Milling structure of sawing machine
By designing a multi-directional moving milling structure in the sawing machine, the problem of limited movement of traditional milling structures is solved, complex shape processing of profiles is achieved, and processing flexibility and accuracy is improved.
Patent Information
- Application Number
- CN202422683639.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-04
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-11-04
AI Technical Summary
The design of the milling material structure of the traditional sawing machine is not flexible enough, and the movement of the milling cutter in certain directions is limited, which cannot meet the complex machining needs.
A sawing machine milling structure is designed, including a first moving assembly and a second moving assembly, and the curve or complex shape processing of the profile is realized through precise movement and independent control in multiple directions.
It improves flexibility and positioning accuracy during the processing process, can meet the processing needs of workpieces with complex shapes and non-standard sizes, and improves the flexibility and accuracy of processing.
Smart Images

Figure CN223277232U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of sawing machines, in particular to a material milling structure of a sawing machine. Background Art
[0002] In modern manufacturing, sawing machines are a common and important piece of machinery, widely used in metalworking and profile processing. The milling mechanism is a crucial component of sawing machines, enabling milling of profiles. However, traditional milling mechanism designs lack flexibility, limiting the movement of the milling cutter in certain directions and failing to meet the demands of complex machining. Utility Model Content
[0003] Based on this, it is necessary to provide a sawing machine milling structure to address the problem that the milling cutter of the traditional milling structure is limited in movement in certain directions and cannot meet the needs of complex processing.
[0004] A sawing machine milling structure includes: a first support member; a first movable assembly, the first movable assembly is arranged on the first support member, and the first movable assembly is at least partially movable relative to the first support member in a first direction and a second direction, the first direction and the second direction are opposite; a second movable assembly, the second movable assembly is arranged on the first movable assembly, and the second movable assembly is at least partially movable relative to the first movable assembly in a third direction and a fourth direction, the third direction and the fourth direction are opposite; a milling assembly, the milling assembly is arranged on the second movable assembly, and the milling assembly is used for milling profiles.
[0005] The present application discloses a sawing machine milling structure, which enables precise movement in multiple directions through the arrangement of a first movable assembly and a second movable assembly. This design greatly improves the flexibility and positioning accuracy during the processing, ensures the accuracy of the milling operation, and can meet the complex processing requirements of profiles. Moreover, the independent control of the first movable assembly and the second movable assembly enables the milling assembly to process curves or other complex shapes on the profile, thereby achieving high-precision processing. The sawing machine milling structure disclosed in the present application is not only suitable for processing profiles of standard shapes, but can also adapt to various complex shapes and non-standard sizes of workpieces by automatically adjusting the moving path and speed, and is worthy of promotion.
[0006] In one embodiment, the first moving assembly includes a first driving member, a first movable member, and a second supporting member. The first driving member is arranged on the first supporting member, the first movable member is movably arranged on the first supporting member, the first movable member is transmission-connected to the first driving member, the first driving member can drive the first movable member to move relative to the first supporting member toward the first direction and the second direction, the second supporting member is arranged on the first movable member, and the second moving assembly is arranged on the second supporting member. By arranging the second supporting member on the first movable member, stable support is provided for the second moving assembly. This design enables the second moving assembly to slide stably along a preset direction. The transmission connection between the first driving member and the first movable member can timely transmit the power of the first driving member to the first movable member, thereby improving the efficiency and response speed of power transmission, enabling the first movable member to move quickly while ensuring the accuracy and smoothness of the movement.
[0007] In one embodiment, the first drive member includes a first drive motor, a coupling, a first rotating shaft and a first screw nut. The first drive motor is arranged on the first support member. The coupling is respectively connected to the output shaft of the first drive motor and the first rotating shaft. The first drive motor can drive the first rotating shaft to rotate relative to the first support member. The first screw nut is movably mounted on the first rotating shaft. The first screw nut can move relative to the first rotating shaft. The first screw nut is connected to the first movable member. By precisely controlling the rotation of the first drive motor, rotational motion can be converted into linear motion, and stable and precise movement of the first screw nut can be achieved, thereby controlling the precise movement of the first movable member and ensuring the stability and precision of the processing process. The setting of the coupling makes the connection between the output shaft of the first motor and the first rotating shaft more reliable and stable.
