Device for detecting electrical conductivity of potassium aurous cyanide

By designing a detection device including a toggle assembly, the gears and racks are driven by forward and reverse motors to achieve smooth and uniform distribution of gold-subic acid potassium cyanide powder, the detection unevenness caused by powder accumulation in the prior art is solved, and the accuracy of conductivity detection is improved.

CN119936120APending Publication Date: 2025-05-06SUZHOU UNIV SPECIAL CHEM SHIJI IND CO
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Patent Information

Application Number
CN202510201374.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

When conducting conductivity detection of potassium cyanide powder of potassium cyanide, the detection is easily uneven due to powder accumulation, which affects the detection effect.

Method used

A detection device including a toggle assembly is designed, and the gears and racks are driven by forward and reverse motors to drive the displacement plate and scraping teeth to move on the surface of the glass plate, so as to achieve smooth and even distribution of the gold-subic acid potassium cyanide powder, thereby ensuring the accuracy of conductivity detection.

Benefits of technology

It effectively avoids the accumulation of gold-subic acid potassium cyanide powder, ensures the uniform distribution of the powder, and improves the accuracy and reliability of conductivity detection.

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Abstract

The invention relates to the technical field of gold potassium cyanide conductivity detection devices, and discloses a gold potassium cyanide conductivity detection device, which comprises a mounting plate, a glass plate fixedly connected to the top of the inner wall of the mounting plate, and a stirring assembly arranged at the top of the mounting plate, the stirring assembly comprises a supporting frame fixedly connected to the bottom of the side face of the mounting plate, a forward and reverse rotation motor is fixedly connected to the inner wall of the other end of the supporting frame, an output shaft is fixedly connected to the output end of the forward and reverse rotation motor, and the outer wall of the other end of the output shaft is rotationally connected with the outer wall of the mounting plate through a bearing. The outer wall of the middle of the output shaft is fixedly connected with a gear, the top of the gear is meshed with a rack, the side wall of the top of the rack is fixedly connected with a connecting block, and the shifting assembly is arranged, so that transverse reciprocating movement is facilitated through a displacement plate, and therefore the potassium aurous cyanide powder is shifted; therefore, the conductivity detection effect of the potassium aurous cyanide powder is improved.
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Description

Technical Field

[0001] The invention relates to the technical field of potassium gold cyanide conductivity detection devices, in particular to a detection device for the conductivity of potassium gold cyanide. Background Art

[0002] Potassium cyanogen gold is an inorganic compound with the chemical formula KAu(CN)2. It is a white crystalline powder, soluble in water, slightly soluble in alcohol, and insoluble in ether. It is mainly used in the electroplating of electronic products, as well as analytical reagents and the pharmaceutical industry.

[0003] According to a device for detecting the conductivity of adhesive tape proposed in Chinese patent CN118746598A, in the device, during the process of two adhesive tape rotating clamps rotating upward and clamping the adhesive tape, a pressing strip first contacts the adhesive tape and squeezes the adhesive tape against the outside of a conductive metal rod for detection. As the adhesive tape rotating clamps rotate, the pressing strip enters the inside of a positioning groove and compresses a pressing spring. At this time, the pressing spring applies a reverse force to the pressing strip, so that the pressing strip applies a force to the adhesive tape directed to the axis of the conductive metal rod for detection, thereby ensuring that the adhesive tape always keeps in contact with the conductive metal rod for detection. During the entire detection process, the adhesive tape and the conductive metal rod for detection will not separate from each other, thereby ensuring the accuracy of the detection results and detection data.

[0004] In the prior art, when the conductivity of potassium gold cyanide powder is tested, the potassium gold cyanide powder is placed on a testing platform, and an operator detects the conductivity of the potassium gold cyanide powder itself by holding a conductive metal rod for testing. In the prior art, there are still some shortcomings in the conductivity testing process of potassium gold cyanide powder. When the operator performs the conductivity testing on the potassium gold cyanide powder on the testing platform, the potassium gold cyanide powder is easily accumulated on the testing platform, making it impossible for the operator to uniformly perform the conductivity testing on the inside of the potassium gold cyanide powder. For this reason, we propose a detection device for the conductivity of potassium gold cyanide. Summary of the invention

