Titanium slag quantitative sampling device
By combining a quantitative turntable and a feeding mechanism, the problem of excessive material entering the titanium slag sampling device is solved, achieving accurate quantitative sampling of titanium slag and improving sampling accuracy and practicality.
Patent Information
- Application Number
- CN202422744518.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-11-12
AI Technical Summary
In existing titanium slag sampling devices, during quantitative sampling, excessive amounts of titanium slag can easily enter the device during the movement of the guide plate and bottom plate, resulting in inaccurate sampling and poor practicality.
The system employs a quantitative turntable combined with a feeding mechanism. The material is pre-crushed by a crushing roller, and the rotation of the quantitative turntable is controlled by a motor and an intermittent rotation mechanism. The hydraulic cylinder drives the feeding mechanism to push out a quantitative amount of material, ensuring that the output amount is consistent each time.
This method enables accurate quantitative sampling of titanium slag, avoids the impact of excessively large material on sampling accuracy, and improves the practicality of the sampling device.
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Figure CN223556074U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to titanium slag sampling technical field, concretely relates to a titanium slag quantitative sampling device. BACKGROUND
[0002] Chinese patent, application number 202222844651.1 discloses a kind of nickel-titanium memory alloy production is melted furnace slag quantitative sampling device, by guide plate, bottom plate, motor, chain, linkage and weighing sensor, when sampling, motor output end drives chain rotation by sprocket.Chain rotates and moves guide plate and bottom plate by linkage, so that guide plate moves away and exposes device main body top, while bottom plate closes and shields device main body bottom, so that furnace slag can enter device main body, then furnace slag is weighed by weighing sensor cooperation with pressure plate, when the weight of furnace slag in device main body reaches a certain value, motor output end reverses, so that guide plate moves back and shields device main body top, while bottom plate moves away and exposes device main body bottom, so that sampled furnace slag is unloaded;
[0003] But when the device measures titanium slag by weighing sensor, when the measurement reaches the required quantity, motor controls guide plate and bottom plate to move, but in the process of guide plate and bottom plate moving, titanium slag still continuously enters device main body, so that the required titanium slag in device main body exceeds the quantitative value, accurate titanium slag sampling cannot be achieved, and practicality is poor. UTILITY MODEL CONTENT
[0004] In order to solve the problem of accurate quantitative sampling in the prior art, the utility model provides a titanium slag quantitative sampling device, which uses a quantitative turntable combined with a pushing mechanism to achieve the effect of quantitative conveying and pushing of titanium slag. The specific technical solution is as follows: a titanium slag quantitative sampling device, comprising: a box body, a crushing mechanism is installed at the top end of the box body, a feed hopper is installed at the top end of the crushing mechanism, a rotating groove is formed in the inside of the box body, a feed groove is formed between the rotating groove and the crushing mechanism, an outlet groove is formed at one end of the rotating groove away from the feed groove, a quantitative turntable is rotatably connected in the rotating groove, four quantitative ports are equally formed at the edge of the quantitative turntable, the quantitative ports are matched with the feed groove, a pushing mechanism is arranged in the quantitative port, and a base is installed at the bottom end of the box body.
[0005] Preferably, an outlet plate is installed at the bottom end of the outlet groove, and the outlet plate extends out of the box body.
[0006] Preferably, a motor one is installed at the top end of the box body, and an intermittent rotating mechanism is installed between the motor one and the quantitative turntable.
[0007] Preferably, the intermittent rotating mechanism comprises: a rotating shaft one, a rotating disc, a semicircle block, a protruding block, a grooved wheel and a rotating shaft two, the output end of the motor one is provided with the rotating shaft one, the bottom end of the rotating shaft one is rotatably extended into the inside of the box body, the bottom end of the rotating shaft one is provided with the rotating disc, the bottom end of the rotating disc is respectively provided with the semicircle block and the protruding block, the inside of the box body is rotatably connected with the grooved wheel, the semicircle block and the protruding block are matched with the grooved wheel, the central hole of the grooved wheel is sleeved with the rotating shaft two, and the bottom end of the rotating shaft two is provided with the quantitative rotating disc.
