Machining equipment for diaphragm compressor cylinder cover production

By designing a processing equipment for the cylinder head processing of the diaphragm compressor, using the combined structure of the transmission mechanism, auxiliary mechanism and boring assembly, the feed mismatch caused by unstable boring tool speed is solved, and the boring efficiency and quality improvement is achieved.

CN119973169APending Publication Date: 2025-05-13WUXI PUSTE MACHINERY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510393235.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

When processing the cylinder head of the diaphragm compressor, the speed of the boring tool is unstable, resulting in mismatch in the feed amount, excessive cutting, obvious cut marks, increased roughness or tearing the material, affecting the processing efficiency and quality.

Method used

A processing equipment including a transmission mechanism, an auxiliary mechanism and a boring assembly is designed. The downward movement speed of the boring tool shaft is adjusted by extruding the oil by the piston disk, the structure of the hollow disk and the semicircular plate is used to enhance the stability of the boring tool shaft, and the vibration of the rubber ball breaks the fitting state between the waste chips and the boring hole.

Benefits of technology

Effectively match the speed and feeding speed of the boring tool shaft, reduce excessive cutting and tearing, improve boring efficiency and quality, and reduce the problems of waste chip accumulation and poor chip removal.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of cylinder cover machining, and discloses machining equipment for diaphragm compressor cylinder cover production, which comprises a main body, a rotating disc is rotationally connected to the top of the main body, and the machining equipment further comprises a transmission mechanism, and the transmission mechanism is arranged in the main body and is used for carrying out sliding boring on a workpiece. The resistance of the piston disc is adjusted through oil when the stirring disc rotates along with different rotating speeds of the boring cutter shaft, so that the feeding speed of the boring cutter shaft can be matched with the rotating speed of the boring cutter shaft, and the situation that the feeding amount is too small due to the fact that the rotating speed of the boring cutter shaft is too high or the feeding amount is too large due to the fact that the rotating speed of the boring cutter shaft is too low during boring is reduced; the problems that the surface of a workpiece is excessively cut by a tool, obvious tool marks are formed, the surface roughness is increased, or the workpiece material is possibly torn by the tool in the boring process, and the disordered pattern defect occurs on the bored surface are solved, and the machining efficiency and the machining quality in the boring process are improved.
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Description

Technical Field

[0001] The invention relates to the technical field of cylinder head processing, in particular to processing equipment for producing diaphragm compressor cylinder heads. Background Art

[0002] The cylinder head of the diaphragm compressor is an important part of the diaphragm compressor. It is used to connect with the cylinder head and plays the role of fixing the sealing diaphragm. In order to ensure that the diaphragm compressor has good sealing performance, more bolts are needed to fix the cylinder head to the cylinder head. Therefore, when processing the cylinder head of the diaphragm compressor, a large number of bolt holes need to be opened on its edge;

[0003] Boring is required when machining the compressor cylinder head. Generally, when the boring cutter's downward moving speed is manually fed, the boring cutter's rotation speed has different speeds at different stages and the worker's control of the boring cutter's downward moving speed is not stable. When boring the workpiece, it is easy for the boring cutter's rotation speed to be too high and the feed rate to be too small, or the rotation speed to be too low and the feed rate to be too large. As a result, the tool is prone to over-cutting on the workpiece surface, obvious tool marks and increased roughness, or tearing the workpiece material to cause surface defects, affecting the machining efficiency and surface machining quality during machining. Summary of the invention

[0004] The object of the present invention is to provide a processing device for producing a diaphragm compressor cylinder head to solve the problems raised in the above-mentioned background technology.

[0005] In order to solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention is a processing device for producing a diaphragm compressor cylinder head, comprising a main body, a rotating disk is rotatably connected to the top of the main body, and further comprising:

[0007] A transmission mechanism, which is installed inside the main body and is used for sliding boring of the workpiece;

[0008] An auxiliary mechanism, which is installed on the outer surface of the transmission mechanism and is used to assist the transmission mechanism in boring the workpiece;

[0009] Among them, through the operation of the main body, the transmission mechanism can drive the auxiliary mechanism to perform boring work on the workpiece.