[0005] The object of the present invention is to provide a detection device for the conductivity of potassium gold cyanide, which solves the problems raised in the above-mentioned background technology.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical scheme: a device for detecting the conductivity of potassium cyanogen gold, comprising a mounting plate, a glass plate fixedly connected to the top of the inner wall of the mounting plate, and a toggle assembly arranged at the top of the mounting plate, wherein the toggle assembly comprises a support frame fixedly connected to the bottom of the side of the mounting plate, the inner wall of the other end of the support frame is fixedly connected to a forward and reverse motor, the output end of the forward and reverse motor is fixedly connected to an output shaft, the outer wall of the other end of the output shaft is rotatably connected to the outer wall of the mounting plate through a bearing, the middle outer wall of the output shaft is fixedly connected to a gear, the top of the gear is meshed with a rack, the top side wall of the rack is fixedly connected to a connecting block, the outer wall of the other end of the connecting block is fixedly connected to a displacement plate, the top outer wall of the displacement plate is slidably connected to a limiting frame, the bottom of the side of the limiting frame is fixedly connected to an L-shaped supporting block, the bottom of the L-shaped supporting block is fixedly connected to the top of the mounting plate, and by arranging the toggle assembly, it is convenient to realize the leveling of potassium cyanogen gold powder on the surface of the glass plate during the movement of the displacement plate, so as to avoid the accumulation of potassium cyanogen gold powder and affect the detection effect of conductivity.

[0007] Preferably, the toggle assembly also includes a T-slot provided inside the displacement plate, the top of the inner wall of the T-slot is fixedly connected to an electric push rod, the output end of the electric push rod is fixedly connected to a lifting block, the side wall of the lifting block is fixedly connected to a U-shaped plate, the inner wall of the U-shaped plate is fixedly connected to a driving motor, the output end of the driving motor is fixedly connected to a reciprocating screw rod, the middle outer wall of the reciprocating screw rod is threadedly connected to a socket block, a limiting slot is provided on the top of the U-shaped plate, the inner wall of the limiting slot is slidably connected to the limiting block, and the bottom of the limiting block is fixedly connected to the top of the socket block The bottom of the sleeve block is fixedly connected with a rectangular block, the bottom of the rectangular block is fixedly connected with a scraping tooth, the bottom of the scraping tooth is slidably connected to the top of the glass plate, the outer wall of the rectangular block is fixedly connected with a connecting column, the other end of the connecting column is fixedly connected with a scraper, the bottom of the scraper is slidably connected to the top of the glass plate, in the process of the two scrapers moving back and forth, it is convenient to scrape the potassium gold cyanide powder on both sides of the top of the glass plate toward the middle, so that the scraping teeth can flatten the potassium gold cyanide powder, thereby uniformly testing the conductivity of the potassium gold cyanide powder.

[0008] Preferably, a detection component is also provided above the mounting plate, and the detection component includes an L-shaped vertical plate fixedly connected to the top of the limit block, a cylinder is fixedly connected to the top of the inner wall of the L-shaped vertical plate, a detection conductive metal rod is fixedly connected to the output end of the cylinder, a display light is fixedly connected to the middle outer wall of the detection conductive metal rod, and the detection conductive metal rod is located above the glass plate. By arranging the detection component, it is convenient to detect the conductivity of potassium gold cyanide powder by detecting the conductive metal rod. When the detection conductive metal rod detects that the potassium gold cyanide powder is charged, the display light will flash, which is convenient for the operator to observe and improve the detection effect.

[0009] Preferably, a temperature controller is fixedly connected to the front of the mounting plate, and a heating wire is fixedly connected to the inner wall of the mounting plate, and the heating wire is located below the glass plate. By arranging the temperature controller and the heating wire, when the conductive metal rod is used to detect the conductivity of potassium gold cyanide powder, the operator starts the temperature controller to energize the heating wire, so that heat is generated at the bottom of the glass plate, which is convenient for the operator to detect the conductivity based on the heated potassium gold cyanide powder.

[0010] Preferably, a support leg is fixedly connected to the bottom of the mounting plate, and there are four support legs. The four support legs are equal in size and fixedly connected to the four corners of the bottom of the mounting plate at equal distances. By providing four support legs, the four support legs facilitate the stable support of the mounting plate.

[0011] Preferably, the top outer wall of the displacement plate is matched with the inner wall of the limiting frame, and the bottom of the limiting frame is fixedly connected to the top of the L-shaped support block.

