Impurity removal device for gold ore mining equipment

By designing a complex structure, tension structure and auxiliary structure in the gold mining equipment decompression device, the problem of separation and treatment of particulate impurities and metal block raw materials in the prior art has been solved, and the impurity removal effect and treatment efficiency of gold mining equipment has been improved.

CN119926805AInactive Publication Date: 2025-05-06SHANDONG GOLD PENGLAI MINING
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Patent Information

Application Number
CN202510424308.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing gold mining equipment removal equipment has difficulty in separation and processing when removing particulate impurities and metal block raw materials after sulfurization, which leads to manual screening and processing in the future.

Method used

A decompression device for gold mining equipment is designed, including a complex structure, a tension structure and an auxiliary structure. The complex structure collects particle impurities through the conveyor belt and bristles. The tensioning structure improves the performance of the conveyor belt by adjusting the tensioning degree of the conveyor belt. The auxiliary structure realizes centralized treatment of particle impurities through the collection frame and scraper.

Benefits of technology

By setting up a complex structure, a tension structure and an auxiliary structure, flexible classification and collection of metal block ore and particle impurities during discharge process is achieved, and the performance of the impurity removal device and the processing efficiency of particle impurities are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an impurity removal device for gold ore mining equipment, and relates to the technical field of impurity removal devices for mining equipment, the impurity removal device comprises a tank body and a liquid box, the tank body is communicated with the liquid box, the end side of the tank body is communicated with a feed inlet, and a tank door is detachably mounted on the end side of the tank body; a discharging frame is fixedly installed on the lower side of the tank body, the impurity collecting structure is arranged on the inner side of the discharging frame and used for collecting impurities doped after gold ore materials are vulcanized and conducting classification treatment on the gold ore materials, and the impurity collecting structure comprises a conveying belt located on the inner side of the discharging frame; the tensioning structure is arranged on the side wall of the tank body and used for flexibly tensioning the conveying belt, the impurity collecting structure is arranged, flexible classification work of metal blocky ore and particle impurities in the discharging process is facilitated, flexible collection treatment work of the particle impurities is facilitated, and the use performance of the impurity removing device is further improved.
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Description

Technical Field

[0001] The invention relates to the technical field of impurity removal devices for mining equipment, in particular to an impurity removal device for gold mining equipment. Background Art

[0002] The impurity removal device of gold mining equipment is an indispensable and important equipment component in the gold mining process. It is mainly used to remove various impurities mixed into the gold ore during the mining, transportation and preliminary processing of the gold ore. It can accurately separate the impurities from the useful gold minerals according to the differences in the physical and chemical properties between the impurities and the gold ore. The application of the impurity removal device not only improves the grade and quality of the gold ore, provides better raw materials for the subsequent mineral processing and smelting processes, but also effectively reduces equipment wear, extends equipment service life, and improves the overall efficiency and economic benefits of gold mining.

[0003] A Chinese patent with publication number CN220942078U discloses a de-impurity device for gold mining equipment, including a tank body, a long groove is opened on the top side of the tank body, two arc-shaped seats are fixedly installed on the top side of the tank body, the same top plate is fixedly installed on the top side of the two arc-shaped seats, a liquid box is fixedly installed on the top side of the top plate, a liquid inlet is provided on the top side of the liquid box, a delivery pipe is fixedly installed on one side of the liquid box, the other end of the delivery pipe passes through the top plate and is fixedly connected with a liquid collecting box, the top plate fixedly installed on the top side of the two arc-shaped seats, the top side of the top plate is fixedly installed with a liquid box, a dephosphorization liquid is provided in the liquid box, the dephosphorization liquid is transported to the liquid collecting box through the delivery pipe, and then sprayed out through a nozzle, because the long groove is opened on the top side of the tank body, the sprayed dephosphorization liquid can cooperate with a stirring device to spray the surface of the gold ore evenly, then the surface of the gold ore can adhere to the dephosphorization liquid to remove impurities, and by opening the two blocks, the gold ore will fall along the discharge chute.