[0010] Further, the main body includes an electric frame fixedly connected to the top of the main body, and the main body includes:

[0011] A limit assembly, which is installed on the outside of the electric frame;

[0012] A transmission assembly, which is slidably disposed on the top of the electric frame; and

[0013] A boring assembly, which is installed inside the transmission assembly;

[0014] The sliding of the transmission assembly on the top of the electric frame can drive the boring assembly to perform sliding boring on the workpiece.

[0015] Further, the transmission mechanism includes a hollow disk arranged on the outer surface of the boring assembly, and two rectangular grooves are provided at the bottom of the hollow disk. The transmission mechanism includes:

[0016] A sliding assembly, the sliding assembly is fixedly arranged on the outer surface of the hollow disk through a fixing member;

[0017] The stirring mechanism is arranged on the top of the hollow disk.

[0018] Further, the auxiliary mechanism includes two semicircular plates rotatably connected to the bottom of the hollow disk, and the auxiliary mechanism includes:

[0019] A rotating assembly, which is slidably arranged on the side walls of the two semicircular plates through a sliding member;

[0020] The covering component is installed inside the hollow disk through a translation member.

[0021] Further, the limiter assembly includes a control panel fixedly connected to the front side of the electric frame;

[0022] The transmission assembly includes a sliding frame slidably connected to the outer wall of the top of the electric frame. The interior of the sliding frame is hollow. The top of the sliding frame is threadedly connected to a motor. The output end of the motor passes through the interior of the sliding frame. Two oil storage cylinders are fixedly connected to the bottom inner wall of the sliding frame.

[0023] Furthermore, the boring assembly includes a boring shaft slidably connected to the output end of the motor, the bottom of the boring shaft slides through the bottom outer wall of the sliding frame, the outer surface of the boring shaft is fixedly connected with a toothed plate, the outer surface of the toothed plate is meshingly connected with a rotating gear shaft, and the end of the rotating gear shaft away from the boring shaft rotates and penetrates to the outside of the sliding frame.

[0024] Further, the fixing member includes a bent plate fixedly connected to the left and right outer walls of the hollow disk, one end of the bent plate away from the hollow disk penetrates the inner wall of the sliding frame and extends to the inside of the oil storage cylinder, and the hollow disk is rotatably connected to the outer surface of the boring tool shaft;

[0025] The sliding assembly comprises a piston disc fixedly connected to the extended end of the bending plate, a plurality of conical holes are arranged on the bottom of the piston disc, and a plurality of notches are arranged on the outer surface of the piston disc.

[0026] Furthermore, the stirring mechanism includes two rollers arranged on the outer surface of the boring cutter shaft, the outer surfaces of the rollers are in contact with the outer wall of the boring cutter shaft, and the tops of the rollers are fixedly connected with short rods;

[0027] The short rod penetrates the bottom inner wall of the oil storage cylinder and extends to the outside, and the extended section of the short rod is fixedly connected with a stirring disk.

[0028] Furthermore, the sliding member includes a sliding frame 2 slidably connected to the front and back sides of the two semicircular plates, the top of the sliding frame 2 is fixedly connected to two return springs, and the tops of the two return springs are fixedly connected to the bottom outer wall of the hollow disk;

[0029] The rotating assembly includes a right-angle block fixedly connected to the top of the second sliding frame.

[0030] Furthermore, the translation member includes a right-angle block 2 slidably connected inside the rectangular groove, and a semicircular plate 2 is slidably connected to the top of the right-angle block 2;

[0031] The covering component includes a plurality of long grooves formed on the inner wall of the second semicircular plate, and a spring bead is fixedly connected to the inner wall of the long groove away from the boring cutter shaft;

[0032] The vibration mechanism comprises an elastic shaft which is rotatably connected to the front and back sides of two semicircular plates, and a plurality of rubber balls are rotatably connected to the outer surface of the elastic shaft.

