Efficient horizontal precision lathe
By integrating a fan and collection box into the horizontal precision lathe, the problems of narrow working space and safety risks caused by waste chip accumulation are solved, and efficient collection and utilization of resources are achieved.
Patent Information
- Application Number
- CN202422850349.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-11-21
AI Technical Summary
Traditional high-efficiency horizontal precision lathes have problems such as waste chip accumulation after machining, resulting in narrow working space, high safety risks and waste of resources.
A horizontal precision lathe is designed that integrates a fan, a collection box, and a transport pipe. The fan attracts waste chips and uses gravity to filter the coolant. The waste chips are collected in the collection box to reduce waste chip accumulation.
It effectively prevents waste accumulation, ensures workspace safety, reduces safety risks, and improves resource utilization, which is in line with the country's purpose of saving resources.
Smart Images

Figure CN223383131U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of horizontal precision lathes, in particular to a high-efficiency horizontal precision lathe. Background Art
[0002] High-efficiency horizontal precision lathes are indispensable and important equipment in modern manufacturing. With their high precision, high efficiency and high stability, they provide strong technical support for precision machining. This type of lathe can achieve extremely high machining accuracy and meet the high-quality machining requirements of complex structural parts.
[0003] Traditional high-efficiency horizontal precision lathes will generate processing waste chips after work. Since these processing waste chips are often not specially handled, a large amount of waste chips will accumulate in the working position of the device, resulting in a smaller working space for the staff. They are prone to stepping on the waste chips and slipping, which poses a considerable safety risk to the staff. In addition, the waste chips themselves are also usable resources. Failure to collect the waste chips will also lead to waste of resources, which is not in line with the country's purpose of saving resources.
[0004] Therefore, for the above-mentioned traditional high-efficiency horizontal precision lathe, processing waste chips will be generated after work. Since these processing waste chips are often not specially handled, a large amount of waste chips will accumulate in the working position of the device. A method can be designed to collect the waste chips during processing through a fan, so that there is no need to collect the waste chips separately, reducing the accumulation of waste chips in the work area, thereby protecting the working space of the staff, preventing them from stepping on the waste chips and slipping, and reducing the safety risks caused by the waste chips to the staff. In addition, the waste chips themselves are also a usable resource. Collecting waste chips can reduce resource waste and improve resource utilization, which is in line with the country's purpose of saving resources. Utility Model Content
[0005] In order to overcome the problem that traditional high-efficiency horizontal precision lathes generate machining waste chips after work, and since these machining waste chips are often not specially handled, a large amount of waste chips accumulates at the working position of the device.
[0006] The technical solution of the utility model is: a high-efficiency horizontal precision lathe, including a bed, a supporting assembly, a feeding assembly, a processing assembly, an auxiliary assembly, a focusing trough, an opening, a slide, a transport pipe, a fan and a collection box; a supporting assembly that plays a supporting role is provided at the lower end of the bed, a feeding assembly that plays a moving role is provided on one side of the bed, a processing assembly that plays a processing role is provided at the upper end of the bed, an auxiliary assembly that plays a coolant spraying role is provided at the upper end of the bed, a focusing trough is provided at the upper end of the bed, a slide is provided on the inner side of the focusing trough, an opening is provided at the lower end of the bed, a transport pipe is provided at the lower end of the opening, a fan is provided on one side of the transport pipe, the fan is protected by a filter plate, a collection box is provided at the lower end of the transport pipe, and a filter plate is provided inside the collection box.
[0007] Preferably, the support component plays a supporting role, thereby supporting the device, the feed component plays a moving role, thereby assisting in processing, the processing component plays a processing role, thereby processing the workpiece, and the auxiliary component plays a cooling role, thereby spraying coolant during processing, and collecting waste chips through the collection tank. At this time, the waste chips are mixed with the coolant, and the waste chips are transported through the slide, and the waste chips are guided out of the device through the opening. The wind force generated by the fan is used to attract the waste chips, and the waste chips are transported through the transport pipe. The waste chips and coolant in the transport pipe fall into the collection box due to gravity, and the waste chips are collected by the collection box. The coolant is filtered by gravity, so that there is no need to collect the waste chips separately, and the accumulation of waste chips in the work area is reduced, thereby protecting the working space of the staff, preventing slipping due to stepping on the waste chips, and reducing the safety risks caused by waste chips to the staff. In addition, the waste chips themselves are also usable resources. Collecting waste chips can reduce resource waste and improve resource utilization, which is in line with the national purpose of saving resources.
[0008] Preferably, the support assembly includes a support column, a support leg and a reinforcement column; a support column is provided at the lower end of the bed, a support leg is provided at the lower end of the support column, and a reinforcement column is provided on one side of the support column.
[0009] Preferably, the feed assembly includes a feed motor, a feed screw, a feed shaft and a slide box; a feed motor is provided on one side of the bed, a feed screw is provided at the output end of the feed motor, a feed shaft is provided on one side of the feed motor, and a slide box is provided on the outside of the feed screw.
[0010] Preferably, the machining assembly includes a spindle box, a base and a three-jaw chuck; the spindle box is provided at the upper end of the bed, the base is provided at the output end of the spindle box, and the three-jaw chuck is provided on one side of the base.
[0011] Preferably, the processing assembly also includes a movable seat, a tool holder and a fixed clamp; a movable seat is provided at the upper end of the bed, the movable seat is located on one side of the spindle box, a screw is provided on the inner side of the movable seat, the movable seat is located on the outer side of the feed screw, a tool holder is provided at the upper end of the movable seat, a screw is provided on the inner side of the tool holder, and a fixed clamp is provided at the upper end of the tool holder.
[0012] Preferably, the auxiliary component includes a water pipe and a nozzle; a water pipe is provided on the inner side of the movable seat, the water pipe passes through the movable seat, and a nozzle is provided at the lower end of the water pipe.
[0013] Preferably, the auxiliary component further includes a tailstock, a linear motor and a mounting plate; the linear motor is provided at the upper end of the bed, the mounting plate is provided at the upper end of the linear motor, and the tailstock is provided at the upper end of the mounting plate.
[0014] Beneficial effects of the utility model:
[0015] 1. Collect waste chips through the centralized trough. At this time, the waste chips are mixed with the coolant. The waste chips are transported through the slide and the waste chips are guided out of the device through the opening. The wind is generated by the fan to attract the waste chips and transport the waste chips through the transport pipe. The waste chips and coolant in the transport pipe fall into the collection box due to gravity. The waste chips are collected by the collection box and the coolant is filtered by gravity, so that there is no need to collect waste chips additionally, reducing the accumulation of waste chips in the work area, thereby protecting the working space of the staff, preventing them from stepping on the waste chips and slipping, and reducing the safety risks caused by waste chips to the staff. In addition, the waste chips themselves are also usable resources. Collecting waste chips can reduce resource waste and improve resource utilization, which is in line with the national purpose of saving resources. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 Shown is a first three-dimensional structural schematic diagram of a high-efficiency horizontal precision lathe of the utility model;
[0017] Figure 2 Shown is a schematic diagram of the second three-dimensional structure of a high-efficiency horizontal precision lathe of the utility model;
[0018] Figure 3 Shown is a schematic diagram of the cross-sectional three-dimensional structure of a high-efficiency horizontal precision lathe of the present utility model;
[0019] Figure 4 What is shown is a schematic diagram of the partial three-dimensional structure of a high-efficiency horizontal precision lathe of the present utility model.
[0020] Explanation of the accompanying symbols: 1. Bed; 201. Support column; 202. Support foot; 203. Strengthening column; 301. Feed motor; 302. Feed screw; 303. Feed shaft; 304. Slide box; 401. Spindle box; 402. Base; 403. Three-jaw chuck; 404. Moving seat; 405. Tool holder; 406. Fixed clamp; 501. Tail stock; 502. Water pipe; 503. Nozzle; 504. Linear motor; 505. Mounting plate; 601. Central trough; 602. Opening; 603. Slide; 604. Transport pipe; 605. Fan; 606. Collection box. DETAILED DESCRIPTION
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] See also Figures 1-4The utility model provides an embodiment: a high-efficiency horizontal precision lathe, including a bed 1, a supporting assembly, a feeding assembly, a processing assembly, an auxiliary assembly, a focusing trough 601, an opening 602, a slide 603, a transport pipe 604, a fan 605 and a collection box 606; a supporting assembly that plays a supporting role is provided at the lower end of the bed 1, a feeding assembly that plays a moving role is provided on one side of the bed 1, a processing assembly that plays a processing role is provided at the upper end of the bed 1, an auxiliary assembly that plays a role in spraying coolant is provided at the upper end of the bed 1, a focusing trough 601 is provided at the upper end of the bed 1, a slide 603 is provided inside the focusing trough 601, an opening 602 is provided at the lower end of the bed 1, a transport pipe 604 is provided at the lower end of the opening 602, a fan 605 is provided on one side of the transport pipe 604, the fan 605 is protected by a filter plate, a collection box 606 is provided at the lower end of the transport pipe 604, and a filter plate is provided inside the collection box 606.
