Metal material detection platform with defective waste cleaning and recycling structure and use method
By designing clamping components with clamping positioning and buffering functions, as well as automatically cleaning and recycling of defective waste, the existing metal material detection platform is solved, and more efficient metal material detection and defective waste treatment are achieved.
Patent Information
- Application Number
- CN202510162847.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-02-14
AI Technical Summary
The existing metal material detection platform lacks a clamping positioning structure that is easy to adjust and buffer, and cannot automatically clean and recycle defective waste, affecting the detection efficiency.
A metal material detection platform including a detection table, a clamping assembly and a buffer assembly is designed. The clamping assembly is clamped by an electric telescopic rod and a shift plate, and the buffer assembly provides buffering through a spring telescopic column and a clamp. At the same time, cleaning boxes, push components, crushing components and bullet mount components are set up to realize automatic crushing cleaning and recycling of defective waste.
It improves the accuracy and efficiency of metal material detection. Through convenient clamping and positioning and automatic cleaning and recycling functions, the reliability of test results and the processing efficiency of defective waste are improved.
Smart Images

Figure CN119936339A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of metal material detection, and in particular relates to a metal material detection platform with a defective waste material cleaning and recycling structure and a use method thereof. Background Art
[0002] The scope of metal material testing involves mechanical property testing, chemical composition analysis, metallographic analysis, precision dimensional measurement, non-destructive testing, corrosion resistance testing and environmental simulation testing of ferrous metals, non-ferrous metals, mechanical equipment and parts.
[0003] The existing metal material testing platform with a defective waste cleaning and recycling structure has the following disadvantages when in use: 1. The metal material testing platform does not have a clamping and positioning structure that is easy to adjust and has buffering capabilities, which brings inconvenience to the strength or composition analysis of metal materials, thus affecting the results of the test; 2. It is impossible to automatically crush and clean the defective waste materials detected by it, which affects the processing efficiency of the defective waste materials and is not conducive to the use of detection operations. Summary of the invention
[0004] The purpose of the present invention is to provide a metal material detection platform and a method for using the existing defective waste cleaning and recycling structure, and the advantages are: The metal material testing platform is equipped with a clamping and positioning structure that is easy to adjust and has buffering capabilities, thereby ensuring convenience in testing the strength or composition analysis of metal materials, thereby improving the test results; The detected defective waste can be automatically crushed, cleaned and recycled, thereby improving the processing efficiency of the defective waste, which is beneficial to the use of detection operations.
[0005] The above-mentioned technical purpose of the present invention is achieved through the following technical solutions: a metal material testing platform with a defective waste cleaning and recycling structure and a method of using the same, comprising a testing platform, a cleaning box bolted to the bottom of the testing platform, a clamping assembly is arranged on the rear side of the top of the testing platform, a buffer assembly is arranged on the inner side of the clamping assembly, a pushing assembly is arranged on the rear side of the clamping assembly, a row slot is provided on the front side of the top of the testing platform, a shielding assembly is arranged on the front side of the top of the testing platform, the shielding assembly is located on the outside of the row slot, auxiliary falling assemblies are arranged on the front and rear sides of the top side of the cleaning box, a crushing assembly is arranged inside the cleaning box, an ejection assembly is arranged on the bottom side of the cleaning box, an outlet slot is provided at the bottom of the right side of the cleaning box, the left side of the outlet slot is located on the right side of the ejection assembly, a loading and unloading assembly is arranged at the bottom of the right side of the cleaning box, and the loading and unloading assembly is located at the bottom of the outlet slot.