[0012] Preferably, there are two displacement plates, the two displacement plates are equal in size, and the two displacement plates are symmetrically distributed along the center plane of the mounting plate.

[0013] Preferably, the inner wall of the T-slot is matched with the outer wall of the lifting block, and the side wall of the lifting block is fixedly connected to the bottom outer wall of the limiting slot. By arranging the T-slot inside the displacement plate, it is convenient for the lifting block to slide up and down inside the T-slot.

[0014] Preferably, there are two scrapers, the two scrapers are equal in size, and the two scrapers are respectively located on both sides of the rectangular block along the center plane thereof. By providing two scrapers, it is convenient to scrape the potassium gold cyanide powder located on both sides of the top of the glass plate toward the middle, thereby improving the conductivity detection effect of the potassium gold cyanide powder.

[0015] Preferably, there are two detection conductive metal rods, the two detection conductive metal rods are equal in size, and the two detection conductive metal rods are symmetrically distributed along the center plane of the U-shaped plate.

[0016] The present invention provides a device for detecting the conductivity of potassium gold cyanide. The device for detecting the conductivity of potassium gold cyanide has the following beneficial effects:

[0017] (1) The device for detecting the conductivity of potassium gold cyanide is provided with a toggle assembly. When it is necessary to detect the conductivity of potassium gold cyanide powder, the operator places the potassium gold cyanide powder on the top of the glass plate. In order to prevent the potassium gold cyanide powder from accumulating on the surface of the glass plate and affecting the conductivity, the potassium gold cyanide powder needs to be leveled. At this time, the operator turns on the forward and reverse motors to cause the output shaft to rotate. During the rotation of the output shaft, the output shaft will mesh with the rack, thereby moving with the rack. During the movement of the rack, the displacement plate will be moved inside the limit frame through the connecting block, so that the potassium gold cyanide powder on the surface of the glass plate can be leveled during the movement of the displacement plate, thereby preventing the potassium gold cyanide powder from accumulating and affecting the detection effect of the conductivity. When the displacement plate is moving, the operator turns on the electric push rod to cause the lifting block to move downward. When the lifting block moves downward, the lifting block moves downward. When the block moves to the lowest point, the U-shaped plate will be at the lowest point, so that the scraping teeth will contact the surface of the glass plate. When the displacement plate moves horizontally, the potassium gold cyanide powder will be scraped flat by the scraping teeth, so that the potassium gold cyanide powder is evenly distributed on the surface of the glass plate. In order to prevent the potassium gold cyanide powder from being distributed on both sides of the top of the glass plate, the operator turns on the drive motor to cause the reciprocating screw to rotate. During the rotation of the reciprocating screw, the sleeve block is limited by the limit block in the limit groove, which will cause the sleeve block to reciprocate along the outer wall of the reciprocating screw. During the reciprocating movement of the sleeve block, the scraper will be reciprocated by the connecting column. During the reciprocating movement of the two scrapers, it is convenient to scrape the potassium gold cyanide powder on both sides of the top of the glass plate toward the middle, so that the scraping teeth can scrape the potassium gold cyanide powder flat, thereby uniformly testing the conductivity of the potassium gold cyanide powder.

[0018] (2) The device for detecting the conductivity of potassium gold cyanide is provided with a detection component. When the potassium gold cyanide powder is scraped flat and needs to be tested for conductivity, the operator turns on the cylinder to cause the output end of the cylinder to extend downward, causing the detection conductive metal rod to move downward, and then starts the detection conductive metal rod to detect the conductivity of the potassium gold cyanide powder. When the detection conductive metal rod detects that the potassium gold cyanide powder is charged, the display light will flash, which is convenient for the operator to observe and improves the detection effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0020] Figure 2 A top view of the present invention;

[0021] Figure 3 It is a partial cross-sectional view of the present invention;

[0022] Figure 4 It is a structural schematic diagram of the toggle assembly in the present invention;

[0023] Figure 5 It is a side structural schematic diagram of the toggle assembly in the present invention;

[0024] Figure 6 It is a partial structural schematic diagram of the toggle assembly in the present invention;

[0025] Figure 7 A side view of a partial structure of the toggle assembly of the present invention;

[0026] Figure 8 It is a schematic diagram of the structure of the detection component in the present invention.

