An electric power equipment cover forming device and a forming method thereof

By designing a power equipment casing forming device that includes clamping, cutting, collecting, and stamping mechanisms, the problem of damage to the casing and mold caused by cutting debris was solved, efficient waste collection and cleaning were achieved, and the service life of the equipment was improved.

CN120862356BActive Publication Date: 2026-04-14宏峰建设集团有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2026-04-14

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Abstract

The application discloses a power equipment cover forming device and a forming method thereof, and belongs to the technical field of metal plate processing. The power equipment cover forming device comprises a bottom plate, a clamping mechanism, a limiting mechanism, a cutting mechanism, a material collecting mechanism and a stamping mechanism which are fixed on the bottom plate respectively. The cutting mechanism is located above the material collecting mechanism. The clamping mechanism and the limiting mechanism are at the same height. The stamping mechanism is located below the clamping mechanism. The clamping mechanism is used for clamping the processed plate. The cutting mechanism is used for cutting the plate. The stamping mechanism is used for stamping the cut plate. The material collecting mechanism is used for collecting the cuttings and cutting waste generated after the cutting of the cutting mechanism.
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Description

Technical Field

[0001] This invention belongs to the field of metal plate processing technology, specifically relating to a power equipment casing forming device and its forming method. Background Technology

[0002] Electrical protection enclosures refer to protective enclosures designed to prevent electric shock. They are primarily used for safety protection and are mostly made of metal. During the processing of these enclosures, cutting and stamping operations are usually required. After cutting, the enclosures often contain some debris. If stamped directly, it will not only damage the enclosure but also the stamping die, reducing the service life of the processing equipment. Summary of the Invention

[0003] In view of the shortcomings of the prior art, the purpose of this invention is to provide a power equipment casing forming device and a forming method thereof.

[0004] The objective of this invention can be achieved through the following technical solutions:

[0005] A power equipment casing forming device includes a base plate, on which a clamping mechanism, a limiting mechanism, a cutting mechanism, a collecting mechanism, and a stamping mechanism are fixedly mounted respectively. The cutting mechanism is located above the collecting mechanism, the clamping mechanism and the limiting mechanism are at the same height, and the stamping mechanism is located below the clamping mechanism. The clamping mechanism is used to clamp the processed sheet metal, the cutting mechanism is used to cut the sheet metal, the stamping mechanism is used to stamp the cut sheet metal, and the collecting mechanism is used to collect the debris and cutting waste generated by the cutting mechanism.

[0006] The clamping mechanism includes a second motor mounting plate that is slidably mounted, a connecting shaft that is rotatably mounted on the second motor mounting plate, a housing plate that is fixedly mounted on the connecting shaft, and two adsorption components that are slidably mounted on the housing plate. Each adsorption component includes a cylindrical adsorption tube that is rotatably mounted, an arc-shaped cleaning plate that is rotatably mounted on the cylindrical adsorption tube, and a mating groove that is fixedly mounted on the cylindrical adsorption tube.

[0007] The limiting mechanism includes a long support plate that is slidably provided, and a mating block that is slidably provided on the long support plate;

[0008] The receiving mechanism includes a receiving box, on which a rectangular frameless structure slides, and a mesh screen is provided at the top of the receiving box. The cutting mechanism includes a cutting device that slides.

[0009] The stamping mechanism includes an upper stamping die and a lower die that are slidably mounted, a long rotating shaft on the base plate, a cylindrical push rod fixed on the long rotating shaft, and a spring connected to the long rotating shaft.

[0010] Furthermore, the clamping mechanism includes a limiting block, a connecting shaft rotatably mounted on the limiting block, a first pulley fixedly mounted on one end of the connecting shaft at the limiting block, a first gear fixedly mounted on one end of the connecting shaft at the limiting block, and a housing plate fixedly mounted at the end of the connecting shaft. A long sliding groove is formed on the housing plate, and two adsorption components are slidably mounted on the long sliding groove. Each adsorption component includes a slidably mounted end mounting plate, which is slidably connected to the long sliding groove. A cylindrical shaft rotatably mounted on the end mounting plate has a mating groove fixedly mounted at one end and a cylindrical adsorption tube fixedly mounted at the other end. A second gear rotatably mounted on the cylindrical shaft between the end mounting plate and the cylindrical adsorption tube, and an arc-shaped cleaning plate is fixedly mounted on the second gear. The cleaning plate rotates coaxially, and the cylindrical adsorption tube is provided with several adsorption holes. A negative pressure suction device is fixed at the end of the cylindrical adsorption tube, which creates a negative pressure state inside the cylindrical adsorption tube. A top mounting plate is also fixed on the end mounting plate, and a third gear is rotatably mounted on the top mounting plate. A first motor is connected to the third gear and is fixedly connected to the top mounting plate. The third gear meshes with the second gear, and the first motor drives the third gear to rotate, further realizing the rotation of the arc-shaped cleaning plate. The end mounting plate has a first rectangular groove at the end of the long sliding groove. A first telescopic cylinder is fixed on the outer shell plate, and a rectangular locking block is fixed at the output end of the first telescopic cylinder. The rectangular locking block cooperates with the first rectangular groove, and rectangular baffles are fixed at both the upper and lower ends of the rectangular locking block.

[0011] Furthermore, the clamping mechanism also includes a support column, with a limiting frame fixedly connected to the top of the support column. The limiting frame is slidably connected to a limiting block. A second motor mounting plate is slidably mounted on the limiting frame, and a second motor is fixedly mounted on the second motor mounting plate. A second pulley is fixedly connected to the output end of the second motor. A first synchronous belt is connected between the second pulley and the first pulley. The second motor drives the second pulley to rotate and drives the connecting shaft to rotate through the first synchronous belt. Two first side plates are fixedly mounted on the limiting frame, and a first threaded rod is rotatably mounted between the two first side plates. A first limiting rod is also fixedly mounted. The first threaded rod is threadedly connected to the second motor mounting plate, and the first limiting rod is slidably connected to the second motor mounting plate. A third motor is also fixedly mounted on the first side plate, and the third motor is fixedly connected to the first threaded rod. The third motor drives the first threaded rod to rotate.

[0012] Furthermore, the limiting mechanism includes a second telescopic cylinder, which is fixedly connected to the limiting frame. A fixed plate is fixedly provided at the output end of the second telescopic cylinder, and a long support plate is fixedly provided at the top of the fixed plate. A limiting groove is provided on the long support plate, and a movable seat is slidably provided on the limiting groove. A fourth gear is rotatably provided on the movable seat. A first rack is also fixedly provided on the long support plate, and the first rack meshes with the fourth gear for transmission. A fourth motor is also fixedly provided on the movable seat, and the output end of the fourth motor drives the fourth gear to rotate. At the same time, a mating block is rotatably provided on the fourth gear, and the mating block is slidably connected to the long support plate. The mating block can be inserted into the mating groove to engage with it.