[0033] The present invention has the following beneficial effects:

[0034] (1) In the present invention, the oil is squeezed by the piston disc, and the oil flows upward through the tapered hole. When the rotation speed of the boring cutter shaft is low, the oil forms a small vortex and is relatively stable. When the piston disc moves downward, more oil needs to be pushed away. At this time, the oil is close to static. The flow of the oil through the tapered hole needs to overcome the large viscous resistance so that the piston disc drives the boring cutter shaft to move slowly downward under resistance. When the rotation speed of the boring cutter shaft becomes faster, the oil forms a fast vortex. At this time, the oil presents a rotating flow state as a whole. When the piston disc moves downward, the oil is more likely to flow along the vortex direction, and the internal friction between the oils and the obstruction to the piston disc are reduced. Therefore, The oil provides less resistance to the piston disc, so the boring cutter shaft can slide down quickly. By adjusting the resistance of the piston disc by the oil in the stirring disc as the boring cutter shaft rotates at different speeds, the feed speed of the boring cutter shaft can be matched with the rotation speed of the boring cutter shaft, thereby reducing the situation where the boring cutter shaft speed is too high and the feed amount is too small or the boring cutter shaft speed is too low and the feed amount is too large during boring, resulting in excessive cutting of the tool on the workpiece surface, forming obvious tool marks and increased surface roughness, or causing the tool to tear the workpiece material during boring, resulting in random defects on the surface after boring, thereby improving the processing efficiency and processing quality during boring.

[0035] (2) In the present invention, the sliding of the hollow disk drives the auxiliary mechanism to move downward and expand to both sides of the workpiece surface. The expansion of the two semicircular plates enables the right-angle block to squeeze the side wall of the right-angle block 2. The two semicircular plates 2 form a circular shape and contact and squeeze the boring cutter shaft to extrude and coat the surface of the boring cutter shaft, which can further enhance the stability of the boring cutter shaft when boring downward. At the same time, it can also reduce the vibration of the boring cutter shaft during the boring downward movement due to the wear of the boring cutter shaft or the existing gap, thereby further enhancing the stability of the boring cutter shaft when driving the hollow disk downward for boring and the boring accuracy during boring.

[0036] (3) In the present invention, when the two semicircular plates are expanded outward, the elastic shaft will be in a taut state. When the elastic shaft is taut, it will drive multiple rubber balls to fit the boring hole on the surface of the workpiece. Then, the vibration generated in the boring hole will be transmitted to the multiple rubber balls and cause the rubber balls to vibrate. The vibration of the multiple rubber balls can break the fit between the waste chips and the boring hole wall, so that the waste chips generated during boring are loosened and fall off under the vibration of the multiple rubber balls, thereby reducing the accumulation of waste chips in the boring hole and the poor chip removal caused by the movement of the boring cutter shaft during boring, reducing the wear of the boring cutter and the inner wall of the boring hole and the reduction of processing accuracy caused by the secondary processing of waste chips and the rotation of the boring cutter due to poor chip removal, and enhancing the subsequent processing quality.

[0037] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for describing the embodiments are briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0039] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0040] Figure 2 It is a schematic diagram of the overall partial cross-sectional structure of the present invention;

[0041] Figure 3 It is a schematic diagram of the main body of the present invention;

[0042] Figure 4 It is a schematic diagram of the boring assembly of the present invention;

[0043] Figure 5 It is a schematic diagram of the sliding assembly of the present invention;

[0044] Figure 6It is a schematic diagram of the rotating assembly of the present invention;

[0045] Figure 7 For the present invention Figure 6 The enlarged schematic diagram at A in the middle;

[0046] Figure 8 It is a schematic diagram of a partial cross section of the covering component of the present invention.

