CN221232171U - Pendulum head double-spindle turning and milling center numerical control lathe - Google Patents

Pendulum head double-spindle turning and milling center numerical control lathe Download PDF

Info

Publication number
CN221232171U
CN221232171U CN202323079597.7U CN202323079597U CN221232171U CN 221232171 U CN221232171 U CN 221232171U CN 202323079597 U CN202323079597 U CN 202323079597U CN 221232171 U CN221232171 U CN 221232171U
Authority
CN
China
Prior art keywords
motor
tool
sliding rail
base
sliding block
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202323079597.7U
Other languages
Chinese (zh)
Inventor
莫式明
陈军
高友英
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Guangdong Ruifeng Machinery Co ltd
Original Assignee
Guangdong Ruifeng Machinery Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Guangdong Ruifeng Machinery Co ltd filed Critical Guangdong Ruifeng Machinery Co ltd
Priority to CN202323079597.7U priority Critical patent/CN221232171U/en
Application granted granted Critical
Publication of CN221232171U publication Critical patent/CN221232171U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Landscapes

  • Turning (AREA)

Abstract

The utility model discloses a swing head double-spindle turning and milling center numerical control lathe which comprises a base, a first processing device and a second processing device. A base is provided. The first processing device is arranged on the base and comprises a first clamping assembly, a first motor, a second motor and a knife clamping component, wherein an output shaft of the first motor is connected with one side of the second motor, and an output shaft of the second motor is connected with the knife clamping component. The second processing device comprises a second clamping assembly, a cutter tower and a movable frame, wherein the second clamping assembly is arranged on the base, the cutter tower is located on one side of the second clamping assembly and comprises a third motor and a cutter disc, the output end of the third motor is connected with the cutter disc, the movable frame is located at the bottom of the third motor and used for driving the third motor to move, and accordingly the cutter disc is close to and far away from a workpiece clamped by the second clamping assembly. The swing head double-spindle turning and milling center numerical control lathe can improve working efficiency.

