CN223727970U - Electrical testing device for connectors - Google Patents
Electrical testing device for connectorsInfo
- Publication number
- CN223727970U CN223727970U CN202422921727.5U CN202422921727U CN223727970U CN 223727970 U CN223727970 U CN 223727970U CN 202422921727 U CN202422921727 U CN 202422921727U CN 223727970 U CN223727970 U CN 223727970U
- Authority
- CN
- China
- Prior art keywords
- connector
- driver
- clamping block
- tested
- wire harness
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Active
Links
Landscapes
- Manufacturing Of Electrical Connectors (AREA)
Abstract
The utility model relates to the technical field of detection connectors, in particular to an electric measurement device of a connector, which comprises a workbench, a first pressing component, a swinging component and a wire harness clamping part, wherein the workbench is provided with a jig, the jig is provided with a connector to be detected, the first pressing component comprises a first driver, a lifting seat, a metal block and a first pressing part, the first pressing part and the metal block are both arranged on the lifting seat, a power output shaft of the first driver is in driving connection with the lifting seat, the electric measurement component comprises a second driver, an electric measurement part and a plurality of electric measurement probes, each electric measurement probe is arranged on the side surface of the electric measurement part, which is close to the jig, the power output shaft of the second driver is in driving connection with the electric measurement part, and the swinging component comprises a third driver and the wire harness clamping part, and the power output shaft of the third driver is in driving connection with the wire harness clamping part. The wire harness of the connector to be tested is simulated, and whether the internal circuit of the wire harness is disconnected, poor in contact or the like is detected under the use environments of vibration, swing or movement and the like, so that the accuracy of detecting the conductivity of the connector to be tested is improved.
Description
Technical Field
The present utility model relates to the field of detecting connectors, and in particular, to an electrical testing device for a connector.
Background
The traditional detection method of the connector generally needs manual operation, the number of pins of the existing electric connector is large and fine, the electric connector is difficult to be contacted with probes of electric measurement equipment in a manual operation mode, a tester is easy to fatigue after swinging for a long time manually, therefore, the traditional electric detection mechanism needs to be used for detecting the electric conductivity of the connector by means of a connector detection mechanism, the existing electric detection mechanism drives each electric detection probe to be capable of being fully and reliably contacted with each pin through a cylinder, the pins of the connector can be quickly and reliably contacted through each electric detection probe, the plugs can be reliably inserted into jacks of the connector through the cylinder, and automatic detection of the plugs and the connector is realized. However, the detection mechanism of such a connector lacks a function of not swinging the harness thereof when testing the connector, so that it is difficult to simulate whether the connector is in various use environments or not with problems such as loosening, poor contact, etc., and it is difficult to accurately test the stability of the connector.
Disclosure of utility model
In order to solve the technical problem that the electrical conductivity of the connector is difficult to accurately test in the prior art, the embodiment of the utility model provides an electrical testing device of the connector.
The technical scheme adopted for solving the technical problems is as follows:
An electrical testing apparatus of a connector, the electrical testing apparatus comprising:
the workbench is provided with a jig, and the jig is provided with a connector to be tested;
The first pressing component comprises a first driver, a lifting seat, a metal block and a first pressing part, wherein the first pressing part and the metal block are arranged on the lifting seat, and a power output shaft of the first driver is in driving connection with the lifting seat;
The electric measurement assembly comprises a second driver, an electric measurement part and a plurality of electric measurement probes, wherein each electric measurement probe is arranged on the side surface of the electric measurement part, which is close to the jig, and a power output shaft of the second driver is in driving connection with the electric measurement part;
The swinging assembly comprises a third driver and a wire harness clamping part, and a power output shaft of the third driver is in driving connection with the wire harness clamping part.
As a preferable technical scheme of the utility model, the wire harness clamping part comprises a fourth driver, a first clamping block, a second clamping block and a supporting block, wherein a power output shaft of the third driver is in driving connection with the fourth driver;
The first clamping block is fixedly arranged on the side face of the supporting block, the second clamping block is rotatably arranged on the side face of the supporting block through a rotating shaft, and a power output shaft of the fourth driver is in driving connection with the second clamping block.