[0008] Preferably, the crushing mechanism comprises: a crushing shell, a protection box, a motor two, a crushing roller, a rotating shaft three and a gear, the top end of the box body is provided with the crushing shell, one side outer wall of the crushing shell is provided with the protection box, the inner wall of the protection box is fixedly provided with the motor two, the inside of the crushing shell is rotatably connected with two rotating shaft threes, the outer wall of the rotating shaft three is sleeved with the crushing roller, the two rotating shaft threes are arranged in parallel, the rotating shaft three is connected with the motor two, the outer wall of the rotating shaft three is sleeved with the gear, and the two gears are meshed.
[0009] Preferably, the pushing mechanism comprises: a push plate, a bottom groove, a sliding rod, a sliding block, a connecting rod and a spring, the quantitative port is slidably connected with the push plate, the bottom end center of the quantitative rotating disc is provided with the bottom groove, four groups of sliding rods are equidistantly arranged on the inner wall of the bottom groove, the number of the sliding rods in each group is two, the outer walls of the two sliding rods are slidably connected with the sliding blocks, the sliding blocks correspond to the push plates, the connecting rods are arranged between the sliding blocks and the push plates, the springs are welded on the inner wall of the bottom groove and the outer side of the connecting rods.
[0010] In addition, the titanium slag quantitative sampling device can further have the following features: the bottom end center of the rotating groove is provided with a mounting seat, the top end of the mounting seat is fixedly provided with a hydraulic cylinder, the mounting seat and the hydraulic cylinder are located in the bottom groove, the output end of the hydraulic cylinder faces the discharging groove, the output end of the hydraulic cylinder is provided with an output shaft, and the end, away from the hydraulic cylinder, of the output shaft is provided with a connecting block.
[0011] In the above technical solution, the connecting block is matched with the sliding block.
[0012] The present invention discloses a quantitative sampling device for titanium slag, which has the following advantages compared with the prior art: The device pre-crushes the material with a crushing roller to avoid the material being too large and not meeting the standard; then the material falls into the quantitative inlet through the feed trough, and the quantitative turntable is rotated by a motor and an intermittent rotating mechanism. Then, the pushing mechanism is moved by a hydraulic cylinder to push the material out of the quantitative inlet, so that the quantitative material is discharged through the discharge trough and discharge plate, ensuring that the discharge is the same amount each time, which is highly practical. Attached Figure Description
[0013] Figure 1 A three-dimensional structural schematic diagram of the titanium slag quantitative sampling device provided by this utility model;
[0014] Figure 2 A cross-sectional schematic diagram of the titanium slag quantitative sampling device provided by this utility model;
[0015] Figure 3 for Figure 2 Enlarged view of point A;
[0016] Figure 4 A top view of the quantitative turntable provided by this utility model;
[0017] Figure 5 A schematic diagram of the intermittent rotation mechanism provided by this utility model;
[0018] in, Figures 1 to 5 The reference numerals and component names in the attached drawings are as follows: 1. Box body, 2. Crushing mechanism, 3. Feed hopper, 4. Rotating groove, 5. Metering turntable, 6. Metering port, 7. Feed groove, 8. Pushing mechanism, 9. Discharge groove, 10. Discharge plate, 11. Motor one, 12. Intermittent rotation mechanism, 13. Base, 14. Mounting seat, 15. Hydraulic cylinder, 16. Output shaft, 17. Connecting block, 21. Crushing shell, 22. Protective box, 23. Motor two, 24. Crushing roller, 25. Rotating shaft three, 26. Gear, 81. Push plate, 82. Bottom groove, 83. Slide rod, 84. Slider, 85. Connecting rod, 86. Spring, 121. Rotating shaft one, 122. Turntable, 123. Semicircular block, 124. Protrusion, 125. Grooved wheel, 126. Rotating shaft two. Detailed Implementation
[0019] The following are specific implementation cases and appendices. Figures 1-5The utility model makes further explanation to the utility model, but the utility model is not limited to these embodiments, the utility model provides a technical scheme: a titanium slag quantitative sampling device, include: box 1, the top of box 1 is equipped with the broken material mechanism 2, the top of broken material mechanism 2 is equipped with feed hopper 3, the inside of box 1 is equipped with rotary groove 4, and the rotary groove 4 is equipped with feed slot 7 between broken material mechanism 2, and feed hopper 3, broken material mechanism 2 and feed slot 7 are communicated, and the end of rotary groove 4 away from feed slot 7 is equipped with discharge slot 9, and discharge slot 9 is arranged along the vertical direction, and rotary groove 4 is rotatably connected with the quantitative turntable 5, and four quantitative ports 6 are equidistantly equipped at the edge of quantitative turntable 5, and quantitative port 6 is adapted to feed slot 7, and pusher mechanism 8 is arranged in quantitative port 6, and the bottom of box 1 is equipped with base 13 at four corners, and the height of box 1 is improved by setting base 13, and it is convenient to place the collection box.