[0023] See also Figures 1-4 In this embodiment, the support assembly includes a support column 201, a support leg 202 and a reinforcement column 203; a support column 201 is provided at the lower end of the bed 1, a support leg 202 is provided at the lower end of the support column 201, and a reinforcement column 203 is provided on one side of the support column 201. When in use, the device is supported by the support column 201, the pressure on the support column 201 is dispersed by the support leg 202, and the force on the support column 201 is improved and strengthened by the reinforcement column 203, thereby preventing the device from collapsing; the feeding assembly includes a feeding motor 301, a feeding screw 302, a feeding shaft 303 and a slide box 304; a feeding motor 301 is provided on one side of the bed 1, a feeding screw 302 is provided at the output end of the feeding motor 301, a feeding shaft 303 is provided on one side of the feeding motor 301, and the outer side of the feeding screw 302 A slide box 304 is provided. When in use, the feed screw 302 is driven to rotate by the rotation of the feed motor 301, and the movable seat 404 is driven to move by the rotation of the feed screw 302. The movable seat 404 is installed and fixed by the feed shaft 303, and the device is controlled by the slide box 304, so that the mobile device is processed; the processing assembly includes a spindle box 401, a base 402 and a three-jaw chuck 403; a spindle box 401 is provided at the upper end of the bed 1, a base 402 is provided at the output end of the spindle box 401, and a three-jaw chuck 403 is provided on one side of the base 402. When in use, the base 402 is driven to rotate by the output torque of the spindle box 401, and the three-jaw chuck 403 is driven to rotate by the rotation of the base 402, and the workpiece is fixed by the three-jaw chuck 403. The workpiece is brought into contact with the processing tool through rotation, so that the workpiece is processed;
[0024] The machining component also includes a movable seat 404, a tool holder 405 and a fixed clamp 406; a movable seat 404 is provided on the upper end of the bed 1, the movable seat 404 is located on one side of the spindle box 401, a screw is provided on the inner side of the movable seat 404, the movable seat 404 is located on the outer side of the feed screw 302, a tool holder 405 is provided on the upper end of the movable seat 404, a screw is provided on the inner side of the tool holder 405, and a fixed clamp 406 is provided on the upper end of the tool holder 405. When in use, the tool holder 405 is driven to move by the movable seat 404, the tool holder 405 is moved by the screw, and the machining tool is fixed by the fixed clamp 406, so as to facilitate machining; the auxiliary components include a water pipe 502 and a nozzle 503; a water pipe 502 is provided on the inner side of the movable seat 404, the water The pipe 502 passes through the movable seat 404, and a nozzle 503 is provided at the lower end of the water pipe 502. When in use, the coolant is transported through the water pipe 502 and sprayed through the nozzle 503, thereby reducing the processing temperature; the auxiliary components also include a tailstock 501, a linear motor 504 and a mounting plate 505; a linear motor 504 is provided at the upper end of the bed 1, a mounting plate 505 is provided at the upper end of the linear motor 504, and a tailstock 501 is provided at the upper end of the mounting plate 505. When in use, the mounting plate 505 is driven to move by the linear motor 504, and the tailstock 501 is driven and fixed by the mounting plate 505, and the workpiece is supported by the top of the tailstock 501. Drills and other processing tools can also be installed on the tailstock 501 to perform hole processing, thereby assisting processing.
[0025] When working, the device is first supported by the support column 201, the pressure on the support column 201 is dispersed by the support foot 202, and the force on the support column 201 is improved and strengthened by the reinforcement column 203, thereby preventing the device from collapsing; then the feed screw 302 is driven to rotate by the rotation of the feed motor 301, and the movable seat 404 is driven to move by the rotation of the feed screw 302, and the movable seat 404 is fixed by the feed shaft 303, and the device is controlled by the slide box 304, so as to move the device for processing; then the tool holder 405 is driven to move by the movable seat 404, and the tool holder 405 is moved by the screw, and the processing tool is fixed by the fixing clamp 406, thereby facilitating processing;
[0026] Secondly, the base 402 is rotated by the output torque of the spindle box 401, and the rotation of the base 402 drives the three-jaw chuck 403 to rotate. The three-jaw chuck 403 fixes the workpiece, and the workpiece contacts the processing tool through rotation, thereby processing the workpiece; the coolant is then transported through the water pipe 502 and sprayed through the nozzle 503, thereby reducing the processing temperature; then the linear motor 504 drives the mounting plate 505 to move, and the mounting plate 505 drives and fixes the tailstock 501, and the tailstock 501 supports the workpiece through the top. The tailstock 501 can also be installed with processing tools such as drills to perform hole processing, thereby assisting processing;
[0027] Finally, the waste chips are collected by the collecting tank 601, and at this time the waste chips are mixed with the coolant, and the waste chips are transported by the slide 603, and the waste chips are guided out of the device through the opening 602, and the wind is generated by the fan 605 to attract the waste chips, and the waste chips are transported through the transport pipe 604. The waste chips and the coolant transport pipe 604 fall into the collection box 606 due to gravity, and the waste chips are collected by the collection box 606, and the coolant is filtered by gravity, so that there is no need to collect the waste chips separately, thereby reducing the accumulation of waste chips in the working area.