[0013] Furthermore, the receiving mechanism includes a receiving box, which is fixedly connected to the base plate via an L-shaped plate. A rectangular frameless rectangular plate is slidably provided on the top platform of the receiving box. A through-hole material leakage trough is provided at one end of the receiving box. A mesh screen is also provided at the top of the receiving box at the material leakage trough. The bottom end of the material leakage trough of the receiving box is placed on a first receiving frame. A second receiving frame is also fixedly provided on the back of the receiving box. A second side plate is also fixedly provided on the side of the rectangular frameless rectangular plate. A limiting plate is fixedly provided on the second side plate. The limiting plate is slidably connected to the cutting mechanism. A second rectangular groove is also provided on the second side plate. A second rack is fixedly provided on the second rectangular groove. A first connecting shaft is rotatably provided on the cutting mechanism. A fifth gear is rotatably provided on the first connecting shaft. The fifth gear meshes with the second rack for transmission.

[0014] Furthermore, the cutting mechanism includes a Z-shaped plate, which is fixedly connected to the base plate and the limiting frame. A threaded groove is formed on the Z-shaped plate, and a second threaded rod is rotatably mounted within the groove. A threaded mounting frame is threaded onto the second threaded rod, and a third threaded rod is threaded onto the mounting frame. One end of the third threaded rod is connected to a fifth motor, and a support plate is threaded onto the third threaded rod. A third telescopic cylinder is fixedly mounted on the support plate, and the output end of the third telescopic cylinder is fixedly connected to a cutting device. A cutting head is mounted on the cutting device. A limiting groove is also formed on the Z-shaped plate, and the limiting groove is slidably connected to a limiting plate on the receiving mechanism, as shown in the figure, located at the bottom of the second threaded rod. The Z-shaped plate at one end is also provided with a slot. The second threaded rod rotates coaxially with the third pulley and the fifth pulley. The sixth motor is fixedly connected to the outside of the Z-shaped plate through the sixth motor mounting plate. The output end of the sixth motor is fixedly connected to the fourth pulley. The fourth pulley and the third pulley are connected by the second synchronous belt. The sixth motor drives the second threaded rod to rotate. The Z-shaped plate is also rotatably connected to the sixth pulley through the second connecting shaft. The sixth pulley and the fifth pulley are connected by the third synchronous belt. The second connecting shaft and the first connecting shaft are fixedly connected and rotate coaxially, that is, the second threaded rod and the first connecting shaft rotate synchronously. Furthermore, the fifth gear and the second threaded rod rotate synchronously.

[0015] Furthermore, the stamping mechanism includes an upper stamping die, which includes a fourth telescopic cylinder fixedly mounted on the receiving box. The output end of the fourth telescopic cylinder is fixedly provided with the upper die, and the output end of the fourth telescopic cylinder is also fixedly provided with a vertical rod. The bottom end of the vertical rod is fixedly provided with a third rack. A bottom mounting plate is also fixedly provided on the base plate. A long rotating shaft is rotatably provided between the two bottom mounting plates. Two rotating rods are coaxially fixed on the long rotating shaft. A cylindrical push rod is fixed between the two rotating rods. A sixth gear is also coaxially fixed on the long rotating shaft. A thin plate is also slidably provided on the base plate. A fourth rack is fixedly provided on the thin plate. The fourth rack meshes with the sixth gear for transmission.

[0016] Furthermore, the thin plate is also fixedly provided with a telescopic rod, and an equipment box is fixedly provided at the top of the telescopic rod. The equipment box has a groove inside, and a lower mold is fixedly provided on the equipment box. The thin plate is also rotatably provided with a fourth threaded rod. A seventh gear is fixedly provided at the rotatable connection between the fourth threaded rod and the thin plate. The fourth threaded rod is located in the groove and is threadedly engaged with the equipment box. The fourth threaded rod is driven by a seventh motor.

[0017] Furthermore, a metal ring is fixed and coaxially mounted on one end of the long rotating shaft at the bottom mounting plate. A first metal plate is fixed on the metal ring, and a second metal plate is fixed on the bottom mounting plate on the same side. A spring is fixed between the first metal plate and the second metal plate.

[0018] A molding method for a power equipment casing molding device includes the following steps:

[0019] S1: First, use the clamping mechanism to clamp the processing plate. The two arc-shaped cleaning plates on the clamping mechanism rotate and open to expose the adsorption holes on them. Use the adsorption holes and two cylindrical adsorption tubes to fix the processing plate. After the clamping mechanism fixes the plate, the clamping mechanism moves and rotates towards the cutting mechanism until the plate rotates to a horizontal state.

[0020] S2: Then control the cutting equipment on the cutting mechanism to move to the cutting position, and then cooperate with the movement of the clamping mechanism to cut the board. The waste and debris after cutting fall into the rectangular bottomless frame. As the cutting equipment moves upward, the rectangular bottomless frame will move towards the screen. During the movement, larger waste will be driven into the second receiving frame for collection, and smaller waste and debris will fall through the screen into the first receiving frame for waste collection.

[0021] S3: After cutting, the clamping mechanism drives the cut plate to rotate in the opposite direction to a horizontal position and enter the cleaning area for cleaning. First, the exposed adsorption hole on one of the cylindrical adsorption tubes continuously adsorbs and fixes the cut plate. Then, the second telescopic cylinder is controlled to move the long support plate to above or below the mating groove on the other cylindrical adsorption tube. The first telescopic cylinder realizes the movement of the end mounting plate until the mating block is inserted into the mating groove and engages with it. At this time, the fourth motor is driven to rotate. The rotation of the fourth motor further realizes the rotation of the fourth gear. The fourth gear meshes with the first rack and pinion, further realizing the movement of the mating block and the moving seat on the long support plate. With the engagement of the mating block and the mating groove, the first rectangular groove on the adsorption component will separate from the rectangular locking block and gradually slide out of the long sliding groove. It slides along one side of the cut plate. With the back and forth brushing of the arc-shaped cleaning plate, the metal debris on one side of the cut plate can be cleaned. After one side is cleaned, the other arc-shaped cleaning plate is used to repeat the above steps to continue cleaning the other side of the plate until both sides are cleaned.

[0022] S4: After cleaning, the two cylindrical adsorption tubes return to their initial positions and continue to use the clamping mechanism to clamp the cleaned sheet metal. After rotating clockwise, it enters the stamping area for stamping. The clamping mechanism rotates the cut and cleaned sheet metal clockwise downwards. During the rotation, the sheet metal gradually contacts the cylindrical push rod. As the sheet metal continues to rotate, it drives the rotating rod to rotate until the sheet metal rotates to a vertical downward position. During the rotation of the rotating rod, the long rotating shaft rotates synchronously, and the sixth gear also rotates accordingly. The sixth gear meshes with the fourth rack to achieve the lateral movement of the equipment box until the lower mold on it is in contact with the back of the sheet metal. Then, the fourth telescopic cylinder controls the upper mold to move towards the front of the sheet metal. During the movement, the vertical rod drives the third rack to move and gradually meshes with the seventh gear, causing it to rotate. The seventh gear drives the fourth threaded rod to rotate, achieving the upward movement of the equipment box. After the lower mold rises to the specified height and is held, the upper mold continues to move, gradually contacting the sheet metal and stamping the cut part of the sheet metal.