[0020] As a preferred scheme, further, the bottom of discharge slot 9 is equipped with discharge plate 10, and discharge plate 10 extends out of box 1.
[0021] As a preferred scheme, further, the top of box 1 is equipped with motor one 11, and intermittent rotation mechanism 12 is installed between motor one 11 and quantitative turntable 5.
[0022] As a preferred scheme, further, intermittent rotation mechanism 12 includes: shaft one 121, turntable 122, semicircle block 123, protruding block 124, grooved wheel 125 and shaft two 126, the output end of motor one 11 is equipped with shaft one 121, the connecting place of shaft one 121 and box 1 is connected through bearing, the bottom of shaft one 121 is rotatably extended into the inside of box 1, the bottom of shaft one 121 is equipped with turntable 122, the bottom of turntable 122 is respectively equipped with semicircle block 123 and protruding block 124, the inside of box 1 is rotatably connected with grooved wheel 125, four grooves are equipped in grooved wheel 125, semicircle block 123 and protruding block 124 are adapted to grooved wheel 125, semicircle block 123 is fitted with the arc surface of grooved wheel 125, protruding block 124 cooperates with the slot of grooved wheel 125, the center hole of grooved wheel 125 is sleeved with shaft two 126, the connecting place of shaft two 126 and box 1 is connected through bearing, and the bottom of shaft two 126 is equipped with quantitative turntable 5.
[0023] As a preferred scheme, further, the crushing mechanism 2 comprises: a crushing shell 21, a protection box 22, a motor two 23, a crushing roller 24, a rotating shaft three 25 and a gear 26, the crushing shell 21 is installed at the top end of the box body 1, the protection box 22 is installed on the outer wall of one side of the crushing shell 21, the motor two 23 is fixedly installed on the inner wall of the protection box 22, two rotating shaft three 25 are rotatably connected in the crushing shell 21, the rotating shaft three 25 is connected through a bearing at the connecting position with the crushing shell 21, the crushing roller 24 is sleeved on the outer wall of the rotating shaft three 25, the two rotating shaft three 25 are arranged in parallel, one rotating shaft three 25 is connected with the motor two 23, the gear 26 is sleeved on the outer wall of the rotating shaft three 25, and the gear 26 is located in the protection box 22.
[0024] As a preferred scheme, further, the pushing mechanism 8 comprises: a push plate 81, a bottom groove 82, a sliding rod 83, a sliding block 84, a connecting rod 85 and a spring 86, the push plate 81 is slidably connected in the quantitative port 6, the bottom groove 82 is formed at the bottom end center of the quantitative turntable 5, four groups of sliding rods 83 are equidistantly installed on the inner wall of the bottom groove 82, the number of sliding rods 83 in each group is two, the sliding blocks 84 are slidably connected on the outer walls of the two sliding rods 83, the sliding blocks 84 correspond to the push plates 81 in one-to-one manner, the connecting rods 85 are installed between the sliding blocks 84 and the push plates 81, the connecting rods 85 are slidably connected with the quantitative turntable 5, the connecting rods 85 are located between the two sliding rods 83, the springs 86 are welded on the inner walls of the bottom groove 82 and the sliding blocks 84, and the springs 86 are sleeved on the outer sides of the connecting rods 85.
