A continuous turning machine tool based on a rotary tool head switching structure

Through the rotary head switching structure and the bidirectional screw linkage, the balance between the tool seat and the counterweight block is automatically adjusted, which solves the serious vibration problem in boring large-diameter workpieces, and achieves efficient and accurate processing effects.

CN119952100BActive Publication Date: 2025-08-15DONGGUAN YUYANG PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202510404055.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-08-15
Estimated Expiration
2045-04-01

AI Technical Summary

Technical Problem

In the prior art, when using bridge boring tools for boring operations of large diameter workpieces, the counterweight block position needs to be frequently manually adjusted to maintain the tool bridge balance, resulting in severe vibration, poor machining accuracy and short tool life.

Method used

The rotary cutting head switching structure is adopted, and the tool holder and counterweight are linked by a two-way screw, which automatically adjusts the balance, reduces manual intervention, ensures the balance between the two sides of the cutting bridge, and uses magnetic columns and inclined scrapers to prevent debris from entering and affecting processing.

Benefits of technology

It improves the quality of the processing surface, extends the service life of tools and machine tools, reduces equipment losses, and improves boring efficiency and machining accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of cutting machine tools, and discloses a continuous operation turning machine tool based on a rotary tool head switching structure, comprising a tool holder, the outer end of the tool holder is fixedly connected to a tool bridge, and the end of the tool holder away from the tool bridge is connected to a spindle. The continuous operation turning machine tool based on the rotary tool head switching structure can effectively solve the problem in the prior art that a bridge-type boring tool is used for boring operations on large-diameter workpieces, and the boring tool head needs to be extended to a larger diameter position for hole processing. Similarly, the position of the counterweight block also needs to be adjusted accordingly, and the operator needs to frequently manually intervene in the position of the counterweight block to maintain the balance of the tool bridge. Once the center of gravity of the tool bridge deviates, especially under high-speed rotating working conditions, it will cause more serious vibration, which will lead to poor processing accuracy of the finished product and low tool life.
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Description

Technical Field

[0001] The present invention relates to the technical field of cutting machine tools, and in particular to a continuous operation turning machine tool based on a rotary cutter head switching structure. Background Art

[0002] A boring tool is a tool used in metal cutting, primarily for enlarging, finishing, or correcting existing holes to improve their dimensional accuracy, shape precision, and surface quality. It is widely used in precision machining applications in the automotive, aerospace, and shipbuilding industries.

[0003] In the existing technology, a bridge-type boring tool is used for boring operations on large-diameter workpieces. When the boring tool head needs to be extended to a larger diameter position for hole processing, the position of the counterweight block also needs to be adjusted accordingly. The operator needs to frequently manually intervene in the position of the counterweight block to maintain the balance of the tool bridge. Once the center of gravity of the tool bridge deviates, especially under high-speed rotation working conditions, it will cause more serious vibration, which will lead to poor processing accuracy of the finished product and a short tool life. Summary of the Invention

[0004] In response to the above-mentioned shortcomings of the prior art, the present invention provides a continuous turning machine based on a rotary tool head switching structure, which can effectively solve the problem in the prior art that a bridge-type boring tool is used for boring large-diameter workpieces. When the boring tool head needs to be extended to a larger diameter position for hole processing, the position of the counterweight block also needs to be adjusted accordingly. The operator needs to frequently manually intervene in the position of the counterweight block to maintain the balance of the tool bridge. Once the center of gravity of the tool bridge deviates, especially under high-speed rotation working conditions, it will cause more serious vibration, which will lead to poor processing accuracy of the finished product and low tool life.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions:

[0006] The present invention provides a continuous operation turning machine tool based on a rotary tool head switching structure, comprising:

[0007] A knife handle, wherein the outer end of the knife handle is fixedly connected to the knife bridge, the end of the knife handle away from the knife bridge is connected to the main shaft, the knife bridge is slidably connected to the slider via a dovetail block fixed on its upper surface, two sliders are provided and symmetrically distributed on both sides of the knife bridge, a cavity is provided inside the knife bridge, and a balancing member for maintaining the stability of the knife bridge is provided inside the cavity;

