Probe adjusting device

By designing a probe adjustment device for LCD panel lighting test, the problem of inconvenience of manual orientation adjustment during probe replacement is solved, and automatic adjustment of probe orientation is achieved, which improves replacement efficiency and avoids probe damage.

CN223038146UActive Publication Date: 2025-06-27KUSN INFOVISION OPTOELECTRONICS
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Patent Information

Application Number
CN202421710553.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-18
Publication Date
2025-06-27
Estimated Expiration
2034-07-18

AI Technical Summary

Technical Problem

In the LCD panel lighting test, when some of the probes on the probe block are missing or damaged, the operator needs to manually replace the probe, but because the probe is thin and the tip is different, it is inconvenient to operate, and it is easy to damage the probe or be stabbed by the probe.

Method used

Design a probe adjustment device, including a box, adjustment channel and adjustment component. By adjusting the channel and adjustment component design, the probe can automatically adjust the orientation under the action of the adjustment component to avoid manual adjustment by the operator.

Benefits of technology

The device can automatically adjust the orientation of the probe so that the probe is in a correct orientation when replaced, reducing manual operation time and avoiding damage or stabbing of the probe.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a probe adjusting device, and relates to the technical field of liquid crystal panel testing. The probe comprises a tip end and a flat end, the adjusting device comprises a box body and an adjusting assembly, an adjusting channel is arranged in the box body, the adjusting channel comprises an inlet section, an adjusting section and a discharge section which are communicated in sequence, and the adjusting section is provided with an adjusting opening; the first end of the adjusting assembly is rotationally connected to the box body, and the second end of the adjusting assembly is arranged in the adjusting section through the adjusting opening and can swing around the first end so that the second end can have a bearing position and an adjusting position in the adjusting opening. The adjusting device can adjust the orientation of the probe, so that an operator does not need to adjust the orientation of the probe when replacing the probe, the time of manual operation is shortened, and the probe is prevented from being damaged or stabbed by the probe.
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Description

Technical Field

[0001] The utility model relates to the technical field of liquid crystal panel testing, in particular to a probe adjusting device. Background Technique

[0002] Before the liquid crystal panel is officially shipped, it needs to be subjected to a lighting test to detect whether there are dead pixels on the liquid crystal panel. The lighting test requires a lighting machine, and the lighting machine is provided with a probe block. Each probe block is provided with a plurality of probes. During the test, the probes need to be corresponding to the pins or the positions of the pin patterns on the panel, and the signal generator emits a signal simulating a real display image and inputs it into the corresponding screen electrodes of the panel through the probes to realize the lighting test of the panel.

[0003] When some of the probes on the probe block are missing or damaged, the operator needs to manually replace them. However, since the probes are relatively thin, it is inconvenient for the operator to pick them up, and the orientations of the tips of the probes are different. When adjusting the orientation of the probes, it is easy to damage the probes or be pricked by the probes, affecting the operation. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a probe adjusting device, which can adjust the orientation of the probes, so that the operator does not need to adjust the orientation of the probes when replacing the probes, reducing the manual operation time and avoiding damaging the probes or being pricked by the probes.

[0005] To achieve this purpose, the utility model adopts the following technical solutions:

[0006] A probe adjusting device, the probe of which includes a tip and a flat end, and the probe adjusting device includes:

[0007] A box body, an adjusting channel is arranged in the box body, and the adjusting channel includes an inlet section, an adjusting section and an outlet section that are connected in sequence. The adjusting section has an adjusting opening;

[0008] An adjusting component, the first end of the adjusting component is rotatably connected to the box body, and the second end of the adjusting component is placed in the adjusting section through the adjusting opening and can swing around the first end, so that the second end has a receiving position and an adjusting position in the adjusting opening;

[0009] The flat end of the probe slidably abuts against the second end, and the probe slides into the outlet section from the receiving position under the action of gravity; or, the tip of the probe accesses the second end and swings from the receiving position to the adjusting position following the second end, and the probe enters the outlet section from the adjusting position.

[0010] As an optional solution of the above-mentioned probe adjustment device, the adjustment assembly further includes an adjustment member located at the second end, a slot is formed on the end surface of the adjustment member, and a shape of the tip matches a shape of the slot.