As a preferable technical scheme of the utility model, one end of a power output shaft of the fourth driver is provided with a pushing part, the wire harness clamping part further comprises a connecting rod, one end of the connecting rod is rotationally connected with the pushing part, and the other end of the connecting rod is rotationally connected with the second clamping block.
According to the technical scheme, a first groove is formed in the side face, opposite to the first clamping block, of the first clamping block, a second groove is formed in the side face, opposite to the first clamping block, of the second clamping block, and when the second clamping block rotates to abut against the first clamping block, a clamping opening for clamping a wire harness of a connector to be tested is formed.
As a preferable technical scheme of the utility model, the electrical measurement device further comprises a second pressing component, the second pressing component comprises a fifth driver and a second pressing part, and a power output shaft of the fifth driver is in driving connection with the second pressing part.
As a preferable embodiment of the present utility model, the second pressing portion is made of a soft material.
As a preferable technical scheme of the utility model, an elastic piece is arranged between the metal block and the lifting seat.
As a preferred technical scheme of the utility model, a plurality of connecting grooves which are respectively electrically connected with the tail ends of the wire cores of the connector to be tested are formed on the side surface of the metal block opposite to the second pressing part.
The jig comprises a base, a first positioning tool and a second positioning tool which are arranged on the base, wherein the male head of the connector to be tested and the wire harness of the connector to be tested are respectively assembled on the first positioning tool and the second positioning tool.
As an preferable technical scheme of the utility model, the second positioning device is provided with a wire clamping block, the wire clamping block is concavely provided with a positioning groove, and the tail ends of a plurality of wire cores of the connector to be tested are all assembled in the positioning groove.
Compared with the prior art, the utility model has the beneficial effects that:
The power output shaft of the second driver drives the electric measuring part to respectively butt with a plurality of pins of the male head of the connector to be measured through each electric measuring probe, and after the wire harness clamping part clamps the wire harness of the connector, the wire harness clamping part is driven by the third driver to move in a lifting manner, so that the situation that whether disconnection, poor contact and the like occur on an internal circuit of the wire harness of the connector to be measured is detected under the use environments of vibration, swing or movement and the like is simulated, and the accuracy of detecting the conductivity of the connector to be measured is improved.
Drawings
In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for the description of the embodiments will be briefly described below, and it is obvious that the drawings in the following description are some embodiments of the present utility model, and other drawings may be obtained according to these drawings without inventive effort for a person skilled in the art.
Fig. 1 is a block diagram of an embodiment of the present utility model.
Fig. 2 is a partial enlarged view at a in fig. 1.
Fig. 3 is a structural view of a wire harness holding portion according to an embodiment of the present utility model.
Fig. 4 is an exploded view of the structure of an embodiment of the present utility model.
Reference numerals in the figures
1. The device comprises a jig, a first positioning tool, a second positioning tool, a wire clamping block, a base and a wire clamping block, wherein the jig comprises a first positioning tool, a second positioning tool, a wire clamping block and a wire clamping block;
2. the device comprises a first pressing component, a first driver, a lifting seat, a metal block, a 231, a connecting groove, a 24 and a first pressing part, wherein the first driver is arranged on the lifting seat;
3. An electrical testing assembly, 31, a second driver, 32, an electrical testing part, 33, an electrical testing probe;
4. Swing assembly, 41, third driver, 42, wire harness clamping part, 421, fourth driver, 422, pushing part, 423, first clamping block, 4231, first groove, 424, second clamping block, 4241, second groove, 425, supporting block, 426, connecting rod;
5. A second pressing component, 51, a fifth driver, 52, a second pressing part;
6. the connector to be tested.
Detailed Description
In order to make the technical problems, technical schemes and beneficial effects to be solved more clear, the application is further described in detail below with reference to the accompanying drawings and embodiments.
It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the application.
It will be understood that when an element is referred to as being "mounted" or "disposed" on another element, it can be directly on the other element or be indirectly on the other element.
When an element is referred to as being "connected to" another element, it can be directly connected to the other element or be indirectly connected to the other element.
It is to be understood that the terms "length," "width," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," and the like are merely for convenience in describing and simplifying the description based on the orientation or positional relationship shown in the drawings, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and thus are not to be construed as limiting the application.
