). The handheld part (325) is connected to the worm gear (3212) to drive the worm gear (3212) to rotate under the action of external force.

8. The integrated testing fixture (1) according to claim 1, characterized in that, There are two track components (110), and the sliding body (20) is slidably engaged with both track components (110) and located between the two track components (110); the two track components (110) are provided with the first positioning groove (111), and the sliding body (20) is provided with the second positioning groove (220) on both opposite sides.

9. The integrated testing fixture (1) according to claim 8, characterized in that, The multiple first positioning slots (111) on the two track components (110) correspond one-to-one, and the height of the two corresponding first positioning slots (111) is the same.

10. The integrated machine testing fixture (1) according to claim 1, characterized in that, The frame (10) also includes a support plate (120) and a reinforcing member (130). The track member (110) is vertically mounted on the support plate (120) and is set at an angle to the support plate (120). The reinforcing member (130) is connected to both the support plate (120) and the track member (110).