[0004] The existing related technologies often have the following defects: However, in the actual use of the above-mentioned gold mining equipment impurity removal device, after opening the tank door, the sulfided granular impurities often fall on the discharge frame together with the gold ore block raw materials for collection, requiring subsequent staff to screen and process the sulfided granular impurities and metal block raw materials, which is not conducive to the separation and processing of the sulfided metal block raw materials and granular impurities.

[0005] To this end, we propose a debris removal device for gold mining equipment. Summary of the invention

[0006] The object of the present invention is to provide a debris removal device for gold mining equipment to solve the problems raised in the above background technology.

[0007] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a de-impurity device for gold mining equipment, comprising a tank body and a liquid tank, the tank body and the liquid tank are connected, the end side of the tank body is connected with a feed port, the end side of the tank body is detachably mounted with a tank door, a discharging frame is fixedly mounted on the lower side of the tank body, and also comprises: a collecting structure arranged on the inner side of the discharging frame, for collecting impurities doped in the gold ore material after sulfidation and for classifying the gold ore materials, the collecting structure comprising a conveyor belt located on the inner side of the discharging frame; a tensioning structure arranged on the side wall of the tank body, for flexibly tensioning the conveyor belt; an auxiliary structure arranged on the lower side of the discharging frame, for centralized processing of the collected impurities.

[0008] The effects achieved by the above components are: by setting up the impurity collection structure, it is convenient to flexibly classify the metal block ore and granular impurities in the discharging process, and it is convenient to flexibly collect and process the granular impurities, and further improve the performance of the impurity removal device; by setting up the tensioning structure, it is convenient to flexibly tension the conveyor belt before and after use, which not only facilitates the flexible adjustment of the tightness of the conveyor belt, but also facilitates the removal of granular impurities on the surface of the conveyor belt; by setting up the auxiliary structure, it is convenient to flexibly clean, scrape, collect and process the granular impurities, and further improve the processing efficiency of the granular impurities.

[0009] Preferably, the collection structure also includes a driving shaft rotatably installed inside the discharge frame, the side wall of the discharge frame is provided with two sliding grooves, the inner side of the sliding groove is slidably connected with a slider, the inside of the two sliders is rotatably connected with a driven shaft, the conveyor belt is transmission connected to the side walls of the driving shaft and the driven shaft, a plurality of bristles are evenly and fixedly connected to the surface of the conveyor belt, and the conveyor belt is made of rubber.

[0010] The effect achieved by the above components is: since there are bristles on the surface of the conveyor belt, the granular impurities will be stuck between the bristles for collection, and the water in the slurry will flow along the bristles, thereby realizing the classification and processing of granular impurities and bulk metal ore.

[0011] Preferably, two mounting rods are fixedly connected to the side wall of the discharge frame, a mounting ring is fixedly installed on the side where the two mounting rods are close to each other, a motor is fixedly installed on the inner side of the mounting ring, and the output end of the motor is fixedly connected to the end side of the driving shaft.

[0012] The effect achieved by the above components is: when the motor is started, the motor will drive the driving shaft to rotate, thereby realizing the transmission work of the conveyor belts on the driving shaft and the driven shaft, until the conveyor belt is transmitted to the position of the driven shaft, the surface of the conveyor belt will bend, thereby realizing the falling of granular impurities from the conveyor belt.

[0013] Preferably, two drainage strips are fixedly connected to the inner side of the discharge frame.

[0014] The effect achieved by the above components is: by setting two drainage strips, it is convenient to gather the products during the discharging process, and avoid the phenomenon that a large amount of impurities fall between the side of the conveyor belt and the discharging frame.

[0015] Preferably, a plurality of reserved grooves are provided on the inner side of the discharge frame close to the conveyor belt.