Furthermore, the terms "first," "second," and the like, are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defining "a first" or "a second" may explicitly or implicitly include one or more such feature.
In the description of the present application, the meaning of "a plurality" is two or more, unless explicitly defined otherwise.
In order to solve the technical problem that the detection mechanism of the connector in the prior art is difficult to accurately test the conductive performance of the connector because of lacking a function of not swinging a wire harness of the connector during testing the connector, the embodiment of the utility model provides an electrical testing device of the connector.
Detailed description of the utility modelan embodiment of the present utility model provides a specific structure of an electrical testing device of a connector, which, according to the embodiment shown in fig. 1-4, comprises a table, a first pressing assembly 2, an electrical testing assembly 3 and a swinging assembly 4.
The workbench is provided with a jig 1, and the jig 1 is equipped with a connector 6 to be tested.
Specifically, through forming first location cavity and the second location cavity that are used for fitting connector body and pencil respectively at tool 1, carry out the accurate positioning to the connector 6 that awaits measuring, ensure that the position of connector 6 that awaits measuring in the follow-up testing process is accurate, but also can prevent that connector 6 that awaits measuring from appearing rocking the situation in the testing process.
As shown in fig. 1, 2 and 4, specifically, the fixture 1 includes a base 14, and a first positioning tool 11 and a second positioning tool 12 disposed on the base 14, wherein a first positioning cavity is formed on the first positioning tool 11, and a second positioning cavity is formed on the second positioning tool 12.
Specifically, the male head of the connector 6 to be tested and the wire harness of the connector 6 to be tested are respectively assembled in the first positioning cavity of the first positioning tool 11 and the second positioning cavity of the second positioning tool 12, and due to the shape and the size of the first positioning cavity matched with the male head of the connector, when the male head of the connector 6 to be tested is assembled in the first positioning cavity, the correct positioning of the connector 6 to be tested is ensured, the connector 6 to be tested is prevented from shaking left and right, and the relative orientation of each pin of the male head of the connector 6 to be tested and the electrical measurement probe 33 can be ensured. Because the width of the second positioning cavity is adapted to the outer diameter of the wire harness of the connector 6 to be tested, when the wire harness is placed in the second positioning cavity, the wire harness of the connector 6 to be tested plays a supporting role, and the wire harness can be prevented from being deviated during testing.
In a further embodiment, as shown in fig. 1 and 2, the second positioning device 12 is provided with a wire clamping block 13, the wire clamping block 13 is concavely provided with a positioning groove, and the tail ends of a plurality of wire cores of the connector 6 to be tested are all assembled in the positioning groove.
Specifically, the positioning groove of the wire clamping block 13 is used for supporting the tail ends of a plurality of wire cores, two wire core tail ends leaning against the groove wall of the positioning groove are respectively abutted against the groove walls on two sides of the positioning groove, and are used for preventing the tail ends of the wire cores from strongly shaking in the test so as to ensure that the swing direction of the tail ends of the wire cores of the wire harness can be fixedly clamped, and the wire core tail ends can be positioned.
It should be noted that, the first pressing component 2, the electrical testing component 3 and the swinging component 4 in the embodiment of the present utility model are all disposed on the workbench, and are used for supporting the first pressing component 2, the electrical testing component 3 and the swinging component 4.
According to fig. 1, the first pressing assembly 2 comprises a first driver 21, a lifting seat 22, a metal block 23 and a first pressing part 24, wherein the first pressing part 24 and the metal block 23 are arranged on the lifting seat 22, and a power output shaft of the first driver 21 is in driving connection with the lifting seat 22.
Specifically, during connector inspection, in order to prevent the connector 6 to be inspected from shaking and falling off easily, the lifting seat 22 is pushed by the power output shaft of the first driver 21 to move downwards until the bottom surface of the first pressing portion 24 can abut against the male head of the connector 6 to be inspected, so as to press the male head of the connector, the first pressing portion 24 cooperates with the jig 1 to clamp the male head of the connector, thereby ensuring that the connector 6 to be inspected can be stably located at a designated position, avoiding the connector 6 to be inspected from shaking easily during inspection, and after the inspection of the connector 6 to be inspected is completed, the first pressing block is moved upwards to be away from the male head of the connector 6 to be inspected by controlling the power output shaft of the first driver 21, and then the connector 6 to be inspected can be removed from the jig 1 or the jig 1 equipped with the connector 6 to be inspected can be outputted to other testing procedures.