[0008] In one embodiment, the first movable member includes a first movable plate and a slider. The first movable plate is connected to the first driving member. There are multiple sliders, and the multiple sliders are all arranged on the first movable plate and located on the same side of the first movable plate. The multiple sliders are all movably connected to the first support member. The first driving member can drive the first movable plate and the multiple sliders to move in the first direction and the second direction relative to the first support member. The multiple sliders form multiple points of contact between the first movable plate and the first support member, effectively dispersing the load, thereby improving the smoothness and precision of the movement. In addition, the close fit between the slider and the first support member effectively prevents derailment due to unexpected situations, thereby improving the safety of the equipment.
[0009] In one embodiment, the second support member includes a second support frame and a second slide rail, the second support frame is arranged on the first movable member, the number of the second slide rails is multiple, the multiple second slide rails are all arranged on the second support frame and are located on the same side of the second support frame, and the second movable assembly is movably arranged on the second slide rail and can slide on the second slide rail. The provision of the second support frame provides stable support for the second movable assembly. The provision of multiple second slide rails allows the second movable assembly to slide smoothly on the second slide rail, reducing frictional resistance during movement, improving the smoothness and efficiency of movement, and reducing maintenance frequency and cost.
[0010] In one embodiment, the second movable assembly includes a second driving member and a second movable member, the second driving member being disposed on the first movable assembly, the second movable member being movably disposed on the first movable assembly, the second movable member being in transmission connection with the second driving member, and the second driving member being capable of driving the second movable member to move relative to the first movable assembly in the third direction and the fourth direction. The second driving member can drive the second movable member to move in the third direction and the fourth direction. This bidirectional movement capability makes the milling assembly more flexible during machining and can adapt to various complex machining requirements.
[0011] In one embodiment, the second driving member includes a power source, a second rotating shaft, and a second screw nut. The power source is disposed on the first moving assembly. The second rotating shaft is in transmission connection with the power source. The power source can drive the second rotating shaft to rotate relative to the first moving assembly. The second screw nut is movably mounted on the second rotating shaft. The second screw nut can move relative to the second rotating shaft. The second screw nut is connected to the second movable member. Directly driving the second rotating shaft by the power source reduces intermediate transmission links, improves the efficiency and response speed of power transmission, and can achieve stable and precise movement of the second screw nut, thereby controlling the precise movement of the second movable member and ensuring the stability and precision of the milling assembly during processing.
[0012] In one embodiment, the power source includes a first support base, a second drive motor, a driving wheel, a driven wheel, a connecting belt and a belt cover. The first support base is set on the first moving assembly, the second drive motor and the driving wheel are both set on the first support base, the output shaft of the second drive motor is passed through the first support base, the output shaft of the second drive motor is connected to the driving wheel after passing through the first support base, the driven wheel is connected to the second rotating shaft, the connecting belt is wound around the driving wheel and the driven wheel, the belt cover is set on the first support base and located on the side of the first support base, the driving wheel, the driven wheel and the connecting belt are located in the space enclosed by the belt cover and the first support base. The second drive motor directly drives the driving wheel, and the power is transmitted to the driven wheel through the connecting belt, thereby driving the second rotating shaft, which can effectively improve the accuracy and stability of power transmission. The first support base provides stable support for the second drive motor. The belt cover effectively prevents the operator from contacting the high-speed transmission components, reduces safety hazards, and improves the safety of the equipment.
[0013] In one embodiment, a second support base is further included. The second support base is disposed on the first moving assembly, and the second rotating shaft is disposed through the second support base. The second rotating shaft passes through the second support base and is connected to the power source component. The second support base provides an additional support point for the second rotating shaft, thereby enhancing the stability of the entire transmission system.
[0014] In one embodiment, the milling assembly includes a third driving member, a milling member, and a connecting rod assembly. The third driving member and the milling member are both arranged on the second movable assembly. The third driving member and the milling member are respectively located on both sides of the second movable assembly. The milling member can rotate relative to the second movable assembly. The second movable assembly is provided with a first through-hole. The connecting rod assembly is penetrated through the first through-hole. The connecting rod assembly can move at the first through-hole. The two ends of the connecting rod assembly are respectively connected to the third driving member and the milling member. The third driving member can drive the connecting rod assembly to move at the first through-hole, thereby causing the milling member to rotate relative to the second movable assembly, adjusting the milling angle, and achieving high power transmission efficiency. Since the milling member can rotate relative to the second movable assembly, precise milling of the workpiece at multiple angles and directions can be achieved, greatly improving the flexibility of processing. This design enables the milling member to process profiles in curves or other complex shapes, thereby improving the applicability of the equipment.
