Stirring electrolytic tank for detecting sulfur element in gold ore

By designing the spiral lifting blade and deflector structure in the gold ore sulfur element detection equipment, the electrolyte solution is ensured to be in full contact with the electrode sheet, solving the problems of incomplete electrolysis and sealing, and improving the accuracy and operational convenience of the detection results.

CN223005846UActive Publication Date: 2025-06-20HENAN JINYUAN GOLD MINING CO LTD
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Patent Information

Application Number
CN202421761154.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-24
Publication Date
2025-06-20
Estimated Expiration
2034-07-24

AI Technical Summary

Technical Problem

The existing gold ore sulfur element detection equipment can easily lead to incomplete electrolysis during the electrolysis process, resulting in low detection results, and when adjusting the height of the electrode sheet, it is easy to destroy the sealing of the electrolytic cell, affecting the detection effect.

Method used

A stirred electrolytic cell for detection of sulfur elements in gold ore is designed, and a spiral lifting blade and a deflector structure is adopted to move the electrolyte up along the spiral lifting blade and flow to the middle of the electrolytic cell body, thereby ensuring that the electrolyte is in full contact with the electrode sheet, promoting complete electrolysis, and adjusting the height of the electrode sheet through the adjustment parts to avoid destroying the sealing properties.

Benefits of technology

It achieves complete electrolysis, improves the accuracy of sulfur element detection results, is simple to operate, is easy to use, and avoids the occurrence of sealing problems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stirring electrolytic tank for detecting sulfur element in gold ore, which comprises an electrolytic tank body, two symmetrically arranged arc-shaped plates are movably arranged in the electrolytic tank body, the inner side surfaces of the arc-shaped plates are provided with spiral lifting blades, the lower end of the outer side of the electrolytic tank body is provided with an annular base, and the outer side of the annular base is provided with an annular groove. An adjusting piece is arranged on the upper surface, corresponding to the arc-shaped plate, of the annular base and is used for adjusting the height of the arc-shaped plate in the electrolytic tank body. According to the stirring electrolytic tank for detecting the sulfur element in the gold ore, in the stirring process, electrolyte can move upwards along the spiral lifting blade and flow to the middle of the electrolytic tank body along the flow guide plate, so that the electrolyte is in contact reaction with the electrode plates, complete electrolysis is promoted, no new sealing problem is generated, and the accuracy of a detection result can be improved; operation is simple, and use is convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of ore detection equipment, in particular to a stirring electrolytic cell for detecting sulfur elements in gold ore. Background Technique

[0002] In gold ore and its processed products, gold is the main component, and it may also contain various elements such as silver, copper, lead, sulfur, zinc, nickel, etc. Since sulfur is an important factor affecting the production and smelting of gold concentrate, it is of great significance to accurately and quickly determine the sulfur content. At present, the method used by our company's laboratory for detecting and analyzing sulfur elements in gold ore and its processed products is the microcoulomb method, that is, a sulfur analyzer.

[0003] The problem regarding the degree of electrolysis completion of the electrolyte during the detection process is as follows: When the color of the electrolytic cell is relatively heavy or even red, the electrolysis is incomplete, which will cause the detection result of sulfur elements to be on the low side; in response to this problem, the height of the electrode plate is adjusted, so that the relative height between the electrode plate and the electrolyte changes. However, when adjusting the height of the electrode plate in the electrolytic cell, it is necessary to modify the electrode plate circuit, which easily damages the sealing effect of the top of the electrolytic cell, thus generating a new sealing problem, and further affecting the detection effect. Therefore, this application provides a stirring electrolytic cell for detecting sulfur elements in gold ore to solve the above problems. Content of the Utility Model