[0006] By adopting the above technical scheme, by setting up a testing table, a clamping component and a buffer component, the metal material to be tested is placed on the top of the testing table, and the metal material is located on the inner side of the clamping component, and then the clamping component is started to clamp the metal material, and the buffer component located inside the clamping component completes the clamping and positioning of the metal material, and also realizes the buffering use of the clamping and positioning of the metal material, thereby ensuring convenience in the strength or composition analysis of the metal material, so as to improve the test results, by setting up a cleaning box, a pushing component, a row slot, a shielding component, an auxiliary falling component, a crushing component, a spring discharge component, a discharge slot and a loading and discharge component, when the metal material located inside the buffer component is detected as defective waste, the buffer component located at the rear side of the clamping component is started The pushing component pushes the metal material to the position of the discharge slot, and then under the protection of the shielding component, the metal material falls into the cleaning box through the discharge slot, and then the metal material is received by the auxiliary falling components located at the front and rear sides of the cleaning box and slides to the top of the crushing component, and then the metal waste is crushed by the started crushing component, and then the metal waste falls to the surface of the ejection component after being crushed, so that the ejection component bounces under the impact of the metal waste, and then the crushed metal waste is quickly discharged to the surface of the loading and discharging component through the outlet slot, and then the metal waste is completely discharged from the cleaning box through the loading and discharging component, and then it can be collected and recycled. The overall processing efficiency of its defective waste is improved to facilitate the use of detection operations.
[0007] The present invention is further configured as follows: the clamping assembly includes a fixed plate, an electric telescopic rod and a movable plate, the fixed plate is bolted to the right side of the rear side of the top of the detection platform, the electric telescopic rod is bolted to the rear side of the top of the fixed plate, the movable plate is bolted to the telescopic end of the electric telescopic rod, and the bottom of the movable plate is slidably connected to the top of the detection platform.
[0008] By adopting the above technical solution, a fixed plate, an electric telescopic rod and a movable plate are set up, and the metal material to be tested is placed on the top of the testing table, and the metal material is located on the inner side of the fixed plate and the movable plate. Then, the movable plate is pulled by starting the electric telescopic rod to clamp the metal material.
[0009] The present invention is further configured as follows: the buffer assembly includes a first spring telescopic column and a clamping plate, the first spring telescopic column is bolted to the front and rear sides of the inner sides of the fixed plate and the movable plate respectively, and the clamping plate is bolted to the inner side of the first spring telescopic column.
[0010] By adopting the above technical solution, by setting a first spring telescopic column and a clamp, when the movable plate moves, the first spring telescopic column located inside the movable plate and the fixed plate cooperates with the clamp to clamp and position the metal material, and also realizes the buffering use of the clamping and positioning of the metal material, thereby ensuring convenience in the detection work such as strength or composition analysis of metal materials, thereby improving the detection results.
[0011] The present invention is further configured as follows: the pushing assembly includes a supporting plate, an electric push rod and a push plate, the supporting plate is bolted to the rear side of the shift plate, the electric push rod is bolted to the rear side of the supporting plate, the telescopic end of the electric push rod passes through the rear side of the supporting plate, and the push plate is bolted to the front side of the electric push rod.
[0012] By adopting the above technical solution, by setting up a carrying plate, an electric push rod and a push plate, when the metal material inside the clamp is detected to be defective waste, the electric push rod located on the rear side of the carrying plate is started to push the push plate to push the metal material to the position of the discharge slot for use.
[0013] The present invention is further configured as follows: the shielding assembly includes a shielding frame and a protective pad, the shielding frame is bolted to the front side of the top of the detection platform, the shielding frame is located outside the row slot, and the protective pad is bonded to the inside of the shielding frame.
[0014] By adopting the above technical solution, a shielding frame and a protective pad are set up, and the shielding frame located outside the discharge slot cooperates with the protective pad to shield the metal waste pushed by the push plate, so that the metal waste falls into the inside of the cleaning box through the discharge slot.
[0015] The present invention is further configured as follows: the auxiliary falling assembly includes a connecting plate and an inclined plate, the connecting plate is bolted to the front side and the rear side of the cleaning box respectively, and the inclined plate is welded to the bottom of the connecting plate.
[0016] By adopting the above technical solution, by setting connecting plates and inclined plates, the metal waste that falls into the cleaning box can slide downward under the support of the connecting plates connected to the front and rear inclined plates inside the cleaning box, thereby ensuring the stability of the metal waste when it falls.
[0017] The present invention is further configured as follows: the crushing assembly includes a motor, a main gear, a secondary gear, a main crushing shaft and a secondary crushing shaft, the motor is bolted to the left side of the cleaning box, the main gear is bolted to the output end of the motor, the right side of the main gear is rotatably connected to the left side of the cleaning box and passes through, the secondary gear is rotatably connected to the rear side of the cleaning box, the secondary gear is meshed with the main gear, the right side of the main crushing shaft is rotatably connected to the right side inside the cleaning box, the left side of the main crushing shaft is bolted to the right side of the main gear, the left side of the secondary crushing shaft is bolted to the right side of the secondary gear, and the right side of the secondary crushing shaft is rotatably connected to the right side inside the cleaning box.