[0015] In one embodiment, the first through-hole is in an arc shape. Due to the arc shape of the first through-hole, the connecting rod assembly moves along a fixed trajectory, allowing the milling workpiece to rotate freely within a wide angle range, thereby achieving precise milling of multi-angle and complex shapes of the workpiece, significantly improving processing flexibility.
[0016] In one embodiment, the second movable assembly is provided with a second through-hole, into which the milling piece fits. This fit ensures a secure assembly of the milling piece. Furthermore, the milling piece can be flexibly rotated at various angles, adapting to complex shapes and multi-angle machining requirements, significantly enhancing machining flexibility.
[0017] In one embodiment, the third driving member includes a support plate, a rotary cylinder, and a first connecting shaft. The support plate is disposed on the second movable assembly, the rotary cylinder is located between the support plate and the second movable assembly, and the first connecting shaft passes through the support plate and the rotary cylinder, and then connects to the second movable assembly after passing through the support plate and the rotary cylinder in sequence. By passing the first connecting shaft through the rotary cylinder, the first connecting shaft can support the rotary cylinder, allowing the rotary cylinder to rotate about the first connecting shaft, thereby more stably rotating the rotary cylinder.
[0018] In one embodiment, the milling part includes a milling part body, a support plate, and a second connecting shaft. The second connecting shaft extends through the second movable assembly, the support plate is mounted on the second connecting shaft, and the support plate is connected to the connecting rod assembly. The connecting rod assembly drives the support plate to rotate relative to the second movable assembly, and the milling part body is mounted on the support plate. The connecting rod assembly drives the support plate to rotate, thereby achieving precise control of the milling part body and ensuring stability and precision during the machining process. The second connecting shaft extends through a second through-hole of the second movable assembly, thereby providing a stable support base for the milling part body.
[0019] In one embodiment, the connecting rod assembly includes a first connecting rod and a second connecting rod, the first connecting rod being connected to the third driving member and the second connecting rod, respectively, and the second connecting rod being connected to the milling part. By adjusting the relative position of the first and second connecting rods via the third driving member, the milling part can be processed at different angles, thereby enhancing the flexibility of the device.
[0020] In one embodiment, the first support member includes a first support frame and a first slide rail. There are multiple first slide rails, and the multiple first slide rails are all arranged on the first support frame and located on the same side of the first support frame. The first movable assembly is at least partially movably arranged on the first slide rail and can slide on the first slide rail. The provision of the first support frame provides stable support for the first movable assembly. The provision of multiple first slide rails allows the first movable assembly to slide smoothly on the first slide rail, reducing frictional resistance during movement, improving the smoothness and efficiency of movement, and reducing maintenance frequency and cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a first stereoscopic view of the sawing machine milling structure;
[0022] Figure 2 A second perspective view of the sawing machine milling structure;
[0023] Figure 3 This is an exploded view of the sawing machine milling structure;
[0024] Figure 4 is a first perspective view of a first moving assembly;
[0025] Figure 5 is a second perspective view of the first moving assembly;
[0026] Figure 6 is an exploded view of the first moving component;
[0027] Figure 7 is a perspective view of a second moving assembly;
[0028] Figure 8 is an exploded view of the second mobile assembly;
[0029] Figure 9 is an exploded view of the second driving member;
[0030] Figure 10 This is an exploded view of the milling component;
[0031] Figure 11 It is a three-dimensional view of the first support member.
[0032] The corresponding relationship between the reference numerals and component names is as follows:
[0033] 1 first support member, 11 first support frame, 12 first slide rail;
[0034] 2 first moving assembly, 21 first driving member, 211 first driving motor, 212 coupling, 213 first rotating shaft, 214 first screw nut, 22 first movable member, 221 first movable plate, 222 slider, 23 second supporting member, 231 second supporting frame, 232 second slide rail;
[0035] 3 second moving assembly, 31 second driving member, 311 power source, 3111 first support base, 3112 second driving motor, 3113 driving pulley, 3114 driven pulley, 3115 connecting belt, 3116 belt cover, 3117 second support base, 312 second rotating shaft, 313 second screw nut, 32 second movable member, 301 first through-hole, 302 second through-hole;
[0036] 4 milling assembly, 41 third driving member, 411 supporting plate, 412 rotating cylinder, 413 first connecting shaft, 42 milling part, 421 milling part body, 422 supporting plate, 423 second connecting shaft, 43 connecting rod assembly, 431 first connecting rod, 432 second connecting rod. DETAILED DESCRIPTION
[0037] In order to more clearly understand the above-mentioned objectives, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.