[0027] In the figure: 1, mounting plate; 2, glass plate; 3, support leg; 4, temperature controller; 5, heating wire; 61, toggle assembly; 611, support frame; 612, forward and reverse motor; 613, output shaft; 614, gear; 615, rack; 616, connecting block; 617, displacement plate; 618, limit frame; 619, L-shaped support block; 6110, T-slot; 6111, electric push rod; 611 2. Lifting block; 6113. U-shaped plate; 6114. Driving motor; 6115. Reciprocating screw rod; 6116. Socket block; 6117. Limiting groove; 6118. Limiting block; 6119. Rectangular block; 6120. Scraping teeth; 6121. Connecting column; 6122. Scraper; 62. Detection component; 621. L-shaped vertical plate; 622. Cylinder; 623. Detection of conductive metal rod; 624. Display light. DETAILED DESCRIPTION

[0028] In order to have a clearer understanding of the technical features, purposes and effects of the present invention, specific embodiments of the present invention are now described with reference to the accompanying drawings.

[0029] A preferred embodiment of a device for detecting the conductivity of potassium gold cyanide provided by the present invention is as follows: Figures 1 to 8As shown: a device for detecting the conductivity of potassium cyanogen gold, comprising a mounting plate 1, a glass plate 2 fixedly connected to the top of the inner wall of the mounting plate 1, and a toggle assembly 61 arranged on the top of the mounting plate 1, wherein the toggle assembly 61 comprises a support frame 611 fixedly connected to the bottom of the side of the mounting plate 1, the inner wall of the other end of the support frame 611 is fixedly connected to a forward and reverse motor 612, the output end of the forward and reverse motor 612 is fixedly connected to an output shaft 613, the outer wall of the other end of the output shaft 613 is rotatably connected to the outer wall of the mounting plate 1 through a bearing, a gear 614 is fixedly connected to the middle outer wall of the output shaft 613, a rack 615 is meshed at the top of the gear 614, a connecting block 616 is fixedly connected to the top side wall of the rack 615, a displacement plate 617 is fixedly connected to the outer wall of the other end of the connecting block 616, the top outer wall of the displacement plate 617 is slidably connected to a limiting frame 618, and the side bottom of the limiting frame 618 is fixedly connected to an L-shaped supporting block 6 19. The bottom of the L-shaped support block 619 is fixedly connected to the top of the mounting plate 1. By setting the toggle assembly 61, when it is necessary to test the conductivity of the potassium cyanide gold powder, the operator places the potassium cyanide gold powder on the top of the glass plate 2. In order to prevent the potassium cyanide gold powder from accumulating on the surface of the glass plate 2 and affecting the conductivity, the potassium cyanide gold powder needs to be leveled. At this time, the operator turns on the forward and reverse motor 612 to cause the output shaft 613 to rotate. During the rotation of the output shaft 613, it will mesh with the rack 615, thereby moving with the rack 615. During the movement of the rack 615, the displacement plate 617 will be moved inside the limit frame 618 through the connecting block 616, so that the potassium cyanide gold powder on the surface of the glass plate 2 can be leveled during the movement of the displacement plate 617, thereby preventing the potassium cyanide gold powder from accumulating and affecting the conductivity detection effect.