Description

Pendulum head double-spindle turning and milling center numerical control lathe
Technical Field
The utility model relates to the technical field of numerically controlled lathes, in particular to a pendulum head double-spindle turning and milling center numerically controlled lathe.
Background
The turning center numerical control lathe is an automatic lathe with high precision and high efficiency. The machine tool has wide processing technology performance, can be matched with various cutters, can process linear cylinders, oblique cylinders, circular arcs, various complex workpieces such as threads, grooves, worms and the like, has linear interpolation and circular arc interpolation compensation functions, and plays a good economic effect in the mass production of complex parts.
However, most of the common numerically controlled lathes are capable of machining only one workpiece at a time, and have low working efficiency.
Disclosure of utility model
The present utility model aims to solve at least one of the technical problems existing in the prior art. Therefore, the utility model provides the swing head double-spindle turning and milling center numerical control lathe which can improve the working efficiency.
According to an embodiment of the first aspect of the utility model, the swing head double-spindle turning and milling center numerical control lathe comprises a base, a first processing device and a second processing device. A base is provided.
The first processing device is arranged on the base and comprises a first clamping assembly, a first motor, a second motor and a cutter clamping component, wherein the first clamping assembly is used for clamping a workpiece and rotating the workpiece, an output shaft of the first motor is horizontally arranged, an output shaft of the first motor is connected with one side of the second motor, an output shaft of the second motor is connected with the cutter clamping component, the first motor is used for driving the second motor to rotate, the second motor is used for driving the cutter clamping component to rotate, and the cutter clamping component is used for clamping a cutter to process the workpiece on the first clamping assembly.
The second processing device comprises a second clamping assembly, a cutter tower and a movable frame, wherein the second clamping assembly is arranged on the base, the second clamping assembly is used for clamping a workpiece and rotating the workpiece, the cutter tower is located on one side of the second clamping assembly, the cutter tower comprises a third motor and a cutter disc, the output end of the third motor is connected with the cutter disc, a plurality of cutters are installed on the outer side of the cutter disc, the movable frame is located at the bottom of the third motor, and the movable frame is used for driving the third motor to move, so that the cutter disc is close to and far away from the workpiece clamped by the second clamping assembly.
The swing head double-spindle turning and milling center numerical control lathe at least comprises the following components
The beneficial effects are that:
1. According to the utility model, the base is arranged, so that the first processing device and the second processing device can be conveniently installed, and the working process is safe and stable.
2. According to the utility model, the first clamping component, the first motor, the second motor and the cutter clamping component are arranged, the first clamping component is used for clamping a workpiece, so that the workpiece can be stably machined, the cutter clamping component is used for installing different cutters according to machining requirements, when the turning cutter is used for machining, the first clamping component clamps the workpiece to rotate, the first motor drives the second motor and the cutter clamping component to swing to a proper position, the cutters on the cutter clamping component are used for machining the workpiece, when the milling cutter is used for machining, the first clamping component clamps the workpiece but does not rotate, the first motor drives the second motor to swing to a proper position, and meanwhile, the second motor drives the cutter clamping component to rotate, so that the cutters can obliquely machine the workpiece, and the workpieces can be machined by switching different types of cutters, so that the utilization rate of the machine tool is greatly improved.
3. According to the utility model, the second clamping assembly, the tool turret and the movable frame are arranged, the second clamping assembly is used for clamping the workpiece to be processed to rotate, different tools can be installed on the tool turret, tool processing is convenient to switch, tool changing efficiency is improved, the movable frame is matched with the tool turret and the tools to process the workpiece, and the first processing device can process the workpiece and process another workpiece at the same time, so that working efficiency is greatly improved.
4. According to the utility model, the cutter head can be provided with a plurality of cutters by arranging the third motor and the cutter head, and the cutter head is driven by the third motor to rotate for changing the cutters, so that the cutter changing accuracy and the cutter changing efficiency can be improved.
According to some embodiments of the present utility model, a plurality of mounting holes are provided on the outer side of the cutterhead, the plurality of mounting holes are circumferentially arranged around the axis of the cutterhead, and the plurality of mounting holes can be used for mounting different cutters.
The beneficial effects are that: according to the utility model, the plurality of mounting holes are formed, so that a plurality of cutters can be stably mounted, the cutters can be conveniently replaced, and the cutter replacing efficiency is improved.
