Gold purification processing shaping mold
By designing a combination of support, mold body, flipping component and drive component, the problem of difficult material unloading caused by the adhesion between gold ingot and mold was solved, realizing rapid and protective unloading of gold ingot, and improving unloading efficiency and integrity.
Patent Information
- Application Number
- CN202520129801.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-01-20
AI Technical Summary
In existing gold refining and processing molding dies, the adhesion between the gold ingot and the mold after the gold ingot has cooled and formed makes it difficult to unload quickly, thus reducing the unloading efficiency.
A gold refining and shaping mold was designed, comprising a support, a mold body, a flipping component, and a driving component. The flipping component drives the mold body to flip and uses a ramming plate to impact the mold. Combined with the up-and-down movement of the driving component, the mold and the gold ingot are loosened. With the help of a feeding box and a buffer component, the gold ingot can be quickly fed out and protected.
It improves the efficiency of gold nugget cutting and protects the integrity of the gold nugget during the cutting process, avoiding damage.
Smart Images

Figure CN223733800U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to gold purification processing field especially relates to a gold purification processing shaping mould. BACKGROUND
[0002] Gold is a precious metal with wide application, however, only 1% of gold on the earth is distributed in the crust, most of which is combined with sulfur, copper, iron and other elements to form complex gold ore, which is difficult to be extracted, in the general process of metallurgy, gold ore is obtained after roasting, acid leaching and cyanide leaching, and then the surface of the gold sand is black, and after two times of smelting and cooling, the general specification of gold bar can be obtained.
[0003] The patent number CN214517553U proposes a gold purification processing shaping mould, which comprises a shunt barrel, a pedestal is placed at the lower end of the shunt barrel, a base is placed at the lower end of the pedestal, a motor drive mechanism is fixedly connected inside the bottom of the base, four groups of automatic forming mechanisms are movably connected at the front end of the top end of the base, the automatic forming mechanism comprises a mould, a turntable is movably connected at the bottom end of the mould, a rotating shaft is movably sleeved outside the turntable, a driven wheel is fixedly sleeved at the left end of the rotating shaft, a driving wheel is engaged outside the driven wheel, a transmission belt pulley shaft is fixedly sleeved at the left end of the driving wheel, and a motor drive mechanism is movably installed at the left end of the transmission belt pulley shaft. The utility model sets up a shunt barrel and multiple moulds to cool and form at the same time, which accelerates the initial smelting process of gold sand and improves the smelting production efficiency.
[0004] In this patent, after the gold block is cooled and formed in the mould, the motor control transmission mechanism drives the gear mechanism to move, so that the mould turntable carrying the mould completes the pouring process, but since the gold block is in contact with the mould during shaping, the gold block and the mould have certain adhesion, so that the gold block cannot be fully poured out by only pouring the mould, and the gold block still adheres to the mould, thereby the rapid discharging of the gold block is not convenient, and the discharging efficiency of the gold block is reduced.
[0005] Therefore, it is necessary to provide a gold purification processing shaping mould to solve the above technical problems. UTILITY MODEL CONTENTS
[0006] To solve the above technical problems, the utility model provides a gold purification processing shaping mould.
[0007] The utility model provides a gold purification processing shaping mould, which comprises a support, a mould body is rotatably connected in the support, a top plate is fixedly connected at the top end of the support, impact rods are connected at the both sides of the top end of the top plate, impact plates are fixedly connected at the bottom end of the two impact rods and abut against the mould body, and the top ends of the two impact rods are fixedly connected through a connecting plate.
[0008] The turnover assembly is arranged on one side of the support, and is connected with the die body and used for driving the turnover of the die body.
[0009] The driving assembly is arranged at the top end of the top plate, and is connected with the connecting plate and used for driving the up-down movement of the connecting plate.
[0010] Preferably, the turnover assembly comprises a motor seat fixedly arranged on one side of the support, the top end of the motor seat is fixed with a driving motor, the output shaft of the driving motor is fixed with a driving wheel, and one side of the die body is fixed with a driven wheel engaged with the driving wheel.
[0011] Preferably, the driving assembly comprises a driving rod hingedly arranged at the bottom end of the connecting plate, the bottom end of the driving rod is hingedly connected with a first sliding block, the top end of the top plate is provided with a first sliding groove for sliding of the first sliding block, and the first sliding groove is fixedly connected with the first sliding block through an electric telescopic rod.