[0028] Through the above steps, the support component is used to support the device, the feed component is used to move, thereby assisting in processing, the processing component is used to process the workpiece, the auxiliary component is used to cool down, thereby spraying coolant during processing, the central trough 601 is used to collect waste chips, at this time the waste chips are mixed with the coolant, the slide 603 is used to transport the waste chips, the opening 602 is used to guide the waste chips out of the device, the fan 605 is used to generate wind to attract the waste chips, the transport pipe 604 is used to transport the waste chips, and the waste chips and coolant transport pipe 604 fall into the collection box 606 due to gravity. The waste chips are collected by the collection box 606, and the coolant is filtered by gravity, so that there is no need to collect the waste chips separately, and the accumulation of waste chips in the work area is reduced, thereby protecting the working space of the staff, preventing them from stepping on the waste chips and slipping, and reducing the safety risks caused by the waste chips to the staff. In addition, the waste chips themselves are also usable resources. Collecting waste chips can reduce resource waste and improve resource utilization, which is in line with the national purpose of saving resources.
[0029] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. A high-efficiency horizontal precision lathe, comprising a bed (1); characterized in that: The machine also includes a support assembly, a feed assembly, a processing assembly, an auxiliary assembly, a centralizing tank (601), an opening (602), a slide (603), a transport pipe (604), a fan (605) and a collection box (606); a support assembly for supporting is provided at the lower end of the bed (1), a feed assembly for moving is provided on one side of the bed (1), a processing assembly for processing is provided at the upper end of the bed (1), and a cooling agent spraying device is provided at the upper end of the bed (1). The auxiliary component comprises a central groove (601) at the upper end of the bed (1), a slide (603) being provided inside the central groove (601), an opening (602) being provided at the lower end of the bed (1), a transport pipe (604) being provided at the lower end of the opening (602), a fan (605) being provided on one side of the transport pipe (604), the fan (605) being protected by a filter plate, a collection box (606) being provided at the lower end of the transport pipe (604), and a filter plate being provided inside the collection box (606).
2. A high-efficiency horizontal precision lathe according to claim 1, characterized in that: The support assembly comprises a support column (201), a support leg (202) and a reinforcement column (203); the support column (201) is provided at the lower end of the bed (1), the support leg (202) is provided at the lower end of the support column (201), and a reinforcement column (203) is provided on one side of the support column (201).
3. The high-efficiency horizontal precision lathe according to claim 1, characterized in that: The feeding assembly comprises a feeding motor (301), a feeding screw (302), a feeding shaft (303) and a slide box (304); the feeding motor (301) is arranged on one side of the bed (1); the feeding screw (302) is arranged at the output end of the feeding motor (301); the feeding shaft (303) is arranged on one side of the feeding motor (301); and the slide box (304) is arranged outside the feeding screw (302).
4. The high-efficiency horizontal precision lathe according to claim 1, characterized in that: The processing assembly comprises a spindle box (401), a base (402) and a three-jaw chuck (403); the spindle box (401) is arranged at the upper end of the bed (1), the base (402) is arranged at the output end of the spindle box (401), and the three-jaw chuck (403) is arranged on one side of the base (402).
5. The high-efficiency horizontal precision lathe according to claim 4, characterized in that: The processing assembly further comprises a movable seat (404), a tool holder (405) and a fixing clamp (406); a movable seat (404) is provided at the upper end of the bed (1), the movable seat (404) is located on one side of the spindle box (401), a screw is provided on the inner side of the movable seat (404), the movable seat (404) is located on the outer side of the feed screw (302), a tool holder (405) is provided at the upper end of the movable seat (404), a screw is provided on the inner side of the tool holder (405), and a fixing clamp (406) is provided at the upper end of the tool holder (405).
6. The high-efficiency horizontal precision lathe according to claim 4, characterized in that: The auxiliary component includes a water pipe (502) and a nozzle (503); the water pipe (502) is arranged inside the movable seat (404), the water pipe (502) passes through the movable seat (404), and the nozzle (503) is arranged at the lower end of the water pipe (502).
7. The high-efficiency horizontal precision lathe according to claim 6, characterized in that: The auxiliary component further comprises a tailstock (501), a linear motor (504) and a mounting plate (505); the upper end of the bed (1) is provided with the linear motor (504), the upper end of the linear motor (504) is provided with the mounting plate (505), and the upper end of the mounting plate (505) is provided with the tailstock (501).