[0008] A knife holder, wherein the bottom of the knife holder is detachably connected to a base, the lower surface of the base is fixedly connected to the upper surface of the slider, and the upper surface of the knife holder is detachably mounted with a blade;

[0009] Among them, the balance member includes a bidirectional screw rod, which is rotatably connected to the inside of the knife bridge through a bearing sleeved in the middle thereof, and the outer end of the bidirectional screw rod is fixedly connected to a nut rotatably connected to the inner wall of the cavity, and the slider is engaged with the circumferential outer surface of the bidirectional screw rod through a connecting ring block fixed at its bottom, and a counterweight block is fixedly connected to the upper surface of the slider away from the knife seat, and the knife bridge is provided with a protective member for preventing debris from entering the cavity through a shift groove opened on its upper surface.

[0010] Furthermore, the protective part includes baffle 1 and baffle 2, which are both slidably connected to the inside of the shift groove. Baffle 1 and baffle 2 are distributed left and right with the tool handle as the center. The side of baffle 1 away from the tool holder is fixedly connected to the outer surface of the counterweight block, and the side of baffle 2 close to the tool holder is fixedly connected to the outer surface of the base circumference.

[0011] Furthermore, the lower surfaces of baffle 1 and baffle 2 are both in contact with the upper surface of the knife bridge, and a cavity is provided on the side of the counterweight block away from the knife seat, and a pressure piece is provided inside the cavity.

[0012] Furthermore, the pressing member includes a sliding rod slidably connected to the inside of the cavity, the end of the sliding rod away from the knife seat passes through the cavity and is fixedly connected to the inclined scraper, and the end of the sliding rod away from the inclined scraper is fixedly connected to an end block that fits the inner wall of the cavity.

[0013] Furthermore, a spring 1 connected to the inner wall of the cavity is provided at one end of the end block close to the knife seat, and a spring 2 connected to the inner wall of the cavity is provided at one end of the end block away from the knife seat. The spring 2 is sleeved on the circumferential outer surface of the sliding rod, and the spring 1 and spring 2 are distributed on both sides of the end block.

[0014] Furthermore, the outer surface of the inclined scraper adopts a curved surface design.

[0015] Furthermore, a sliding groove is provided on the side of the counterweight block away from the knife seat, and the outer side of the inclined scraper is fixedly connected to a side plate that is slidably connected to the inner wall of the sliding groove. The outer surface of the side plate close to the inclined scraper adopts an arc edge design, and the side of the inclined scraper away from the counterweight block is fixedly connected to a brush head.

[0016] Furthermore, the nut is slidably connected to a magnetic column through an inner cavity opened on its circumferential outer surface, an outer cavity is opened inside the knife bridge, the interior of the outer cavity is connected to the interior of the cavity, and the side of the inner wall of the outer cavity away from the inner cavity adopts a magnetic design that is magnetically attracted to the outer end of the magnetic column.

[0017] Compared with the prior art, the technical solution provided by the present invention has the following beneficial effects:

[0018] The present invention is equipped with a balancing member. When adjusting the blade position according to the aperture, the tool holder and the counterweight are linked by a bidirectional screw. By driving the bidirectional screw to rotate inside the tool bridge, the tool holder position is adjusted. At the same time, the counterweight moves synchronously. The two always move in the same direction or opposite directions. There is no need to manually move the counterweight a second time after moving the tool holder position, ensuring the continuity of the boring process. When the tool holder slides to any position within the moving range, the counterweight can cooperate with it to maintain the balance of both sides of the tool bridge, reducing vibration caused by center of gravity offset. During the boring process, it helps to improve the quality of the machined surface and reduce the surface roughness of the workpiece. At the same time, it extends the service life of the tool and machine tool, reduces equipment loss, and improves the efficiency of the boring process. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.