[0030] The toggle assembly 61 also includes a T-slot 6110 provided inside the displacement plate 617, the top of the inner wall of the T-slot 6110 is fixedly connected to an electric push rod 6111, the output end of the electric push rod 6111 is fixedly connected to a lifting block 6112, the side wall of the lifting block 6112 is fixedly connected to a U-shaped plate 6113, the inner wall of the U-shaped plate 6113 is fixedly connected to a drive motor 6114, the output end of the drive motor 6114 is fixedly connected to a reciprocating screw rod 6115, the middle outer wall of the reciprocating screw rod 6115 is threadedly connected to a socket block 6116, and a limiting groove 6117 is provided on the top of the U-shaped plate 6113. The inner wall of 6117 is slidably connected to the limit block 6118, the bottom of the limit block 6118 is fixedly connected to the top of the sleeve block 6116, the bottom of the sleeve block 6116 is fixedly connected to the rectangular block 6119, the bottom of the rectangular block 6119 is fixedly connected to the scraper 6120, the bottom of the scraper 6120 is slidably connected to the top of the glass plate 2, the outer wall of the rectangular block 6119 is fixedly connected to the connecting column 6121, the other end of the connecting column 6121 is fixedly connected to the scraper 6122, the bottom of the scraper 6122 is slidably connected to the top of the glass plate 2, when the displacement plate 617 is moving, the operator passes The electric push rod 6111 is turned on to cause the lifting block 6112 to move downward. When the lifting block 6112 moves to the lowest point, the U-shaped plate 6113 is at the lowest point, so that the scraping teeth 6120 are in contact with the surface of the glass plate 2. When the displacement plate 617 moves horizontally, the potassium gold cyanide powder is scraped flat by the scraping teeth 6120, so that the potassium gold cyanide powder is evenly distributed on the surface of the glass plate 2. In order to prevent the potassium gold cyanide powder from being distributed on both sides of the top of the glass plate 2, the operator turns on the drive motor 6114 to cause the reciprocating screw 6115 to rotate. When the reciprocating screw 6115 rotates, the reciprocating screw 6115 rotates. During the movement, the limiting block 6118 in the limiting groove 6117 limits the socket block 6116, which will cause the socket block 6116 to reciprocate along the outer wall of the reciprocating screw rod 6115. During the reciprocating movement of the socket block 6116, the scraper 6122 will reciprocate through the connecting column 6121. During the reciprocating movement of the two scrapers 6122, it is convenient to scrape the potassium gold cyanide powder on both sides of the top of the glass plate 2 toward the middle, so that the scraping teeth 6120 can scrape the potassium gold cyanide powder flat, thereby uniformly testing the conductivity of the potassium gold cyanide powder.

[0031] A preferred embodiment of a device for detecting the conductivity of potassium gold cyanide provided by the present invention is as follows: Figures 1 to 8As shown: a detection assembly 62 is also arranged above the mounting plate 1, and the detection assembly 62 includes an L-shaped vertical plate 621 fixedly connected to the top of the limit block 6118, a cylinder 622 is fixedly connected to the top of the inner wall of the L-shaped vertical plate 621, a detection conductive metal rod 623 is fixedly connected to the output end of the cylinder 622, and a display light 624 is fixedly connected to the middle outer wall of the detection conductive metal rod 623. The detection conductive metal rod 623 is located above the glass plate 2. By setting the detection assembly 62, when potassium cyanide gold powder is tested, the detection component 62 is used to detect the conductive metal rod 623. After scraping, when the potassium gold cyanide powder needs to be tested for conductivity, the operator turns on the cylinder 622 to cause the output end of the cylinder 622 to extend downward, causing the detection conductive metal rod 623 to move downward, and then starts the detection conductive metal rod 623 to make the detection conductive metal rod 623 perform a conductivity test on the potassium gold cyanide powder. When the detection conductive metal rod 623 detects that the potassium gold cyanide powder is charged, the display light 624 will flash, which is convenient for the operator to observe and improve the detection effect.

[0032] Furthermore, a temperature controller 4 is fixedly connected to the front of the mounting plate 1, and a heating wire 5 is fixedly connected to the inner wall of the mounting plate 1. The heating wire 5 is located below the glass plate 2. By setting the temperature controller 4 and the heating wire 5, when the conductive metal rod 623 is used to detect the conductivity of the potassium gold cyanide powder, the operator starts the temperature controller 4 to energize the heating wire 5, so that heat is generated at the bottom of the glass plate 2, which is convenient for the operator to detect the conductivity of the potassium gold cyanide powder after heating.

[0033] Furthermore, a support leg 3 is fixedly connected to the bottom of the mounting plate 1. There are four support legs 3. The four support legs 3 are equal in size and are fixedly connected to the four corners of the bottom of the mounting plate 1 at equal distances. By providing four support legs 3, it is convenient to provide stable support for the mounting plate 1 through the four support legs 3.

[0034] Furthermore, the top outer wall of the displacement plate 617 is matched with the inner wall of the limiting frame 618 , and the bottom of the limiting frame 618 is fixedly connected to the top of the L-shaped support block 619 .

[0035] Furthermore, there are two displacement plates 617 , the two displacement plates 617 are equal in size, and the two displacement plates 617 are symmetrically distributed along the center plane of the mounting plate 1 .

[0036] Furthermore, the inner wall of the T-slot 6110 is adapted to the outer wall of the lifting block 6112, and the side wall of the lifting block 6112 is fixedly connected to the bottom outer wall of the limiting slot 6117. By arranging the T-slot 6110 inside the displacement plate 617, it is convenient for the lifting block 6112 to slide up and down inside the T-slot 6110.