[0016] The effects achieved by the above components are: by setting the reserved groove, firstly, it facilitates the initial drainage of the water in the slurry; secondly, it avoids the phenomenon that the bristles are severely pressed between the conveyor belt and the discharge frame during the later transmission of the conveyor belt, and can realize the subsequent deep combing of the bristles, avoiding the phenomenon of adhesion between the bristles.

[0017] Preferably, the tensioning structure includes four connecting plates fixedly connected to the side walls of the tank body in groups of two, the side walls of two of the connecting plates are slidably connected to a limiting frame, the internal thread of the limiting frame is connected to a driving rod, the other end of the driving rod is fixedly connected to a circular block, and the surface of the slider is provided with a T-slot.

[0018] The effect achieved by the above components is: by rotating the driving rod, the slider on the circular block can be driven inside the slide groove, thereby adjusting the position of the driven shaft, which facilitates the adjustment of the tightness of the conveyor belt between the driving shaft and the driven shaft.

[0019] Preferably, two first springs are fixedly connected between the limit frame and the discharge frame.

[0020] The effect achieved by the above components is that the limiting frame will be driven by the elastic force of the first spring to drive the circular block and part of the structure of the driving rod to be tightly clamped on the inner side of the T-shaped groove.

[0021] Preferably, the auxiliary structure includes a first rectangular plate and a second rectangular plate fixedly connected to the side wall of the discharge frame, the first rectangular plate is internally slidably connected to a guide frame, the lower end of the guide frame is fixedly connected to a first positioning plate, the side wall of the first positioning plate is fixedly connected to a collecting frame, the upper side of the collecting frame is fixedly connected to a scraper, the scraper is a comb plate structure, and the upper side of the scraper is an arc structure, the side wall of the collecting frame is fixedly connected to the second positioning plate, the internal thread of the second rectangular plate is threadedly connected to a screw, and the lower end of the screw is rotatably connected to the inside of the second positioning plate.

[0022] The effect achieved by the above components is that the scraper and bristles of the comb plate structure undergo relative movement, which not only realizes the scraping of impurities between rows of bristles, but also the scraped impurities fall on the inner side of the collection frame for collection, thereby facilitating the centralized processing of particulate impurities.

[0023] Preferably, a collecting groove is slidably connected to the inner side of the collecting frame, and two clamping blocks are rotatably mounted on the lower end side of the collecting frame.

[0024] The effect achieved by the above components is: by rotating the two clamping blocks below the discharge frame, the collection trough inside the collection frame can be flexibly disassembled and assembled, thereby facilitating the flexible centralized processing of the collected particulate impurities.

[0025] Preferably, the collection frame is internally slidably connected with two sliding pins, the end sides of the two sliding pins are fixedly connected with baffles, the upper side of the baffle is a sloped structure, the side wall of the baffle is fixedly connected with two connecting strips, the other end of the sliding pin is fixedly connected with a circular piece, the surface of the sliding pin is sleeved with a second spring, the two ends of the second spring are respectively fixedly connected to the circular piece and the collection frame, the lower side of the discharging frame is a right-angle structure, and the discharging frame is obliquely fixedly installed on the lower side of the tank body.

[0026] The effect achieved by the above components is that the baffle is moved to the port position of the collecting frame to cover it under the elastic force of the second spring between the collecting frame and the circular sheet, thereby preventing subsequent large pieces of metal ore from falling into the inner side of the collecting frame.

[0027] Compared with the prior art, the present invention has the following beneficial effects: The present invention sets a collection structure and starts the motor, which drives the driving shaft to rotate, thereby realizing the transmission of the conveyor belts on the driving shaft and the driven shaft, until the conveyor belt is transmitted to the position of the driven shaft, the surface of the conveyor belt will bend, so that the particulate impurities can be dropped from the conveyor belt. By setting the collection structure, the flexible classification of metal block ore and particulate impurities in the discharging process is facilitated, the flexible collection and processing of particulate impurities is facilitated, and the performance of the impurity removal device is further improved. The present invention improves the performance of the conveyor belt by setting a tensioning structure and adjusting the tensioning degree of the conveyor belt. In addition, during the tensioning process of the conveyor belt, the conveyor belt with an elastic pad structure will be partially stretched, which is more conducive to the shedding of particle impurities between the rows of bristles on the surface of the conveyor belt during the transmission process. By setting the tensioning structure, the flexible tensioning work of the conveyor belt before and after use is facilitated, which not only facilitates the flexible adjustment of the tightness of the conveyor belt, but also facilitates the shedding of particle impurities on the surface of the conveyor belt. The present invention provides an auxiliary structure and a slope structure above the baffle, thereby facilitating the guiding and sliding of the ore material falling above the baffle. By rotating the two blocks below the discharge frame, the collection trough inside the collection frame can be flexibly disassembled and assembled, thereby facilitating the flexible centralized processing of the collected particulate impurities. The auxiliary structure facilitates the flexible cleaning, scraping, collection and processing of the particulate impurities, thereby further improving the processing efficiency of the particulate impurities. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a structural schematic diagram of another angle of the present invention; Figure 3 It is a structural schematic diagram of the discharging frame in the present invention; Figure 4 It is a structural schematic diagram of the conveyor belt in the present invention; Figure 5 It is a structural schematic diagram of the driven shaft in the present invention; Figure 6 For the present invention Figure 5 Schematic diagram of the local structure; Figure 7 For the present invention Figure 1 A magnified image of point A; Figure 8 For the present invention Figure 3 A magnified view of point B; Fig. 9 It is a schematic diagram of the structure of the collection frame in the present invention; Fig.10 For the present invention Fig. 9 Enlarged view of point C; Fig.11 It is a schematic diagram of the disassembled structure of the auxiliary structure in the present invention.

[0029] In the figure: 1, tank body; 2, liquid box; 3, feed port; 4, tank door; 5, discharge frame; 6, collection structure; 601, conveyor belt; 602, mounting rod; 603, mounting ring; 604, motor; 605, slide; 606, drainage strip; 607, bristles; 608, slider; 609, driven shaft; 610, driving shaft; 611, reserved groove; 7, tensioning structure; 71, T-slot; 72, connecting plate; 73, first spring; 74. Limiting frame; 75. Driving rod; 76. Round block; 8. Auxiliary structure; 801. Collecting frame; 802. Baffle; 803. First positioning plate; 804. First rectangular plate; 805. Guide frame; 806. Scraper; 807. Second positioning plate; 808. Screw; 809. Second rectangular plate; 810. Sliding pin; 811. Round piece; 812. Second spring; 813. Connecting strip; 814. Collecting trough; 815. Block. DETAILED DESCRIPTION

[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0031] See also Figure 1-11 The present invention provides a technical solution: a de-impurity device for gold mining equipment, comprising a tank body 1 and a liquid tank 2, the tank body 1 and the liquid tank 2 are connected, the end side of the tank body 1 is connected with a feed port 3, the end side of the tank body 1 is detachably mounted with a tank door 4, a discharging frame 5 is fixedly mounted on the lower side of the tank body 1, and further comprising: a collecting structure 6 arranged on the inner side of the discharging frame 5, for collecting impurities doped with gold ore materials after sulfidation and for classifying and processing the gold ore materials, the collecting structure 6 comprising a conveyor belt 601 located on the inner side of the discharging frame 5; a tensioning structure 7 arranged on the side wall of the tank body 1, for flexibly tensioning the conveyor belt 601; an auxiliary structure 8 arranged on the lower side of the discharging frame 5, for centrally processing the collected impurities. By setting up the impurity collection structure 6, it is convenient to flexibly classify the metal block ore and granular impurities in the discharging process, and it is convenient to flexibly collect and process the granular impurities, and the performance of the impurity removal device is further improved. By setting up the tensioning structure 7, it is convenient to flexibly tension the conveyor belt 601 before and after use, which not only facilitates the flexible adjustment of the tightness of the conveyor belt 601, but also facilitates the removal of granular impurities on the surface of the conveyor belt 601. By setting up the auxiliary structure 8, it is convenient to flexibly clean, scrape, collect and process the granular impurities, and the processing efficiency of the granular impurities is further improved.