[0038] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0039] like Figure 1-3 As shown, this embodiment discloses a sawing machine milling structure, including: a first support member 1; a first movable component 2, the first movable component 2 is arranged on the first support member 1, and the first movable component 2 is at least partially movable relative to the first support member 1 toward a first direction and a second direction, and the first direction is opposite to the second direction; a second movable component 3, the second movable component 3 is arranged on the first movable component 2, and the second movable component 3 is at least partially movable relative to the first movable component 2 toward a third direction and a fourth direction, and the third direction is opposite to the fourth direction; a milling component 4, the milling component 4 is arranged on the second movable component 3, and the milling component 4 is used for milling profiles.
[0040] The present application discloses a sawing machine milling structure, which enables precise movement in multiple directions through the arrangement of a first movable assembly 2 and a second movable assembly 3. This design greatly improves the flexibility and positioning accuracy during the processing, ensures the accuracy of the milling operation, and can meet the complex processing requirements of profiles. Moreover, the independent control of the first movable assembly 2 and the second movable assembly 3 enables the milling assembly 4 to process curves or other complex shapes on the profile, thereby achieving high-precision processing. The sawing machine milling structure disclosed in the present application is not only suitable for processing profiles of standard shapes, but can also adapt to various complex shapes and non-standard sizes of workpieces by automatically adjusting the moving path and speed, and is worthy of promotion.
[0041] like Figure 4 and Figure 5 As shown, in addition to the features of the above embodiment, this embodiment further defines that the first moving assembly 2 includes a first driving member 21, a first movable member 22, and a second support member 23. The first driving member 21 is disposed on the first support member 1, and the first movable member 22 is movably disposed on the first support member 1. The first movable member 22 is transmission-connected to the first driving member 21, and the first driving member 21 is capable of driving the first movable member 22 to move relative to the first support member 1 in the first and second directions. The second support member 23 is disposed on the first movable member 22, and the second moving assembly 3 is disposed on the second support member 23. The second support member 23 disposed on the first movable member 22 provides stable support for the second moving assembly 3. This design enables the second moving assembly 3 to slide stably along a predetermined direction. The transmission connection between the first driving member 21 and the first movable member 22 promptly transmits power from the first driving member 21 to the first movable member 22, improving the efficiency and response speed of power transmission, enabling the first movable member 22 to move rapidly while ensuring accurate and smooth movement.
[0042] like Figure 6As shown, in addition to the features of the above embodiment, this embodiment further defines that: the first drive member 21 includes a first drive motor 211, a coupling 212, a first rotating shaft 213 and a first screw nut 214, the first drive motor 211 is arranged on the first support member 1, the coupling 212 is connected to the output shaft of the first drive motor 211 and the first rotating shaft 213 respectively, the first drive motor 211 can drive the first rotating shaft 213 to rotate relative to the first support member 1, the first screw nut 214 is movably mounted on the first rotating shaft 213, the first screw nut 214 can move relative to the first rotating shaft 213, and the first screw nut 214 is connected to the first movable member 22. By precisely controlling the rotation of the first drive motor 211, rotational motion can be converted into linear motion, achieving stable and precise movement of the first screw nut 214, thereby controlling the precise movement of the first movable member 22, ensuring the stability and accuracy of the processing process. The provision of the coupling 212 makes the connection between the output shaft of the first motor and the first rotating shaft 213 more secure and stable.
[0043] like Figure 6 As shown, in addition to the features of the above embodiment, this embodiment further defines that: the first movable member 22 includes a first movable plate 221 and a slider 222, the first movable plate 221 is connected to the first driving member 21, the number of the sliders 222 is multiple, the multiple sliders 222 are all set on the first movable plate 221 and located on the same side of the first movable plate 221, the multiple sliders 222 are all movably connected to the first support member 1, and the first driving member 21 can drive the first movable plate 221 and the multiple sliders 222 to move relative to the first support member 1 in the first direction and the second direction. The multiple sliders 222 form multiple points of contact between the first movable plate 221 and the first support member 1, effectively dispersing the load, thereby improving the smoothness and accuracy of the movement. Moreover, the close fit between the sliders 222 and the first support member 1 effectively prevents derailment due to unexpected situations, thereby improving the safety of the equipment.
[0044] like Figure 6As shown, in addition to the features of the above embodiment, this embodiment further defines that: the second support member 23 includes a second support frame 231 and a second slide rail 232, the second support frame 231 is arranged on the first movable member 22, the number of the second slide rail 232 is multiple, the multiple second slide rails 232 are all arranged on the second support frame 231 and are located on the same side of the second support frame 231, and the second movable assembly 3 is movably arranged on the second slide rail 232 and can slide on the second slide rail 232. The provision of the second support frame 231 provides stable support for the second movable assembly 3. The provision of multiple second slide rails 232 allows the second movable assembly 3 to slide smoothly on the second slide rail 232, reducing the friction resistance during movement, improving the smoothness and efficiency of movement, and reducing the maintenance frequency and cost.
[0045] like Figure 7 and Figure 8 As shown, in addition to the features of the above embodiment, this embodiment further defines that the second moving assembly 3 includes a second driving member 31 and a second movable member 32, the second driving member 31 being disposed on the first moving assembly 2, the second movable member 32 being movably disposed on the first moving assembly 2, the second movable member 32 being transmission-connected to the second driving member 31, and the second driving member 31 being capable of driving the second movable member 32 to move relative to the first moving assembly 2 toward the third direction and the fourth direction. The second driving member 31 being capable of driving the second movable member 32 to move in the third direction and the fourth direction, and this bidirectional movement capability makes the milling assembly 4 more flexible during the machining process and capable of adapting to a variety of complex machining requirements.
[0046] like Figure 8 As shown, in addition to the features of the above embodiment, this embodiment further defines that: the second driving member 31 includes a power source member 311, a second rotating shaft 312, and a second screw nut 313. The power source member 311 is arranged on the first moving component 2, and the second rotating shaft 312 is in transmission connection with the power source member 311. The power source member 311 can drive the second rotating shaft 312 to rotate relative to the first moving component 2. The second screw nut 313 is movably mounted on the second rotating shaft 312, and the second screw nut 313 can move relative to the second rotating shaft 312. The second screw nut 313 is connected to the second movable member 32. Directly driving the second rotating shaft 312 through the power source member 311 reduces intermediate transmission links, improves the efficiency and response speed of power transmission. Moreover, it can achieve stable and precise movement of the second screw nut, thereby controlling the precise movement of the second movable member 32, ensuring the stability and precision of the milling component 4 during the processing process.
[0047] like Figure 9As shown, in addition to the features of the above embodiment, this embodiment further defines: the power source 311 includes a first support seat 3111, a second drive motor 3112, a driving wheel 3113, a driven wheel 3114, a connecting belt 3115 and a belt cover 3116, the first support seat 3111 is set on the first moving component 2, the second drive motor 3112 and the driving wheel 3113 are both set on the first support seat 3111, the output shaft of the second drive motor 3112 is passed through the first support seat 3111, and the second drive motor 3113 is connected to the first support seat 3111. The output shaft of the first drive motor 3112 is connected to the driving wheel 3113 through the first support seat 3111, and the driven wheel 3114 is connected to the second rotating shaft 312 through the drive belt 3115. The connecting belt 3115 is wound around the driving wheel 3113 and the driven wheel 3114. The belt cover 3116 is provided on the first support seat 3111 and is located on the side of the first support seat 3111. The driving wheel 3113, the driven wheel 3114 and the connecting belt 3115 are located in the space enclosed by the belt cover 3116 and the first support seat 3111. The driving wheel 3113 is directly driven by the second drive motor 3112, and the power is transmitted to the driven wheel 3114 through the connecting belt 3115, thereby driving the second rotating shaft 312, which can effectively improve the accuracy and stability of power transmission. The first support seat 3111 provides stable support for the second drive motor 3112. The provision of the belt cover 3116 effectively prevents operators from coming into contact with high-speed transmission components, reduces potential safety hazards, and improves the safety of the equipment.