[0037] Furthermore, there are two scrapers 6122, which are equal in size and located on both sides of the rectangular block 6119 along the center plane thereof. By setting up two scrapers 6122, it is convenient to scrape the potassium gold cyanide powder located on both sides of the top of the glass plate 2 toward the middle, thereby improving the conductivity detection effect of the potassium gold cyanide powder.

[0038] In addition, there are two conductive metal rods 623 for detection, the two conductive metal rods 623 are equal in size, and the two conductive metal rods 623 are symmetrically distributed along the center plane of the U-shaped plate 6113 .

[0039] Working principle: When the conductivity of potassium gold cyanide powder needs to be tested, the operator places the potassium gold cyanide powder on the top of the glass plate 2. In order to prevent the potassium gold cyanide powder from accumulating on the surface of the glass plate 2 and affecting the conductivity, the potassium gold cyanide powder needs to be leveled. At this time, the operator turns on the forward and reverse motor 612 to cause the output shaft 613 to rotate. During the rotation of the output shaft 613, it will mesh with the rack 615, thereby moving with the rack 615. During the movement of the rack 615, the displacement plate 617 will be moved inside the limit frame 618 through the connecting block 616, so that the potassium gold cyanide powder on the surface of the glass plate 2 can be leveled during the movement of the displacement plate 617, thereby preventing the potassium gold cyanide powder from accumulating and affecting the conductivity detection effect.

[0040] When the displacement plate 617 is moving, the operator turns on the electric push rod 6111 to force the lifting block 6112 to move downward. When the lifting block 6112 moves to the lowest point, the U-shaped plate 6113 is forced to be at the lowest point, so that the scraper 6120 contacts the surface of the glass plate 2. When the displacement plate 617 is moving horizontally, the potassium gold cyanide powder is scraped flat by the scraper 6120, so that the potassium gold cyanide powder is evenly distributed on the surface of the glass plate 2. In order to prevent the potassium gold cyanide powder from being distributed on both sides of the top of the glass plate 2, the operator turns on the drive motor 6114 to cause the reciprocating screw 6115 to rotate. During the rotation of the reciprocating screw 6115, the limiting block 6118 in the limiting groove 6117 limits the sleeve block 6116, which will cause the sleeve block 6116 to reciprocate along the outer wall of the reciprocating screw 6115. During the reciprocating movement of the sleeve block 6116, the scraper 6122 will reciprocate through the connecting column 6121. During the reciprocating movement of the two scrapers 6122, it is convenient to scrape the potassium gold cyanide powder on both sides of the top of the glass plate 2 toward the middle, so that the scraping teeth 6120 can scrape the potassium gold cyanide powder flat, thereby uniformly testing the conductivity of the potassium gold cyanide powder.

[0041] When the potassium gold cyanide powder is scraped flat and needs to be tested for conductivity, the operator turns on the cylinder 622 to cause the output end of the cylinder 622 to extend downward, causing the detection conductive metal rod 623 to move downward, and then starts the detection conductive metal rod 623 to cause the detection conductive metal rod 623 to perform a conductivity test on the potassium gold cyanide powder. When the detection conductive metal rod 623 detects that the potassium gold cyanide powder is charged, the display light 624 will flash, which is convenient for the operator to observe and improve the detection effect.

[0042] The above description is only an illustrative specific implementation mode of the present invention and is not intended to limit the scope of the present invention. Any equivalent changes and modifications made by any technician in the field without departing from the concept and principle of the present invention should fall within the scope of protection of the present invention. It should also be noted that the various components of the present invention are not limited to the above-mentioned overall application. The various technical features described in the specification of the present invention can be selected one by one or multiple ones can be selected and used in combination according to actual needs. Therefore, the present invention should naturally cover other combinations and specific applications related to this case.