[0011] As an optional solution of the above-mentioned probe adjustment device, the adjustment component further includes a rotating shaft located at the first end, and a rotating arm connected between the rotating shaft and the adjustment member, and the rotating shaft is arranged in the box.

[0012] As an optional solution for the above-mentioned probe adjustment device, the adjustment component also includes a diverter, which is arranged in the adjustment section and divides the adjustment section into a first adjustment wall and a second adjustment wall, the first adjustment wall is connected to the entry section and the discharge section, the second adjustment wall is connected to the discharge section, the upright probe enters the discharge section through the first adjustment wall, and the inverted probe enters the discharge section through the second adjustment wall.

[0013] As an optional solution for the above-mentioned probe adjustment device, the diverter includes a guide wall, which is arc-shaped and located on a circle with the swing center of the adjustment component as the center and the distance from the swing center of the adjustment component to the flat end of the probe inserted into the slot as the radius.

[0014] As an optional solution of the above-mentioned probe adjustment device, the guide wall and the second adjustment wall form a reversing sharp angle, and the inverted probe enters the discharge section after changing its direction at the reversing sharp angle.

[0015] As an optional solution of the above-mentioned probe adjustment device, the first adjustment wall includes a straight section, the straight section is connected to the entry section, and the upright probe can slide into the first adjustment wall along the straight section.

[0016] As an optional solution of the above-mentioned probe adjustment device, the adjustment device also includes a limit assembly, the limit assembly includes a driving member, a first elastic member and a second limit member, the first elastic member is arranged between the driving member and the second limit member, the driving member is transmission-connected to the adjustment assembly to drive the second limit member to abut the probe in the entry section.

[0017] As an optional solution of the above-mentioned probe adjustment device, the driving member includes a rack, and the adjustment assembly also includes a gear, the gear is rotatably arranged at the first end, and the rack is meshed with the gear.

[0018] As an optional solution of the above-mentioned probe adjustment device, a feed port is provided on the top surface of the box body, and the adjustment channel is communicated with the feed port.

[0019] Beneficial effects of the utility model:

[0020] The utility model provides a probe adjusting device. In this adjusting device, when the adjusting part is in the receiving position, an operator loads a probe into the adjusting channel. The probe moves downward along with the entering section and abuts against the adjusting component. If the probe is inverted, the tip of the probe can access the second end of the adjusting component, enabling the tip of the probe to swing along with the adjusting part. When the adjusting part moves to the adjusting position, the inverted probe falls into the discharging section under the action of gravity, and at this time, the orientation of the inverted probe changes; if the probe is upright, the flat end of the probe abuts against the second end of the adjusting component, and then the flat end of the probe slides into the discharging section from the receiving position while keeping the orientation unchanged under the action of gravity.

[0021] This adjusting device can adjust the orientation of the probe, making the probe upright when leaving the adjusting channel, so that the operator does not need to adjust the orientation of the probe when replacing the probe, reducing the time of manual operation and avoiding damaging the probe or being pricked by the probe. Description of the Drawings

[0022] Figure 1 is a schematic structural diagram of the probe adjusting device provided by the utility model;

[0023] Figure 2 is a schematic structural diagram of the adjusting channel, the adjusting component and the limiting component provided by the utility model;

[0024] Figure 3 is a schematic structural diagram of the probe provided by the utility model;

[0025] Figure 4 is a cross-section of the inverted probe provided by the utility model in the adjusting channel Figure 1 ;

[0026] Figure 5 is a cross-section of the inverted probe provided by the utility model in the adjusting channel Figure 2 ;

[0027] Figure 6 is a cross-section of the inverted probe provided by the utility model in the adjusting channel Figure 3 ;

[0028] Figure 7 is a cross-section of the inverted probe provided by the utility model in the adjusting channel Figure 4 ;

[0029] Figure 8 is a cross-section of the inverted probe provided by the utility model in the adjusting channel Figure 5 ;

[0030] Figure 9 is a cross-section of the upright probe provided by the utility model in the adjusting channel Figure 1 ;

[0031] Figure 10 is a cross-section of the upright probe provided by the present utility model within the adjustment channel Figure 2 ;