[0032] The specific arrangement and function of the collecting structure 6, the tensioning structure 7 and the auxiliary structure 8 are described in detail below.

[0033] like Figure 1-8 As shown, the collection structure 6 also includes a driving shaft 610 rotatably mounted inside the discharge frame 5, and the side wall of the discharge frame 5 is provided with two chutes 605, and a slider 608 is slidably connected to the inner side of the chutes 605, and a driven shaft 609 is rotatably connected inside the two sliders 608, and a conveyor belt 601 is transmission-connected to the side walls of the driving shaft 610 and the driven shaft 609, and a plurality of bristles 607 are evenly and fixedly connected to the surface of the conveyor belt 601, and the conveyor belt 601 is made of rubber. Since the surface of the conveyor belt 601 has bristles 607, the granular impurities will be stuck in the position between the bristles 607 for collection, and the water in the slurry will flow along the bristles 607, thereby realizing the classification and processing of granular impurities and bulk metal ores. The side wall of the discharging frame 5 is fixedly connected with two mounting rods 602, and a mounting ring 603 is fixedly installed on the side where the two mounting rods 602 are close to each other. A motor 604 is fixedly installed on the inner side of the mounting ring 603, and the output end of the motor 604 is fixedly connected to the end side of the driving shaft 610. When the motor 604 is started, the motor 604 will drive the driving shaft 610 to rotate, and then the transmission work of the conveyor belt 601 on the driving shaft 610 and the driven shaft 609 can be realized, until the conveyor belt 601 is transmitted to the position of the driven shaft 609, the surface of the conveyor belt 601 will be bent, so that the particle impurities can be dropped from the conveyor belt 601. Two drainage strips 606 are fixedly connected to the inner side of the discharging frame 5. By setting two drainage strips 606, it is convenient to gather the products during the discharging process, and avoid the phenomenon that a large amount of impurities fall between the side of the conveyor belt 601 and the discharging frame 5. A plurality of reserved grooves 611 are provided on the inner side of the discharge frame 5 near the conveyor belt 601. The reserved grooves 611 facilitate the initial drainage of the water in the slurry, and prevent the bristles 607 from being severely folded between the conveyor belt 601 and the discharge frame 5 during the transmission of the conveyor belt 601. The bristles 607 can be combed deeply in the subsequent process, avoiding the adhesion between the bristles 607.

[0034] like Figure 1-3 and Figure 6 as well as Figure 8As shown, the tensioning structure 7 includes four connecting plates 72 fixedly connected to the side wall of the tank body 1 in groups of two, the side walls of the two connecting plates 72 are slidably connected to the limit frame 74, the inner thread of the limit frame 74 is connected to the driving rod 75, the other end of the driving rod 75 is fixedly connected to the circular block 76, and the surface of the slider 608 is provided with a T-slot 71. By rotating the driving rod 75, the slider 608 on the circular block 76 can be driven inside the slide groove 605, thereby adjusting the position of the driven shaft 609, which facilitates the adjustment of the tightness of the conveyor belt 601 between the driving shaft 610 and the driven shaft 609. Two first springs 73 are fixedly connected between the limit frame 74 and the discharging frame 5. The limit frame 74 is driven by the elastic force of the first spring 73 to drive the circular block 76 and part of the structure of the driving rod 75 to be tightly stuck inside the T-slot 71.