[0012] Preferably, the bottom end of the inner wall of the support is fixed with a discharging box located below the die body, the discharging box is internally provided with a discharging plate, the top end of the discharging plate is fixed with a rubber pad, the discharging plate is connected with the discharging box through a sliding assembly, and the inside of the discharging box is provided with a buffer assembly connected with the discharging plate.
[0013] Preferably, the sliding assembly comprises second sliding blocks fixedly arranged on both sides of the discharging plate, and the inner wall of the discharging box is provided with second sliding grooves on both sides for sliding of the second sliding blocks.
[0014] Preferably, the buffer assembly comprises buffer rods hingedly arranged at the bottom end of both sides of the discharging plate, the bottom end of each of the two buffer rods is hingedly connected with a third sliding block, the bottom end of the inner wall of the discharging box is provided with a third sliding groove for sliding of the third sliding block, and the inner wall of the third sliding groove is fixedly connected with the third sliding block through dampers on both sides, and the outer wall of each of the two dampers is sleeved with a spring.
[0015] Compared with the related art, the gold purification processing forming die has the following beneficial effects:
[0016] 1. According to the gold purification processing forming die, when the high-temperature gold water is cooled and formed into a gold block in the die body, the die body is driven to rotate by the turnover assembly, the die body is rotated to the position that the opening faces downward, then the connecting plate is driven to move up and down by the driving assembly, the connecting plate drives the impact rod to move up and down, the impact rod drives the impact plate to move up and down, the impact plate repeatedly impacts the die body, and thus the die body and the gold block are loosened under the impact, so that the gold block is conveniently and quickly discharged, and the discharging efficiency of the gold block is improved.
[0017] 2. The gold purification processing sizing die based on the embodiment of the application, when the gold block falls from the die body, the gold block falls on the rubber pad on the discharging plate, then under the impact of the falling gold block, the discharging plate is driven to move downward, the discharging plate extrudes the buffer assembly in the downward movement, so that the gold block can be buffered and protected under the cooperation of the buffer assembly, the falling damage of the gold block is avoided, and the integrity of the gold block during discharging is improved. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 The structure schematic view of a preferred embodiment provided by the utility model;
[0019] Figure 2 The structure schematic view of a preferred embodiment provided by the utility model; Figure 1 The local enlarged structure schematic view of A in the middle;
[0020] Figure 3 The discharging box plane structure schematic view of a preferred embodiment provided by the utility model.
[0021] Marked number in the drawing: 1, support; 2, die body; 3, top plate; 4, impact rod; 5, impact plate; 6, connecting plate; 7, turnover assembly; 71, motor base; 72, driving motor; 73, driving wheel; 74, driven wheel; 8, driving assembly; 81, driving rod; 82, first sliding block; 83, first sliding groove; 84, electric telescopic rod; 9, discharging box; 10, discharging plate; 11, rubber pad; 12, sliding assembly; 121, second sliding block; 122, second sliding groove; 13, buffer assembly; 131, buffer rod; 132, third sliding block; 133, third sliding groove; 134, damper; 135, spring. DETAILED DESCRIPTION
[0022] The utility model will be further described below in combination with the drawings and embodiments.
[0023] Please refer to Figures 1 to 3 A gold purification processing sizing die, comprising: a support 1, a die body 2 is rotatably connected in the support 1, a top plate 3 is fixed to the top end of the support 1, impact rods 4 are connected at both sides of the top end of the top plate 3, impact plates 5 are fixed to the bottom ends of the two impact rods 4 and abut against the die body 2, and the top ends of the two impact rods 4 are fixedly connected through a connecting plate 6;
[0024] A turnover assembly 7 is arranged on one side of the support 1, the turnover assembly 7 is connected with the die body 2 and is used to drive the turnover of the die body 2;
[0025] A driving assembly 8 is arranged at the top end of the top plate 3, the driving assembly 8 is connected with the connecting plate 6 and is used to drive the up-and-down movement of the connecting plate 6.
[0026] In the embodiment, when the high-temperature gold water is cooled and formed into a gold block in the mold body 2, the rotation of the mold body 2 is driven by the movement of the turnover assembly 7, so that the mold body 2 is rotated to have the opening downward, and then the upward and downward movement of the connecting plate 6 is driven by the movement of the driving assembly 8, the upward and downward movement of the impact rod 4 is driven by the connecting plate 6, the upward and downward movement of the impact plate 5 is driven by the impact rod 4, so that the impact plate 5 repeatedly impacts the mold body 2, so that the mold body 2 and the gold block are loosened under the impact, thereby facilitating the rapid dropping of the gold block, and improving the unloading efficiency of the gold block.