[0047] In the accompanying drawings, the components represented by the reference numerals are listed as follows:

[0048] In the figure: 1. main body; 101. rotating disk; 11. limit assembly; 111. electric frame; 112. control board; 12. transmission assembly; 121. sliding frame; 122. motor; 13. boring assembly; 131. boring tool shaft; 132. tooth plate; 133. rotating gear shaft; 2. transmission mechanism; 21. sliding assembly; 211. hollow disk; 212. bending plate; 213. piston disk; 214. tapered hole; 22. stirring mechanism; 221. rolling plate; 222. stirring plate; 3. auxiliary mechanism; 31. rotating assembly; 311. semicircular plate; 312. sliding frame 2; 313. right-angle block; 32. covering assembly; 321. right-angle block 2; 322. semicircular plate 2; 323. spring bead; 33. vibration mechanism; 331. elastic shaft; 332. rubber ball. DETAILED DESCRIPTION

[0049] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0050] See also Figure 1-Figure 8 As shown, the present invention is a processing device for producing a diaphragm compressor cylinder head, comprising a main body 1, a rotating disk 101 is rotatably connected to the top of the main body 1, and further comprising;

[0051] The transmission mechanism 2 is installed inside the main body 1 and is used for sliding boring of the workpiece;

[0052] An auxiliary mechanism 3, which is installed on the outer surface of the transmission mechanism 2 and is used to assist the transmission mechanism 2 in boring the workpiece;

[0053] The operation of the main body 1 enables the transmission mechanism 2 to drive the auxiliary mechanism 3 to perform boring on the workpiece.

[0054] The main body 1 includes an electric frame 111 fixedly connected to the top of the main body 1, and the main body 1 includes:

[0055] A limit assembly 11, the limit assembly 11 is installed outside the electric frame 111;

[0056] A transmission assembly 12, the transmission assembly 12 is slidably disposed on the top of the electric frame 111; and

[0057] A boring assembly 13, wherein the boring assembly 13 is installed inside the transmission assembly 12;

[0058] The sliding of the transmission assembly 12 on the top of the electric frame 111 can drive the boring assembly 13 to perform sliding boring on the workpiece.

[0059] The transmission mechanism 2 includes a hollow disk 211 disposed on the outer surface of the boring assembly 13. Two rectangular grooves are formed at the bottom of the hollow disk 211. The transmission mechanism 2 includes:

[0060] Sliding assembly 21, the sliding assembly 21 is fixedly arranged on the outer surface of the hollow disk 211 through a fixing member;

[0061] The stirring mechanism 22 is arranged on the top of the hollow disk 211 .

[0062] The auxiliary mechanism 3 includes two semicircular plates 311 rotatably connected to the bottom of the hollow disk 211. The auxiliary mechanism 3 includes:

[0063] A rotating assembly 31, wherein the rotating assembly 31 is slidably disposed on the side walls of the two semicircular plates 311 through a sliding member;

[0064] The covering component 32 is installed inside the hollow disk 211 through a translation member.

[0065] The limiting assembly 11 includes a control panel 112 fixedly connected to the front of the electric frame 111;

[0066] The transmission assembly 12 includes a sliding frame 121 slidably connected to the top outer wall of the electric frame 111. The interior of the sliding frame 121 is hollow. The top of the sliding frame 121 is threadedly connected to a motor 122. The output end of the motor 122 passes through the interior of the sliding frame 121. Two oil storage cylinders 123 are fixedly connected to the bottom inner wall of the sliding frame 121. At this time, the boring shaft 131 can slide downward quickly. By adjusting the resistance of the piston disk 213 under the different rotation speeds of the boring shaft 131 by the oil on the stirring plate 222, the feeding speed of the boring shaft 131 can be matched with the rotation speed of the boring shaft 131.