According to some embodiments of the utility model, a tool magazine is provided on the base, the tool magazine being located on one side of the second motor, the tool magazine being configured to provide tool changing to the tool clamping member.
The beneficial effects are that: according to the tool changer, the tool changer is provided with the plurality of tools, so that the tool changer is beneficial to improving the tool changing efficiency, and the working efficiency is improved.
According to some embodiments of the utility model, the tool magazine comprises a support frame, a fourth motor and a tool rest, wherein the support frame is positioned on the base, the fourth motor is arranged on the support frame, an output shaft of the fourth motor is vertically upwards connected with the tool rest, and the fourth motor is used for driving the tool rest to rotate.
The beneficial effects are that: according to the utility model, the support frame, the fourth motor and the tool rest are arranged, the fourth motor is matched with the rotating tool rest, so that the tool changing is more convenient, the tool changing efficiency is improved, and the support frame provides support for the fourth motor and the tool rest, so that the fourth motor and the tool rest can stably change the tool.
According to some embodiments of the utility model, the tool holder is provided with several tool holders for placing tools.
The beneficial effects are that: according to the tool holder, the tool can be firmly placed by arranging the tool holders, so that accidents caused by falling of the tool during tool changing and machining are avoided.
According to some embodiments of the utility model, the tool holder is circular and the plurality of tool holders are arranged circumferentially about an axis of the tool holder.
The beneficial effects are that: according to the utility model, the tool rest is circular, so that the placing space of the tools is saved, more tools can be placed, and the tools can be changed conveniently.
According to some embodiments of the utility model, a mounting seat is provided on one side of the first motor, and the first motor is mounted on the mounting seat.
The beneficial effects are that: according to the utility model, the mounting seat is arranged and provides stable support for the first motor, so that the first motor can work stably.
According to some embodiments of the utility model, the mounting seat is provided with a z sliding rail and a z sliding block, the z sliding block is in sliding connection with the z sliding rail, the z sliding rail is arranged on one side of the mounting seat, the z sliding block is connected with the first motor, and the z sliding block and the z sliding rail are matched to drive the first motor to lift.
The beneficial effects are that: according to the utility model, the z sliding rail and the z sliding block are arranged, so that the first motor is conveniently installed, and the movement track of the first motor is easy to control by matching the z sliding rail and the z sliding block, so that the machining is smoother and more stable.
According to some embodiments of the utility model, a y sliding block and a y sliding rail are arranged at the bottom of the mounting seat, the y sliding block is in sliding connection with the y sliding rail, the y sliding block is positioned at the bottom of the mounting seat, the y sliding rail is arranged on the base, and the y sliding block is matched with the y sliding rail to drive the mounting seat to translate along the y direction.
The beneficial effects are that: according to the utility model, the y sliding block and the y sliding rail are arranged, so that the y sliding block is convenient for installing the installation seat, and the y sliding block and the y sliding rail are matched to easily control the running track of the installation seat, so that the machining is smoother and more stable.
According to some embodiments of the utility model, an x sliding block and an x sliding rail are arranged on the base, the x sliding block is in sliding connection with the x sliding rail, the x sliding rail is arranged on the base, the x sliding block is arranged on the y sliding rail, and the x sliding block is matched with the x sliding rail to drive the y sliding rail to translate along the y direction.
The beneficial effects are that: according to the utility model, the x sliding block and the x sliding rail are arranged, so that the y sliding rail is convenient to install, and the moving track of the y sliding rail is easy to control by matching the x sliding block with the x sliding rail, so that the machining is smoother and more stable.
Additional aspects and advantages of the utility model will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the utility model.
Drawings
The foregoing and/or additional aspects and advantages of the utility model will become apparent and may be better understood from the following description of embodiments taken in conjunction with the accompanying drawings in which:
fig. 1 is a schematic structural diagram of a swing-head double-spindle turning-milling center numerical control lathe according to an embodiment of the utility model;
FIG. 2 is a schematic view of the second processing device and tool magazine shown in FIG. 1;
fig. 3 is a schematic structural view of the second processing apparatus shown in fig. 1.
Reference numerals: 100-base, 110-first clamping assembly, 120-first motor, 130-second motor, 140-clamping blade assembly, 150-second clamping assembly, 160-turret, 170-moving rack, 180-third motor, 190-cutterhead, 200-mounting hole, 210-tool magazine, 220-support frame, 230-fourth motor, 240-tool holder, 250-tool holder, 260-mount, 270-z slide, 280-z slide, 290-y slide, 300-y slide, 310-x slide, 320-x slide.
Detailed Description
Embodiments of the present utility model are described in detail below, examples of which are illustrated in the accompanying drawings, wherein like or similar reference numerals refer to like or similar elements or elements having like or similar functions throughout. The embodiments described below by referring to the drawings are illustrative only and are not to be construed as limiting the utility model.