[0023] The beneficial effects of this invention are:

[0024] This invention features a clamping mechanism that combines adsorption and cleaning functions. When the adsorption holes on the two cylindrical adsorption tubes are exposed, the adsorption and fixing function can be performed. The arc-shaped cleaning plate on the cylindrical adsorption tubes can rotate, and the cylindrical adsorption tubes can also drive the arc-shaped cleaning plate to move back and forth to clean the surface of the sheet metal. This can clean up the debris generated during cutting and prevent it from affecting the stamping die during the stamping process.

[0025] This invention uses a cutting mechanism and a receiving mechanism to cut sheet metal and collect waste material after cutting. When the cutting equipment moves up and down, the rectangular bottomless frame also moves back and forth synchronously. The waste material after cutting falls into the rectangular bottomless frame and is collected in the first and second receiving frames during the movement. At the same time, the waste material can be classified and collected, with slightly larger waste material collected together and waste debris collected together.

[0026] This invention features a clamping mechanism that allows the cut sheet metal to be rotated and moved to the stamping area. During the rotation of the sheet metal, the sixth gear and the fourth rack can mesh and drive through the cylindrical push rod, ultimately achieving the lateral movement of the lower mold. The fourth telescopic cylinder controls the movement of the upper mold, and the lower mold moves up and down synchronously during the movement of the upper mold. Finally, the upper and lower molds work together to stamp the cut area. After stamping, the sheet metal rotates back to its original position, and the spring also drives the cylindrical push rod back to its initial position. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0028] Figure 1 This is a front view of the present invention;

[0029] Figure 2 This is a schematic diagram of the clamping mechanism of the present invention. Figure I (First-person perspective image);

[0030] Figure 3 This is a schematic diagram of the clamping mechanism of the present invention. Figure II (Second-person perspective image);

[0031] Figure 4 This is an enlarged schematic diagram of part A of the present invention;

[0032] Figure 5 This is a schematic diagram of the clamping mechanism of the present invention. Figure III (Third-person perspective image);

[0033] Figure 6 This is an enlarged schematic diagram of part B of the present invention;

[0034] Figure 7 This is a schematic diagram of the overall structure of the invention. Figure I (First-person perspective image);

[0035] Figure 8 This is a schematic diagram of the cutting mechanism structure of the present invention. Figure I(First-person perspective image);

[0036] Figure 9 This is a schematic diagram of the cutting mechanism structure of the present invention. Figure II (Second-person perspective image);

[0037] Figure 10 This is a schematic diagram of the overall structure of the invention. Figure II (Second-person perspective image);

[0038] Figure 11 This is an enlarged schematic diagram of part C of the present invention;

[0039] Figure 12 This is a schematic diagram of the overall structure of the invention. Figure III (Third-person perspective).

[0040] 1. Base plate; 2. Clamping mechanism; 3. Cutting mechanism; 4. Receiving mechanism; 5. Limiting mechanism; 6. Stamping mechanism; 201. Limiting block; 202. Connecting shaft; 203. First pulley; 204. First gear; 205. Outer shell plate; 206. Long slide groove; 207. End mounting plate; 208. Cylindrical shaft; 209. Cylindrical suction tube; 210. Arc-shaped cleaning plate; 211. Second gear; 212. Top mounting; 213. Third gear; 214. First motor; 215. Negative pressure suction device; 216. Mating groove; 217. First telescopic cylinder; 218. First rectangular groove; 219. Rectangular locking block; 220. Rectangular baffle; 221. Second pulley; 222. Second motor mounting plate; 223. Second motor; 224. Second side plate; 225. First threaded rod; 226. First limiting rod; 227. Support column; 228. Limiting frame; 229. Third motor; 230. First synchronous belt; 301. Z-shaped plate; 302. Threaded groove; 303. Second threaded rod; 304. Threaded mounting frame; 305. Third threaded rod; 306. Support plate; 307. Third telescopic cylinder; 308. Cutting equipment; 309. Cutting head; 310. Fifth motor; 311. Limiting groove; 312. Third pulley; 31 3. Second synchronous belt; 314. Sixth motor; 315. Sixth motor mounting plate; 316. Fifth pulley; 317. Sixth pulley; 318. Third synchronous belt; 319. Second connecting shaft; 401. Receiving box; 402. Rectangular frameless box; 403. Strainer; 404. Second receiving frame; 405. Limiting plate; 406. First receiving frame; 407. L-shaped plate; 408. First connecting shaft; 409. Second side plate; 410. Second rectangular groove; 411. Second rack; 412. Fifth gear; 501. Second telescopic cylinder; 502. Fixing plate; 503. Long support plate; 504. First rack; 50 5. Limiting slide; 506. Moving seat; 507. Fourth gear; 508. Mating block; 509. Fourth motor; 601. Fourth telescopic cylinder; 602. Upper mold; 603. Vertical rod; 604. Third rack; 605. Spring; 606. Long rotating shaft; 607. Sixth gear; 608. Bottom mounting plate; 609. Cylindrical push rod; 610. Equipment box; 611. Groove; 612. Fourth threaded rod; 613. Seventh gear; 614. Telescopic rod; 615. Thin plate; 616. Fourth rack; 617. Rotating rod; 618. Metal ring; 619. First metal plate; 620. Second metal plate. Detailed Implementation

[0041] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0042] like Figure 1 As shown, a power equipment casing forming device includes a base plate 1. A clamping mechanism 2, a limiting mechanism 5, a cutting mechanism 3, a collecting mechanism 4, and a stamping mechanism 6 are fixedly mounted on the base plate 1. The cutting mechanism 3 is located above the collecting mechanism 4, the clamping mechanism 2 and the limiting mechanism 5 are at the same height, and the stamping mechanism 6 is located below the clamping mechanism 2. The clamping mechanism 2 is used to clamp the processed sheet metal, the cutting mechanism 3 is used to cut the sheet metal, the stamping mechanism 6 is used to stamp the cut sheet metal, and the collecting mechanism 4 is used to collect the debris and cutting waste generated by the cutting mechanism 3. The clamping mechanism 2, in conjunction with the limiting mechanism 5, enables the movement of some components on the limiting mechanism 5.