[0020] Figure 1 It is a three-dimensional structural diagram of an embodiment of the present invention;

[0021] Figure 2 This is a schematic structural diagram of a knife handle, a knife bridge, a knife seat and a counterweight block according to an embodiment of the present invention;

[0022] Figure 3 This is a schematic diagram of the separation structure of the knife bridge, knife seat, slider and counterweight block according to an embodiment of the present invention;

[0023] Figure 4 Schematic diagram of the cross-sectional structure of the knife bridge according to an embodiment of the present invention;

[0024] Figure 5 For the embodiment of the present invention Figure 4 A schematic diagram of the partially enlarged structure at center A;

[0025] Figure 6 For the embodiment of the present invention Figure 4 A schematic diagram of the structure with a partial enlargement at point B in the middle;

[0026] Figure 7 This is a schematic structural diagram of a balancing member according to an embodiment of the present invention;

[0027] Figure 8 Schematic diagram of the separation structure of the pressing member and the counterweight block according to an embodiment of the present invention.

[0028] The numbers in the figure represent: 1. Tool handle; 11. Tool bridge; 111. Cavity; 12. Slider; 13. Balancer; 131. Bidirectional screw rod; 132. Connecting ring block; 133. Counterweight; 1331. Cavity; 14. Nut; 141. Inner cavity; 142. Magnetic column; 2. Tool holder; 21. Base; 22. Blade; 23. Protective part; 231. Baffle 1; 232. Baffle 2; 25. Pressure part; 251. Sliding rod; 252. Scraper; 2521. Brush head; 253. End block; 254. Spring 1; 255. Spring 2; 256. Side panel. DETAILED DESCRIPTION

[0029] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings 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 making any creative efforts shall fall within the scope of protection of the present invention.

[0030] The present invention will be further described below with reference to the embodiments. Example

[0031] See also Figures 1-8 The present invention provides a technical solution: a continuous operation turning machine tool based on a rotary tool head switching structure, comprising:

[0032] A tool handle 1, the outer end of the tool handle 1 is fixedly connected to a tool bridge 11, the end of the tool handle 1 away from the tool bridge 11 is connected to a spindle, the tool bridge 11 is slidably connected to a slider 12 via a dovetail block fixed on its upper surface, two sliders 12 are provided and symmetrically distributed on both sides of the tool bridge 11, a cavity 111 is provided inside the tool bridge 11, and a balance member 13 is provided inside the cavity 111 for maintaining the stability of the tool bridge 11;

[0033] The bottom of the knife holder 2 is detachably connected to the base 21, the lower surface of the base 21 is fixedly connected to the upper surface of the slider 12, and the upper surface of the knife holder 2 is detachably mounted with a blade 22;

[0034] The balance member 13 includes a bidirectional screw rod 131, which is rotatably connected to the inside of the knife bridge 11 through a bearing sleeved in the middle thereof. The outer end of the bidirectional screw rod 131 is fixedly connected to a nut 14 rotatably connected to the inner wall of the cavity 111. The slider 12 is engaged with the circumferential outer surface of the bidirectional screw rod 131 through a connecting ring block 132 fixed to the bottom thereof. A counterweight block 133 is fixedly connected to the upper surface of the slider 12 on the side away from the knife seat 2.

[0035] The knife bridge 11 is provided with a protection member 23 through a shift groove opened on the upper surface thereof, which can be used to prevent debris from entering the interior of the cavity 111.

[0036] The protective part 23 includes a baffle 1 231 and a baffle 2 232, both of which are slidably connected to the inside of the shift groove. The baffle 1 231 and the baffle 2 232 are distributed left and right with the tool handle 1 as the center. The side of the baffle 1 231 away from the tool holder 2 is fixedly connected to the outer surface of the counterweight block 133, and the side of the baffle 2 232 close to the tool holder 2 is fixedly connected to the circumferential outer surface of the base 21.

[0037] The lower surfaces of baffle 1 231 and baffle 2 232 are both in contact with the upper surface of the knife bridge 11 . A cavity 1331 is defined on the side of the counterweight 133 away from the knife seat 2 . A pressing member 25 is disposed inside the cavity 1331 .

[0038] The pressing member 25 includes a sliding rod 251 slidably connected to the inside of the cavity 1331. The end of the sliding rod 251 away from the knife seat 2 passes through the cavity 1331 and is fixedly connected to the inclined scraper 252. The end of the sliding rod 251 away from the inclined scraper 252 is fixedly connected to the end block 253 that fits the inner wall of the cavity 1331.