[0048] like Figure 9 As shown, in addition to the features of the above embodiment, this embodiment is further defined as follows: it also includes a second support base 3117, the second support base 3117 is disposed on the first moving component 2, the second rotating shaft 312 is passed through the second support base 3117, and the second rotating shaft 312 is connected to the power source component 311 after passing through the second support base 3117. The provision of the second support base 3117 provides an additional support point for the second rotating shaft 312, thereby enhancing the stability of the entire transmission system.
[0049] like Figure 2 、 Figure 7 、 Figure 8 and Figure 10As shown, in addition to the features of the above embodiment, this embodiment further defines: the milling assembly 4 includes a third driving member 41, a milling member 42, and a connecting rod assembly 43. The third driving member 41 and the milling member 42 are both disposed on the second movable assembly 3, and are located on either side of the second movable assembly 3. The milling member 42 is rotatable relative to the second movable assembly 3. The second movable assembly 3 is provided with a first through-hole 301. The connecting rod assembly 43 is disposed through the first through-hole 301 and is movable at the first through-hole 301. The ends of the connecting rod assembly 43 are respectively connected to the third driving member 41 and the milling member 42. The third driving member 41 can drive the connecting rod assembly 43 to move at the first through-hole 301, thereby rotating the milling member 42 relative to the second movable assembly 3, adjusting the milling angle and achieving high power transmission efficiency. The milling member 42 can rotate relative to the second movable assembly 3, thereby achieving multi-angle and multi-directional precision milling of the workpiece, greatly improving processing flexibility. This design enables the milling part 42 to process the profile into curves or other complex shapes, thereby improving the applicability of the equipment.
[0050] like Figure 7 and Figure 8 As shown, in addition to the features of the above embodiment, this embodiment further defines that the first through-hole 301 is arc-shaped. Due to the arc-shaped first through-hole 301, the connecting rod assembly 43 moves along a fixed trajectory, allowing the milling part 42 to rotate freely within a large angular range, thereby achieving precise milling of multi-angle and complex shapes of the workpiece, significantly improving processing flexibility.
[0051] like Figure 2 、 Figure 7 、 Figure 8 and Figure 10 As shown, in addition to the features of the above-mentioned embodiment, this embodiment further defines: the second movable assembly 3 is provided with a second through-hole 302, and the milling member 42 is adapted to fit within the second through-hole 302. The fit between the milling member 42 and the second through-hole 302 ensures a secure assembly of the milling member 42. Furthermore, the milling member 42 can flexibly rotate at various angles, adapting to the machining requirements of complex shapes and multiple angles, significantly enhancing machining flexibility.
[0052] like Figure 10As shown, in addition to the features of the above embodiment, this embodiment further defines: the third driving member 41 includes a support plate 411, a rotating cylinder 412, and a first connecting shaft 413. The support plate 411 is disposed on the second moving assembly 3, the rotating cylinder 412 is located between the support plate 411 and the second moving assembly 3, and the first connecting shaft 413 is passed through the support plate 411 and the rotating cylinder 412. The first connecting shaft 413 passes through the support plate 411 and the rotating cylinder 412 in sequence and then connects to the second moving assembly 3. Since the first connecting shaft 413 passes through the rotating cylinder 412, the first connecting shaft 413 can support the rotating cylinder 412, so that the rotating cylinder 412 rotates around the first connecting shaft 413, thereby making the rotation of the rotating cylinder 412 more stable.
[0053] like Figure 10 As shown, in addition to the features of the above-mentioned embodiment, this embodiment further defines: the milling part 42 includes a milling part body 421, a support plate 422, and a second connecting shaft 423. The second connecting shaft 423 is provided through the second movable assembly 3. The support plate 422 is disposed on the second connecting shaft 423. The support plate 422 is connected to the connecting rod assembly 43. The connecting rod assembly 43 drives the support plate 422 to rotate relative to the second movable assembly 3. The milling part body 421 is disposed on the support plate 422. The connecting rod assembly 43 drives the support plate 422 to rotate, thereby achieving precise control of the milling part body 421 and ensuring the stability and accuracy of the machining process. The second connecting shaft 423 is provided through the second through-hole 302 of the second movable assembly 3, thereby providing a stable support base for the milling part body 421.