[0035] like Figure 1-3 and Figure 9-11As shown, the auxiliary structure 8 includes a first rectangular plate 804 and a second rectangular plate 809 fixedly connected to the side wall of the discharge frame 5, the first rectangular plate 804 is slidably connected to the inside of the guide frame 805, the lower end of the guide frame 805 is fixedly connected to the first positioning plate 803, the side wall of the first positioning plate 803 is fixedly connected to the collection frame 801, the upper side of the collection frame 801 is fixedly connected to the scraper 806, the scraper 806 is a comb plate structure, and the upper side of the scraper 806 is an arc structure, the side wall of the collection frame 801 is fixedly connected to the second positioning plate 807, the inner thread of the second rectangular plate 809 is connected to the screw 808, and the lower end of the screw 808 is rotatably connected to the inside of the second positioning plate 807. The scraper 806 of the comb plate structure moves relative to the bristles 607, which not only realizes the scraping of impurities between the rows of bristles 607, but also the scraped impurities fall on the inner side of the collection frame 801 for collection, thereby facilitating the centralized processing of particulate impurities. The inner side of the collecting frame 801 is slidably connected with a collecting groove 814, and two clamping blocks 815 are rotatably installed on the lower end side of the collecting frame 801. By rotating the two clamping blocks 815 below the discharging frame 5, the collecting groove 814 inside the collecting frame 801 can be flexibly disassembled and assembled, thereby facilitating the flexible centralized processing of the collected particulate impurities. The collecting frame 801 is internally slidably connected with two sliding pins 810, and the end sides of the two sliding pins 810 are fixedly connected with a baffle 802, the upper side of the baffle 802 is a slope structure, and the side wall of the baffle 802 is fixedly connected with two connecting strips 813, and the other end of the sliding pin 810 is fixedly connected with a circular piece 811, and the surface of the sliding pin 810 is covered with a second spring 812, and the two ends of the second spring 812 are respectively fixedly connected to the circular piece 811 and the collecting frame 801, and the lower side of the discharging frame 5 is a right-angle structure, and the discharging frame 5 is obliquely fixedly installed on the lower side of the tank body 1. The baffle 802 is moved to the port position of the collecting frame 801 to cover it under the elastic force of the second spring 812 between the collecting frame 801 and the circular sheet 811 , thereby preventing subsequent large pieces of metal ore from falling into the inner side of the collecting frame 801 .

[0036] Working principle: when it is necessary to collect impurities, after the gold ore material is placed inside the feed port 3 for sufficient reaction and impurity removal, when the tank door 4 is opened for discharging, the gold ore, granular impurities and slurry will fall on the discharging frame 5 together and slide down. By setting two drainage strips 606, it is convenient to gather the products during the discharging process, and avoid the phenomenon that a large amount of impurities fall between the side of the conveyor belt 601 and the discharging frame 5. The large-block gold ore raw materials will continue to slide along the conveyor belt until they fall on the inner side of the storage structure on the ground. Since there are bristles 607 on the surface of the conveyor belt 601, the granular impurities will be stuck in the position between the bristles 607 for collection, and the water in the slurry will flow along the bristles 607, thereby realizing the classification and processing of granular impurities and bulk metal ores. By setting the reserved groove 611, on the one hand, it is convenient to initially dredge the water in the slurry, and on the other hand, it is avoided that the water in the transmission is transported in the later stage. During the process of conveyor belt 601, the bristles 607 are severely folded between the conveyor belt 601 and the discharge frame 5, and the subsequent deep combing of the bristles 607 can be realized, avoiding the adhesion between the bristles 607, and improving the efficiency of using the bristles 607. After the metal block structure ore is collected, the motor 604 can be started, and the motor 604 will drive the driving shaft 610 to rotate, thereby realizing the transmission of the conveyor belt 601 on the driving shaft 610 and the driven shaft 609, until the conveyor belt 601 is transmitted to the position of the driven shaft 609, the surface of the conveyor belt 601 will bend, so that the particulate impurities can be dropped from the conveyor belt 601. By setting the impurity collecting structure 6, it is convenient to flexibly classify the metal block ore and particulate impurities in the discharge process, and it is convenient to flexibly collect and process the particulate impurities, and further improve the performance of the impurity removal device.