[0043] like Figure 2 As shown, the clamping mechanism 2 includes a limiting block 201, a connecting shaft 202 rotatably mounted on the limiting block 201, a first pulley 203 fixedly mounted on one end of the connecting shaft 202 at the limiting block 201, a first gear 204 fixedly mounted on one end of the connecting shaft 202 at the limiting block 201, and a housing plate 205 fixedly mounted at the end of the connecting shaft 202. A long sliding groove 206 is formed on the housing plate 205, and two adsorption components are slidably mounted on the long sliding groove 206. Each adsorption component includes a slidably mounted end mounting plate 207, which is slidably connected to the long sliding groove 206. A cylindrical shaft 208 rotatably mounted on the end mounting plate 207, a mating groove 216 fixedly mounted on one end of the cylindrical shaft 208, and a cylindrical adsorption tube 209 fixedly mounted on the other end of the cylindrical shaft 208. The cylindrical shaft 208 is connected to the end mounting plate 207 and the cylindrical adsorption tube 209. A second gear 211 is rotatably mounted between gears 9. An arc-shaped cleaning plate 210 is fixedly mounted on the second gear 211. The second gear 211 and the arc-shaped cleaning plate 210 rotate coaxially. A cylindrical suction tube 209 is also provided with several suction holes. A negative pressure suction device 215 is fixedly mounted at the end of the cylindrical suction tube 209. The negative pressure suction device 215 creates a negative pressure state inside the cylindrical suction tube 209 and attracts the plate through the suction holes. A top mounting plate 212 is also fixedly mounted on the end mounting plate 207. A third gear 213 is rotatably mounted on the top mounting plate 212. A first motor 214 is connected to the third gear 213. The first motor 214 is fixedly connected to the top mounting plate 212. The third gear 213 meshes with the second gear 211 for transmission. The first motor 214 drives the third gear 213 to rotate, further realizing the rotation of the arc-shaped cleaning plate 210. Figure 3 and Figure 4 As shown, the end mounting plate 207 has a first rectangular groove 218 through the long slide groove 206. The outer shell plate 205 is fixedly provided with a first telescopic cylinder 217. The output end of the first telescopic cylinder 217 is fixedly provided with a rectangular block 219. The rectangular block 219 cooperates with the first rectangular groove 218. The upper and lower ends of the rectangular block 219 are both fixedly provided with rectangular baffles 220.

[0044] like Figure 5 As shown, the clamping mechanism 2 also includes a support column 227. A limiting frame 228 is fixedly connected to the top of the support column 227. The limiting frame 228 is slidably connected to the limiting block 201. A second motor mounting plate 222 is slidably mounted on the limiting frame 228. A second motor 223 is fixedly mounted on the second motor mounting plate 222. A second pulley 221 is fixedly connected to the output end of the second motor 223. A first synchronous belt 230 is connected between the second pulley 221 and the first pulley 203. The second motor 223 drives the second pulley 221 to rotate and drives the connecting shaft 2 through the first synchronous belt 230. 02 Rotation, two first side plates 224 are fixedly provided on the limiting frame 228, a first threaded rod 225 is rotatably provided between the two first side plates 224, and a first limiting rod 226 is also fixedly provided. The first threaded rod 225 is threadedly connected to the second motor mounting plate 222, and the first limiting rod 226 is slidably connected to the second motor mounting plate 222. A third motor 229 is also fixedly provided on the first side plate 224. The third motor 229 is fixedly connected to the first threaded rod 225. The third motor 229 drives the first threaded rod 225 to rotate, further realizing the back-and-forth movement of the second motor mounting plate 222.

[0045] In use, the cylindrical adsorption tube 209 is used to adsorb and fix the processing plate. Specifically, the first motor 214 drives the third gear 213 to rotate. The meshing transmission between the third gear 213 and the second gear 211 realizes the rotation of the arc-shaped cleaning plate 210. After the arc-shaped cleaning plate 210 rotates to a certain angle, several adsorption holes on the cylindrical adsorption tube 209 are exposed. The processing plate is then placed between the two cylindrical adsorption tubes 209. The first telescopic cylinder 217 controls the movement of the two cylindrical adsorption tubes 209 until the two cylindrical adsorption tubes 209 move to the upper and lower surfaces of the processing plate and clamp and fix it. After completion, the second motor 223 drives the connecting shaft 202 to rotate, and the two cylindrical suction tubes 209 flip the clamped and fixed processing plate over to the bottom of the cutting mechanism 3. The third motor 229 drives the first threaded rod 225 to move the second motor mounting plate 222, which in turn moves the cylindrical suction tubes 209. Combined with the movement of the cutting mechanism 3, the processing plate is cut. After the plate is cut, the second motor 223 rotates back to the initial position to clean the cut plate. After cleaning, the plate is rotated in the opposite direction to the vertical downward position and enters the stamping mechanism 6 for stamping operation.

[0046] like Figure 5 As shown, the limiting mechanism 5 includes a second telescopic cylinder 501, which is fixedly connected to the limiting frame 228. A fixing plate 502 is fixedly mounted on the output end of the second telescopic cylinder 501, and a long support plate 503 is fixedly mounted on the top end of the fixing plate 502. Figure 6 As shown, a limiting groove 505 is provided on the long support plate 503, and a movable seat 506 is slidably provided on the limiting groove 505. A fourth gear 507 is rotatably provided on the movable seat 506. A first rack 504 is also fixedly provided on the long support plate 503. The first rack 504 meshes with the fourth gear 507 for transmission. A fourth motor 509 is also fixedly provided on the movable seat 506. The output end of the fourth motor 509 drives the fourth gear 507 to rotate. At the same time, a mating block 508 is rotatably provided on the fourth gear 507. The mating block 508 is slidably connected to the long support plate 503, and the mating block 508 can be inserted into the mating groove 216 to engage with it.

[0047] In use, the limiting mechanism 5 needs to be used in conjunction with the clamping mechanism 2. The adsorption component on the clamping mechanism 2 has two functions: adsorption and fixing, and cleaning. When the adsorption component performs the adsorption and fixing function, the arc-shaped cleaning plate 210 needs to be rotated to expose several adsorption holes on the two cylindrical adsorption tubes 209, and the distance between the two cylindrical adsorption tubes 209 needs to be adjusted to achieve adsorption and fixing of the processed plate. When performing the cleaning function, several adsorption holes on one of the cylindrical adsorption tubes 209 need to be exposed, while the adsorption holes on the other cylindrical adsorption tube 209 need to be kept covered by the arc-shaped cleaning plate 210. In conjunction with the limiting mechanism 5, the surface of the processed plate after cutting can be cleaned and the metal debris generated after cutting the plate surface can be removed. The specific coordination method is as follows: First, the adsorption holes exposed on one of the cylindrical adsorption tubes 209 are used to continuously adsorb and fix the cut plate. Then, the second telescopic cylinder 501 is controlled to move the long support plate 503 to the other... Above or below the mating groove 216 on the cylindrical adsorption tube 209, the first telescopic cylinder 217 moves the end mounting plate 207 until the mating block 508 is inserted into the mating groove 216 and engages with it. At this time, the fourth motor 509 is driven to rotate. The rotation of the fourth motor 509 further drives the fourth gear 507 to rotate. The fourth gear 507 meshes with the first rack 504 to further realize the movement of the mating block 508 and the moving seat 506 on the long support plate 503. With the engagement of the mating block 508 and the mating groove 216, the first rectangular groove 218 on the adsorption assembly will separate from the rectangular locking block 219 and gradually slide out of the long sliding groove 206. It slides along one side of the cut plate. With the back and forth brushing of the arc-shaped cleaning plate 210, the metal debris on one side of the cut plate can be cleaned. After one side is cleaned, the above steps are repeated with another arc-shaped cleaning plate 210 to continue cleaning the other side of the plate until both sides are cleaned, which is convenient for subsequent stamping.