[0067] The boring assembly 13 includes a boring shaft 131 slidably connected to the output end of the motor 122. The bottom of the boring shaft 131 slides through the bottom outer wall of the sliding frame 121. The outer surface of the boring shaft 131 is fixedly connected with a toothed plate 132. The outer surface of the toothed plate 132 is meshingly connected with a rotating gear shaft 133. The end of the rotating gear shaft 133 away from the boring shaft 131 rotates and penetrates to the outside of the sliding frame 121. The two semicircular plates 322 form a circular shape and contact and extrude the boring shaft 131 on the surface of the boring shaft 131 to extrude and coat it, which can further enhance the stability of the boring shaft 131 when boring downward.

[0068] The fixing member includes a curved plate 212 fixedly connected to the left and right outer walls of the hollow disk 211, and one end of the curved plate 212 away from the hollow disk 211 penetrates the inner wall of the sliding frame 121 and extends to the inside of the oil storage cylinder 123. The hollow disk 211 is rotatably connected to the outer surface of the boring tool shaft 131;

[0069] The sliding assembly 21 includes a piston disk 213 fixedly connected to the extended end of the curved plate 212, and a plurality of tapered holes 214 are provided at the bottom of the piston disk 213, and a plurality of notches are provided on the outer surface of the piston disk 213. The oil is squeezed by the piston disk 213, and the oil flows upward through the tapered holes 214. When the rotation speed of the boring shaft 131 is low, the oil will form a small vortex and be relatively stable. When the piston disk 213 moves downward, more oil needs to be pushed away. At this time, the oil is close to static. The flow of oil through the tapered holes 214 needs to overcome the large viscous resistance so that the piston disk 213 drives the boring shaft 131 to move slowly downward under resistance.

[0070] The stirring mechanism 22 includes two rollers 221 arranged on the outer surface of the boring cutter shaft 131, the outer surface of the rollers 221 is in contact with the outer wall of the boring cutter shaft 131, and the top of the rollers 221 is fixedly connected with a short rod;

[0071] Among them, the short rod penetrates the bottom inner wall of the oil storage cylinder 123 and extends to the outside. The extended section of the short rod is fixedly connected to the stirring plate 222. Therefore, the resistance provided by the oil to the piston plate 213 is relatively small. At this time, the boring shaft 131 can slide downward quickly, and the resistance of the piston plate 213 is adjusted by the oil on the stirring plate 222 with different rotation speeds of the boring shaft 131.

[0072] The sliding member includes a second sliding frame 312 slidably connected to the front and back sides of the two semicircular plates 311, and two return springs are fixedly connected to the top of the second sliding frame 312, and the tops of the two return springs are fixedly connected to the bottom outer wall of the hollow disk 211;

[0073] The rotating assembly 31 includes a right-angle block 313 fixedly connected to the top of the sliding frame 312. When the two semicircular plates 311 are expanded outward, the elastic shaft 331 will be in a taut state. When the elastic shaft 331 is taut, it will drive multiple rubber balls 332 to fit the boring hole on the surface of the workpiece. Subsequently, the vibration generated in the boring hole will be transmitted to the multiple rubber balls 332 and cause the rubber balls 332 to vibrate.

[0074] The translation member includes a second right-angle block 321 slidably connected inside the rectangular groove, and a second semicircular plate 322 is slidably connected to the top of the second right-angle block 321;

[0075] The covering component 32 includes a plurality of long grooves formed on the inner wall of the second semicircular plate 322, and a spring bead 323 is fixedly connected to the inner wall of the long groove away from the boring tool shaft 131;

[0076] The vibration mechanism 33 includes an elastic shaft 331 rotatably connected to the front and back sides of the two semicircular plates 311, and a plurality of rubber balls 332 are rotatably connected to the outer surface of the elastic shaft 331. The vibration of the plurality of rubber balls 332 can break the fit between the waste chips and the boring mouth wall, so that the waste chips generated during boring are loosened and fall off under the vibration of the plurality of rubber balls 332, thereby reducing the waste chips from moving down the boring cutter shaft 131 during boring, causing the movement to cause accumulation and poor chip removal in the boring mouth.