[0037] When it is necessary to adjust the tightness of the conveyor belt 601, first pull one of the limit frames 74, lift the limit frame 74 and rotate the drive rod 75, so that the circular block 76 on the drive rod 75 and part of the structure of the drive rod 75 are sleeved on the inner side of the T-slot 71, and the limit frame 74 is loosened. At this time, the limit frame 74 will be driven by the elastic force of the first spring 73 to drive the circular block 76 and part of the structure of the drive rod 75 to be tightly stuck on the inner side of the T-slot 71. At this time, the drive rod 75 is rotated to realize the driving work of the slider 608 on the circular block 76 on the inner side of the slide groove 605, thereby realizing the adjustment work of the position of the driven shaft 609, which is convenient for adjusting the tightness of the conveyor belt 601 between the driving shaft 610 and the driven shaft 609. At this time, repeat the above Step, put another circular block 76 and the driving rod 75 on the inner side of another T-slot 71, which can ensure the stability of the driven shaft 609 in driving rotation. By adjusting the tension of the conveyor belt 601, the performance of the conveyor belt 601 is improved. In addition, in the process of tensioning the conveyor belt 601, the conveyor belt 601 with the elastic pad structure will be stretched to a certain extent, which is more conducive to the shedding of granular impurities between the rows of bristles 607 on the surface of the conveyor belt 601 during the transmission process. By setting the tensioning structure 7, the flexible tensioning work of the conveyor belt 601 before and after use is facilitated, which not only facilitates the flexible adjustment of the tightness of the conveyor belt 601, but also facilitates the shedding of granular impurities on the surface of the conveyor belt 601.

[0038] Before starting the motor 604, first rotate the screw 808 inside the second rectangular plate 809. In the process of driving the screw 808, the collection frame 801 can be lifted, wherein the guide frame 805 slides inside the first rectangular plate 804 to limit the moving direction of the collection frame 801. The direct scraper 806 is abutted against the surface of the conveyor belt 601, and the screw 808 can be stopped. In the process of driving the collection frame 801 to lift, the connecting strip 813 will have relative movement with the lower side of the discharge frame 5, and the baffle 802 can be opened from the top of the collection frame 801. At this time, in the process of starting the motor 604, the conveyor belt 601 will have relative movement with the scraper 806, and the scraper 806 of the comb plate structure will have relative movement with the bristles 607, which not only realizes the scraping of impurities between the rows of bristles 607, but the scraped impurities will fall into the collection frame 801. The baffle 802 is affected by the elastic force of the second spring 812 between the collecting frame 801 and the circular sheet 811 and moves to the port position of the collecting frame 801 for covering, thereby avoiding the subsequent large pieces of metal ore falling into the inside of the collecting frame 801. By setting the inclined structure above the baffle 802, it is convenient to guide the ore material falling above the baffle 802 to slide. By rotating the two blocks 815 under the discharge frame 5, the collection slot 814 on the inner side of the collecting frame 801 can be flexibly disassembled and assembled, thereby facilitating the flexible centralized treatment of the collected particulate impurities. By setting the auxiliary structure 8, it is convenient to flexibly clean, scrape, collect and treat the particulate impurities, and further improve the treatment efficiency of the particulate impurities.

[0039] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0040] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A de-impurity device for gold mining equipment, comprising a tank body (1) and a liquid tank (2), characterized in that: The tank body (1) is connected to the liquid box (2), the end side of the tank body (1) is connected to a feed port (3), the end side of the tank body (1) is detachably mounted with a tank door (4), the lower side of the tank body (1) is fixedly mounted with a discharge frame (5), and further comprises: A collection structure (6) disposed inside the discharge frame (5) and used for collecting impurities doped in the gold ore material after sulfidation and for classifying the gold ore materials, the collection structure (6) comprising a conveyor belt (601) located inside the discharge frame (5); A tensioning structure (7) disposed on the side wall of the tank body (1) and used for flexibly tensioning the conveyor belt (601); An auxiliary structure (8) is arranged on the lower side of the discharge frame (5) and is used for centrally processing the collected impurities.