[0032] Figure 11 is a cross-section of the upright probe provided by the present utility model within the adjustment channel Figure 3 ;

[0033] Figure 12 is a cross-section of the upright probe provided by the present utility model within the adjustment channel Figure 4 ;

[0034] Figure 13 is a cross-section of the upright probe provided by the present utility model within the adjustment channel Figure 5 。

[0035] In the figure:

[0036] 100, probe; 101, tip; 102, flat end;

[0037] 1, box body; 2, adjustment component; 3, limiting component;

[0038] 11, adjustment channel; 12, feed port; 13, handwheel; 21, rotating shaft; 22, rotating arm; 23, adjusting member; 24, shunting member; 25, first end; 26, second end; 31, driving member; 32, first elastic member; 33, second limiting member; 34, second elastic member;

[0039] 111, entry section; 112, adjustment section; 113, discharge section; 241, guiding wall; 242, shunting sharp corner;

[0040] 1111, first vertical section; 1112, first inclined section; 1121, first adjustment wall; 1122, second adjustment wall; 1123, straight section; 1131, second vertical section; 1132, second inclined section. Detailed implementation manners

[0041] The following details the embodiments of the present utility model. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present utility model, and should not be construed as limiting the present utility model.

[0042] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present utility model. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance. Among them, the terms "first position" and "second position" are two different positions.

[0043] Unless otherwise clearly defined and limited, the terms "installation", "connection", "connection", "fixation" shall be understood in a broad sense. For example, it can be a fixed connection or a detachable connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. It can be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.

[0044] Unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include the first feature and the second feature being in direct contact, or may include the first feature and the second feature not being in direct contact but being in contact through other features therebetween. Moreover, the first feature being "above", "over" and "on" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being "below", "under" and "beneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is lower than that of the second feature.

[0045] The technical solution of the present utility model will be further described below with reference to the drawings and through specific embodiments.

[0046] Before the liquid crystal panel is officially shipped from the factory, a lighting test needs to be carried out to detect whether there are any dead pixels on the liquid crystal panel. The lighting test requires a lighting machine, and the lighting machine has a probe block. Each probe block is provided with a plurality of probes. During the test, the probes need to be corresponded to the positions of the pins or pin patterns on the panel. The signal simulating the real display image generated by the signal generator is input into the corresponding screen electrodes of the panel through the probes to achieve the lighting test of the panel.

[0047] When some of the probes on the probe block are missing or damaged, the operator needs to manually replace them. However, since the probes are relatively thin, it is inconvenient for the operator to pick them up, and it is easy to damage the probes or be pricked by the probes when adjusting the orientation of the probes, which affects the operation.

[0048] To solve the above problems, this embodiment provides a probe adjustment device. Figure 1 It is a schematic structural diagram of the probe adjustment device. Figure 2 It is a schematic structural diagram of the adjustment channel, the adjustment component and the limiting component. As Figure 1 and Figure 2 shown, the adjustment device includes a box body 1 and an adjustment component 2. An adjustment channel 11 is arranged in the box body 1. The adjustment channel 11 includes an inlet section 111, an adjustment section 112 and an outlet section 113 that are connected in sequence.

[0049] Figure 3 It is a schematic structural diagram of the probe. As Figures 1 to 3 shown, the probe 100 includes a tip 101 and a flat end 102. When the operator loads the probe 100 into the inlet section 111 of the adjustment channel 11, the orientation of the probe 100 is random. For the convenience of description, the state with the tip 101 facing upward is called the upright state, and the state with the tip 101 facing downward is called the inverted state.

[0050] The first end 25 of the adjustment component 2 is rotatably connected to the box body 1. The second end 26 of the adjustment component 2 is placed in the adjustment section 112 through an adjustment opening and can swing around the first end 25, so that the second end 26 has a receiving position and an adjustment position in the adjustment opening. When the probe 100 enters the adjustment section 112 through the inlet section 111, if the tip 101 is upright, the flat end 102 slides and abuts against the second end 26. As the second end 26 leaves the receiving position, the probe 100 slides into the outlet section 113 under the action of gravity; if the tip 101 is inverted, the tip 101 is inserted into the second end 26 and follows the second end 26 to swing from the receiving position to the adjustment position. When entering the outlet section 113 from the adjustment position, since the tip 101 has not yet separated from the second end 26, the probe 100 rotates under the action of gravity at this time, so that the orientation of the tip 101 is changed and adjusted to the upright state.

[0051] This adjustment device can adjust the orientation of the probe 100, so that the probe 100 keeps the tip 101 upright when leaving the adjustment channel 11, enabling the operator not to need to adjust the orientation of the probe 100 when replacing the probe 100, reducing the time of manual operation, and avoiding damaging the probe 100 or being stabbed by the probe 100.

[0052] Figures 4 to 8 It is a cross-section of the inverted probe 100 in the adjustment channel Figure 1 ~Cross-section Figure 5 wherein, as Figure 4 shown, the second end 26 is in the receiving position. As Figure 7 and Figure 8 shown, the second end 26 is in the adjustment position.

[0053] AsFigures 4 to 8 As shown, the adjustment component 2 includes an adjuster 23 located at the second end 26. A slot is provided on the end face of the adjuster 23, and the shape of the tip 101 matches the shape of the slot. That is to say, the tip 101 can be inserted into the slot under the action of gravity and remain stable. After the tip 101 is inserted into the slot, as the adjuster 23 swings, the inverted probe 100 can move following the adjuster 23 under the action of gravity, causing itself to rotate and changing the orientation of the tip 101.

[0054] In some embodiments, the adjuster 23 can also be adapted to the tip 101 in other ways. For example, the adjuster 23 is provided with an electromagnet, and a detector is provided in the entry section 111. When the detector detects that the probe 100 is inverted, the electromagnet is energized to attract the probe 100. Or, the adjuster 23 includes two clamping members arranged at intervals, and the distance between the two clamping members is less than the diameter of the probe 100, so that the tip 101 of the probe 100 can be inserted between the two clamping members, and the flat end 102 of the probe 100 will slide against the two clamping members.

[0055] Furthermore, the adjustment component 2 further includes a rotating shaft 21 located at the first end 25, and a rotating arm 22 connected between the rotating shaft 21 and the adjuster 23. The rotating shaft 21 is arranged in the box body 1.

[0056] In this adjustment device, the adjuster 23 is initially in the receiving position. The operator loads the probe 100 into the adjustment channel 11, and the probe 100 moves downward along the entry section 111 and abuts against the adjuster 23. As Figures 4 to 8 shown, if the probe 100 is inverted, the tip 101 can be inserted into the slot of the adjuster 23. At this time, the flat end 102 of the probe 100 abuts against the adjustment section 112. The operator can rotate the rotating arm 22 to make the probe 100 move in a circular motion following the adjuster 23 under the action of gravity. When the adjuster 23 moves to the adjustment position, the probe 100 falls into the discharge section 113 under the action of gravity. At this time, the orientation of the probe 100 changes to being upright; as Figures 9 to 13 shown, if the probe 100 is upright, the flat end 102 slides against the adjuster 23, then the probe 100 will not move in a circular motion following the adjuster 23, but will fall into the discharge section 113 while maintaining its orientation unchanged.

[0057] In this embodiment, the adjustment component 2 further includes a shunt member 24. The shunt member 24 is arranged in the adjustment section 112 and divides the adjustment section 112 into a first adjustment wall 1121 and a second adjustment wall 1122. The first adjustment wall 1121 is connected to the entry section 111 and the discharge section 113, and the second adjustment wall 1122 is connected to the discharge section 113. The upright probe 100 enters the discharge section 113 through the first adjustment wall 1121, and the inverted probe 100 enters the discharge section 113 through the second adjustment wall 1122.

[0058] As Figures 4 to 8 shown, when the inverted probe 100 is inserted into the slot, as the rotating arm 22 rotates, the flat end 102 of the inverted probe 100 changes from abutting against the entry section 111 to abutting against the first adjustment wall 1121, and then to abutting against the diverter 24. When the flat end 102 disengages from the diverter 24, since the tip 101 of the probe 100 is still within the slot, the probe 100 will rotate about the tip 101 under the action of gravity, causing the orientation of the probe 100 to change. Then the tip 101 disengages from the adjuster 23, and the probe 100 falls between the diverter 24 and the second adjustment wall 1122 and enters the discharge section 113.