[0048] like Figure 7 As shown, the receiving mechanism 4 includes a receiving box 401, which is fixedly connected to the base plate 1 via an L-shaped plate 407. A rectangular frameless structure 402 is slidably mounted on the top platform of the receiving box 401. A through-hole material leakage trough is provided at one end of the receiving box 401. A mesh screen 403 is also provided at the top of the receiving box 401 at the material leakage trough. The bottom of the material leakage trough of the receiving box 401 is placed on a first receiving frame 406. A second receiving frame 404 is also fixedly mounted on the back of the receiving box 401. Figure 12As shown, the side of the rectangular frameless 402 is still fixedly provided with a second side plate 409, and a limiting plate 405 is fixedly provided on the second side plate 409. The limiting plate 405 is slidably connected to the cutting mechanism 3. A second rectangular groove 410 is also provided on the second side plate 409, and a second rack 411 is fixedly provided on the second rectangular groove 410. A first connecting shaft 408 is also rotatably provided on the cutting mechanism 3, and a fifth gear 412 is rotatably provided on the first connecting shaft 408. The fifth gear 412 meshes with the second rack 411 for transmission.

[0049] like Figure 8 As shown, the cutting mechanism 3 includes a Z-shaped plate 301, which is fixedly connected to the base plate 1 and the limiting frame 228. A threaded groove 302 is provided on the Z-shaped plate 301, and a second threaded rod 303 is rotatably mounted within the threaded groove 302. A threaded mounting frame 304 is threadedly fitted onto the second threaded rod 303, and a third threaded rod 305 is threadedly fitted within the threaded mounting frame 304. One end of the third threaded rod 305 is connected to a fifth motor 310, and a support plate 306 is threadedly fitted onto the third threaded rod 305. A third telescopic cylinder 307 is fixedly mounted on the support plate 306, and a cutting device 308 is fixedly connected to the output end of the third telescopic cylinder 307. A cutting head 309 is mounted on the cutting device 308. A limiting groove 311 is also provided on the Z-shaped plate 301, and the limiting groove 311 is slidably connected to the limiting plate 405 on the receiving mechanism 4. Figure 9 As shown, a slot is also provided on the Z-shaped plate 301 located at the bottom end of the second threaded rod 303. The second threaded rod 303 is rotatably mounted on a third pulley 312 and a fifth pulley 316. A sixth motor 314 is fixedly connected to the outside of the Z-shaped plate 301 via a sixth motor mounting plate 315. A fourth pulley is fixedly connected to the output end of the sixth motor 314. The fourth pulley and the third pulley 312 are connected via a second synchronous belt 313, and the sixth motor 314 drives the second threaded rod 303 to rotate. A sixth pulley 317 is also rotatably connected to the Z-shaped plate 301 via a second connecting shaft 319. The sixth pulley 317 is connected to the fifth pulley 316 via a third synchronous belt 318. Figure 12 As shown, the second connecting shaft 319 and the first connecting shaft 408 are fixedly connected and rotate coaxially, that is, the second threaded rod 303 and the first connecting shaft 408 rotate synchronously, and further, the fifth gear 412 and the second threaded rod 303 rotate synchronously.

[0050] In use, the cutting device 308 moves laterally and longitudinally via the second threaded rod 303 and the third threaded rod 305. During cutting, the clamping mechanism 2 moves the processing plate via the first threaded rod 225. The third telescopic cylinder 307 controls the cutting device 308 to move to the surface of the processing plate to complete the cutting. At the same time, when the second threaded rod 303 rotates, the fifth gear 412 rotates synchronously and moves the rectangular bottomless frame 402 below the cutting point through meshing with the second rack 411. The waste and debris after cutting fall into the rectangular bottomless frame 402. After cutting, as the cutting device 308 rises, the second rack 411 meshes with the fifth gear 412, and the rectangular bottomless frame 402 moves backward. The large pieces of waste generated after cutting are scraped by the rectangular bottomless frame 402 to the second receiving frame 404, while the powdery debris falls into the first receiving frame 406 through the strainer 403 and the strainer trough.

[0051] like Figure 7 As shown, the stamping mechanism 6 includes an upper stamping die, which includes a fourth telescopic cylinder 601 fixedly mounted on the receiving box 401. An upper die 602 is fixedly mounted at the output end of the fourth telescopic cylinder 601. A vertical rod 603 is also fixedly mounted at the output end of the fourth telescopic cylinder 601. A third rack 604 is fixedly mounted at the bottom end of the vertical rod 603. A bottom mounting plate 608 is also fixedly mounted on the bottom plate 1. A long rotating shaft 606 is rotatably mounted between the two bottom mounting plates 608. Two rotating rods 617 are coaxially fixed on the long rotating shaft 606. A cylindrical push rod 609 is fixedly mounted between the two rotating rods 617. A sixth gear 607 is also coaxially fixed on the long rotating shaft 606. A thin plate 615 is also slidably mounted on plate 1. A fourth rack 616 is fixedly mounted on the thin plate 615. The fourth rack 616 meshes with a sixth gear 607 for transmission. A telescopic rod 614 is also fixedly mounted on the thin plate 615. An equipment box 610 is fixedly mounted at the top of the telescopic rod 614. A groove 611 is provided inside the equipment box 610. A lower mold is fixedly mounted on the equipment box 610. A fourth threaded rod 612 is also rotatably mounted on the thin plate 615. A seventh gear 613 is fixedly mounted at the rotatable connection between the fourth threaded rod 612 and the thin plate 615. The fourth threaded rod 612 is located in the groove 611 and is threadedly engaged with the equipment box 610. The fourth threaded rod 612 is driven by a seventh motor. Figure 10 and Figure 1 As shown, the other end of the long rotating shaft 606 is fixed at one end of the bottom mounting plate 608 and is coaxially provided with a metal ring 618. A first metal plate 619 is fixed on the metal ring 618, and a second metal plate 620 is fixed on the bottom mounting plate 608 on the same side. A spring 605 is fixed between the first metal plate 619 and the second metal plate 620.