[0004] The technical problem to be solved by the utility model is to overcome the existing defects and provide a stirring electrolytic cell for detecting sulfur elements in gold ore. During the stirring process, the electrolyte can move upward along the spiral lifting blades and flow to the middle part of the electrolytic cell body along the guide plate, so that the electrolyte contacts and reacts with the electrode plate, thereby promoting complete electrolysis and not generating new sealing problems, which can improve the accuracy of the detection result, is simple to operate and convenient to use, and can effectively solve the problems in the background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A stirring electrolytic cell for detecting sulfur elements in gold ore, including an electrolytic cell body, two symmetrically arranged arc-shaped plates are movably installed inside the electrolytic cell body, spiral lifting blades are arranged on the inner side surface of the arc-shaped plates, a circular base is arranged at the lower end outside the electrolytic cell body, and an adjusting member is arranged on the upper surface of the circular base corresponding to the arc-shaped plates for adjusting the height of the arc-shaped plates inside the electrolytic cell body.

[0006] As a preferred technical solution of the utility model, the adjusting member includes an adjusting screw rod rotatably arranged on the circular base, a slider is threadedly connected to the side surface of the adjusting screw rod, and a magnetic arc-shaped plate that fits the outer wall of the electrolytic cell body is arranged on the side surface of the slider.

[0007] As a preferred technical solution of the present utility model, magnetic plates capable of magnetically adsorbing with the magnetic arc-shaped plates are provided at both ends of the outer side surface of the arc-shaped plate.

[0008] As a preferred technical solution of the present utility model, a flow guiding plate is provided on the inner side surface of the arc-shaped plate corresponding to the upper end of the spiral lifting blade for guiding the electrolyte towards the middle of the electrolytic cell body.

[0009] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0010] In the stirring electrolytic cell for detecting sulfur elements in gold ore according to the example of the present utility model, during the stirring process, the electrolyte can move upward along the spiral lifting blade and flow towards the middle of the electrolytic cell body along the flow guiding plate, so that the electrolyte contacts and reacts with the electrode plate, thereby promoting complete electrolysis and not generating new sealing problems, improving the accuracy of the detection result, being simple to operate and convenient to use. Description of the Drawings

[0011] Figure 1 It is a schematic structural diagram of the present utility model.

[0012] In the figure: 1 electrolytic cell body, 2 arc-shaped plate, 21 magnetic plate, 3 spiral lifting blade, 4 flow guiding plate, 5 annular base, 6 adjusting screw, 7 slider, 71 magnetic arc-shaped plate. Specific Embodiments

[0013] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0014] Please refer to Figure 1 , the present utility model provides a technical solution: a stirring electrolytic cell for detecting sulfur elements in gold ore, including an electrolytic cell body 1, two symmetrically arranged arc-shaped plates 2 are movably installed inside the electrolytic cell body 1, spiral lifting blades 3 are provided on the inner side surfaces of the arc-shaped plates 2, an annular base 5 is arranged at the lower end outside the electrolytic cell body 1, and an adjusting member is provided on the upper surface of the annular base 5 corresponding to the arc-shaped plate 2 for adjusting the height of the arc-shaped plate 2 inside the electrolytic cell body 1; during the stirring process, the electrolyte can move upward along the spiral lifting blade 3, so that the relative height of the electrolyte and the electrode plate changes.

[0015] Furthermore, the adjusting member includes an adjusting screw 6 rotatably arranged on the annular base 5, a slider 7 is threadedly connected to the side surface of the adjusting screw 6, and a magnetic arc-shaped plate 71 attached to the outer wall of the electrolytic cell body 1 is provided on the side surface of the slider 7.

[0016] Further, magnetic plates 21 capable of magnetically adsorbing to the magnetic arc-shaped plate 71 are provided at both ends of the outer side surface of the arc-shaped plate 2. By rotating the adjusting screw 6, during the rotation of the adjusting screw 6, the slider 7 drives the magnetic arc-shaped plate 71 to move up and down along the outer wall of the electrolytic cell body 1. Under the action of magnetic adsorption, the magnetic arc-shaped plate 71 drives the arc-shaped plate 2 to move through the magnetic plate 21, and the arc-shaped plate 2 drives the spiral lifting blade 3 to move, thereby adjusting the height of the spiral lifting blade 3.