[0059] Figures 9 to 13 is a cross-section of the upright probe within the adjustment channel Figure 1 ~ cross-section Figure 5 As Figures 9 to 13 shown, when the flat end 102 of the upright probe 100 abuts against the adjuster 23, as the rotating arm 22 rotates, under the action of gravity, the flat end 102 of the probe 100 slides relative to the adjuster 23, causing the probe 100 to move along the direction of the first adjustment wall 1121, fall between the diverter 24 and the first adjustment wall 1121, and enter the discharge section 113.

[0060] The provision of the diverter 24 enables the upright probe 100 and the inverted probe 100 to enter different channels respectively, so that the upright probe 100 and the inverted probe 100 do not interfere with each other, and enables the upright probe 100 to rotate under the action of gravity, so that all the probes 100 entering the discharge section 113 are upright.

[0061] In this embodiment, the diverter 24 includes a guiding wall 241 and a diverting sharp corner 242 connected to the guiding wall 241. When the inverted probe 100 abuts against the diverting sharp corner 242, it can continue to move with the second end 26 of the adjustment assembly 2, so that the flat end 102 slides into abutment with the guiding wall 241.

[0062] It should be noted that when the inverted probe 100 abuts against the diverting sharp corner 242, the center of gravity of the inverted probe 100 is located on the side of the diverting sharp corner 242 close to the adjuster 23. Under the action of gravity, the inverted probe 100 still exerts a pressure on the adjuster 23, so the inverted probe 100 can move with the adjuster 23.

[0063] Furthermore, the guide wall 241 is arc-shaped, and the arc is located on a circle with the swing center of the adjustment component 2 as the center and the distance between the swing center of the adjustment component 2 and the flat end 102 of the inverted probe 100 inserted into the slot as the radius. The swing center of the adjustment component 2 is the rotating shaft 21, and the inverted probe 100 moves with the adjustment member 23, and the flat end 102 abuts against the guide wall 241. Since the trajectory of the flat end 102 of the inverted probe 100 is an arc with the rotating shaft 21 as the center and the distance between the rotating shaft 21 and the flat end 102 as the radius, the flat end 102 of the inverted probe 100 can slide along the guide wall 241, and the angle between the inverted probe 100 and the rotating arm 22 will not change, thereby ensuring the stability of the probe 100.

[0064] like Figure 7 and Figure 8 As shown, the guide wall 241 and the second adjustment wall 1122 form a reversing sharp angle, and the inverted probe 100 changes direction at the reversing sharp angle and enters the discharge section 113. When the adjustment member 23 is in the adjustment position, the axis of the inverted probe 100 is horizontal, and the flat end 102 of the inverted probe 100 is separated from the guide wall 241. This structure can ensure that before the flat end 102 of the inverted probe 100 is separated from the guide wall 241, the tip 101 is always plugged into the slot, and the inverted probe 100 can move with the adjustment member 23 under the action of gravity; and, since the axis of the inverted probe 100 is horizontal when the flat end 102 of the inverted probe 100 is separated from the guide wall 241, it means that the minimum distance between the guide wall 241 and the adjustment member 23 is greater than the length of the probe 100, so it can ensure that the inverted probe 100 rotates under the action of gravity and enters between the diverter 24 and the second adjustment wall 1122 and enters the discharge section 113.

[0065] In order to prevent the rotating arm 22 from rotating too much and causing the inverted probe 100 to disengage from the adjustment section 112 due to inertia, a first limit member (not shown in the figure) is provided in the box body 1. When the adjustment member 23 moves from the receiving position to the adjustment position, the first limit member abuts against the rotating arm 22 to limit the maximum rotation angle of the rotating arm 22.

[0066] like Figure 11 As shown, the first adjustment wall 1121 includes a straight section 1123, and the straight section 1123 is connected to the entry section 111, and the upright probe 100 can slide into the first adjustment wall 1121 along the straight section 1123. Since the upright probe 100 does not make a circular motion along the adjustment member 23, but slides downward along the entry section 111 and the inclination angle of the first adjustment wall 1121, when the upright probe 100 slides along the straight section 1123, it can be ensured that the flat end 102 of the probe 100 enters the first adjustment wall 1121.

[0067] Specifically, the bottom end of the straight section 1123 is lower than the diverter angle 242 , ensuring that the upright probe 100 can slide along the straight section 1123 only after sliding into between the diverter member 24 and the first adjustment wall 1121 before detaching from the straight section 1123 .

[0068] Further, when the distance between the adjustment member 23 and the straight section 1123 is greater than the diameter of the upright probe 100, the axis of the probe 100 is parallel to the straight section 1123. It can be understood that although the upright probe 100 will not make a circular motion with the adjustment member 23, the adjustment member 23 will still support the upright probe 100, and only when the adjustment member 23 rotates to a distance greater than the diameter of the probe 100 from the first adjustment wall 1121, the upright probe 100 will slide downward along the first adjustment wall 1121. Since the axis of the upright probe 100 is parallel to the straight section 1123 at this time, it can be ensured that the upright probe 100 will slide along the straight section 1123.

[0069] like Figure 1 As shown, in order to facilitate the operator to load the probe 100 into the adjustment channel 11, a feed port 12 is provided on the top surface of the box body 1, and the adjustment channel 11 is connected to the feed port 12, and the feed port 12 is the lowest point on the top surface of the box body 1. The operator only needs to place the probe 100 on the top surface of the box body 1, and the probe 100 can slide to the feed port 12 and enter the adjustment channel 11.

[0070] like Figure 2 As shown, the entry section 111 includes a first vertical section 1111 and a first inclined section 1112, the discharge section 113 includes a second vertical section 1131 and a second inclined section 1132, the first vertical section 1111 is connected to the feed port 12, the first inclined section 1112 is connected to the bottom end of the first vertical section 1111 and is inclined, the second vertical section 1131 is connected to the discharge port opened on the bottom surface of the box body 1, and the second inclined section 1132 is connected to the top of the second vertical section 1131 and is inclined.

[0071] like Figure 4 As shown, the adjustment device also includes a limit component 3, which includes a driving member 31, a first elastic member 32 and a second limit component 33. The first elastic member 32 is arranged between the driving member 31 and the second limit component 33. The driving member 31 is transmission-connected to the adjustment component 2 to drive the second limit component 33 to abut against the probe 100 entering the section 111.

[0072] When the operator places multiple probes 100 on the top of the box body 1, the multiple probes 100 sequentially enter the adjustment channel 11. When the probe 100 at the front end abuts against the adjustment member 23, the multiple probes 100 stop moving. At this time, if the operator rotates the rotary arm 22, the driving member 31 will move accordingly to drive the second limiting member 33 to abut against the probe 100 in the entry section 111, preventing the probe 100 from moving. The first elastic member 32 can buffer when the rotary arm 22 rotates to adjust the orientation of the probe 100, ensuring that the second limiting member 33 always presses against the probe 100 in the input section without damaging the relevant structures.

[0073] Specifically, the driving member 31 includes a rack, and the adjustment assembly 2 further includes a gear. The gear is rotatably arranged on the rotating shaft 21 and rotates synchronously with the rotary arm 22, and the rack meshes with the gear. The cooperation structure of the gear and the rack can convert the rotation of the rotary arm 22 into the linear motion of the rack, so that the second limiting member 33 can press against the probe 100.

[0074] In this embodiment, the limiting assembly 3 further includes a second elastic member 34. The second elastic member 34 is located between the driving member 31 and the entry section 111, and the second elastic member 34 is configured to move the driving member 31 away from the input section. The second elastic member 34 can reset the second limiting member 33, so that the probe 100 in the entry section 111 can slide downward. Moreover, the second elastic member 34 can also reset the rotary arm 22 to return the adjustment member 23 to the receiving position.

[0075] As Figure 2 shown, for the convenience of the operator's operation, the adjustment device further includes a handwheel 13. The handwheel 13 is coaxially arranged with the rotary arm 22 and is located outside the box body 1. The operator can control the rotation of the rotary arm 22 by rotating the handwheel 13.