[0052] like Figure 7As shown, during use, the clamping mechanism 2 rotates the cut and cleaned sheet metal clockwise downwards. During rotation, the sheet metal gradually comes into contact with the cylindrical push rod 609. As the sheet metal continues to rotate, it drives the rotating rod 617 to rotate until the sheet metal rotates to a vertically downward position. During the rotation of the rotating rod 617, the long rotating shaft 606 rotates synchronously, and the sixth gear 607 also rotates accordingly. The meshing transmission between the sixth gear 607 and the fourth rack 616 enables the equipment box 610 to move laterally until the lower mold on it is in contact with the back of the sheet metal. Then, the fourth telescopic cylinder 601 controls the movement of the lower mold. The upper mold 602 moves toward the front of the sheet metal. During the movement, the vertical rod 603 drives the third rack 604 to move. As it moves, it gradually meshes with the seventh gear 613 and makes it rotate. The seventh gear 613 drives the fourth threaded rod 612 to rotate, so that the equipment box 610 moves upward. After the lower mold rises to the specified height and is held, the upper mold 602 continues to move and gradually contacts the sheet metal. It then stamps the cut part of the sheet metal. After the stamping contact, the sheet metal rotates back to its original position. The cylindrical push rod 609 returns to its original position under the action of the spring 605.

[0053] A molding method for a power equipment casing molding device includes the following steps:

[0054] S1: First, use the clamping mechanism 2 to clamp the processing plate. The two arc-shaped cleaning plates 210 on the clamping mechanism 2 rotate and open to expose the adsorption holes on them. Use the adsorption holes and two cylindrical adsorption tubes 209 to fix the processing plate. After the clamping mechanism 2 fixes the plate, the clamping mechanism 2 moves and rotates towards the cutting mechanism 3 until the plate rotates to a horizontal state.

[0055] S2: Then control the cutting device 308 on the cutting mechanism 3 to move to the cutting position, and then cooperate with the movement of the clamping mechanism 2 to realize the cutting of the board. The waste and debris after cutting fall into the rectangular bottomless frame 402. As the cutting device 308 moves upward, the rectangular bottomless frame 402 will move towards the screen 403. During the movement, the larger waste will be driven into the second receiving frame 404 for collection, and the smaller waste and debris will fall into the first receiving frame 406 for waste collection through the screen 403.

[0056] S3: After cutting, the clamping mechanism 2 drives the cut plate to rotate in the opposite direction to a horizontal position and enter the cleaning area for cleaning. First, the exposed adsorption hole on one of the cylindrical adsorption tubes 209 continuously adsorbs and fixes the cut plate. Then, the second telescopic cylinder 501 is controlled to move the long support plate 503 above or below the mating groove 216 on the other cylindrical adsorption tube 209. The first telescopic cylinder 217 moves the end mounting plate 207 until the mating block 508 is inserted into the mating groove 216 and engages with it. At this time, the fourth motor 509 is driven to rotate. The rotation of the fourth motor 509 further drives the fourth gear 507 to rotate. The fourth gear 507 meshes with the first rack 504 to further realize the movement of the mating block 508 and the moving seat 506 on the long support plate 503. With the cooperation of the mating block 508 and the mating groove 216, the first rectangular groove 218 on the adsorption component will separate from the rectangular locking block 219 and gradually slide out of the long sliding groove 206. It will slide along one side of the cut plate. With the back and forth brushing of the arc-shaped cleaning plate 210, the metal debris on one side of the cut plate can be cleaned. After one side is cleaned, the above steps are repeated with another arc-shaped cleaning plate 210 to continue cleaning the other side of the plate until both sides are cleaned.

[0057] S4: After cleaning, the two cylindrical adsorption tubes 209 return to their initial positions. The clamping mechanism 2 continues to clamp the cleaned sheet metal, rotating it clockwise before it enters the stamping area for stamping. The clamping mechanism 2 rotates the cut and cleaned sheet metal clockwise downwards. During rotation, the sheet metal gradually contacts the cylindrical push rod 609. As the sheet metal continues to rotate, it drives the rotating rod 617 to rotate until the sheet metal rotates to a vertically downward position. During the rotation of the rotating rod 617, the long rotating shaft 606 rotates synchronously, and the sixth gear 607 also rotates accordingly. The sixth gear 607 and the fourth gear... The meshing transmission of bar 616 enables the equipment box 610 to move laterally until the lower mold on it is in contact with the back of the plate. Then, the fourth telescopic cylinder 601 controls the upper mold 602 to move towards the front of the plate. During the movement, the vertical rod 603 drives the third rack 604 to move. During the movement, it gradually meshes with the seventh gear 613 and makes it rotate. The seventh gear 613 drives the fourth threaded rod 612 to rotate, so that the equipment box 610 moves upward. After the lower mold rises to the specified height and is held, the upper mold 602 continues to move and gradually contacts the plate, and stamps the cut part of the plate.

[0058] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0059] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed invention.

Claims

1. An electric power equipment cover molding apparatus characterized by comprising: Includes a base plate (1), on which a clamping mechanism (2), a limiting mechanism (5), a cutting mechanism (3), a receiving mechanism (4), and a stamping mechanism (6) are fixed respectively. The cutting mechanism (3) is located above the receiving mechanism (4), the clamping mechanism (2) and the limiting mechanism (5) are at the same height, and the stamping mechanism (6) is located below the clamping mechanism (2). The clamping mechanism (2) is used to clamp the processed plate, the cutting mechanism (3) is used to cut the plate, the stamping mechanism (6) is used to stamp the cut plate, and the receiving mechanism (4) is used to collect the debris and cutting waste generated by the cutting mechanism (3) after cutting. The clamping mechanism (2) includes a second motor mounting plate (222) that is slidably provided, a connecting shaft (202) that is rotatably provided on the second motor mounting plate (222), a housing plate (205) that is fixedly provided on the connecting shaft (202), and two adsorption components that are slidably provided on the housing plate (205). The adsorption components include a cylindrical adsorption tube (209) that is rotatably provided, an arc-shaped cleaning plate (210) that is rotatably provided on the cylindrical adsorption tube (209), and a mating groove (216) that is fixedly provided on the cylindrical adsorption tube (209). The limiting mechanism (5) includes a long support plate (503) that is slidably provided, and a mating block (508) that is slidably provided on the long support plate (503). The receiving mechanism (4) includes a receiving box (401), a rectangular frameless box (402) is slidably provided on the receiving box (401), and a mesh screen (403) is provided at the top of the receiving box (401). The cutting mechanism (3) includes a cutting device (308) slidably provided. The stamping mechanism (6) includes an upper mold, which includes a fourth telescopic cylinder (601) fixedly installed on the receiving box (401). The output end of the fourth telescopic cylinder (601) is fixedly provided with an upper mold (602). The output end of the fourth telescopic cylinder (601) is also fixedly provided with a vertical rod (603). The bottom end of the vertical rod (603) is fixedly provided with a third rack (604). The bottom plate (1) is also fixedly provided with a bottom mounting plate (608). A long rotating shaft (606) is rotatably provided between the two bottom mounting plates (608). Two rotating rods (617) are coaxially fixed on the long rotating shaft (606). A cylindrical push rod (609) is fixed between the two rotating rods (617). A sixth gear (607) is coaxially fixed on the long rotating shaft (606). A thin plate (615) is also slidably provided on the bottom plate (1). A fourth rack (616) is fixedly provided on the thin plate (615). The fourth rack (616) meshes with the sixth gear (607) for transmission. The thin plate (615) is also fixedly provided with a telescopic rod (614), and the top of the telescopic rod (614) is fixedly provided with an equipment box (610). The equipment box (610) is provided with a groove (611), and a lower mold is fixedly provided on the equipment box (610). The thin plate (615) is also rotatably provided with a fourth threaded rod (612). A seventh gear (613) is fixedly provided at the rotatable connection between the fourth threaded rod (612) and the thin plate (615). The fourth threaded rod (612) is located in the groove (611) and is threadedly engaged with the equipment box (610). The fourth threaded rod (612) is driven by a seventh motor. The clamping mechanism (2) rotates the plate clockwise downwards. During the rotation, the plate gradually comes into contact with the cylindrical push rod (609). As the plate continues to rotate, it drives the rotating rod (617) to rotate until the plate rotates to a vertical downward position. During the rotation of the rotating rod (617), the long rotating shaft (606) rotates synchronously, and the sixth gear (607) also rotates. The meshing transmission between the sixth gear (607) and the fourth rack (616) will realize the lateral movement of the equipment box (610) until the lower mold on it touches the back of the plate. The upper mold (602) is then moved towards the front of the plate by the fourth telescopic cylinder (601). During the movement, the vertical rod (603) will drive the third rack (604) to move. During the movement, it will gradually mesh with the seventh gear (613) and make it rotate. The seventh gear (613) will drive the fourth threaded rod (612) to rotate, so that the equipment box (610) moves upward. After the lower mold rises to the specified height and is held, the upper mold (602) continues to move and gradually contacts the plate, and stamps the plate after it is cut.