Claims

1. A device for detecting the conductivity of potassium gold cyanide, comprising a mounting plate (1), a glass plate (2) fixedly connected to the top of the inner wall of the mounting plate (1), and a toggle assembly (61) arranged on the top of the mounting plate (1), characterized in that: The toggle assembly (61) comprises a support frame (611) fixedly connected to the bottom of the side of the mounting plate (1); the inner wall of the other end of the support frame (611) is fixedly connected to a forward and reverse motor (612); the output end of the forward and reverse motor (612) is fixedly connected to an output shaft (613); the outer wall of the other end of the output shaft (613) is rotatably connected to the outer wall of the mounting plate (1) via a bearing; the middle outer wall of the output shaft (613) is fixedly connected to a gear (614); the gear ( A rack (615) is meshed at the top of the rack (614), a connecting block (616) is fixedly connected to the top side wall of the rack (615), a displacement plate (617) is fixedly connected to the outer wall of the other end of the connecting block (616), the top outer wall of the displacement plate (617) is slidably connected to a limiting frame (618), an L-shaped supporting block (619) is fixedly connected to the bottom of the side of the limiting frame (618), and the bottom of the L-shaped supporting block (619) is fixedly connected to the top of the mounting plate (1).

2. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: The toggle assembly (61) further comprises a T-slot (6110) provided inside the displacement plate (617), the top of the inner wall of the T-slot (6110) being fixedly connected to an electric push rod (6111), the output end of the electric push rod (6111) being fixedly connected to a lifting block (6112), the side wall of the lifting block (6112) being fixedly connected to a U-shaped plate (6113), the inner wall of the U-shaped plate (6113) being fixedly connected to a driving motor (6114), the output end of the driving motor (6114) being fixedly connected to a reciprocating screw rod (6115), the middle outer wall of the reciprocating screw rod (6115) being threadedly connected to a socket block (6116), and the top of the U-shaped plate (6113) being provided with a limited A positioning groove (6117) is provided, the inner wall of the positioning groove (6117) is slidably connected to a limiting block (6118), the bottom of the limiting block (6118) is fixedly connected to the top of the sleeve block (6116), the bottom of the sleeve block (6116) is fixedly connected to a rectangular block (6119), the bottom of the rectangular block (6119) is fixedly connected to a scraping tooth (6120), the bottom of the scraping tooth (6120) is slidably connected to the top of the glass plate (2), the outer wall of the rectangular block (6119) is fixedly connected to a connecting column (6121), the other end of the connecting column (6121) is fixedly connected to a scraper (6122), and the bottom of the scraper (6122) is slidably connected to the top of the glass plate (2).

3. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: A detection component (62) is also arranged above the mounting plate (1), and the detection component (62) comprises an L-shaped vertical plate (621) fixedly connected to the top of the limit block (6118); a cylinder (622) is fixedly connected to the top of the inner wall of the L-shaped vertical plate (621); a detection conductive metal rod (623) is fixedly connected to the output end of the cylinder (622); a display light (624) is fixedly connected to the middle outer wall of the detection conductive metal rod (623); and the detection conductive metal rod (623) is located above the glass plate (2).

4. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: A temperature controller (4) is fixedly connected to the front of the mounting plate (1), a heating wire (5) is fixedly connected to the inner wall of the mounting plate (1), and the heating wire (5) is located below the glass plate (2).

5. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: The bottom of the mounting plate (1) is fixedly connected with a support leg (3), the number of the support legs (3) is four, the four support legs (3) are equal in size, and the four support legs (3) are equidistantly fixedly connected to the four corners of the bottom of the mounting plate (1).

6. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: The top outer wall of the displacement plate (617) is matched with the inner wall of the limiting frame (618), and the bottom of the limiting frame (618) is fixedly connected to the top of the L-shaped support block (619).

7. A detection device for the conductivity of potassium gold cyanide according to claim 1, characterized in that: There are two displacement plates (617), the two displacement plates (617) are equal in size, and the two displacement plates (617) are symmetrically distributed along the central plane of the mounting plate (1).

8. A device for detecting the conductivity of potassium gold cyanide according to claim 2, characterized in that: The inner wall of the T-shaped slot (6110) is matched with the outer wall of the lifting block (6112), and the side wall of the lifting block (6112) is fixedly connected to the bottom outer wall of the limiting slot (6117).

9. A device for detecting the conductivity of potassium gold cyanide according to claim 2, characterized in that: There are two scrapers (6122), the two scrapers (6122) are equal in size, and the two scrapers (6122) are located on both sides of the central plane of the rectangular block (6119).

10. A device for detecting the conductivity of potassium gold cyanide according to claim 3, characterized in that: There are two detection conductive metal rods (623), the two detection conductive metal rods (623) are equal in size, and the two detection conductive metal rods (623) are symmetrically distributed along the center plane of the U-shaped plate (6113).

Citation Information

Patent Citations

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