[0076] The above content is only the preferred embodiment of the present invention. For those of ordinary skill in the art, according to the idea of the present invention, there will be changes in the specific implementation manner and application scope. The content of this specification should not be construed as a limitation to the present invention.

Claims

1. A probe adjustment device, wherein the probe (100) comprises a tip (101) and a flat end (102), characterized in that: The probe adjustment device comprises: A box body (1), wherein an adjustment channel (11) is arranged in the box body (1), wherein the adjustment channel (11) comprises an inlet section (111), an adjustment section (112) and a discharge section (113) which are connected in sequence, and wherein the adjustment section (112) has an adjustment opening; An adjustment component (2), wherein a first end (25) of the adjustment component (2) is rotatably connected to the box body (1), and a second end (26) of the adjustment component (2) is placed in the adjustment section (112) through the adjustment opening and can swing around the first end (25), so that the second end (26) has a receiving position and an adjustment position in the adjustment opening; The flat end (102) of the probe (100) is slidably abutted against the second end (26), and the probe (100) slides from the receiving position into the discharge section (113) under the action of gravity; or, the tip (101) of the probe (100) is connected to the second end (26) and follows the second end (26) to swing from the receiving position to the adjustment position, and the probe (100) enters the discharge section (113) from the adjustment position.

2. The probe adjustment device according to claim 1, characterized in that: The adjustment assembly (2) comprises an adjustment member (23) located at the second end (26); a slot is provided on the end surface of the adjustment member (23); and the shape of the tip (101) matches the shape of the slot.

3. The probe adjustment device according to claim 2, characterized in that: The adjustment assembly (2) further comprises a rotating shaft (21) located at the first end (25), and a rotating arm (22) connected between the rotating shaft (21) and the adjustment member (23); the rotating shaft (21) is arranged in the box body (1).

4. The probe adjustment device according to claim 2, characterized in that: The adjustment assembly (2) further comprises a flow divider (24), wherein the flow divider (24) is arranged in the adjustment section (112) and divides the adjustment section (112) into a first adjustment wall (1121) and a second adjustment wall (1122), wherein the first adjustment wall (1121) is connected to the inlet section (111) and the outlet section (113), and the second adjustment wall (1122) is connected to the outlet section (113); the upright probe enters the outlet section (113) through the first adjustment wall (1121), and the inverted probe (100) enters the outlet section (113) through the second adjustment wall (1122).

5. The probe adjustment device according to claim 4, characterized in that: The flow divider (24) comprises a guide wall (241), the guide wall (241) is arc-shaped, and the arc is located on a circle with the swing center of the adjustment component (2) as the center and the distance from the swing center of the adjustment component (2) to the flat end (102) of the probe (100) inserted into the slot as the radius.

6. The probe adjustment device according to claim 5, characterized in that: The guide wall (241) and the second adjustment wall (1122) form a reversing sharp angle, and the inverted probe (100) enters the discharge section (113) after changing its direction at the reversing sharp angle.

7. The probe adjustment device according to claim 4, characterized in that: The first adjustment wall (1121) comprises a straight section (1123), and the straight section (1123) is connected to the entry section (111), and the upright probe (100) can slide into the first adjustment wall (1121) along the straight section (1123).

8. The probe adjustment device according to any one of claims 1 to 7, characterized in that: The adjustment device further comprises a limit assembly (3), the limit assembly (3) comprising a driving member (31), a first elastic member (32) and a second limit assembly (33), the first elastic member (32) being arranged between the driving member (31) and the second limit assembly (33), the driving member (31) being transmission-connected to the adjustment assembly (2) so as to drive the second limit assembly (33) to abut against the probe (100) in the entry section (111).

9. The probe adjustment device according to claim 8, characterized in that: The driving member (31) comprises a rack, and the adjustment assembly (2) further comprises a gear, the gear being rotatably disposed at the first end (25), and the rack being meshed with the gear.

10. The probe adjustment device according to any one of claims 1 to 7, characterized in that: A feed inlet (12) is provided on the top surface of the box body (1), and the adjustment channel (11) is in communication with the feed inlet (12).