[0039] The end of the end block 253 close to the knife seat 2 is provided with a spring 1 254 connected to the inner wall of the cavity 1331, and the end of the end block 253 away from the knife seat 2 is provided with a spring 2 255 connected to the inner wall of the cavity 1331. The spring 2 255 is sleeved on the circumferential outer surface of the sliding rod 251, and the spring 1 254 and the spring 2 255 are distributed on both sides of the end block 253.

[0040] The outer surface of the inclined scraper 252 is designed to be a curved surface.

[0041] A sliding groove is provided on the side of the counterweight block 133 away from the knife seat 2, and the outer side of the inclined scraper 252 is fixedly connected to a side plate 256 that is slidably connected to the inner wall of the sliding groove. The outer surface of the side plate 256 close to the inclined scraper 252 adopts an arc edge design, and the side of the inclined scraper 252 away from the counterweight block 133 is fixedly connected to a brush head 2521.

[0042] The nut 14 is slidably connected to a magnetic column 142 via an inner cavity 141 formed on its circumferential outer surface. An outer cavity is formed inside the blade bridge 11, and the interior of the outer cavity is connected to the interior of the cavity 111. The side of the inner wall of the outer cavity away from the inner cavity 141 adopts a magnetic design that magnetically attracts the outer end of the magnetic column 142. The end of the magnetic column 142 close to the outer cavity adopts an arc design to serve as a guide. The outer cavity corresponds one-to-one with the inner cavity 141, and multiple magnetic columns 142 are arranged in a circumferential array. The nut 14 adopts an intermittent rotation structure design in the cavity 111, that is, it pauses every certain degree of rotation, so that the nut 14 eventually stops in the appropriate position, allowing the circumferential outer surface of the magnetic column 142 to enter the interior of the outer cavity.

[0043] The process of assembling each part:

[0044] In practical applications, the length of the tool bridge 11 is selected according to the diameter required for actual processing.

[0045] In the initial state, two sets of sliders 12 are slidably connected to the blade bridge 11, symmetrically distributed on either side of the blade handle 1. The base 21 is fixedly connected to one slider 12, while the counterweight 133 is fixedly connected to the other slider 12. Baffle 1 231 is permanently fixed to the outer surface of the counterweight 133, while baffle 232 is permanently fixed to the circumferential outer surface of the base 21.

[0046] Depending on whether rough machining or fine machining is required, a suitable blade 22 is selected and fixed to the outside of the top of the tool holder 2 with bolts. The blade 22 protrudes from the outer end of the tool holder 2. The distance from the outermost end of the blade 22 to the axis of the tool holder 2 is greater than the distance from the outermost end of the tool holder 2 to the axis of the tool holder 2, and is also greater than the distance from the outermost end of the base 21 to the axis of the tool holder 2. When machining a large-diameter circular inner hole, the tool holder 2 with the blade 22 installed is placed from above into the interior of the base 21, and the hole below the blade holder 2 is aligned with the hole on the outer circumferential surface of the base 21. The blade holder 2 and the base 21 are fixed with external locking bolts. Finally, the blade 22 is located on the end of the outer surface of the tool holder 2 away from the shank 1.

[0047] After placement is complete, use a magnetic hexagonal wrench to twist the outer end of the nut 14 at the end of the knife bridge 11. After the strong magnetic end of the hexagonal wrench is inserted into the hexagonal slot of the nut 14, the magnetic column 142 moves toward the center of the nut 14 under the magnetic attraction of the hexagonal wrench. The magnetic force of the hexagonal wrench is greater than the magnetic force of the end face of the inner wall of the outer cavity. At this time, the magnetic column 142 is completely inside the inner cavity 141 and is separated from the outer cavity. The nut 14 is fixedly connected to the bidirectional screw 131. The hexagonal wrench can easily twist the nut 14 and the bidirectional screw 131. When twisting, the bidirectional screw 131 follows it and rotates in the cavity 111 inside the knife bridge 11. When the bidirectional screw 131 rotates, the slider 12 engaged with it slides left and right above the knife bridge 11, and the sliders 12 on both sides move toward or away from each other at the same time. Under this effect, the farther the tool holder 2 is from the tool handle 1, the farther the counterweight 133 is from the tool handle 1; the closer the tool holder 2 is to the tool handle 1, the closer the counterweight 133 is to the tool handle 1. There is no need to manually measure the position of the tool holder 2 for a second time and then adjust the position of the counterweight 133. This can ensure stability during the boring process, maintain balance on both sides of the tool bridge 11, and reduce vibration.