In the description of the present utility model, it should be understood that references to orientation descriptions such as upper, lower, front, rear, left, right, etc. are based on the orientation or positional relationship shown in the drawings, are merely for convenience of description of the present utility model and to simplify the description, and do not indicate or imply that the apparatus or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and thus should not be construed as limiting the present utility model.
In the description of the present utility model, a number means one or more, a number means two or more, and greater than, less than, exceeding, etc. are understood to not include the present number, and above, below, within, etc. are understood to include the present number. The description of the first and second is for the purpose of distinguishing between technical features only and should not be construed as indicating or implying relative importance or implicitly indicating the number of technical features indicated or implicitly indicating the precedence of the technical features indicated.
In the description of the present utility model, it should be noted that, unless explicitly specified and limited otherwise, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be either fixedly connected, detachably connected, or integrally connected, for example; can be mechanically or electrically connected; can be directly connected or indirectly connected through an intermediate medium, and can be communication between two elements. The specific meaning of the above terms in the present utility model will be understood in specific cases by those of ordinary skill in the art.
A pendulum double spindle turning center numerically controlled lathe according to an embodiment of the present utility model is described below with reference to the accompanying drawings.
Referring to fig. 1-3, a swing-head double-spindle turning-milling center numerically controlled lathe according to an embodiment of the present utility model includes a base 100, a first processing device and a second processing device.
For the base 100, in some embodiments of the present utility model, the base 100 is provided.
It can be appreciated that the present utility model facilitates the installation of the first and second processing devices by providing the base 100, so that the working process is safe and stable.
For the first machining device, in some embodiments of the present utility model, the first machining device is disposed on the base 100, and includes a first clamping assembly 110, a first motor 120, a second motor 130, and a clamping tool component 140, where the first clamping assembly 110 is used to clamp a workpiece and rotate the workpiece, an output shaft of the first motor 120 is horizontally disposed, an output shaft of the first motor 120 is connected to one side of the second motor 130, an output shaft of the second motor 130 is connected to the clamping tool component 140, the first motor 120 is used to drive the second motor 130 to rotate, the second motor 130 is used to drive the clamping tool component 140 to rotate, and the clamping tool component 140 is used to clamp a tool to machine the workpiece on the first clamping assembly 110.
It can be understood that, according to the utility model, by arranging the first clamping assembly 110, the first motor 120, the second motor 130 and the knife clamping component 140, the first clamping assembly 110 is used for clamping a workpiece, so that the workpiece can be stably machined, the knife clamping component 140 is used for installing different knives according to machining requirements, when the turning knife is used for machining, the first clamping assembly 110 clamps the workpiece to rotate, the first motor 120 drives the second motor 130 and the knife clamping component 140 to swing to a proper position, the knives on the knife clamping component 140 are utilized for machining the workpiece, when the milling cutter is used for machining, the first clamping assembly 110 clamps the workpiece but does not rotate, the first motor 120 drives the second motor 130 to swing to a proper position, meanwhile, the second motor 130 drives the knife clamping component 140 to rotate, the knives can be driven to machine the workpiece in an inclined manner, and different types of knives can be switched to machine the workpiece, so that the machine tool utilization rate is greatly improved.
In some embodiments of the present utility model, a tool magazine 210 is disposed on the base 100, the tool magazine 210 being located at one side of the second motor 130, the tool magazine 210 being configured to provide tool changing to the tool clamping member 140.
It can be appreciated that by arranging the tool magazine 210, the tool magazine 210 is provided with a plurality of tools, which is beneficial to improving the tool changing efficiency, thereby improving the working efficiency.
In some embodiments of the present utility model, the tool magazine 210 includes a support 220, a fourth motor 230, and a tool holder 240, where the support 220 is located on the base 100, the fourth motor 230 is disposed on the support 220, an output shaft of the fourth motor 230 is vertically connected to the tool holder 240, and the fourth motor 230 is used to drive the tool holder 240 to rotate.
It can be appreciated that the present utility model is provided with the support frame 220, the fourth motor 230 and the tool rest 240, wherein the fourth motor 230 is matched with the tool rest 240 to rotate, so that the tool changing is more convenient, the tool changing efficiency is improved, and the support frame 220 provides support for the fourth motor 230 and the tool rest 240, so that the fourth motor 230 and the tool rest 240 can stably change tools.
In some embodiments of the present utility model, a plurality of tool holders 250 are provided on tool holder 240, with tool holders 250 being used to hold a tool.