According to FIG. 2, the electrical measurement assembly 3 comprises a second driver 31, an electrical measurement part 32 and a plurality of electrical measurement probes 33, wherein each electrical measurement probe 33 is arranged on the side surface of the electrical measurement part 32, which is close to the jig 1, and a power output shaft of the second driver 31 is in driving connection with the electrical measurement part 32.
Specifically, when the first pressing portion 24 presses the connector 6 to be tested, the power output shaft of the second driver 31 is used to push the whole electrical measuring portion 32 to move along the direction of the connector 6 to be tested until each electrical measuring probe of the electrical measuring device can be respectively inserted into a plurality of pins of a male head of the connector 6 to be tested, then each electrical measuring probe outputs test current, voltage, signals and the like to each pin, so as to test the conductivity of each connector 6 to be tested, and when the connector 6 to be tested is tested, the power output shaft of the second driver 31 resets and moves to separate each electrical measuring probe from each pin.
It should be noted that, when the first driver 21 drives the lifting seat 22 to move downward and move to press the male head of the connector 6 to be tested by the first pressing portion 24, the metal block 23 abuts against the tail ends of the plurality of wire cores of the connector 6 to be tested, and the electrical probes are respectively inserted into the plurality of pins of the male head of the connector 6 to be tested to form a circuit loop for detecting the connector 6 to be tested, specifically, the electrical measuring portion 32 is electrically connected with the power supply, and when the current flows from the positive electrode of the power supply to the electrical probes, the connector 6 to be tested, the metal block 23, the measuring instrument and the negative electrode of the power supply, the voltage, the current and other parameters read by the measuring instrument are then used to complete the detection of the connector 6 to be tested.
It can be understood that the electrical test probes in the embodiment of the utility model are in one-to-one correspondence with the male pins of the connector 6 to be tested, so that each electrical test probe can be accurately and stably inserted into each pin in the test process.
According to fig. 1, the swing assembly 4 includes a third driver 41 and a harness holding portion 42, and a power output shaft of the third driver 41 is drivingly connected to the harness holding portion 42.
Specifically, when the metal block 23 abuts against the tail ends of the plurality of wire cores of the connector 6 to be tested, and the electrical measurement probes are respectively inserted into the pins, the power output shaft of the first driver 21 is used for descending and moving the wire harness clamping part 42 to the wire harness capable of fixedly clamping the connector for preventing the wire harness of the connector from falling off easily, and then the power output shaft of the third driver 41 is used for driving the wire harness clamping part 42 to repeatedly ascend or descend, so that the connector 6 to be tested can detect whether the internal circuit of the connector 6 to be tested is disconnected, poor in contact or the like under the conditions of simulating vibration, swing or movement and the like in the use environment of the wire harness of the connector 6 to be tested in the process of continuously ascending and descending swing.
It should be noted that, according to the preset moving frequency and number, the power output shaft of the third driver 41 may control the frequency of the wire harness holding portion 42 to repeatedly move up or down, for example, the frequency of each up or down is 10-50 times/min, and the specific frequency is not limited herein.
According to fig. 3, in some specific embodiments, the wire harness clamping portion 42 includes a fourth driver 421, a first clamping block 423, a second clamping block 424 and a supporting block 425, wherein a power output shaft of the third driver 41 is in driving connection with the fourth driver 421, the first clamping block 423 is fixedly arranged on a side surface of the supporting block 425, the second clamping block 424 is rotatably arranged on a side surface of the supporting block 425 through a rotation shaft, and a power output shaft of the fourth driver 421 is in driving connection with the second clamping block 424.