2. The power equipment cover forming apparatus according to claim 1, wherein The clamping mechanism (2) includes a limiting block (201), a connecting shaft (202) rotatably mounted on the limiting block (201), a first pulley (203) fixedly mounted on one end of the connecting shaft (202) at the limiting block (201), a first gear (204) fixedly mounted on the connecting shaft (202) at the other end of the limiting block (201), and a housing plate (205) fixedly mounted at the end of the connecting shaft (202). A long sliding groove (206) is provided on the housing plate (205), and two adsorption components are slidably mounted on the long sliding groove (206), wherein the adsorption components include slidably mounted end portions. Mounting plate (207), end mounting plate (207) is slidably connected to long slide groove (206), cylindrical shaft (208) is rotatably mounted on end mounting plate (207), mating groove (216) is fixed on one end of cylindrical shaft (208), cylindrical adsorption tube (209) is fixed on the other end of cylindrical shaft (208), second gear (211) is rotatably mounted on cylindrical shaft (208) between end mounting plate (207) and cylindrical adsorption tube (209), arc-shaped cleaning plate (210) is fixed on second gear (211), wherein the second gear (211) and arc-shaped cleaning plate (210) Coaxial rotation, the cylindrical adsorption tube (209) is also provided with several adsorption holes, the end of the cylindrical adsorption tube (209) is fixedly provided with a negative pressure suction device (215), the negative pressure suction device (215) makes the inside of the cylindrical adsorption tube (209) form a negative pressure state, the end mounting plate (207) is also fixedly provided with a top mounting plate (212), the top mounting plate (212) is rotatably provided with a third gear (213), the third gear (213) is connected to a first motor (214), the first motor (214) is fixedly connected to the top mounting plate (212), the third gear (214) is rotatably provided with a third gear (213), the first motor (214) is fixedly connected to the top mounting plate (212), the third gear (214) is rotatably provided with a third gear (215) 3) Engages with the second gear (211) for transmission, and the first motor (214) drives the third gear (213) to rotate, further realizing the rotation of the arc-shaped cleaning plate (210). The end mounting plate (207) has a first rectangular groove (218) at one end that passes through the long slide groove (206). The outer shell plate (205) is fixedly provided with a first telescopic cylinder (217). The output end of the first telescopic cylinder (217) is fixedly provided with a rectangular block (219). The rectangular block (219) cooperates with the first rectangular groove (218). The upper and lower ends of the rectangular block (219) are both fixedly provided with rectangular baffles (220).

3. The power equipment casing forming device according to claim 2, characterized in that, The clamping mechanism (2) further includes a support column (227), the top of which is fixedly connected to a limiting frame (228). The limiting frame (228) is slidably connected to a limiting block (201). A second motor mounting plate (222) is slidably mounted on the limiting frame (228). A second motor (223) is fixedly mounted on the second motor mounting plate (222). A second pulley (221) is fixedly connected to the output end of the second motor (223). A first synchronous belt (230) is connected between the second pulley (221) and the first pulley (203). The second motor (223) drives the second pulley (221) to rotate, and the first synchronous belt (221) drives the second pulley (221) to rotate. 230) Drives the connecting shaft (202) to rotate. Two first side plates (224) are fixedly provided on the limiting frame (228). A first threaded rod (225) is rotatably provided between the two first side plates (224). A first limiting rod (226) is also fixedly provided. The first threaded rod (225) is threadedly connected to the second motor mounting plate (222). The first limiting rod (226) is slidably connected to the second motor mounting plate (222). A third motor (229) is also fixedly provided on the first side plate (224). The third motor (229) is fixedly connected to the first threaded rod (225). The third motor (229) drives the first threaded rod (225) to rotate.

4. The power equipment casing forming device according to claim 3, characterized in that, The limiting mechanism (5) includes a second telescopic cylinder (501), which is fixedly connected to the limiting frame (228). A fixed plate (502) is fixedly provided at the output end of the second telescopic cylinder (501), and a long support plate (503) is fixedly provided at the top end of the fixed plate (502). A limiting groove (505) is provided on the long support plate (503), and a movable seat (506) is slidably provided on the limiting groove (505). A fourth gear (507) is rotatably provided on the movable seat (506). A first rack (504) is fixedly provided on the plate (503). The first rack (504) meshes with the fourth gear (507) for transmission. A fourth motor (509) is fixedly provided on the movable seat (506). The output end of the fourth motor (509) drives the fourth gear (507) to rotate. At the same time, a mating block (508) is rotatably provided on the fourth gear (507). The mating block (508) is slidably connected to the long support plate (503), and the mating block (508) can be inserted into the mating groove (216) to cooperate with it.