It will be appreciated that by providing a plurality of tool holders 250, the tool holders 250 can firmly hold the tool, ensuring that the tool will not fall off during tool changing and machining, resulting in an unexpected situation.
In some embodiments of the present utility model, tool holder 240 is circular in shape and a plurality of tool holders 250 are arranged circumferentially about the axis of tool holder 240.
It can be appreciated that the tool rest 240 is circular, so that the space for placing tools is saved, more tools can be placed, and tool changing is facilitated.
In some embodiments of the present utility model, a mount 260 is provided on one side of the first motor 120, and the first motor 120 is mounted on the mount 260.
It is to be understood that the present utility model provides stable support for the first motor 120 by providing the mounting base 260, so that the first motor 120 can stably operate.
In some embodiments of the present utility model, the mounting base 260 is provided with a z sliding rail 280 and a z sliding block 270, the z sliding block 270 is slidably connected with the z sliding rail 280, the z sliding rail 280 is disposed on one side of the mounting base 260, the z sliding block 270 is connected with the first motor 120, and the z sliding block 270 and the z sliding rail 280 cooperate to drive the first motor 120 to lift.
It can be appreciated that the z sliding rail 280 and the z sliding block 270 are arranged, the z sliding block 270 is convenient for installing the first motor 120, and the z sliding rail 280 and the z sliding block 270 are matched to easily control the running track of the first motor 120, so that the processing is smoother and more stable.
In some embodiments of the present utility model, a y slider 290 and a y sliding rail 300 are disposed at the bottom of the mounting seat 260, the y slider 290 is slidably connected with the y sliding rail 300, the y slider 290 is located at the bottom of the mounting seat 260, the y sliding rail 300 is disposed on the base 100, and the y slider 290 cooperates with the y sliding rail 300 to drive the mounting seat 260 to translate along the y direction.
It can be appreciated that the y sliding block 290 and the y sliding rail 300 are arranged, so that the installation seat 260 is convenient to install, and the running track of the installation seat 260 is easy to control by matching the y sliding block 290 with the y sliding rail 300, so that the machining is smoother and more stable.
In some embodiments of the present utility model, an x slider 310 and an x sliding rail 320 are disposed on the base 100, the x slider 310 is slidably connected with the x sliding rail 320, the x sliding rail 320 is disposed on the base 100, the x slider 310 is disposed on the y sliding rail 300, and the x slider 310 cooperates with the x sliding rail 320 to drive the y sliding rail 300 to translate along the y direction.
It can be appreciated that the present utility model is convenient for installing the y slide rail 300 by arranging the x slide block 310 and the x slide rail 320, and the movement track of the y slide rail 300 is easy to be controlled by the cooperation of the x slide block 310 and the x slide rail 320, so that the processing is smoother and more stable.
For the second machining device, in some embodiments of the present utility model, the second machining device includes a second clamping assembly 150, a turret 160, and a moving frame 170, where the second clamping assembly 150 is disposed on the base 100, the second clamping assembly 150 is used to clamp a workpiece and rotate the workpiece, the turret 160 is located at one side of the second clamping assembly 150, the turret 160 includes a third motor 180 and a cutter disc 190, an output end of the third motor 180 is connected to the cutter disc 190, an outer side of the cutter disc 190 is used to mount a plurality of cutters, the moving frame 170 is located at a bottom of the third motor 180, and the moving frame 170 is used to drive the third motor 180 to move so that the cutter disc 190 approaches and moves away from the workpiece clamped by the second clamping assembly 150.
It can be appreciated that, in the utility model, by arranging the second clamping assembly 150, the turret 160 and the moving frame 170, the second clamping assembly 150 is used for clamping the workpiece to be processed for rotation, different tools can be installed on the turret 160, so that the tool processing can be conveniently switched, the tool changing efficiency is improved, the moving frame 170 is matched with the turret 160 and the tools to process the workpiece, and the first processing device can process the workpiece while processing another workpiece, thereby greatly improving the working efficiency.
It can be appreciated that by arranging the third motor 180 and the cutter disc 190, a plurality of cutters can be placed on the cutter disc 190, and the cutter disc 190 is driven by the third motor 180 to rotate for changing the cutters, so that the cutter changing accuracy and the cutter changing efficiency can be improved.
In some embodiments of the present utility model, the moving frame 170 is comprised of corresponding blocks and rails.
In the description of the present specification, reference to the terms "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples," etc., means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the utility model. In this specification, schematic representations of the above terms do not necessarily refer to the same embodiments or examples. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
The embodiments of the present utility model have been described in detail with reference to the accompanying drawings, but the present utility model is not limited to the above embodiments, and various changes can be made within the knowledge of one of ordinary skill in the art without departing from the spirit of the present utility model.