[0018] By adopting the above technical scheme, a motor, a main gear, a secondary gear, a main crushing shaft and a secondary crushing shaft are set, and the metal material waste slides to the inner side of the main crushing shaft and the secondary crushing shaft after the inclined plate slides. In this process, the main gear and the secondary gear are driven by the started motor, so that the main gear and the secondary gear respectively drive the main crushing shaft and the secondary crushing shaft to realize the crushing of the metal material waste.
[0019] The present invention is further configured as follows: the ejection assembly includes a solid block, a second spring telescopic column and a slag sliding plate, the solid block is bolted to the front and rear sides of both sides inside the cleaning box respectively, the second spring telescopic column is bolted to the top of the solid block, the slag sliding plate is bolted to the top of the second spring telescopic column, and the slag sliding plate is located on the left side of the outlet groove.
[0020] By adopting the above technical scheme, by setting a solid block, a second spring telescopic column and a slag sliding plate, the crushed metal material waste falls onto the surface of the slag sliding plate and impacts the slag sliding plate, thereby generating a bounce under the cooperation of the solid block and the second spring telescopic column at the bottom of the slag sliding plate, and then the crushed metal material waste is quickly discharged through the outlet groove.
[0021] The present invention is further configured as follows: the loading and discharging assembly includes a lower slag plate and a baffle, the lower slag plate is bolted to the bottom of the cleaning box, the lower slag plate is located at the bottom of the outlet trough, and the baffle is bolted to the front and rear sides of the top of the lower slag plate respectively.
[0022] By adopting the above technical solution, through setting up a lower slag plate and a baffle, the metal material waste passing through the outlet trough is discharged to the surface of the lower slag plate, and then under the cover of the baffle, the metal material waste is completely discharged from the interior of the cleaning box, and then collected and recycled. The overall processing efficiency of its defective waste is improved to facilitate the use of detection operations.
[0023] A method for using a metal material testing platform with a defective waste cleaning and recycling structure comprises the following steps: S1. Clamping and positioning during metal material testing: place the metal material to be tested on the top of the testing table, and make the metal material located inside the clamping assembly. Then, start the clamping assembly to clamp the metal material, and make the buffer assembly inside the clamping assembly complete the clamping and positioning of the metal material. At the same time, it also realizes the buffering of the clamping and positioning of the metal material, so as to ensure the convenience of strength or composition analysis of the metal material, so as to improve the test results. S2. Cleaning and recycling of waste metal materials. When the metal material located inside the buffer component is detected to be defective waste, the pushing component located at the rear side of the clamping component is started to push the metal material to the position of the discharge slot, and then the metal material is allowed to fall into the cleaning box through the discharge slot under the shielding and protection of the shielding component. Then the metal material is received by the auxiliary falling components located at the front and rear sides of the cleaning box and slides to the top of the crushing component. Then the started crushing component is used to crush the waste metal material, and then the crushed waste metal material falls to the surface of the ejection component, so that the ejection component bounces under the impact of the waste metal material, and then the crushed waste metal material is quickly discharged through the discharge slot to the surface of the loading and unloading component. Then the waste metal material is completely discharged from the cleaning box through the loading and unloading component, and then it can be collected and recycled. The overall processing efficiency of its defective waste is improved to facilitate the use of detection operations.