5. The power equipment casing forming device according to claim 4, characterized in that, The receiving mechanism (4) includes a receiving box (401), which is fixedly connected to the base plate (1) via an L-shaped plate (407). A rectangular frameless structure (402) is slidably provided on the top platform of the receiving box (401). A through-hole material leakage trough is provided at one end of the receiving box (401). A mesh screen (403) is also provided at the top of the receiving box (401) at the material leakage trough. The bottom end of the material leakage trough of the receiving box (401) is placed on a first receiving frame (406). A second receiving frame (404) is also fixedly provided on the back of the receiving box (401). The side of 02) is also fixedly provided with a second side plate (409), and a limiting plate (405) is fixedly provided on the second side plate (409). The limiting plate (405) is slidably connected to the cutting mechanism (3). A second rectangular groove (410) is also provided on the second side plate (409). A second rack (411) is fixedly provided on the second rectangular groove (410). A first connecting shaft (408) is also rotatably provided on the cutting mechanism (3). A fifth gear (412) is rotatably provided on the first connecting shaft (408). The fifth gear (412) meshes with the second rack (411) for transmission.

6. The power equipment casing forming device according to claim 5, characterized in that, The cutting mechanism (3) includes a Z-shaped plate (301), which is fixedly connected to the base plate (1) and the limiting frame (228) respectively. A threaded groove (302) is provided on the Z-shaped plate (301), and a second threaded rod (303) is rotatably provided in the threaded groove (302). A threaded mounting frame (304) is threadedly fitted on the second threaded rod (303), and a third threaded rod (305) is threadedly fitted in the threaded mounting frame (304). One end of the third threaded rod (305) is connected to a fifth threaded rod. The motor (310) has a support plate (306) threaded onto the third threaded rod (305). A third telescopic cylinder (307) is fixedly mounted on the support plate (306). A cutting device (308) is fixedly connected to the output end of the third telescopic cylinder (307). A cutting head (309) is mounted on the cutting device (308). A limit groove (311) is also provided on the Z-shaped plate (301). The limit groove (311) is slidably connected to the limit plate (405) on the receiving mechanism (4). The second threaded rod is located on the second threaded rod. (303) A slot is also provided on the Z-shaped plate (301) at the bottom. The second threaded rod (303) is coaxially rotated with the third pulley (312) and the fifth pulley (316). The Z-shaped plate (301) is fixedly connected to the sixth motor (314) through the sixth motor mounting plate (315). The output end of the sixth motor (314) is fixedly connected to the fourth pulley. The fourth pulley and the third pulley (312) are connected by the second synchronous belt (313). The sixth motor (314) drives the second threaded rod. The rod (303) rotates, and the Z-shaped plate (301) is also rotatably connected to the sixth pulley (317) via the second connecting shaft (319). The sixth pulley (317) is connected to the fifth pulley (316) via the third synchronous belt (318). The second connecting shaft (319) and the first connecting shaft (408) are fixedly connected and rotate coaxially, that is, the second threaded rod (303) and the first connecting shaft (408) rotate synchronously. Furthermore, the fifth gear (412) and the second threaded rod (303) rotate synchronously.

7. The power equipment casing forming device according to claim 6, characterized in that, The other end of the long rotating shaft (606) is fixed to one end of the bottom mounting plate (608) and coaxially provided with a metal ring (618). A first metal plate (619) is fixed on the metal ring (618), and a second metal plate (620) is fixed on the bottom mounting plate (608) on the same side. A spring (605) is fixed between the first metal plate (619) and the second metal plate (620).

8. The molding method of the device according to claim 7, characterized in that, Includes the following steps: S1: First, use the clamping mechanism (2) to clamp the processing plate. The two arc-shaped cleaning plates (210) on the clamping mechanism (2) rotate to expose several adsorption holes on the cylindrical adsorption tube 209. Use the adsorption holes and the two cylindrical adsorption tubes (209) to fix the processing plate. After the clamping mechanism (2) fixes the plate, the clamping mechanism (2) moves and rotates in the direction of the cutting mechanism (3) until the plate rotates to a horizontal state. S2: Then control the cutting device (308) on the cutting mechanism (3) to move to the cutting position, and then cooperate with the movement of the clamping mechanism (2) to realize the cutting of the plate. The waste and scrap after cutting fall into the rectangular bottomless frame (402). As the cutting device (308) moves upward, the rectangular bottomless frame (402) will move towards the screen (403). During the movement, the larger waste will be driven to the second receiving frame (404) for collection, and the smaller waste and scrap will fall through the screen (403) to the first receiving frame (406) for waste collection. S3: After cutting, the clamping mechanism (2) drives the cut plate to rotate in the opposite direction to a horizontal position and enter the cleaning area for cleaning. First, the exposed adsorption hole on one of the cylindrical adsorption tubes (209) is used to continuously adsorb and fix the cut plate. Then, the second telescopic cylinder (501) is controlled to move the long support plate (503) to above or below the mating groove (216) on the other cylindrical adsorption tube (209). The first telescopic cylinder (217) realizes the movement of the end mounting plate (207) until the mating block (508) is inserted into the mating groove (216) and engages with it. At this time, the fourth motor (509) is driven to rotate. The rotation of the fourth motor (509) further realizes the fourth gear (507). As the fourth gear (507) rotates, it meshes with the first rack (504) to further realize the movement of the mating block (508) and the moving seat (506) on the long support plate (503). With the cooperation of the mating block (508) and the mating groove (216), the first rectangular groove (218) on the adsorption component will separate from the rectangular card block (219) and gradually slide out of the long sliding groove (206). It will slide along one side of the cut plate and, with the back and forth brushing of the arc-shaped cleaning plate (210), the metal debris on one side of the cut plate can be cleaned. After one side is cleaned, the other arc-shaped cleaning plate (210) is used to repeat the above steps to continue cleaning the other side of the plate until both sides are cleaned. S4: After cleaning, the two cylindrical adsorption tubes (209) return to their initial positions and continue to use the clamping mechanism (2) to clamp the cleaned plate. After rotating clockwise, it enters the stamping area for stamping. The clamping mechanism (2) rotates the cut and cleaned plate clockwise downwards. During the rotation, the plate will gradually come into contact with the cylindrical push rod (609). During the continuous rotation of the plate, it will drive the rotating rod (617) to rotate until the plate rotates to a vertical downward state. During the rotation of the rotating rod (617), the long rotating shaft (606) rotates synchronously, and the sixth gear (607) also rotates. The sixth gear (607) and the fourth rack ( 616) The meshing transmission will enable the equipment box (610) to move laterally until the lower mold on it is in contact with the back of the plate. Then the fourth telescopic cylinder (601) controls the upper mold (602) to move towards the front of the plate. During the movement, the vertical rod (603) will drive the third rack (604) to move. During the movement, it will gradually mesh with the seventh gear (613) and make it rotate. The seventh gear (613) will drive the fourth threaded rod (612) to rotate, so that the equipment box (610) moves upward. After the lower mold rises to the specified height and is held, the upper mold (602) continues to move and gradually contacts the plate, and stamps the plate after it is cut.

Citation Information

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