[0048] When the strong magnetic end of the hexagonal wrench is pulled out from the inside of the nut 14, the magnetic column 142 inside the multiple inner cavities 141 loses the strong magnetic attraction of the hexagonal wrench, and the end of the magnetic column 142 away from the axis of the nut 14 is quickly magnetically attracted to the inner end of the outer cavity. At this time, half of the magnetic column 142 is inside the inner cavity 141, and the other half is inside the outer cavity. The magnetic column 142 fixes the bidirectional screw rod 131 and the knife bridge 11 into a whole, preventing the bidirectional screw rod 131 from offsetting during rotation.

[0049] The balance member 13 can be used for coarse adjustment of the position of the blade 22. After coarse adjustment, the boring head adjustment hole on the outer surface of the tool holder 2, away from the blade 22, is adjusted using an Allen wrench to the desired size according to the size marking line to complete the fine adjustment of the position of the blade 22. After completing the adjustment of each part, the end of the tool holder 1 away from the tool bridge 11 is inserted into the machine tool spindle, and the workpiece with the limit is bored.

[0050] The process of boring the workpiece:

[0051] Turn on the power of the boring machine. As the spindle rotates, the structures such as the tool holder 1, the tool bridge 11, the counterweight block 133 and the tool holder 2 all rotate. Through the feeding mechanism such as the worktable or slide of the boring machine, the blade 22 is slowly moved to the position of the hole to be processed in the workpiece. As the distance between the blade 22 and the external workpiece is getting closer and closer, the blade 22 begins to contact the inner hole of the external workpiece. When the blade 22 contacts the surface of the workpiece, the boring process begins. As the spindle rotates and feeds, the workpiece material is gradually removed to form the required hole diameter.

[0052] During the cutting process, the spindle drives the tool handle 1 to rotate, and the angled scraper 252 in the counterweight 133 is subjected to centrifugal force. The angled scraper 252 and the side plate 256 move together away from the tool handle 1 (closer to the inner wall surface of the workpiece) until the brush head 2521 on its outer surface contacts the circumferential inner wall of the workpiece. At this time, the second spring 255, which is mounted on the outer surface of the sliding rod 251 and located in the cavity 1331 near the angled scraper 252, is compressed and elastically deformed. Under the action of the second spring 255, the angled scraper 252 and its outer brush head 2521 move gently toward the inner wall of the workpiece, avoiding direct rigid contact with the workpiece outer surface, which could cause vibration during boring, and helping to ensure overall stability of the machining process. The outer surface of the inclined scraper 252, away from the counterweight 133, is curved. The inclined scraper 252 exhibits a spiral shape centered around the toolholder 1, aligning with the clockwise rotation of the machine tool spindle. Side plates 256 secured to the outer surface of the inclined scraper 252 can move metal chips from the inner circumference of the workpiece away from the blade 22, preventing them from becoming entangled at the junction of the toolholder 1 and the tool bridge 11. Due to the inclined design of the inclined scraper 252, during rotation, the scrapers exert a force to eject the chips, unimpeding the boring action and ensuring machining quality. The side plates 256 also protect the outer surface of the sliding rod 251 from entanglement during the boring process.

[0053] After boring is complete, the spindle stops rotating, and the inclined scraper 252 and side plate 256 in the pressure member 25 lose their centrifugal effect. Under the action of springs 1 254 and 255, the entire member returns to the tool holder 1 until the end block 253 is in the middle of the cavity 1331. At this point, the brush head 2521 on the outer surface of the inclined scraper 252 no longer contacts the inner wall of the workpiece. After boring is complete, the spindle drives the tool holder 1 to move horizontally, moving the entire member away from the blade 22. This prevents the blade 22 from scraping the inner wall of the workpiece from another angle during the retraction process, which could cause scratches on the inner wall of the workpiece.

[0054] After the spindle stops, the tool handle 1 moves as a whole toward the counterweight 133, the distance from the outermost end of the blade 22 to the axis of the circular hole workpiece becomes shorter, the blade 22 no longer fits against the inner wall surface of the workpiece, and the distance from the outer surface of the inclined scraper 252 to the axis of the circular hole workpiece becomes longer, the axis line of the circular workpiece is offset from the central axis of the tool handle 1, the inclined scraper 252 and the brush head 2521 on its outer surface are squeezed, the brush head 2521 fits tightly against the inner wall of the circular workpiece, the distance between the inclined scraper 252 and the counterweight 133 is reduced, the end block 253 moves toward the side of the tool handle 1 along with the sliding rod 251, the spring 1 254 on the side of the end block 253 inside the cavity 1331 close to the tool handle 1 is squeezed, and the spring 1 254 undergoes elastic deformation. Similarly, when the spindle drives the blade 22 to reset, the inclined scraper 252 and the brush head 2521 contact the inner wall surface of the circular workpiece through the spring 1 254, and the whole is in flexible contact with the inner wall of the workpiece to avoid damage to the workpiece during the retraction process.

[0055] The blade 22 gradually moves toward the initial direction inside the circumference of the workpiece. During this process, the inclined scraper 252 and the brush head 2521 on its outer surface are always in contact with the inner wall of the workpiece until the inclined scraper 252 retreats to the edge of the workpiece. At the moment when the inclined scraper 252 is separated from the workpiece, the elastic potential energy of the compressed spring 1 254 and the spring 2 255 is instantly released at this time. The inclined scraper 252, the side plate 256 and the brush head 2521 are instantly expanded outward under the action of the spring 1 254 and the spring 2 255, and swing back and forth to a certain extent, so that some metal debris adhered to the outer surface of the brush head 2521 is bounced outward.

[0056] The process of boring the outer hole:

[0057] Loosen the multiple fixing bolts on the outer surface of the base 21, remove the tool holder 2 from the inside of the base 21, rotate it 180 degrees and put it down again, so that the blade 22 on the outer surface of the tool holder 2 is close to the side of the tool handle 1, and use the fixing bolts again to fix the tool holder 2 to the tool bridge 11 through the base 21 into a whole. Similar to the above debugging process, first tighten the nut 14 at the outer end of the bidirectional screw 131. Through the rotation of the bidirectional screw 131, the sliders 12 on both sides are driven to move in the same direction or opposite directions on the tool bridge 11. The center of gravity of the tool holder 2 and the counterweight block 133 on both sides of the tool bridge 11 is symmetrical, ensuring that the two are in a balanced state during rotation. After roughly adjusting the approximate position, fine-tune the boring head adjustment hole on the outer surface of the tool holder 2 and adjust it to the required size according to the size mark line to complete the fine adjustment of the blade 22 position.

[0058] After the position is fixed, the distance between the outermost end of the blade 22 and the axis of the tool handle 1 is smaller than the distance between the counterweight block 133 and the axis of the tool handle 1, so as to ensure that during the boring process, the axis of the tool handle 1 coincides with the central axis of the circular hole of the workpiece. When the spindle drives the tool handle 1 to rotate at high speed, the length from the outermost end of the blade 22 to the axis of the tool handle 1 is equal to the radius of the boring hole required for the workpiece, thereby avoiding the side of the counterweight block 133 close to the tool handle 1 from colliding with the outer surface of the workpiece during the boring process. There is no need to manually adjust the position of the counterweight block 133 for a second time, thereby avoiding errors in manual adjustment, thereby ensuring safety during the processing.