[0024] In summary, the present invention has the following beneficial effects: By setting up a testing platform, a clamping assembly and a buffer assembly, the metal material to be tested is placed on the top of the testing platform, and the metal material is located inside the clamping assembly. Then, the clamping assembly is started to clamp the metal material, and the buffer assembly inside the clamping assembly completes the clamping and positioning of the metal material. At the same time, the buffering of the clamping and positioning of the metal material is also realized, thereby ensuring convenience in the strength or composition analysis of the metal material, thereby improving the test results. By setting a cleaning box, a pushing component, a discharge slot, a shielding component, an auxiliary falling component, a crushing component, a ejection component, an outlet slot and a loading and unloading component, when the metal material located inside the buffer component is detected to be defective waste, the pushing component located at the rear side of the clamping component is started to push the metal material to the position of the discharge slot, and then the metal material is allowed to fall into the cleaning box through the discharge slot under the shielding and protection of the shielding component, and then the metal material is received by the auxiliary falling component located at the front and rear sides of the cleaning box and slides to the top of the crushing component, and then the started crushing component is used to crush the metal waste, and then the metal waste is crushed and falls to the surface of the ejection component, so that the ejection component bounces under the impact of the metal waste, and then the crushed metal waste is quickly discharged to the surface of the loading and unloading component through the outlet slot, and then the metal waste is completely discharged from the cleaning box through the loading and unloading component, and then it can be collected and recycled, thereby improving the overall processing efficiency of its defective waste, which is convenient for the use of detection operations. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the internal structure of the cleaning box in the present invention; Figure 3 It is a schematic diagram of the structure of the clamping assembly in the present invention; Figure 4 It is a schematic diagram of the structure of the buffer assembly in the present invention; Figure 5 It is a schematic diagram of the push component structure in the present invention; Figure 6 is a schematic diagram of the structure of the shielding component in the present invention; Figure 7 It is a schematic diagram of the structure of the auxiliary falling component in the present invention; Figure 8 It is a schematic diagram of the structure of the crushing component in the present invention; Fig. 9 It is a schematic diagram of the structure of the elastic assembly in the present invention; Fig.10 It is a schematic diagram of the structure of the carrier assembly in the present invention; Fig.11 It is a schematic diagram of the method of the present invention.
[0026] 1. Inspection table; 2. Cleaning box; 3. Clamping assembly; 301. Fixed plate; 302. Electric telescopic rod; 303. Moving plate; 4. Buffer assembly; 401. First spring telescopic column; 402. Clamping plate; 5. Pushing assembly; 501. Loading plate; 502. Electric push rod; 503. Pushing plate; 6. Slot; 7. Shielding assembly; 701. Shielding frame; 702. Protective pad; 8. Auxiliary falling assembly; 801. Connecting plate; 802. Inclined plate; 9. Crushing assembly; 901. Motor; 902. Main gear; 903. Secondary gear; 904. Main crushing shaft; 905. Secondary crushing shaft; 10. Ejection assembly; 1001. Solid block; 1002. Second spring telescopic column; 1003. Slag sliding plate; 11. Slot; 12. Loading assembly; 1201. Lower slag plate; 1202. Baffle. DETAILED DESCRIPTION
[0027] The present invention is further described in detail below in conjunction with the accompanying drawings. Example
[0028] refer to Figure 1-4A metal material testing platform with a defective waste cleaning and recycling structure includes a testing table 1, a clamping component 3 is arranged on the rear side of the top of the testing table 1, and a buffer component 4 is arranged on the inner side of the clamping component 3. By arranging the testing table 1, the clamping component 3 and the buffer component 4, the metal material to be tested is placed on the top of the testing table 1, and the metal material is located on the inner side of the clamping component 3, and then the clamping component 3 is started to clamp the metal material, and the buffer component 4 located inside the clamping component 3 completes the clamping and positioning of the metal material, and also realizes the buffering use of the clamping and positioning of the metal material, thereby ensuring convenience in the detection work of strength or composition analysis of the metal material, thereby improving the detection result.
[0029] like Figure 3 As shown, the clamping assembly 3 includes a fixed plate 301, an electric telescopic rod 302 and a movable plate 303. The fixed plate 301 is bolted to the right side of the rear side of the top of the testing platform 1, the electric telescopic rod 302 is bolted to the rear side of the top of the fixed plate 301, and the movable plate 303 is bolted to the telescopic end of the electric telescopic rod 302. The bottom of the movable plate 303 is slidably connected to the top of the testing platform 1. By setting the fixed plate 301, the electric telescopic rod 302 and the movable plate 303, the metal material to be tested is placed on the top of the testing platform 1, and the metal material is located on the inner side of the fixed plate 301 and the movable plate 303. Then, the movable plate 303 is pulled by starting the electric telescopic rod 302 to clamp the metal material.
[0030] like Figure 4 As shown, the buffer assembly 4 includes a first spring telescopic column 401 and a clamping plate 402. The first spring telescopic column 401 is bolted to the front and rear sides of the inner sides of the fixed plate 301 and the movable plate 303, respectively. The clamping plate 402 is bolted to the inner side of the first spring telescopic column 401. By setting the first spring telescopic column 401 and the clamping plate 402, when the movable plate 303 moves, the first spring telescopic column 401 located inside the movable plate 303 and the fixed plate 301 cooperates with the clamping plate 402 to clamp and position the metal material, and also realizes the buffering use of the clamping and positioning of the metal material, thereby ensuring convenience in the detection work such as strength or composition analysis of the metal material, thereby improving the detection results.
[0031] A brief description of the usage process: First, place the metal material to be tested on the top of the testing platform 1, and make the metal material located on the inner side of the fixed plate 301 and the movable plate 303, then start the electric telescopic rod 302 to pull the movable plate 303, and while the movable plate 303 moves toward the position of the metal material, the first spring telescopic column 401 located inside the movable plate 303 and the fixed plate 301 cooperates with the clamping plate 402 to clamp and position the metal material, and also realizes the buffering use of the clamping and positioning of the metal material, thereby ensuring convenience in the detection work such as strength or composition analysis of the metal material, thereby improving the detection results. Example
[0032] refer to Figure 5-10 , a method for using a metal material testing platform with a defective waste cleaning and recycling structure, comprising a cleaning box 2, a cleaning box 2 is bolted to the bottom of a testing platform 1, a buffer component 4 is arranged on the inner side of a clamping component 3, a pushing component 5 is arranged on the rear side of the clamping component 3, a row slot 6 is provided on the front side of the top of the testing platform 1, a shielding component 7 is arranged on the front side of the top of the testing platform 1, and the shielding component 7 is located on the outside of the row slot 6, an auxiliary falling component 8 is arranged on the front and rear sides of the top side of the cleaning box 2, a crushing component 9 is arranged inside the cleaning box 2, and an ejection component 10 is arranged on the bottom side of the cleaning box 2, an outlet slot 11 is provided at the bottom of the right side of the cleaning box 2, and the left side of the outlet slot 11 is located on the right side of the ejection component 10, and a loading and discharging component 12 is arranged at the bottom of the right side of the cleaning box 2, and the loading and discharging component 12 is located at the bottom of the outlet slot 11. By arranging the cleaning box 2, the pushing component 5, the row slot 6, the shielding component 7, the auxiliary falling component 8, the crushing component 9, the ejection component 10, the outlet slot 11 and the loading and discharging component 12, when the cleaning box 2, the pushing component 5, the row slot 6, the shielding component 7, the auxiliary falling component 8, the crushing component 9, the ejection component 10, the outlet slot 11 and the loading and discharging component 12 are When the metal material located inside the buffer component 4 is detected to be defective waste, the pushing component 5 located at the rear side of the clamping component 3 is started to push the metal material to the position of the discharge slot 6, and then the metal material is shielded and protected by the shielding component 7 so that the metal material passes through the discharge slot 6 and falls into the interior of the cleaning box 2. Then the metal material is received and slides to the top of the crushing component 9 by the auxiliary falling component 8 located at the front and rear sides of the cleaning box 2, and then the metal material waste is crushed by the started crushing component 9, and then the metal material waste falls to the surface of the ejection component 10 after being crushed, so that the ejection component 10 bounces under the impact of the metal material waste, and then the crushed metal material waste is quickly discharged through the outlet slot 11 to the surface of the loading and discharging component 12, and then the metal material waste is completely discharged from the interior of the cleaning box 2 through the loading and discharging component 12, and can be collected and recycled later. The overall processing efficiency of its defective waste is improved to facilitate the use of detection operations.
[0033] like Figure 5As shown, the pushing assembly 5 includes a supporting plate 501, an electric push rod 502 and a pushing plate 503. The supporting plate 501 is bolted to the rear side of the shifting plate 303, the electric push rod 502 is bolted to the rear side of the supporting plate 501, the telescopic end of the electric push rod 502 passes through the rear side of the supporting plate 501, and the pushing plate 503 is bolted to the front side of the electric push rod 502. By arranging the supporting plate 501, the electric push rod 502 and the pushing plate 503, when the metal material located inside the clamping plate 402 is detected to be defective waste, the electric push rod 502 located on the rear side of the supporting plate 501 is started to push the pushing plate 503 to push the metal material to the position of the row groove 6 for use.