Claims (10)

1. The utility model provides a two main shaft turning and milling center numerical control lathe of pendulum, which is characterized in that includes:
A base (100);
The first machining device is arranged on the base (100) and comprises a first clamping assembly (110), a first motor (120), a second motor (130) and a cutter clamping component (140), wherein the first clamping assembly (110) is used for clamping a workpiece and can rotate the workpiece, an output shaft of the first motor (120) is horizontally arranged, an output shaft of the first motor (120) is connected with one side of the second motor (130), an output shaft of the second motor (130) is connected with the cutter clamping component (140), the first motor (120) is used for driving the second motor (130) to rotate, the second motor (130) is used for driving the cutter clamping component (140) to rotate, and the cutter clamping component (140) is used for clamping a cutter to machine the workpiece on the first clamping assembly (110);
The second processingequipment, including second clamping component (150), tool turret (160) and removal frame (170), second clamping component (150) set up on base (100), second clamping component (150) are used for centre gripping work piece and rotatable work piece, tool turret (160) are located one side of second clamping component (150), tool turret (160) include third motor (180) and blade disc (190), the output of third motor (180) is connected blade disc (190), the outside of blade disc (190) is used for installing a plurality of cutters, remove frame (170) are located the bottom of third motor (180), remove frame (170) are used for driving third motor (180) are removed, thereby make blade disc (190) are close to and keep away from the work piece that second clamping component (150) centre gripping.
2. The swing double spindle turning and milling center numerical control lathe according to claim 1, wherein a plurality of mounting holes (200) are formed in the outer side of the cutterhead (190), the plurality of mounting holes (200) are circumferentially arranged around the axis of the cutterhead (190), and the plurality of mounting holes (200) can be used for mounting different tools.
3. The swing double spindle turning and milling center numerical control lathe according to claim 1, characterized in that a tool magazine (210) is arranged on the base (100), the tool magazine (210) is located at one side of the second motor (130), and the tool magazine (210) is used for providing tool changing for the tool clamping component (140).
4. A swing-head double-spindle turning-milling center numerical control lathe according to claim 3, characterized in that the tool magazine (210) comprises a supporting frame (220), a fourth motor (230) and a tool rest (240), the supporting frame (220) is located on the base (100), the fourth motor (230) is arranged on the supporting frame (220), an output shaft of the fourth motor (230) is vertically upwards connected with the tool rest (240), and the fourth motor (230) is used for driving the tool rest (240) to rotate.
5. The pendulum double spindle turning center numerically controlled lathe according to claim 4, wherein a plurality of tool holders (250) are provided on the tool carrier (240), the tool holders (250) being used for placing tools.
6. The turning and milling center numerically controlled lathe with two spindle heads according to claim 5, characterized in that the tool holder (240) is circular and several tool holders (250) are arranged circumferentially around the axis of the tool holder (240).
7. The swing double spindle turning center numerically controlled lathe according to claim 1, wherein a mounting seat (260) is provided on one side of the first motor (120), and the first motor (120) is mounted on the mounting seat (260).
8. The swing double spindle turning and milling center numerical control lathe according to claim 7, wherein the mounting base (260) is provided with a z sliding rail (280) and a z sliding block (270), the z sliding block (270) is slidably connected with the z sliding rail (280), the z sliding rail (280) is arranged on one side of the mounting base (260), the z sliding block (270) is connected with the first motor (120), and the z sliding block (270) and the z sliding rail (280) are matched to drive the first motor (120) to lift.
9. The swing double-spindle turning and milling center numerical control lathe according to claim 7, wherein a y sliding block (290) and a y sliding rail (300) are arranged at the bottom of the mounting seat (260), the y sliding block (290) is slidably connected with the y sliding rail (300), the y sliding block (290) is located at the bottom of the mounting seat (260), the y sliding rail (300) is arranged on the base (100), and the y sliding block (290) and the y sliding rail (300) are matched to drive the mounting seat (260) to translate along the y direction.
10. The swing double-spindle turning and milling center numerical control lathe according to claim 9, wherein an x sliding block (310) and an x sliding rail (320) are arranged on the base (100), the x sliding block (310) is in sliding connection with the x sliding rail (320), the x sliding rail (320) is arranged on the base (100), the x sliding block (310) is arranged on the y sliding rail (300), and the x sliding block (310) is matched with the x sliding rail (320) to drive the y sliding rail (300) to translate along the y direction.
CN202323079597.7U 2023-11-14 2023-11-14 Pendulum head double-spindle turning and milling center numerical control lathe Active CN221232171U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202323079597.7U CN221232171U (en) 2023-11-14 2023-11-14 Pendulum head double-spindle turning and milling center numerical control lathe