[0077] When in use, first place the workpiece to be bored on the rotating disk 101, and fill the two oil storage cylinders 123 with oil, then the staff starts the control panel 112 to adjust the position of the sliding frame 121 on the top of the electric frame 111, and then install the boring tool on the boring tool shaft 131, then start the motor 122 and adjust the speed of the motor 122, and then the staff rotates the rotating gear shaft 133. When the rotating gear shaft 133 rotates, it will drive the boring tool shaft 131 to slide downward and bore the holes on the workpiece to complete the purpose of boring.

[0078] When the boring tool shaft 131 slides downward and bores the workpiece, the sliding of the boring tool shaft 131 will drive the two curved plates 212 to slide synchronously through the hollow plate 211. When the curved plate 212 slides, it will drive the piston plate 213 to move downward inside the oil storage cylinder 123. When the piston plate 213 moves downward, the oil inside the oil storage cylinder 123 will flow upward through the tapered hole 214 under the pressure of the downward movement of the piston plate 213. At the same time, the rotation of the boring tool shaft 131 will drive the roller 221 and the stirring plate 222 to rotate through the friction between the roller 221 and the roller 221. When the boring cutter shaft 131 rotates at a low speed, the stirring disc 222 will be driven to rotate slowly inside the oil. At this time, the oil will form a small vortex under the rotation of the stirring disc 222. When the oil vortex is small, the oil is relatively stable. When the piston disc 213 moves downward, more oil needs to be pushed away. At this time, the oil is close to static. When the piston disc 213 moves downward, the flow of oil through the tapered hole 214 needs to overcome a large viscous resistance. At this time, the piston disc 213 will be subject to a large resistance when moving downward, so that the piston disc 213 and the hollow disc 211 drive the boring cutter shaft 1 31 moves down slowly under resistance, and then when the speed of the boring tool shaft 131 becomes faster, the oil will form a fast vortex. When the oil forms a fast vortex, the oil as a whole presents a rotating flow state. When the piston plate 213 moves down, the oil is more likely to flow in the vortex direction, and the internal friction between the oils and the obstruction to the piston plate 213 are reduced. Therefore, the resistance provided by the oil to the piston plate 213 is small. At this time, the boring tool shaft 131 can slide down quickly, and the oil on the stirring plate 222 with the different speeds of the boring tool shaft 131 Adjustment of the resistance of the plug disc 213 can make the feed speed of the boring cutter shaft 131 match the rotation speed of the boring cutter shaft 131, thereby reducing the situation where the boring cutter shaft 131 rotates too fast and the feed rate is too small during boring, causing the tool to over-cut on the workpiece surface, forming obvious tool marks and increased surface roughness. At the same time, it can also reduce the situation where the boring cutter shaft 131 rotates too fast and the feed rate is too large during boring, causing the tool to tear the workpiece material, resulting in random defects on the surface after boring, thereby improving the processing efficiency and processing quality during boring processing.

[0079] When the boring cutter shaft 131 drives the hollow disk 211 to slide downward, the sliding of the hollow disk 211 will drive the auxiliary mechanism 3 to move downward synchronously and contact the surface of the workpiece. When the two semicircular plates 311 contact the surface of the workpiece, the two semicircular plates 311 will expand to both sides on the surface of the workpiece as the hollow disk 211 continues to move downward with the boring cutter shaft 131. When expanding, the two semicircular plates 311 will drive the sliding frame 2 312 and the right-angle block 313 to slide upward. When the right-angle block 313 slides upward, it will squeeze the side wall of the right-angle block 2 321. After being squeezed, the right-angle block 2 321 will drive the semicircular plates 2 32 2 slides in the direction of the boring cutter shaft 131, at this time, the two semicircular plates 322 will form a circular shape and contact and extrude the surface of the boring cutter shaft 131, and the extrusion and coating of the two semicircular plates 322 on the surface of the boring cutter shaft 131 can further enhance the stability of the boring cutter shaft 131 when boring downward, and can also reduce the vibration of the boring cutter shaft 131 during the boring downward movement due to the wear of the boring cutter shaft 131 or the existing gap, thereby further enhancing the stability of the boring cutter shaft 131 when driving the hollow disk 211 to move downward for boring and the boring accuracy during boring.