[0054] like Figure 10 As shown, in addition to the features of the above embodiment, this embodiment further defines that: the connecting rod assembly 43 includes a first connecting rod 431 and a second connecting rod 432, the first connecting rod 431 being connected to the third driving member 41 and the second connecting rod 432 respectively, and the second connecting rod 432 being connected to the milling part 42. By adjusting the relative position between the first connecting rod 431 and the second connecting rod 432 by the third driving member 41, the milling part 42 can be processed at different angles, thereby enhancing the flexibility of the equipment.
[0055] like Figure 11As shown, in addition to the features of the above-mentioned embodiment, this embodiment further defines that: the first support member 1 includes a first support frame 11 and a first slide rail 12, the number of the first slide rail 12 is multiple, the multiple first slide rails 12 are all arranged on the first support frame 11 and are located on the same side of the first support frame 11, and the first moving component 2 is at least partially movably arranged on the first slide rail 12 and can slide on the first slide rail 12. The setting of the first support frame 11 provides stable support for the first moving component 2. The setting of the multiple first slide rails 12 enables the first moving component 2 to slide smoothly on the first slide rail 12, reducing the friction resistance during the movement, improving the smoothness and efficiency of the movement, and reducing the maintenance frequency and cost.
[0056] The above embodiments merely illustrate several implementations of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the concept of the present invention, and these variations and improvements fall within the scope of protection of the present invention. Therefore, the scope of protection of the present utility model patent shall be determined by the appended claims.
Claims
1. A sawing machine milling structure, characterized in that: include: a first support member (1); a first movable assembly (2), the first movable assembly (2) being arranged on the first support member (1), the first movable assembly (2) being at least partially movable relative to the first support member (1) in a first direction and a second direction, the first direction being opposite to the second direction; a second movable assembly (3), the second movable assembly (3) being arranged on the first movable assembly (2), the second movable assembly (3) being at least partially movable relative to the first movable assembly (2) in a third direction and a fourth direction, the third direction being opposite to the fourth direction; A milling component (4) is provided on the second moving component (3), and the milling component (4) is used for milling profiles.
2. The sawing machine milling structure according to claim 1, characterized in that: The first moving assembly (2) comprises a first driving member (21), a first movable member (22) and a second supporting member (23); the first driving member (21) is arranged on the first supporting member (1); the first movable member (22) is movably arranged on the first supporting member (1); the first movable member (22) is transmission-connected to the first driving member (21); the first driving member (21) can drive the first movable member (22) to move relative to the first supporting member (1) toward the first direction and the second direction; the second supporting member (23) is arranged on the first movable member (22); and the second moving assembly (3) is arranged on the second supporting member (23).
3. The sawing machine milling structure according to claim 2, characterized in that: The first driving member (21) comprises a first driving motor (211), a coupling (212), a first rotating shaft (213) and a first screw nut (214); the first driving motor (211) is arranged on the first supporting member (1); the coupling (212) is connected to the output shaft of the first driving motor (211) and the first rotating shaft (213) respectively; the first driving motor (211) can drive the first rotating shaft (213) to rotate relative to the first supporting member (1); the first screw nut (214) is movably sleeved on the first rotating shaft (213); the first screw nut (214) can move relative to the first rotating shaft (213); and the first screw nut (214) is connected to the first movable member (22); and / or the first movable member (22) comprises a first movable plate (221) and a slider (222), the first movable plate (221) is connected to the first driving member (21), the number of the sliders (222) is multiple, the multiple sliders (222) are all arranged on the first movable plate (221) and are located on the same side of the first movable plate (221), the multiple sliders (222) are all movably connected to the first supporting member (1), and the first driving member (21) can drive the first movable plate (221) and the multiple sliders (222) to move relative to the first supporting member (1) toward the first direction and the second direction; And / or the second support member (23) includes a second support frame (231) and a second slide rail (232), the second support frame (231) is arranged on the first movable member (22), the number of the second slide rails (232) is multiple, the multiple second slide rails (232) are all arranged on the second support frame (231) and are located on the same side of the second support frame (231), and the second movable component (3) is movably arranged on the second slide rail (232) and can slide on the second slide rail (232).
4. The sawing machine milling structure according to claim 1, characterized in that: The second moving assembly (3) comprises a second driving member (31) and a second movable member (32); the second driving member (31) is arranged on the first moving assembly (2); the second movable member (32) is movably arranged on the first moving assembly (2); the second movable member (32) is transmission-connected to the second driving member (31); the second driving member (31) can drive the second movable member (32) to move relative to the first moving assembly (2) toward the third direction and the fourth direction.