[0025] As a preferred scheme, further, the mounting seat 14 is installed at the bottom end center of the rotating groove 4, the hydraulic cylinder 15 is fixedly installed at the top end of the mounting seat 14, the mounting seat 14 and the hydraulic cylinder 15 are located in the bottom groove 82, the output end of the hydraulic cylinder 15 faces the discharging groove 9, the output shaft 16 is installed at the output end of the hydraulic cylinder 15, the connecting block 17 is installed at the end, away from the hydraulic cylinder 15, of the output shaft 16, and the connecting block 17 is opposite to the sliding block 84 near the side of the discharging groove 9.
[0026] The motor one, the hydraulic cylinder, the motor two and the crushing roller are prior art, the motor one and the motor two are the same structure and connection mode in the cited document, as long as the motor one, the hydraulic cylinder, the motor two and the crushing roller meet the requirements of the case and are not limited to a single structure.
[0027] Working principle: the electric appliance element appearing in the application is externally connected with power supply and control switch during use, after the utility model is installed, firstly, the installation and fixation of the utility model and safety protection are checked, and then it can be used, during use, the user puts the material into the feeding hopper 3, and places the collecting box below the discharge plate 10, and then starts the motor two 23, the motor two 23 drives the rotating shaft three 25 and the crushing roller 24 to rotate, through the gear 26 meshing, the crushing roller 24 on both sides rotates reversely to crush the material, the crushed material falls into the quantitative port 6 below through the feeding slot 7, the motor one 11 drives the rotating shaft one 121 to rotate, the rotating shaft one 121 drives the rotating disc 122 to rotate, the rotating disc 122 drives the groove wheel 125 to rotate intermittently through the semicircular block 123 and the convex block 124, the groove wheel 125 drives the rotating shaft two 126 to rotate, the rotating shaft two 126 drives the quantitative rotating disc 5 to rotate 90 degrees, when the quantitative port 6 filled with material rotates 180 degrees, the hydraulic cylinder 15 drives the output shaft 16 to move, the output shaft 16 and the connecting block 17 extrude the sliding block 84, the sliding block 84 drives the connecting rod 85 to move, the connecting rod 85 drives the push plate 81 to move, the push plate 81 pushes the material in the quantitative port 6 into the discharge slot 9 and falls into the collecting box through the discharge plate 10, the sliding block 84 extrudes the spring 86, and then the motor one 11 continues to drive the quantitative rotating disc 5 to rotate, when the sliding block 84 is separated from the connecting block 17, the spring 86 rebounds the sliding block 84, the sliding block 84 drives the connecting rod 85 and the push plate 81 to move back, so that the next round of feeding is facilitated, and the utility model has high practicability.
[0028] In the description of the utility model, the term "a plurality of" refers to two or more than two, unless otherwise explicitly limited, the terms "upper", "lower" and the like indicate the orientation or position relationship based on the orientation or position relationship shown in the drawings, only for the convenience of describing the utility model and simplifying the description, and not indicating or implying that the indicated device or element must have a particular orientation, a particular orientation and operation, therefore, it cannot be understood as a limitation on the utility model, the terms "connection", "installation", "fixation" and the like should be understood broadly, for example, "connection" can be fixed connection, or detachable connection, or integrally connected, which can be directly connected, or indirectly connected through an intermediate medium.
[0029] The above only describes the preferred embodiments of the utility model, and is not used to limit the utility model, for those skilled in the art, the utility model can have various changes and changes, any modification, equivalent replacement, improvement, etc. within the spirit and principle of the utility model, should be included in the protection scope of the utility model.