2. The impurity removal device for gold mining equipment according to claim 1, characterized in that: The collecting structure (6) also includes a driving shaft (610) rotatably mounted inside the discharge frame (5); the side wall of the discharge frame (5) is provided with two slide grooves (605); the inner side of the slide groove (605) is slidably connected to a slider (608); the inner sides of the two sliders (608) are rotatably connected to a driven shaft (609); the conveyor belt (601) is transmission-connected to the side walls of the driving shaft (610) and the driven shaft (609); a plurality of bristles (607) are evenly and fixedly connected to the surface of the conveyor belt (601); and the conveyor belt (601) is made of rubber.

3. The impurity removal device for gold mining equipment according to claim 2, characterized in that: Two mounting rods (602) are fixedly connected to the side wall of the discharge frame (5); a mounting ring (603) is fixedly installed on the side of the two mounting rods (602) close to each other; a motor (604) is fixedly installed on the inner side of the mounting ring (603); and the output end of the motor (604) is fixedly connected to the end side of the driving shaft (610).

4. The impurity removal device for gold mining equipment according to claim 1, characterized in that: Two drainage strips (606) are fixedly connected to the inner side of the discharge frame (5).

5. The impurity removal device for gold mining equipment according to claim 1, characterized in that: A plurality of reserved grooves (611) are provided on the inner side of the discharge frame (5) close to the conveyor belt (601).

6. The impurity removal device for gold mining equipment according to claim 2, characterized in that: The tensioning structure (7) comprises four connecting plates (72) fixedly connected to the side walls of the tank body (1) in groups of two, the side walls of two connecting plates (72) being slidably connected to a limit frame (74), the inner thread of the limit frame (74) being connected to a driving rod (75), the other end of the driving rod (75) being fixedly connected to a circular block (76), and the surface of the sliding block (608) being provided with a T-shaped groove (71).

7. The impurity removal device for gold mining equipment according to claim 6, characterized in that: Two first springs (73) are fixedly connected between the limit frame (74) and the discharge frame (5).

8. The impurity removal device for gold mining equipment according to claim 1, characterized in that: The auxiliary structure (8) comprises a first rectangular plate (804) and a second rectangular plate (809) fixedly connected to the side wall of the discharge frame (5); the first rectangular plate (804) is slidably connected to a guide frame (805) inside; the lower end of the guide frame (805) is fixedly connected to a first positioning plate (803); the side wall of the first positioning plate (803) is fixedly connected to a collecting frame (801); the upper side of the collecting frame (801) is fixedly connected to a scraper (806); the scraper (806) is a comb plate structure, and the upper side of the scraper (806) is an arc-shaped structure; the side wall of the collecting frame (801) is fixedly connected to a second positioning plate (807); the second rectangular plate (809) is internally threadedly connected to a screw rod (808); the lower end of the screw rod (808) is rotatably connected to the inside of the second positioning plate (807).

9. The impurity removal device for gold mining equipment according to claim 8, characterized in that: The inner side of the collecting frame (801) is slidably connected to a collecting groove (814), and the lower end side of the collecting frame (801) is rotatably mounted with two clamping blocks (815).

10. The impurity removal device for gold mining equipment according to claim 8, characterized in that: The collecting frame (801) is internally slidably connected to two sliding pins (810), the end sides of the two sliding pins (810) are fixedly connected to a baffle (802), the upper side of the baffle (802) is an inclined surface structure, the side wall of the baffle (802) is fixedly connected to two connecting strips (813), the other end of the sliding pin (810) is fixedly connected to a circular sheet (811), the surface of the sliding pin (810) is sleeved with a second spring (812), the two ends of the second spring (812) are respectively fixedly connected to the circular sheet (811) and the collecting frame (801), the lower side of the discharging frame (5) is a right-angle structure, and the discharging frame (5) is obliquely fixedly mounted on the lower side of the tank body (1).

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