Specifically, if the wire harness clamping portion 42 needs to fixedly clamp the wire harness of the connector, the power output shaft of the third driver 41 pushes the fourth driver 421 to move downwards to a designated position, then the fourth driver 421 drives the second clamping block 424 to move along a direction away from the first clamping block 423 until the wire harness of the connector 6 to be tested is located between the first clamping block 423 and the second clamping block 424, and then the power output shaft of the fourth driver 421 resets to move so as to drive the second clamping block 424 to move along the first clamping block 423 in a close manner until the first clamping block 423 and the second clamping block 424 can simultaneously and fixedly clamp the wire harness of the connector 6 to be tested, and finally the power output shaft of the third driver 41 pulls and pushes the fourth driver 421 to enable the wire harness of the connector 6 to be tested clamped by the first clamping block 423 and the second clamping block 424 to continuously lift, so that the wire harness of the connector 6 to be tested can simulate use environments such as vibration, swing or movement.
According to fig. 3, in a further embodiment, a pushing part 422 is provided at one end of the power output shaft of the fourth driver 421, and the harness holding part 42 further includes a connection rod 426, one end of the connection rod 426 is rotatably connected to the pushing part 422, and the other end of the connection rod 426 is rotatably connected to the second clamp block 424.
Specifically, in order to achieve stable clamping of the wire harness of the connector 6 to be tested, when the power output shaft of the fourth driver 421 drives the pushing part 422 to move downwards, the pushing part 422 is used for pushing the whole connecting rod 426 to move downwards, in the process, the connecting rod 426 is in rotary connection with the pushing part 422, so that the pushing part 422 is converted into a pushing effect on the second clamping block 424 through the connecting rod 426 during pushing, at the moment, the second clamping block 424 rotates through the rotating shaft until the second clamping block 424 is matched with the first clamping block 423 to fixedly clamp the wire harness of the connector 6 to be tested, otherwise, when the power output shaft of the fourth driver 421 drives the pushing part 422 to move upwards, the pushing part 422 is also used for pulling the connecting rod 426 to move upwards, and the pushing effect on the second clamping block 424 is achieved, so that the second clamping block 424 rotates to be far away from the first clamping block 423 until the wire harness of the connector 6 to be tested can be loosened.
It should be noted that, the pushing portion 422 is provided with a first rotating shaft, the second clamping block 424 is provided with a second rotating shaft, one end of the connecting rod 426 is rotatably disposed on the first rotating shaft, and the other end of the connecting rod 426 is rotatably disposed on the second rotating shaft.
According to fig. 3, in a further embodiment, a first groove 4231 is formed on the opposite side of the first clamping block 423 from the second clamping block 424, a second groove 4241 is formed on the opposite side of the second clamping block 424 from the first clamping block 423, and a clamping opening is formed to clamp the wire of the connector 6 to be tested when the second clamping block 424 is rotated to abut against the first clamping block 423.
Specifically, as shown in the drawings, when clamping the wire harness of the connector 6 to be tested, since the first clamping block 423 is located above the second clamping block 424, the first groove 4231 is formed on the bottom surface of the first clamping block 423, the second groove 4241 is formed on the top surface of the second clamping block 424, and when the power output shaft of the fourth driver 421 pulls the second clamping block 424 to rotate to abut against the bottom surface of the first clamping block 423, the first groove 4231 and the second groove 4241 form a clamping opening, so that the wire harness of the connector 6 to be tested can be ensured to be accurately clamped in the clamping opening, and the situation that the wire harness is easy to shake or deviate can be prevented, and when the second clamping block 424 rotates to be far away from the first clamping block 423, the wire harness can be separated from the clamping opening at this time.
It can be understood that the clamping opening formed by the first groove 4231 and the second groove 4241 is in a waist hole shape, so that the clamping force of the wire harness of the connector 6 to be tested can be improved, and the wire harnesses with different sizes can be stably clamped.
According to fig. 1, in some specific embodiments, the electrical measuring device further comprises a second pressing assembly 5, the second pressing assembly 5 comprises a fifth driver 51 and a second pressing part 52, and a power output shaft of the fifth driver 51 is in driving connection with the second pressing part 52.