[0080] When the two semicircular plates 311 are expanded outward, the expansion of the two semicircular plates 311 will pull the two elastic shafts 331. At this time, the two elastic shafts 331 will be in a taut state. When the elastic shafts 331 are taut, they will drive the multiple rubber balls 332 to fit the boring mouth of the workpiece surface. Then, when the boring tool shaft 131 is boring, the vibration generated in the boring mouth will be transmitted to the multiple rubber balls 332 and make the rubber balls 332 vibrate. The vibration of 332 can break the adhesion between the waste chips and the boring mouth wall, so that the waste chips generated during boring are loosened and fall off under the vibration of multiple rubber balls 332, thereby reducing the accumulation of waste chips and poor chip removal in the boring mouth caused by the movement of the boring tool shaft 131 during boring, and reducing the secondary processing of the waste chips and the rotation of the boring tool due to poor chip removal, which causes wear on the boring tool and the inner wall of the boring mouth and a decrease in processing accuracy, thereby enhancing the subsequent processing quality.

[0081] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A processing device for producing a diaphragm compressor cylinder head, comprising a main body (1), the top of the main body (1) being rotatably connected to a rotating disk (101), characterized in that: Also includes; A transmission mechanism (2), the transmission mechanism (2) being installed inside the main body (1) and used for performing sliding boring on a workpiece; An auxiliary mechanism (3), the auxiliary mechanism (3) being installed on the outer surface of the transmission mechanism (2) and used for assisting the transmission mechanism (2) in boring the workpiece; The operation of the main body (1) enables the transmission mechanism (2) to drive the auxiliary mechanism (3) to perform boring work on the workpiece.

2. A processing equipment for producing a diaphragm compressor cylinder head according to claim 1, characterized in that: The main body (1) comprises an electric frame (111) fixedly connected to the top of the main body (1), and the main body (1) comprises: A limit assembly (11), wherein the limit assembly (11) is installed outside the electric frame (111); A transmission assembly (12), wherein the transmission assembly (12) is slidably disposed on the top of the electric frame (111); and A boring assembly (13), wherein the boring assembly (13) is installed inside the transmission assembly (12); The sliding of the transmission component (12) on the top of the electric frame (111) can drive the boring component (13) to perform sliding boring on the workpiece.

3. A processing equipment for producing a diaphragm compressor cylinder head according to claim 2, characterized in that: The transmission mechanism (2) comprises a hollow disk (211) arranged on the outer surface of the boring assembly (13), and two rectangular grooves are formed at the bottom of the hollow disk (211). The transmission mechanism (2) comprises: A sliding assembly (21), wherein the sliding assembly (21) is fixedly arranged on the outer surface of the hollow disk (211) via a fixing member; A stirring mechanism (22), wherein the stirring mechanism (22) is arranged on the top of the hollow disk (211).

4. A processing equipment for producing a diaphragm compressor cylinder head according to claim 3, characterized in that: The auxiliary mechanism (3) comprises two semicircular plates (311) rotatably connected to the bottom of the hollow disk (211), and the auxiliary mechanism (3) comprises: A rotating assembly (31), wherein the rotating assembly (31) is slidably arranged on the side walls of the two semicircular plates (311) via a sliding member; A covering component (32), wherein the covering component (32) is installed inside the hollow disk (211) via a translation member.