Claims
1. A titanium slag quantitative sampling device comprising: The utility model provides a box (1), it is characterized by, the top of box (1) is equipped with the mechanism (2) of crushing material, the top of mechanism (2) of crushing material is equipped with feed hopper (3), the inside of box (1) is equipped with rotary groove (4), rotary groove (4) is equipped with feed groove (7) with mechanism (2) of crushing material, rotary groove (4) is equipped with discharge groove (9) away from feed groove (7) one end, rotary groove (4) is rotatably connected with ration carousel (5), four ration ports (6) are equidistantly equipped with in the edge of ration carousel (5), ration port (6) is matched with feed groove (7), and push mechanism (8) is provided in ration port (6), and the bottom of box (1) four corners is equipped with base (13).
2. The titanium slag quantitative sampling device according to claim 1, characterized in that, The bottom of discharge groove (9) is equipped with discharge plate (10), and the discharge plate (10) extends out of the box (1).
3. The titanium slag quantitative sampling device according to claim 1, characterized in that, The top of box (1) is equipped with motor one (11), and the intermittent rotation mechanism (12) is installed between motor one (11) and ration carousel (5).
4. The titanium slag quantitative sampling device according to claim 3, characterized in that, The intermittent rotation mechanism (12) comprises a shaft one (121), a rotating disc (122), a semicircle block (123), a protruding block (124), a grooved wheel (125) and a shaft two (126), the output end of the motor one (11) is provided with the shaft one (121), the bottom of the shaft one (121) is rotatably extended into the inside of the box (1), the bottom of the shaft one (121) is provided with the rotating disc (122), the bottom of the rotating disc (122) is respectively provided with the semicircle block (123) and the protruding block (124), the inside of the box (1) is rotatably connected with the grooved wheel (125), the semicircle block (123) and the protruding block (124) are matched with the grooved wheel (125), the shaft two (126) is sleeved in the center hole of the grooved wheel (125), and the bottom of the shaft two (126) is provided with the ration carousel (5).
5. The titanium slag quantitative sampling device according to claim 1, characterized in that, The mechanism (2) of crushing material comprises a crushing shell (21), a protection box (22), a motor two (23), a crushing roller (24), a shaft three (25) and a gear (26), the top of the box (1) is provided with the crushing shell (21), one side of the outer wall of the crushing shell (21) is provided with the protection box (22), the inner wall of the protection box (22) is fixedly provided with the motor two (23), the inside of the crushing shell (21) is rotatably connected with two shaft threes (25), the outer wall of the shaft three (25) is sleeved with the crushing roller (24), the two shaft threes (25) are arranged in parallel, one of the shaft threes (25) is connected with the motor two (23), the outer wall of the shaft three (25) is sleeved with the gear (26), and the two gears (26) are engaged.
6. The titanium slag quantitative sampling device according to claim 1, characterized in that, The pushing mechanism (8) comprises a pushing plate (81), a bottom groove (82), a sliding rod (83), a sliding block (84), a connecting rod (85) and a spring (86), the pushing plate (81) is slidably connected in the quantitative port (6), a bottom groove (82) is arranged at the bottom end center of the quantitative rotary disc (5), four groups of sliding rods (83) are equidistantly arranged on the inner wall of the bottom groove (82), the number of sliding rods (83) in each group is two, sliding blocks (84) are slidably connected on the outer walls of the two sliding rods (83), the sliding blocks (84) correspond to the pushing plates (81) one by one, connecting rods (85) are arranged between the sliding blocks (84) and the pushing plates (81), springs (86) are welded on the inner wall of the bottom groove (82) and the sliding blocks (84), and the springs (86) are sleeved on the outer sides of the connecting rods (85).
7. The titanium slag quantitative sampling device according to claim 6, characterized in that, A mounting seat (14) is arranged at the bottom end center of the rotating groove (4), a hydraulic cylinder (15) is fixedly arranged at the top end of the mounting seat (14), the mounting seat (14) and the hydraulic cylinder (15) are located in the bottom groove (82), the output end of the hydraulic cylinder (15) faces the discharging groove (9), an output shaft (16) is arranged on the output end of the hydraulic cylinder (15), a connecting block (17) is arranged on the end of the output shaft (16) away from the hydraulic cylinder (15), and the connecting block (17) is matched with the sliding block (84).
Citation Information
Patent Citations
Smelting slag quantitative sampling device for nickel-titanium memory alloy production
CN218725409U