Specifically, since the tail ends of the wire cores of the to-be-tested connector 6 are weaker, the wire cores are easy to collide with other components in the testing process to cause damage, when the first driver 21 drives the lifting seat 22 to move downwards to abut against the tail ends of the wire cores of the to-be-tested connector 6, the second pressing part 52 is pushed to move upwards by the power output shaft of the fifth driver 51 until the second pressing part 52 abuts against the bottom surface of the metal block 23, so that the tail ends of the wire cores of the to-be-tested connector 6 are fixedly clamped between the second pressing part 52 and the metal block 23, and the situation that the tail ends of the wire cores are easy to damage due to position deviation in the testing process and collision with other components is avoided, so that the integrity of the tail ends of the wire cores is protected.
In a further embodiment, the second pressing portion 52 is made of a soft material. Specifically, when the second pressing portion 52 cooperates with the metal block 23 to fixedly clamp the tail ends of the cores of the connector 6 to be tested, the second pressing portion 52 is made of soft material and has deformation capability, so that pressure can be uniformly distributed when pressure is applied to the tail ends of the cores, and the tail ends of the cores are prevented from being crushed due to overlarge local pressure.
It should be understood that the second pressing portion 52 according to the embodiment of the present utility model is a rubber block or a silicone block, and the specific type is not limited herein.
In some embodiments, an elastic member is provided between the metal block 23 and the elevating seat 22.
Specifically, in order to prevent the power output shaft of the first driver 21 from moving to push the lifting seat 22 to a larger force applied to the tail end of each wire core by the metal block 23, so that the tail end of each wire core is crushed, when the second pressing portion 52 is matched with the metal block 23 to fixedly clamp the tail end of each wire core of the connector 6 to be tested, the buffer function of the elastic member between the metal block 23 and the lifting seat 22 can be understood as that the elastic member is a spring, namely, the compression and rebound characteristics of the spring can be utilized, so that the swinging force applied to the tail end of each wire core by the metal block 23 can be absorbed and dispersed, and the tail end of each wire core cannot be subjected to a larger pressing force when the second pressing portion 52 is matched with the metal block 23 to fixedly clamp the tail end of each wire core of the connector 6 to be tested, thereby avoiding damage to the wire core.
As shown in fig. 4, a plurality of connection grooves 231 electrically connected to the tail ends of the cores of the connectors 6 to be tested are formed in the opposite side of the metal block 23 to the second pressing portion 52.
Specifically, by arranging a plurality of connection grooves 231 corresponding to the tail ends of the wire cores of the connector 6 to be tested one by one on the side surface of the metal block 23, that is, each wire core tail end is respectively connected to each connection groove 231, the arrangement can perform testing on the tail ends of the wire cores simultaneously.
While the utility model has been described with reference to certain preferred embodiments, it will be understood by those skilled in the art that various changes and substitutions of equivalents may be made and equivalents will be apparent to those skilled in the art without departing from the scope of the utility model. Therefore, the protection scope of the utility model is subject to the protection scope of the claims.
Claims (10)
1. An electrical testing device of a connector, the electrical testing device comprising:
the workbench is provided with a jig, and the jig is provided with a connector to be tested;
The first pressing component comprises a first driver, a lifting seat, a metal block and a first pressing part, wherein the first pressing part and the metal block are arranged on the lifting seat, and a power output shaft of the first driver is in driving connection with the lifting seat;
The electric measurement assembly comprises a second driver, an electric measurement part and a plurality of electric measurement probes, wherein each electric measurement probe is arranged on the side surface of the electric measurement part, which is close to the jig, and a power output shaft of the second driver is in driving connection with the electric measurement part;
The swinging assembly comprises a third driver and a wire harness clamping part, and a power output shaft of the third driver is in driving connection with the wire harness clamping part.
2. The electrical testing device of the connector according to claim 1, wherein the wire harness clamping portion comprises a fourth driver, a first clamping block, a second clamping block and a supporting block, wherein a power output shaft of the third driver is in driving connection with the fourth driver;
The first clamping block is fixedly arranged on the side face of the supporting block, the second clamping block is rotatably arranged on the side face of the supporting block through a rotating shaft, and a power output shaft of the fourth driver is in driving connection with the second clamping block.