[0017] Further, a flow guide plate 4 is provided on the inner side surface of the arc-shaped plate 2 corresponding to the upper end of the spiral lifting blade 3 for guiding the electrolyte to the middle of the electrolytic cell body 1. The magnetic stirring rod drives the electrolyte to rotate in the electrolytic cell body, and under the action of the spiral lifting blade 3 and the flow guide plate 4, the electrolyte moves upward along the spiral lifting blade 3 and flows along the flow guide plate 4 to the middle of the electrolytic cell body 1, so that the electrolyte contacts and reacts with the electrode plate.

[0018] The electrolytic cell body 1 used in the present utility model is a common electrolytic cell in a sulfur analyzer in the prior art, and its working mode and structure are well-known technologies, which will not be elaborated here.

[0019] During use:

[0020] First, adjust the height of the spiral lifting blade 3 according to the position of the electrode plate and the height of the electrolyte level. The adjustment method is as follows: rotate the adjusting screw 6, and during the rotation of the adjusting screw 6, the slider 7 drives the magnetic arc-shaped plate 71 to move up and down along the outer wall of the electrolytic cell body 1. Under the action of magnetic adsorption, the magnetic arc-shaped plate 71 drives the arc-shaped plate 2 to move through the magnetic plate 21, and the arc-shaped plate 2 drives the spiral lifting blade 3 and the flow guide plate 4 to move, thereby adjusting the height of the spiral lifting blade 3 and the flow guide plate 4;

[0021] Place the electrolytic cell body 1 on a magnetic stirrer to make the magnetic stirring rod in the electrolytic cell body start to work;

[0022] The magnetic stirring rod drives the electrolyte to rotate in the electrolytic cell body, and under the action of the spiral lifting blade 3 and the flow guide plate 4, the electrolyte moves upward along the spiral lifting blade 3 and flows along the flow guide plate 4 to the middle of the electrolytic cell body 1, so that the electrolyte contacts and reacts with the electrode plate.

[0023] In the present utility model, during the stirring process, the electrolyte can move upward along the spiral lifting blade 3 and flow along the flow guide plate 4 to the middle of the electrolytic cell body 1, so that the electrolyte contacts and reacts with the electrode plate, thereby promoting complete electrolysis, and no new sealing problems will occur, which can improve the accuracy of the detection result, is simple to operate, and is convenient to use.

[0024] The parts not disclosed in the present utility model are all prior arts, and their specific structures, materials and working principles will not be elaborated further. Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A stirred electrolytic cell for detecting sulfur in gold ore, comprising an electrolytic cell body (1), characterized in that: Two symmetrically arranged arc plates (2) are movably mounted inside the electrolytic cell body (1), the inner side surfaces of the arc plates (2) are provided with spiral lifting blades (3), the outer lower end of the electrolytic cell body (1) is provided with an annular base (5), and the upper surface of the annular base (5) corresponding to the arc plates (2) is provided with an adjusting member for adjusting the height of the arc plates (2) inside the electrolytic cell body (1).

2. The stirring electrolytic cell for detecting sulfur in gold ore according to claim 1, characterized in that: The adjusting member comprises an adjusting screw (6) rotatably arranged on an annular base (5), a side surface of the adjusting screw (6) being threadedly connected to a slider (7), and a side surface of the slider (7) being provided with a magnetic arc plate (71) that is in contact with the outer wall of the electrolytic cell body (1).

3. The stirring electrolytic cell for detecting sulfur in gold ore according to claim 2, characterized in that: Both ends of the outer side surface of the arc-shaped plate (2) are provided with magnetic plates (21) capable of magnetically adsorbing the magnetic arc-shaped plate (71).

4. The stirring electrolytic cell for detecting sulfur in gold ore according to claim 1, characterized in that: A guide plate (4) is provided on the inner side surface of the arc plate (2) corresponding to the upper end of the spiral lifting blade (3) for guiding the electrolyte to the middle of the electrolytic cell body (1).