[0059] In summary, this structure has the following advantages:

[0060] Advantage 1: The tool holder 2 and the counterweight 133 are linked by the bidirectional screw 131. The position of the tool holder 2 is adjusted by driving the bidirectional screw 131 to rotate inside the tool bridge 11. At the same time, the counterweight 133 moves synchronously. The two always move in the same direction or in opposite directions. There is no need to manually move the counterweight 133 a second time after moving the position of the tool holder 2. The tool holder 2 slides to any position within the moving range, and the counterweight 133 can cooperate with it to maintain the balance of both sides of the tool bridge 11, reducing vibration caused by center of gravity offset. During the boring process, it helps to improve the quality of the processed surface, reduce the surface roughness of the workpiece, and at the same time extend the service life of the tool and machine tool and reduce equipment loss.

[0061] Advantage 2: Even if the distance of the slider 12 is adjusted, the top of the cavity 111 is connected to the outside of the knife bridge 11, and the connecting ring block 132 under the slider 12 is engaged and slides with the bidirectional screw rod 131. The inside of the cavity 111 is isolated from the outside of the knife bridge 11 by baffle 1 231 and baffle 2 232, preventing iron filings from entering the inside of the cavity 111 during high-speed rotation, causing the internal bidirectional screw rod 131 to get stuck and the slider 12 to be unable to move and adjust.

[0062] Advantage three: After the position adjustment of the tool holder 2 is completed, it is fixed to the surface of the tool bridge 11 by bolts, but the high-speed rotation of the spindle will cause the bolts to loosen, and the size will change during the boring process. The nut 14 in the present invention can ensure the relative position of the tool holder 2 and the tool bridge 11 during high-speed rotation. In the initial state, half of the magnetic column 142 is inside the inner cavity 141, and the other half is inside the outer cavity. The end of the magnetic column 142 away from the center of the nut 14 is magnetically attracted to the inner wall end face of the outer cavity. The magnetic column 142 fixes the bidirectional screw 131 and the tool bridge 11 into a whole, and is not affected during high-speed rotation, thereby avoiding the deviation of the bidirectional screw 131 during boring, resulting in inaccurate boring hole size.

[0063] Advantage 4: The inclined scraper 252 adopts a curved surface and a spiral design, and the side plate 256 is fixed on its outside. When the spindle rotates at high speed, the inclined scraper 252 and the side plate 256 work together to exert force to throw the metal debris outward (away from the side to be bored), thereby preventing a large amount of metal debris from accumulating on the side of the workpiece that has not yet been bored, affecting the subsequent contact between the blade 22 and the workpiece.

[0064] Advantage 5: After boring is completed, at the moment when the inclined scraper 252 separates from the workpiece, the elastic potential energy of spring 1 254 and spring 2 255 is released, driving the inclined scraper 252 and the brush head 2521 on its outer surface to swing back and forth, causing the metal debris adhered to the brush head 2521 to bounce outward, reducing the potential impact of residual debris on subsequent processing.

[0065] Advantage 6. In the existing technology, some bridge-type boring tools have boring tools placed on both sides. After the inner hole boring is completed, the tool needs to be retracted. Both ends are boring tools, and the tool holder 1 cannot be moved in the radial direction of the inner wall of the workpiece. If it is moved directly in the axial direction, the contact angle between the blade 22 and the inside of the workpiece will change from that during boring. When the blade 22 is retracted, it will scrape the inner wall surface of the workpiece, causing scratches on the inner wall surface of the workpiece, accelerating the wear of the blade 22. The blade 22 can only be removed from the tool holder 2 or the slider 12 can be moved on the tool bridge 11, which is cumbersome to operate. In this device, one side of the counterweight block 133 adopts an elastically connected inclined scraper 252 and a brush head 2521, which do not need to be disassembled when retracting the tool, which is conducive to maintaining the continuity of the boring operation. The inclined scraper 252 and the brush head 2521 are in flexible contact with the inner wall of the workpiece, avoiding damage to the workpiece during the retraction process, extending the service life of the blade 22, and ensuring the smoothness of the inner wall of the workpiece during the retraction process.