[0027] In a further embodiment, as shown in Figure 1 The turnover assembly 7 includes a motor seat 71 fixedly arranged on one side of the support 1, a driving motor 72 fixedly arranged at the top end of the motor seat 71, a driving wheel 73 fixedly arranged on the output shaft of the driving motor 72, and a driven wheel 74 fixedly arranged on one side of the mold body 2 and engaged with the driving wheel 73.
[0028] In the embodiment, when the gold block in the mold body 2 is cooled and formed, the rotation of the driving wheel 73 is driven by the movement of the driving motor 72, the rotation of the driven wheel 74 is driven by the driving wheel 73, and the rotation of the mold body 2 is driven by the driven wheel 74, so that the opening of the mold body 2 is downward, thereby facilitating the pouring of the gold block in the mold body 2.
[0029] In a further embodiment, as shown in Figure 2 The driving assembly 8 includes a driving rod 81 hingedly arranged at the bottom end of the connecting plate 6, a first sliding block 82 hingedly arranged at the bottom end of the driving rod 81, a first sliding groove 83 formed in the top end of the top plate 3 and slidably arranged on the first sliding block 82, and an electric telescopic rod 84 fixedly connected between the first sliding groove 83 and the first sliding block 82.
[0030] In the embodiment, when the opening of the mold body 2 is downward, the movement of the first sliding block 82 is driven by the movement of the electric telescopic rod 84, the movement of the driving rod 81 is driven by the first sliding block 82, the downward movement of the connecting plate 6 is driven by the driving rod 81, the downward movement of the impact rod 4 is driven by the connecting plate 6, the downward movement of the impact plate 5 is driven by the impact rod 4, and the impact plate 5 impacts the mold body 2, so that the impact plate 5 repeatedly impacts the mold body 2 under the repeated movement of the electric telescopic rod 84, and the mold body 2 and the gold block are loosened under the impact, thereby facilitating the rapid dropping of the gold block.
[0031] In a further embodiment, as shown in Figure 1 The inner wall of the support 1 is fixedly arranged with a unloading box 9 below the mold body 2, the unloading box 9 is arranged with a unloading plate 10, the top end of the unloading plate 10 is fixedly arranged with a rubber pad 11, the unloading plate 10 is connected with the unloading box 9 through a sliding assembly 12, and the inside of the unloading box 9 is arranged with a buffer assembly 13 connected with the unloading plate 10.
[0032] When the gold block falls from the mold body 2, the gold block falls on the rubber pad 11 on the discharging plate 10, and then drives the discharging plate 10 to move downward under the falling impact of the gold block. The discharging plate 10 extrudes the buffer assembly 13 in the downward movement of the discharging plate 10. Thus, the gold block can be buffered and protected under the cooperation of the buffer assembly 13, so as to avoid the damage caused by the falling of the gold block and improve the integrity of the gold block during discharging.
[0033] In a further embodiment, as shown in Figure 3 The sliding assembly 12 includes second sliding blocks 121 fixedly arranged on both sides of the discharging plate 10. The inner walls of the discharging box 9 are provided with second sliding grooves 122 for the sliding of the second sliding blocks 121.
[0034] In the embodiment, when the discharging plate 10 moves, the second sliding blocks 121 and the second sliding grooves 122 are slidably matched to facilitate the auxiliary support of the discharging plate 10 and keep the movement of the discharging plate 10 stable.
[0035] In a further embodiment, as shown in Figure 3 The buffer assembly 13 includes buffer rods 131 hingedly arranged on both sides of the bottom end of the discharging plate 10. The bottom ends of the two buffer rods 131 are hingedly provided with third sliding blocks 132. The bottom end of the inner wall of the discharging box 9 is provided with a third sliding groove 133 for the sliding of the third sliding blocks 132. The inner walls of the third sliding groove 133 are fixedly connected with the third sliding blocks 132 through dampers 134. The outer walls of the two dampers 134 are sleeved with springs 135.
[0036] In the embodiment, when the gold block falls on the discharging plate 10, the discharging plate 10 is driven to move downward under the falling impact of the gold block. The discharging plate 10 drives the movement of the buffer rod 131 in the movement of the discharging plate 10. The buffer rod 131 drives the movement of the third sliding block 132. The third sliding block 132 extrudes the damper 134 and the spring 135 in the movement of the third sliding block 132. Thus, the gold block can be buffered and protected under the cooperation of the damper 134 and the spring 135, so as to avoid the damage caused by the falling of the gold block.