5. The sawing machine milling structure according to claim 4, characterized in that: The second driving member (31) includes a power source member (311), a second rotating shaft (312) and a second screw nut (313). The power source member (311) is arranged on the first moving component (2). The second rotating shaft (312) is transmission-connected to the power source member (311). The power source member (311) can drive the second rotating shaft (312) to rotate relative to the first moving component (2). The second screw nut (313) is movably sleeved on the second rotating shaft (312). The second screw nut (313) can move relative to the second rotating shaft (312). The second screw nut (313) is connected to the second movable member (32).
6. The sawing machine milling structure according to claim 5, characterized in that: The power source component (311) comprises a first support seat (3111), a second drive motor (3112), a driving wheel (3113), a driven wheel (3114), a connecting belt (3115) and a belt cover (3116); the first support seat (3111) is arranged on the first moving component (2); the second drive motor (3112) and the driving wheel (3113) are both arranged on the first support seat (3111); the output shaft of the second drive motor (3112) is passed through the first support seat (3111); the output shaft of the second drive motor (3112) passes through the first support seat (3111); The support seat (3111) is connected to the driving wheel (3113) in a transmission manner at the rear, the driven wheel (3114) is connected to the second rotating shaft (312) in a transmission manner, the connecting belt (3115) is wound around the driving wheel (3113) and the driven wheel (3114), the belt cover (3116) is provided on the first support seat (3111) and is located on the side of the first support seat (3111), the driving wheel (3113), the driven wheel (3114) and the connecting belt (3115) are located in a space enclosed by the belt cover (3116) and the first support seat (3111); And / or also includes a second support seat (3117), the second support seat (3117) is arranged on the first moving component (2), the second rotating shaft (312) is passed through the second support seat (3117), and the second rotating shaft (312) is connected to the power source component (311) after passing through the second support seat (3117).
7. The sawing machine milling structure according to claim 1, characterized in that: The milling component (4) includes a third driving member (41), a milling member (42) and a connecting rod component (43). The third driving member (41) and the milling member (42) are both arranged on the second moving component (3). The third driving member (41) and the milling member (42) are respectively located on both sides of the second moving component (3). The milling member (42) can rotate relative to the second moving component (3). The second moving component (3) is provided with a first through hole (301). The connecting rod component (43) is penetrated by the first through hole (301). The connecting rod component (43) can move at the first through hole (301). The two ends of the connecting rod component (43) are respectively connected to the third driving member (41) and the milling member (42).
8. The sawing machine milling structure according to claim 7, characterized in that: The first through hole (301) is in an arc shape; And / or the second moving component (3) is provided with a second through hole (302), and the milling piece (42) is adapted to the second through hole (302).
9. The sawing machine milling structure according to claim 7, characterized in that: The third driving member (41) comprises a supporting plate (411), a rotating cylinder (412) and a first connecting shaft (413); the supporting plate (411) is arranged on the second moving assembly (3); the rotating cylinder (412) is located between the supporting plate (411) and the second moving assembly (3); the first connecting shaft (413) is passed through the supporting plate (411) and the rotating cylinder (412); the first connecting shaft (413) passes through the supporting plate (411) and the rotating cylinder (412) in sequence and is connected to the second moving assembly (3); And / or the milling part (42) includes a milling part body (421), a support plate (422) and a second connecting shaft (423), the second connecting shaft (423) is provided in the second moving assembly (3), the support plate (422) is provided on the second connecting shaft (423), the support plate (422) is connected to the connecting rod assembly (43), the connecting rod assembly (43) drives the support plate (422) to rotate relative to the second moving assembly (3), and the milling part body (421) is provided on the support plate (422); And / or the connecting rod assembly (43) includes a first connecting rod (431) and a second connecting rod (432), the first connecting rod (431) is connected to the third driving member (41) and the second connecting rod (432) respectively, and the second connecting rod (432) is connected to the milling member (42).
10. The sawing machine milling structure according to claim 1, characterized in that: The first support member (1) comprises a first support frame (11) and a first slide rail (12); the number of the first slide rails (12) is multiple, and the multiple first slide rails (12) are all arranged on the first support frame (11) and located on the same side of the first support frame (11); the first moving component (2) is at least partially movably arranged on the first slide rail (12) and can slide on the first slide rail (12).