3. The electrical testing device of the connector according to claim 2, wherein one end of the power output shaft of the fourth driver is provided with a pushing portion, the wire harness clamping portion further comprises a connecting rod, one end of the connecting rod is rotatably connected with the pushing portion, and the other end of the connecting rod is rotatably connected with the second clamping block.
4. The electrical testing device of claim 2, wherein a first groove is formed in a side of the first clamping block opposite to the second clamping block, a second groove is formed in a side of the second clamping block opposite to the first clamping block, and a clamping opening is formed to clamp a wire harness of the connector to be tested when the second clamping block rotates to abut against the first clamping block.
5. The electrical testing device of the connector of claim 1, further comprising a second pressing assembly, the second pressing assembly comprising a fifth driver and a second pressing portion, the power output shaft of the fifth driver being drivingly connected to the second pressing portion.
6. The electrical testing device of the connector of claim 5, wherein the second pressing portion is made of a soft material.
7. The electrical testing device of a connector according to claim 1, wherein an elastic member is provided between the metal block and the elevating seat.
8. The electrical testing device of the connector according to claim 5, wherein a plurality of connecting grooves electrically connected to the tail ends of the respective wire cores of the connector to be tested are formed in the side surface of the metal block opposite to the second pressing portion.
9. The electrical testing device of the connector of claim 1, wherein the fixture comprises a base, a first positioning tool and a second positioning tool arranged on the base, and wherein the male head of the connector to be tested and the wire harness of the connector to be tested are respectively assembled on the first positioning tool and the second positioning tool.
10. The electrical testing device of claim 9, wherein the second positioning device is provided with a wire clamping block, the wire clamping block is concavely provided with a positioning groove, and the tail ends of the plurality of wire cores of the connector to be tested are all assembled in the positioning groove.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202422921727.5U CN223727970U (en) | 2024-11-28 | 2024-11-28 | Electrical testing device for connectors |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202422921727.5U CN223727970U (en) | 2024-11-28 | 2024-11-28 | Electrical testing device for connectors |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN223727970U true CN223727970U (en) | 2025-12-26 |
Family
ID=98128412
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202422921727.5U Active CN223727970U (en) | 2024-11-28 | 2024-11-28 | Electrical testing device for connectors |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN223727970U (en) |
-
2024
- 2024-11-28 CN CN202422921727.5U patent/CN223727970U/en active Active
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| CN114252838A (en) | MEMS vertical probe comprehensive test platform and test method | |
| CN113189474A (en) | Flexible circuit board reel-to-reel board testing device and method | |
| CN223727970U (en) | Electrical testing device for connectors | |
| CN207424016U (en) | A kind of ZIF connector flat cable testing device | |
| CN215575600U (en) | Quick detection tool of connector terminal | |
| CN216926921U (en) | A multi-PIN double-pin test device for connectors | |
| CN219810424U (en) | Circuit board pin length detection device | |
| CN209102862U (en) | A kind of circuit board detecting tooling | |
| CN118688500A (en) | Probe type connector performance testing equipment | |
| CN218902758U (en) | Automatic electric measuring device of connector | |
| CN216847595U (en) | Battery sampling FPC subassembly leak welding detection device | |
| CN214585867U (en) | Electric parameter testing device for thin film force sensitive core | |
| CN219715686U (en) | Vibration rod open-circuit and short-circuit tester with high testing efficiency | |
| CN223051456U (en) | Full-automatic chip test seat | |
| CN224066251U (en) | Plug force testing machine | |
| KR100451384B1 (en) | Socket Testing Machine and Method | |
| CN212255660U (en) | Contact type conduction test fixture | |
| CN222599820U (en) | Probe module performance detection jig | |
| CN224052374U (en) | A battery OCV testing fixture | |
| CN219915698U (en) | Electric power instrument measuring clamp | |
| CN221550862U (en) | Portable circuit board test fixture | |
| CN222952424U (en) | High-voltage wire harness crimping inspection device with marking function | |
| CN223501135U (en) | A probe-type battery performance testing fixture | |
| CN222980991U (en) | Electronic socket conversion device | |
| CN218037176U (en) | Maintenance tools and testing devices |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| GR01 | Patent grant | ||
| GR01 | Patent grant |