5. A processing equipment for producing a diaphragm compressor cylinder head according to claim 4, characterized in that: The limiting assembly (11) comprises a control panel (112) fixedly connected to the front side of the electric frame (111); The transmission assembly (12) comprises a sliding frame (121) slidably connected to the top outer wall of the electric frame (111); the interior of the sliding frame (121) is hollow; the top of the sliding frame (121) is threadedly connected to a motor (122); the output end of the motor (122) passes through the interior of the sliding frame (121); and the bottom inner wall of the sliding frame (121) is fixedly connected to two oil storage cylinders (123).

6. A processing equipment for producing a diaphragm compressor cylinder head according to claim 5, characterized in that: The boring assembly (13) comprises a boring shaft (131) slidably connected to the output end of the motor (122); the bottom of the boring shaft (131) slides through the bottom outer wall of the sliding frame (121); the outer surface of the boring shaft (131) is fixedly connected to a toothed plate (132); the outer surface of the toothed plate (132) is meshingly connected to a rotating gear shaft (133); and one end of the rotating gear shaft (133) away from the boring shaft (131) rotates and penetrates to the outside of the sliding frame (121).

7. A processing equipment for producing a diaphragm compressor cylinder head according to claim 6, characterized in that: The fixing member comprises a curved plate (212) fixedly connected to the left and right outer walls of the hollow disk (211); one end of the curved plate (212) away from the hollow disk (211) penetrates the inner wall of the sliding frame (121) and extends to the inside of the oil storage cylinder (123); and the hollow disk (211) is rotatably connected to the outer surface of the boring cutter shaft (131); The sliding assembly (21) comprises a piston plate (213) fixedly connected to the extended end of the curved plate (212), a plurality of conical holes (214) are provided at the bottom of the piston plate (213), and a plurality of notches are provided on the outer surface of the piston plate (213).

8. The processing equipment for producing a diaphragm compressor cylinder head according to claim 7, characterized in that: The stirring mechanism (22) comprises two rollers (221) arranged on the outer surface of the boring cutter shaft (131), the outer surface of the rollers (221) is in contact with the outer wall of the boring cutter shaft (131), and the top of the rollers (221) is fixedly connected with a short rod; The short rod penetrates the bottom inner wall of the oil storage cylinder (123) and extends to the outside, and the extended section of the short rod is fixedly connected to the stirring disc (222).

9. A processing equipment for producing a diaphragm compressor cylinder head according to claim 8, characterized in that: The sliding member comprises a second sliding frame (312) slidably connected to the front and back sides of the two semicircular plates (311), the top of the second sliding frame (312) being fixedly connected to two return springs, and the tops of the two return springs being fixedly connected to the bottom outer wall of the hollow disk (211); The rotating assembly (31) comprises a right-angle block (313) fixedly connected to the top of the second sliding frame (312).

10. The processing equipment for producing a diaphragm compressor cylinder head according to claim 9, characterized in that: The translation member comprises a second right-angle block (321) slidably connected inside the rectangular groove, and a second semicircular plate (322) is slidably connected to the top of the second right-angle block (321); The covering component (32) comprises a plurality of long grooves formed on the inner wall of the second semicircular plate (322), and a spring bead (323) is fixedly connected to the inner wall of the long groove away from the boring tool shaft (131); The vibration mechanism (33) comprises an elastic shaft (331) rotatably connected to the front and back sides of the two semicircular plates (311), and a plurality of rubber balls (332) are rotatably connected to the outer surface of the elastic shaft (331).

Citation Information

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  • Precise main shaft structure capable of prolonging service life of main shaft and increasing milling speed

    CN216858250U

  • Milling and deburring tool for use in machine tool of workpiece e.g. tube, has milling head stroke-mobilely supported in axial direction relative to base body against stopper, which variably adjusts lifting height of milling head

    DE102008056682A1