[0034] like Figure 6 As shown, the shielding assembly 7 includes a shielding frame 701 and a protective pad 702. The shielding frame 701 is bolted to the front side of the top of the testing platform 1, the shielding frame 701 is located on the outside of the row slot 6, and the protective pad 702 is bonded to the inner side of the shielding frame 701. By setting the shielding frame 701 and the protective pad 702, the shielding frame 701 located on the outside of the row slot 6 cooperates with the protective pad 702 to shield the metal material waste pushed by the push plate 503, so that the metal material waste passes through the row slot 6 and falls into the interior of the cleaning box 2.
[0035] like Figure 7 As shown, the auxiliary falling component 8 includes a connecting plate 801 and an inclined plate 802. The connecting plate 801 is bolted to the front and rear sides of the cleaning box 2 respectively, and the inclined plate 802 is welded to the bottom of the connecting plate 801. By setting the connecting plate 801 and the inclined plate 802, the metal waste material that falls into the cleaning box 2 is supported by the connecting plate 801 connected to the inclined plates 802 on the front and rear sides of the cleaning box 2 and slides downward, thereby ensuring the stability of the metal waste material when it falls.
[0036] like Figure 8As shown, the crushing assembly 9 includes a motor 901, a main gear 902, a secondary gear 903, a main crushing shaft 904 and a secondary crushing shaft 905. The motor 901 is bolted to the left side of the cleaning box 2, the main gear 902 is bolted to the output end of the motor 901, the right side of the main gear 902 is rotatably connected to the left side of the cleaning box 2 and passes through, the secondary gear 903 is rotatably connected to the rear side of the cleaning box 2, the secondary gear 903 is meshed with the main gear 902, the right side of the main crushing shaft 904 is rotatably connected to the right side inside the cleaning box 2, the left side of the main crushing shaft 904 is bolted to the right side of the main gear 902, and the left side of the secondary crushing shaft 905 is connected to the The right side of the secondary gear 903 is bolted, and the right side of the secondary crushing shaft 905 is rotatably connected to the right side inside the cleaning box 2. By setting the motor 901, the main gear 902, the secondary gear 903, the main crushing shaft 904 and the secondary crushing shaft 905, the metal waste sliding through the inclined plate 802 slides to the inner side of the main crushing shaft 904 and the secondary crushing shaft 905. In this process, the started motor 901 drives the main gear 902 and the secondary gear 903, so that the main gear 902 and the secondary gear 903 respectively drive the main crushing shaft 904 and the secondary crushing shaft 905 to realize the crushing of the metal waste.
[0037] like Fig. 9 As shown, the ejection assembly 10 includes a solid block 1001, a second spring telescopic column 1002 and a slag slide plate 1003. The solid block 1001 is bolted to the front and rear sides of both sides of the inside of the cleaning box 2, respectively. The second spring telescopic column 1002 is bolted to the top of the solid block 1001. The slag slide plate 1003 is bolted to the top of the second spring telescopic column 1002. The slag slide plate 1003 is located on the left side of the outlet slot 11. By arranging the solid block 1001, the second spring telescopic column 1002 and the slag slide plate 1003, the crushed metal material waste falls onto the surface of the slag slide plate 1003 and impacts the slag slide plate 1003, thereby generating an elastic movement under the cooperation of the solid block 1001 and the second spring telescopic column 1002 at the bottom of the slag slide plate 1003, and then the crushed metal material waste is quickly discharged through the outlet slot 11.
[0038] like Fig.10 As shown, the loading and discharging assembly 12 includes a lower slag plate 1201 and a baffle 1202, the lower slag plate 1201 is bolted to the bottom of the cleaning box 2, the lower slag plate 1201 is located at the bottom of the outlet trough 11, and the baffle 1202 is bolted to the front and rear sides of the top of the lower slag plate 1201, respectively. By setting the lower slag plate 1201 and the baffle 1202, the metal material waste passing through the outlet trough 11 is discharged to the surface of the lower slag plate 1201, and then the metal material waste is completely discharged from the interior of the cleaning box 2 under the cover of the baffle 1202, and can be collected and recycled later, thereby improving the overall processing efficiency of its defective waste, which is convenient for the use of detection operations.