[0066] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A continuous operation turning machine tool based on a rotary tool head switching structure, characterized in that: include: A knife handle (1), wherein the outer end of the knife handle (1) is fixedly connected to a knife bridge (11), an end of the knife handle (1) away from the knife bridge (11) is connected to a main shaft, the knife bridge (11) is slidably connected to a slider (12) via a dovetail block fixed on its upper surface, two sliders (12) are provided and symmetrically distributed on both sides of the knife bridge (11), a cavity (111) is provided inside the knife bridge (11), and a balancing member (13) is provided inside the cavity (111) for maintaining the stability of the knife bridge (11); A knife seat (2), wherein the bottom of the knife seat (2) is detachably connected to a base (21), the lower surface of the base (21) is fixedly connected to the upper surface of the slider (12), and a blade (22) is detachably mounted on the upper surface of the knife seat (2); The balancing member (13) includes a bidirectional screw rod (131), the bidirectional screw rod (131) is rotatably connected to the inside of the knife bridge (11) through a bearing sleeved in the middle thereof, the outer end of the bidirectional screw rod (131) is fixedly connected to a nut (14) rotatably connected to the inner wall of the cavity (111), the slider (12) is engaged with the circumferential outer surface of the bidirectional screw rod (131) through a connecting ring block (132) fixed at the bottom thereof, and a counterweight block (133) is fixedly connected to the upper surface of the slider (12) away from the knife seat (2), and the knife bridge (11) is provided with a protective member (23) for preventing debris from entering the cavity (111) through a shift groove provided on its upper surface. The counterweight block (133) is provided with a cavity (1331) on the side away from the knife seat (2), and a pressing member (25) is provided inside the cavity (1331). The pressing member (25) includes a sliding rod (251) slidably connected to the cavity (1331), and the end of the sliding rod (251) away from the knife seat (2) passes through the cavity (1331) and is fixedly connected to an inclined scraper (252). The end of the sliding rod (251) away from the inclined scraper (252) is fixedly connected to an end block (253) that fits the inner wall of the cavity (1331), and the end of the end block (253) close to the knife seat (2) is provided with a spring (254) connected to the inner wall of the cavity (1331). The end of the end block (253) away from the knife seat (2) is provided with a second spring (255) connected to the inner wall of the cavity (1331), the second spring (255) is sleeved on the circumferential outer surface of the sliding rod (251), the first spring (254) and the second spring (255) are distributed on both sides of the end block (253), the side of the counterweight block (133) away from the knife seat (2) is provided with a sliding groove, the outer side of the inclined scraper (252) is fixedly connected to a side plate (256) slidably connected to the inner wall of the sliding groove, the outer surface of the side plate (256) close to the inclined scraper (252) adopts an arc edge design, and the side of the inclined scraper (252) away from the counterweight block (133) is fixedly connected to a brush head (2521).

2. The continuous operation turning machine tool based on the rotary tool head switching structure according to claim 1, characterized in that: The protective member (23) includes a baffle plate 1 (231) and a baffle plate 2 (232) both of which are slidably connected to the interior of the shifting groove. The baffle plate 1 (231) and the baffle plate 2 (232) are distributed left and right with the knife handle (1) as the center. The side of the baffle plate 1 (231) away from the knife seat (2) is fixedly connected to the outer surface of the counterweight block (133), and the side of the baffle plate 2 (232) close to the knife seat (2) is fixedly connected to the circumferential outer surface of the base (21).

3. The continuous operation turning machine tool based on the rotary tool head switching structure according to claim 2, characterized in that: The lower surfaces of baffle plate 1 (231) and baffle plate 2 (232) are both in contact with the upper surface of the knife bridge (11).

4. The continuous operation turning machine tool based on the rotary tool head switching structure according to claim 1, characterized in that: The outer surface of the inclined scraper (252) adopts a curved surface design.

5. The continuous operation turning machine tool based on the rotary tool head switching structure according to claim 1, characterized in that: The nut (14) is slidably connected to the magnetic column (142) through an inner cavity (141) provided on its circumferential outer surface. An outer cavity is provided inside the knife bridge (11), and the interior of the outer cavity is connected to the interior of the cavity (111). The side of the inner wall of the outer cavity away from the inner cavity (141) adopts a magnetic design that is magnetically attracted to the outer end of the magnetic column (142).

Citation Information

Patent Citations

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