[0037] The working principle of the gold purification processing and shaping mold is as follows: when the high-temperature gold water is cooled and shaped into a gold block in the mold body 2, under the movement of the driving motor 72, the rotation of the driving wheel 73 is driven, the driving wheel 73 drives the rotation of the driven wheel 74, the driven wheel 74 drives the rotation of the mold body 2, the opening of the mold body 2 is downward, then under the movement of the electric telescopic rod 84, the movement of the first sliding block 82 is driven, the first sliding block 82 drives the movement of the driving rod 81, the driving rod 81 drives the downward movement of the connecting plate 6, the connecting plate 6 drives the downward movement of the impact rod 4, the impact rod 4 drives the downward movement of the impact plate 5, the impact plate 5 impacts the mold body 2, so that under the repeated movement of the electric telescopic rod 84, the impact plate 5 repeatedly impacts the mold body 2, under the impact action, the mold body 2 and the gold block are loosened, the gold block is conveniently and quickly discharged, the discharging efficiency of the gold block is improved, when the gold block falls from the mold body 2, the gold block falls on the rubber pad 11 on the discharging plate 10, then under the falling impact of the gold block, the discharging plate 10 moves downward, the movement of the discharging plate 10 drives the movement of the buffer rod 131, the buffer rod 131 drives the movement of the third sliding block 132, the third sliding block 132 extrudes the damper 134 and the spring 135, so that under the cooperation of the damper 134 and the spring 135, the gold block is buffered and protected, the damage of the gold block caused by falling is avoided, and the integrity of the gold block during discharging is improved.
[0038] The above is only an embodiment of the utility model, and does not limit the patent range of the utility model, and any equivalent structure or equivalent process transformation using the contents of the utility model specification and drawings, or direct or indirect application in other related technical fields, is also included in the patent protection range of the utility model.
Claims
1. A gold refining process forming mold characterized by, Include: Support (1), the support (1) is rotatably connected with the mold body (2), the top end of the support (1) is fixed with the top plate (3), both sides of the top end of the top plate (3) are connected with the impact rod (4), the bottom end of the two impact rods (4) is fixed with the impact plate (5) which is in contact with the mold body (2), the top end of the two impact rods (4) is fixedly connected through the connecting plate (6); The turnover assembly (7) is arranged on one side of the support (1), the turnover assembly (7) is connected with the mold body (2), and the turnover of the mold body (2) is driven; The driving assembly (8) is arranged at the top end of the top plate (3), the driving assembly (8) is connected with the connecting plate (6), and the up-down movement of the connecting plate (6) is driven.
2. A gold refining process profile die according to claim 1, characterised in that, The turnover assembly (7) includes a motor seat (71) fixedly arranged on one side of the support (1), the top end of the motor seat (71) is fixed with a driving motor (72), the output shaft of the driving motor (72) is fixed with a driving wheel (73), one side of the mold body (2) is fixed with a driven wheel (74) engaged with the driving wheel (73).
3. A gold refining process profile die according to claim 2, characterised in that, The driving assembly (8) includes a driving rod (81) hingedly arranged at the bottom end of the connecting plate (6), the bottom end of the driving rod (81) is hingedly connected with a first sliding block (82), the top end of the top plate (3) is provided with a first sliding groove (83) for sliding of the first sliding block (82), and the first sliding groove (83) is fixedly connected with the first sliding block (82) through an electric telescopic rod (84).
4. A gold refining process profile die according to claim 1, wherein, The bottom end of the inner wall of the support (1) is fixed with a discharging box (9) below the mold body (2), the discharging box (9) is provided with a discharging plate (10) inside, the top end of the discharging plate (10) is fixed with a rubber pad (11), the discharging plate (10) is connected with the discharging box (9) through a sliding assembly (12), and the inside of the discharging box (9) is provided with a buffer assembly (13) connected with the discharging plate (10).
5. A gold refining process profile die according to claim 4, wherein, The sliding assembly (12) includes second sliding blocks (121) fixedly arranged on both sides of the discharging plate (10), and the inner walls of the discharging box (9) are provided with second sliding grooves (122) for sliding of the second sliding blocks (121) on both sides.
6. A gold refining process profile die according to claim 5, wherein, The buffer assembly (13) includes buffer rods (131) hingedly arranged on both sides of the bottom end of the discharging plate (10), the bottom end of the two buffer rods (131) is hingedly connected with a third sliding block (132), the bottom end of the inner wall of the discharging box (9) is provided with a third sliding groove (133) for sliding of the third sliding block (132), the inner walls of the third sliding grooves (133) are fixedly connected with the third sliding blocks (132) on both sides through dampers (134), and the outer walls of the two dampers (134) are sleeved with springs (135).