[0039] A brief description of the use process: First, when the metal material located inside the clamping plate 402 is detected as defective waste, the electric push rod 502 located on the rear side of the carrying plate 501 is started to push the push plate 503 to push the metal material to the position of the row slot 6, and then the shielding frame 701 located outside the row slot 6 cooperates with the protective pad 702 to shield the metal waste pushed by the push plate 503, so that the metal waste passes through the row slot 6 and falls into the cleaning box 2. Then, the metal waste that falls into the cleaning box 2 is supported by the connecting plate 801 connected to the front and rear inclined plates 802 inside the cleaning box 2 and slides downward. Then, the metal waste that slides through the inclined plate 802 slides to the inner side of the main crushing shaft 904 and the secondary crushing shaft 905. In this process, the electric push rod 502 is started. The machine 901 drives the main gear 902 and the secondary gear 903, so that the main gear 902 and the secondary gear 903 respectively drive the main crushing shaft 904 and the secondary crushing shaft 905 to crush the metal waste, and then the crushed metal waste falls to the surface of the slag sliding plate 1003 and impacts the slag sliding plate 1003, so that the solid block 1001 at the bottom of the slag sliding plate 1003 and the second spring telescopic column 1002 cooperate to produce a bounce, and then the crushed metal waste is quickly discharged through the outlet groove 11 to the surface of the lower slag plate 1201, and then the metal waste is completely discharged from the interior of the cleaning box 2 under the cover of the baffle 1202, and can be collected and recycled later, thereby improving the overall processing efficiency of its defective waste, which is convenient for the use of detection operations.
[0040] This specific embodiment is merely an explanation of the present invention and is not a limitation of the present invention. After reading this specification, those skilled in the art may make non-creative modifications to the present embodiment as needed. However, as long as they are within the scope of the claims of the present invention, they are protected by the patent law.
Claims
1. A metal material testing platform with a defective waste cleaning and recycling structure, comprising a testing platform (1), characterized in that: A cleaning box (2) is bolted to the bottom of the detection platform (1); a clamping assembly (3) is arranged on the rear side of the top of the detection platform (1); a buffer assembly (4) is arranged on the inner side of the clamping assembly (3); a pushing assembly (5) is arranged on the rear side of the clamping assembly (3); a row slot (6) is provided on the front side of the top of the detection platform (1); a shielding assembly (7) is arranged on the front side of the top of the detection platform (1); the shielding assembly (7) is located on the outer side of the row slot (6); auxiliary falling assemblies (8) are arranged on the front and rear sides of the top side of the cleaning box (2); a crushing assembly (9) is arranged inside the cleaning box (2); an ejection assembly (10) is arranged on the bottom side of the cleaning box (2); an outlet slot (11) is arranged on the bottom of the right side of the cleaning box (2); the left side of the outlet slot (11) is located on the right side of the ejection assembly (10); a loading assembly (12) is arranged on the bottom of the right side of the cleaning box (2); the loading assembly (12) is located at the bottom of the outlet slot (11).
2. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1 is characterized by: The clamping assembly (3) comprises a fixed plate (301), an electric telescopic rod (302) and a moving plate (303); the fixed plate (301) is bolted to the right side of the rear side of the top of the testing platform (1); the electric telescopic rod (302) is bolted to the rear side of the top of the fixed plate (301); the moving plate (303) is bolted to the telescopic end of the electric telescopic rod (302); and the bottom of the moving plate (303) is slidably connected to the top of the testing platform (1).
3. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 2 is characterized by: The buffer assembly (4) comprises a first spring telescopic column (401) and a clamping plate (402); the first spring telescopic column (401) is bolted to the front and rear sides of the inner sides of the fixed plate (301) and the movable plate (303), respectively; and the clamping plate (402) is bolted to the inner side of the first spring telescopic column (401).
4. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 2 is characterized by: The pushing assembly (5) comprises a bearing plate (501), an electric push rod (502) and a pushing plate (503); the bearing plate (501) is bolted to the rear side of the shifting plate (303); the electric push rod (502) is bolted to the rear side of the bearing plate (501); the telescopic end of the electric push rod (502) passes through the rear side of the bearing plate (501); and the pushing plate (503) is bolted to the front side of the electric push rod (502).
5. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1 is characterized by: The shielding assembly (7) comprises a shielding frame (701) and a protective pad (702); the shielding frame (701) is bolted to the front side of the top of the detection platform (1); the shielding frame (701) is located outside the row slot (6); and the protective pad (702) is bonded to the inside of the shielding frame (701).
6. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1 is characterized by: The auxiliary drop assembly (8) comprises a connecting plate (801) and an inclined plate (802), wherein the connecting plate (801) is bolted to the front side and the rear side of the cleaning box (2) respectively, and the inclined plate (802) is welded to the bottom of the connecting plate (801).
7. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1 is characterized by: The crushing assembly (9) comprises a motor (901), a main gear (902), a secondary gear (903), a main crushing shaft (904) and a secondary crushing shaft (905); the motor (901) is bolted to the left side of the cleaning box (2); the main gear (902) is bolted to the output end of the motor (901); the right side of the main gear (902) is rotatably connected to the left side of the cleaning box (2) and passes through; the secondary gear (903) is rotatably connected to the rear side of the cleaning box (2); the secondary gear (903) meshes with the main gear (902); the right side of the main crushing shaft (904) is rotatably connected to the right side inside the cleaning box (2); the left side of the main crushing shaft (904) is bolted to the right side of the main gear (902); the left side of the secondary crushing shaft (905) is bolted to the right side of the secondary gear (903); and the right side of the secondary crushing shaft (905) is rotatably connected to the right side inside the cleaning box (2).
8. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1 is characterized by: The ejection assembly (10) comprises a solid block (1001), a second spring telescopic column (1002) and a slag sliding plate (1003); the solid block (1001) is bolted to the front and rear sides of the inside of the cleaning box (2), respectively; the second spring telescopic column (1002) is bolted to the top of the solid block (1001); the slag sliding plate (1003) is bolted to the top of the second spring telescopic column (1002); and the slag sliding plate (1003) is located on the left side of the outlet groove (11).
9. The metal material testing platform with a defective waste cleaning and recycling structure according to claim 1, characterized in that: The loading and discharging assembly (12) comprises a lower slag plate (1201) and a baffle (1202), wherein the lower slag plate (1201) is bolted to the bottom of the cleaning box (2), the lower slag plate (1201) is located at the bottom of the outlet trough (11), and the baffle (1202) is bolted to the front and rear sides of the top of the lower slag plate (1201), respectively.
10. A method for using a metal material testing platform with a defective waste cleaning and recycling structure, characterized in that: The following steps are involved: S1. The clamping and positioning of metal materials during testing is to place the metal material to be tested on the top of the testing platform (1) and position the metal material inside the clamping assembly (3). The clamping assembly (3) is then started to clamp the metal material, and the buffer assembly (4) inside the clamping assembly (3) completes the clamping and positioning of the metal material. The buffering of the clamping and positioning of the metal material is also achieved, thereby facilitating the testing of strength or composition analysis of the metal material, thereby improving the testing results. S2. Metal waste cleaning and recycling. When the metal material located inside the buffer component (4) is detected as defective waste, the pushing component (5) located at the rear side of the clamping component (3) is activated to push the metal material to the position of the discharge slot (6). Then, under the shielding protection of the shielding component (7), the metal material passes through the discharge slot (6) and falls into the inside of the cleaning box (2). Then, the metal material passes through the auxiliary falling component (8) located at the front and rear sides of the cleaning box (2) and slides down to the top of the crushing component (9). Then, after the powder is activated, the metal material is crushed. The crushing component (9) crushes the metal waste, and then the crushed metal waste falls onto the surface of the ejection component (10), so that the ejection component (10) bounces under the impact of the metal waste, and then the crushed metal waste is quickly discharged through the outlet groove (11) to the surface of the loading and unloading component (12), and then the metal waste is completely discharged from the inside of the cleaning box (2) through the loading and unloading component (12), and can be collected and recycled later, thereby improving the overall processing efficiency of its defective waste, which is convenient for the use of detection operations.
Citation Information
Patent Citations
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