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202323079597.7U CN221232171U (en) 2023-11-14 2023-11-14 Pendulum head double-spindle turning and milling center numerical control lathe

Publications (1)

Publication Number Publication Date
CN221232171U true CN221232171U (en) 2024-06-28

Family

ID=91598048

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202323079597.7U Active CN221232171U (en) 2023-11-14 2023-11-14 Pendulum head double-spindle turning and milling center numerical control lathe

Country Status (1)

Country Link
CN (1) CN221232171U (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN120572336A (en) * 2025-08-04 2025-09-02 浙江迎泰机床有限公司 A dual-spindle swing head with lower turret turning and milling compound processing machine tool

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN120572336A (en) * 2025-08-04 2025-09-02 浙江迎泰机床有限公司 A dual-spindle swing head with lower turret turning and milling compound processing machine tool

Similar Documents

Publication Publication Date Title
CN203401346U (en) Vertical type metal machining center machine
CN221135067U (en) Five machining centers
CN221232171U (en) Pendulum head double-spindle turning and milling center numerical control lathe
CN210208661U (en) Hard rail compound lathe
CN210677900U (en) Multi-angle hole milling device for refrigerator handle
CN209935867U (en) Double-spindle multi-tool lathe
CN203390552U (en) Metal machining center
CN220161895U (en) Automatic tool changing device of multi-axis machine tool
CN221363636U (en) A horizontal turning and milling compound machine tool
CN221773519U (en) A precision shaft rod processing machine tool with multiple processing tool heads
CN118990131A (en) A rotary table multi-station turret machine tool
CN220863246U (en) Swing turning and milling center numerical control lathe
CN219043662U (en) Tool changing mechanism for numerical control lathe
CN217096749U (en) Double-spindle numerical control lathe capable of realizing multi-process machining
CN217095710U (en) Programmable tailstock numerical control lathe
CN223889587U (en) A twin-spindle CNC lathe with a tool post mounting structure
CN220863228U (en) Vertical turning and milling center numerical control machine tool
CN212144506U (en) High-efficient mechanical numerical control lathe
CN215280800U (en) Drilling and tapping integrated machine tool
CN116984889A (en) A three-turret, three-Y-axis, dual-spindle, dual-channel turning and milling device
CN115121826A (en) Automatic tool changing device of metal processing lathe
CN220480847U (en) Double-spindle turning and milling composite lathe for synchronously machining front and back surfaces
CN223465888U (en) Lathe equipment with double tool towers
CN223465887U (en) Lathe equipment with double spindles
CN222450717U (en) A machining center

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant