A swash plate driven reciprocating feed device
Patent Information
- Application Number
- CN202522231793.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-10-22
AI Technical Summary
传统的废料处理方式多依赖人工操作,工作人员需要定时对生产设备产生的废料进行清理和搬运
[0011]与现有技术相比,本实用新型的有益效果是:本装置只需“电机-斜盘组件-夹设组件”即可实现往复运动,无需额外配置气压源,气管等辅助组件,大幅简化结构,提升了工作稳定性,节约了成本。此外,本装置工作效率高,安全性好且能与自动化生产线无缝衔接,具有重要的现实意义和市场价值。
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Figure CN224783208U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of stamping production automation equipment, and specifically relates to a reciprocating feeding device with swashplate drive. Background Technology
[0002] In modern industrial production sectors such as machining, stamping, and injection molding, a large amount of waste is generated during the production process. Traditional waste disposal methods largely rely on manual operation, requiring workers to regularly clean and remove waste generated by production equipment. This manual waste removal method has many drawbacks and increases labor costs.
[0003] In addition, most of the existing semi-automatic waste discharge equipment has a complex structure and a high failure rate. Moreover, the speed and efficiency of waste discharge are difficult to match with the high-speed production equipment, making it impossible to achieve timely and efficient waste discharge and failing to solve the problem of waste treatment in industrial production. Utility Model Content
[0004] To address the aforementioned problems, the primary objective of this invention is to provide a reciprocating feeding device with swashplate drive, thereby resolving the technical issues described above.
[0005] To achieve the above objectives, the technical solution of this utility model is as follows:
[0006] This utility model provides a reciprocating feeding device with swashplate drive, comprising:
[0007] The base houses a motor and a swashplate assembly. The swashplate assembly includes a swashplate, and the motor's drive shaft is connected to the swashplate assembly to drive the swashplate to rotate.
[0008] The waste container has a clamping component at its bottom, which is clamped to both sides of the swashplate so that it can reciprocate under the drive of the swashplate.
[0009] Preferably, a slanted frame is provided inside the waste container, with one end of the slanted frame being higher than the other end, so that the waste inside the waste container can move from one end of the slanted frame to the other end.
[0010] In one work scenario, the motor's drive shaft drives the swashplate to rotate, and the swashplate drives the clamping assembly to reciprocate, thereby driving the waste container to reciprocate.
[0011] Compared with existing technologies, the advantages of this invention are: this device only requires a "motor-swashplate assembly-clamping assembly" to achieve reciprocating motion, eliminating the need for additional pneumatic sources, air pipes, and other auxiliary components, thus greatly simplifying the structure, improving operational stability, and saving costs. Furthermore, this device boasts high efficiency, good safety, and seamless integration with automated production lines, making it of significant practical importance and market value.
[0012] Furthermore, the swashplate assembly also includes a rod, through which the swashplate passes and is connected. Preferably, the swashplate passes through the rod and is fixedly connected to it. The swashplate includes a generally cylindrical or cylindrical disc and a through-hole in the center of the disc, but the through-hole is not perpendicular to the two opposite disc surfaces, but rather at an acute angle to them. This can also be understood as a structure different from a conventional disc. A conventional disc is placed perpendicular to the horizontal, with the disc surface facing left and right, and a through-hole is horizontally located in the center of the disc surface. The swashplate, however, is a regular cylindrical or nearly regular cylindrical disc, tilted on a horizontal surface with one disc surface at an acute angle to the horizontal surface. Instead of a through-hole perpendicular to the center of the disc surface, a through-hole is horizontally located in the center of the disc surface. Thus, when the swashplate passes through the rod and the rod rotates, looking at the top of the disc surface, the top of the disc surface appears to swing left and right.
[0013] Furthermore, the reciprocating feeding device also includes a rod fixing assembly, which is mounted on the base. The first end of the rod is fixedly connected to the drive shaft of the motor, and the second end of the rod is movably connected to the rod fixing assembly.
[0014] Furthermore, the rod fixing assembly includes a rod fixing seat and a bearing seat, with the rod fixing seat mounted on the base.
[0015] The bearing housing is located on the side of the rod body fixed seat near the rod body, and the second end of the rod body is movably connected to the bearing housing. In one working scenario, the motor's drive shaft drives the rod body to rotate on the bearing housing.
[0016] Furthermore, the reciprocating feeding device also includes a motor support plate, on which a motor through hole is provided, and the motor drive shaft passes through the motor through hole and is fixedly connected to the first end of the rod.
[0017] Furthermore, a groove for the rod body is provided on the bearing housing, and the groove for the rod body is configured to correspond to the through hole of the motor.
[0018] The second end of the rod is embedded in a groove in the rod body, and the second end of the rod body is movably connected to the groove. By aligning the groove with the motor through hole, it is ensured that the first and second ends of the rod are on the same horizontal plane, making the rotation of the rod smoother.
[0019] Furthermore, a drive shaft groove is formed at the first end of the rod, and a rod protrusion is formed at the second end of the rod.
[0020] The motor's drive shaft is embedded in the drive shaft groove, and the motor's drive shaft is fixedly connected to the drive shaft groove.
[0021] The protrusion of the rod is embedded in the groove of the rod, and the protrusion of the rod and the groove of the rod are movably connected.
[0022] Furthermore, the clamping assembly includes a first clamping member and a second clamping member, with a swashplate clamped between the first clamping member and the second clamping member.
[0023] Furthermore, the clamping assembly also includes a first screw and a second screw. The first clamping member has a first through hole, the second clamping member has a second through hole, and the waste receiving box has a first waste through hole and a second waste through hole. The first screw passes through the first through hole and the first waste through hole, and the second screw passes through the second through hole and the second waste through hole.
[0024] Preferably, the first clamping member is a first bearing, the second clamping member is a second bearing, the first screw and the first through hole are movably connected, and the first screw and the first waste material through hole are fixedly connected; the second screw and the second through hole are movably connected, and the second screw and the second waste material through hole are fixedly connected.
[0025] In one working scenario, the motor's drive shaft drives the swashplate to rotate. The swashplate drives the clamping assembly to reciprocate, while the first and second bearings rotate to reduce the resistance between the clamping assembly and the swashplate, making the transmission smoother and more fluid.
[0026] Furthermore, the reciprocating feeding device also includes a limiting component. One end of the limiting component is connected to the waste container, and the other end of the limiting component is connected to the base to restrict the movement direction of the waste container, thereby realizing the linear reciprocating motion of the waste container.
[0027] In one work scenario, the motor's drive shaft drives the swashplate to rotate, and the swashplate drives the clamping assembly to reciprocate. Under the combined action of the clamping assembly and the limiting assembly, the waste container makes a linear reciprocating motion.
[0028] Preferably, the limiting component includes a guide shaft fixing seat, a guide shaft, and a sliding seat. One end of the guide shaft fixing seat is fixedly connected to the base, and the other end of the guide shaft fixing seat is fixedly connected to the guide shaft. One end of the sliding seat has a sliding through hole, and one end of the sliding seat is sleeved on the guide shaft through the sliding through hole and movably connected to the guide shaft. The other end of the sliding seat is fixedly connected to the waste container.
[0029] In one working scenario, the motor's drive shaft drives the swashplate to rotate, which in turn drives the clamping assembly to reciprocate, while the sliding block reciprocates linearly along the guide shaft. Under the combined action of the clamping assembly and the sliding block, the waste container performs this linear reciprocating motion.
[0030] Furthermore, magnetic mounting bases are installed at both ends of the base. A switch knob is provided on each magnetic mounting base. When the switch knob is turned to the open position, the magnetic mounting base becomes magnetic, thus magnetically securing the base; when the switch knob is turned to the closed position, the magnetic mounting base becomes demagnetized, allowing for flexible installation and handling of the feeding and waste discharge device.
[0031] Compared with existing technologies, the advantages of this invention are: this device only requires a "motor-swashplate assembly-clamping assembly" to achieve reciprocating motion, eliminating the need for additional pneumatic sources, air pipes, and other auxiliary components, thus greatly simplifying the structure, improving operational stability, and saving costs. Furthermore, this device boasts high efficiency, good safety, and seamless integration with automated production lines, making it of significant practical importance and market value. Attached Figure Description
[0032] Figure 1 This is an overall structural diagram of a swashplate-driven reciprocating feeding device.
[0033] Figure 2 This is a structural diagram of the hidden part of the reciprocating feeding device with swashplate drive.
[0034] Figure 3 This is a structural diagram of the hidden part of the reciprocating feeding device with swashplate drive.
[0035] Figure 4 yes Figure 3 A sectional view.
[0036] Figure 5 This is a structural diagram of the hidden guide shaft in the limiting component.
[0037] Figure 6 This is a structural diagram of the magnetic mounting base.
[0038] In the diagram: 1. Base; 11. Motor; 12. Swashplate assembly; 121. Swashplate; 111. Drive shaft; 2. Waste collection box; 21. Clamping assembly; 122. Rod; 3. Rod fixing assembly; 31. Rod fixing seat; 32. Bearing seat; 4. Motor support plate; 41. Motor through hole; 321. Rod groove; 123. Drive shaft groove; 124. Rod protrusion; 211. First clamping component; 212. Second clamping component; 213. First screw; 214. Second screw; 215. First through hole; 216. Second through hole; 5. Limiting assembly; 51. Guide shaft fixing seat; 52. Guide shaft; 53. Sliding seat; 531. Sliding through hole; 6. Magnetic fixing seat; 61. Switch knob. Detailed Implementation
[0039] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0040] To achieve the above objectives, the technical solution of this utility model is as follows:
[0041] See Figures 1-6 As shown, this utility model provides a reciprocating feeding device with swashplate drive, comprising:
[0042] A base 1 is provided, on which a motor 11 and a swashplate assembly 12 are mounted. The swashplate assembly 12 includes a swashplate 121, and the drive shaft 111 of the motor 11 is connected to the swashplate assembly 12.
[0043] Waste container 2, with a clamping component 21 at the bottom, clamping the two sides of the inclined plate 121.
[0044] Preferably, a slant frame (not shown) is provided inside the waste container 2, with one end of the slant frame being higher than the other end, so that the waste inside the waste container 2 can move from one end of the slant frame to the other end.
[0045] In a working scenario, the drive shaft 111 of the motor 11 drives the swashplate 121 to rotate, and the swashplate 121 drives the clamping assembly 21 to reciprocate, thereby driving the waste container 2 to reciprocate.
[0046] Compared with existing technologies, the advantages of this invention are: this device only requires "motor 11 - swashplate assembly 12 - clamping assembly" to achieve reciprocating motion, eliminating the need for additional pneumatic sources, air pipes, and other auxiliary components, thus greatly simplifying the structure, improving operational stability, and saving costs. Furthermore, this device boasts high efficiency, good safety, and seamless integration with automated production lines, making it of significant practical importance and market value.
[0047] In this embodiment, the swashplate assembly 12 further includes a rod 122, through which the swashplate 121 passes and is connected. Preferably, the swashplate 121 passes through the rod 122 and is fixedly connected to the rod 122.
[0048] In this embodiment, the reciprocating feeding device further includes a rod fixing assembly 3, which is mounted on the base 1. The first end of the rod 122 is fixedly connected to the transmission shaft 111 of the motor 11, and the second end of the rod 122 is movably connected to the rod fixing assembly 3.
[0049] In this embodiment, the rod fixing assembly 3 includes a rod fixing seat 31 and a bearing seat 32. The rod fixing seat 31 is disposed on the base 1.
[0050] The bearing housing 32 is located on the side of the rod fixing seat 31 near the rod 122, and the second end of the rod 122 is movably connected to the bearing housing 32. In one working scenario, the drive shaft 111 of the motor 11 drives the rod 122 to rotate on the bearing housing 32.
[0051] In this embodiment, the reciprocating feeding device also includes a motor support plate 4, on which a motor through hole 41 is provided. The transmission shaft 111 of the motor 11 passes through the motor through hole 41 and is fixedly connected to the first end of the rod 122.
[0052] In this embodiment, a rod groove 321 is provided on the bearing housing 32, and the rod groove 321 is correspondingly provided with the motor through hole 41.
[0053] The second end of the rod 122 is embedded in the rod groove 321, and the second end of the rod 122 is movably connected to the rod groove 321. By aligning the rod groove 321 with the motor through hole 41, the first and second ends of the rod 122 are ensured to be on the same horizontal plane, making the rotation of the rod 122 smoother.
[0054] In this embodiment, a drive shaft groove 123 is formed at the first end of the rod 122, and a rod protrusion 124 is formed at the second end of the rod 122.
[0055] The drive shaft 111 of the motor 11 is embedded in the drive shaft groove 123, and the drive shaft 111 of the motor 11 is fixedly connected to the drive shaft groove 123.
[0056] The protrusion 124 of the rod is embedded in the groove 321 of the rod, and the protrusion 124 of the rod is movably connected to the groove 321 of the rod.
[0057] In this embodiment, the clamping assembly 21 includes a first clamping member 211 and a second clamping member 212, with a swashplate 121 clamped between the first clamping member 211 and the second clamping member 212.
[0058] In this embodiment, the clamping assembly 21 further includes a first screw 213 and a second screw 214. The first clamping member 211 has a first through hole 215, the second clamping member 212 has a second through hole 216, and the waste container 2 has a first waste through hole (not shown) and a second waste through hole (not shown). The first screw 213 passes through the first through hole 215 and the first waste through hole, and the second screw 214 passes through the second through hole 216 and the second waste through hole.
[0059] In this embodiment, the first clamping member 211 is a first bearing, the second clamping member 212 is a second bearing, the first screw 213 and the first through hole 215 are movably connected, and the first screw 213 and the first waste material through hole are fixedly connected; the second screw 214 and the second through hole 216 are movably connected, and the second screw 214 and the second waste material through hole are fixedly connected.
[0060] In a working scenario, the drive shaft 111 of the motor 11 drives the swashplate 121 to rotate. The swashplate 121 drives the clamping assembly 21 to reciprocate, while the first bearing and the second bearing rotate to reduce the resistance between the clamping assembly 21 and the swashplate 121, making the transmission smoother and more fluid.
[0061] In this embodiment, the reciprocating feeding device also includes a limiting component 5. One end of the limiting component 5 is connected to the waste container 2, and the other end of the limiting component 5 is connected to the base 1 to limit the movement direction of the waste container 2, thereby realizing the linear reciprocating motion of the waste container 2.
[0062] In a working scenario, the drive shaft 111 of the motor 11 drives the swashplate 121 to rotate, and the swashplate 121 drives the clamping assembly 21 to reciprocate. Under the combined action of the clamping assembly 21 and the limiting assembly 5, the waste container 2 performs linear reciprocating motion.
[0063] In this embodiment, the limiting component 5 includes a guide shaft fixing seat 51, a guide shaft 52, and a sliding seat 53. One end of the guide shaft fixing seat 51 is fixedly connected to the base 1, and the other end of the guide shaft fixing seat 51 is fixedly connected to the guide shaft 52. One end of the sliding seat 53 has a sliding through hole 531. One end of the sliding seat 53 is sleeved on the guide shaft 52 through the sliding through hole 531 and is movably connected to the guide shaft 52. The other end of the sliding seat 53 is fixedly connected to the waste container 2.
[0064] In one working scenario, the drive shaft 111 of the motor 11 drives the swashplate 121 to rotate, the swashplate 121 drives the clamping assembly 21 to reciprocate, and the sliding seat 53 reciprocates linearly along the direction of the guide shaft 52. Under the combined action of the clamping assembly 21 and the sliding seat 53, the waste container 2 reciprocates linearly.
[0065] In this embodiment, magnetic mounting bases 6 are installed at both ends of the base 1. A switch knob 61 is provided on the magnetic mounting base 6. When the switch knob 61 is turned to the open position, the magnetic mounting base 6 becomes magnetic, thereby achieving magnetic fixation of the base 1; when the switch knob 61 is turned to the closed position, the magnetic mounting base 6 becomes non-magnetic, enabling flexible installation and handling of the feeding and waste discharge device.
[0066] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A reciprocating feeding device with swashplate drive, characterized in that, include: The base houses a motor and a swashplate assembly. The swashplate assembly includes a swashplate, and the motor's drive shaft is connected to the swashplate assembly to drive the swashplate to rotate. The waste container has a clamping component at its bottom, which is clamped to both sides of the swashplate so that it can reciprocate under the drive of the swashplate.
2. The reciprocating feeding device as described in claim 1, characterized in that, The swashplate assembly also includes a rod through which the swashplate passes and is connected.
3. The reciprocating feeding device as described in claim 2, characterized in that, The reciprocating feeding device also includes a rod fixing assembly, which is mounted on the base. The first end of the rod is fixedly connected to the drive shaft of the motor, and the second end of the rod is movably connected to the rod fixing assembly.
4. The reciprocating feeding device as described in claim 3, characterized in that, The pole fixing assembly includes a pole fixing seat and a bearing seat, with the pole fixing seat mounted on the base. The bearing housing is located on the side of the rod body fixed seat near the rod body, and the second end of the rod body is movably connected to the bearing housing.
5. The reciprocating feeding device as described in claim 4, characterized in that, The reciprocating feeding device also includes a motor support plate, on which a motor through hole is provided. The motor drive shaft passes through the motor through hole and is fixedly connected to the first end of the rod.
6. The reciprocating feeding device as described in claim 5, characterized in that, A groove for the rod body is provided on the bearing housing, and the groove for the rod body is arranged to correspond to the through hole of the motor. The second end of the rod is embedded in the groove of the rod body, and the second end of the rod body is movably connected to the groove of the rod body.
7. The reciprocating feeding device as described in claim 6, characterized in that, The first end of the rod has a drive shaft groove, and the second end of the rod has a rod protrusion. The motor's drive shaft is embedded in the drive shaft groove, and the motor's drive shaft is fixedly connected to the drive shaft groove. The protrusion on the rod is embedded in the groove on the rod, and the protrusion on the rod is movably connected to the groove on the rod.
8. The reciprocating feeding device as described in claim 1, characterized in that, The clamping assembly includes a first clamping member and a second clamping member, with a swashplate clamped between the first clamping member and the second clamping member.
9. The reciprocating feeding device as described in claim 8, characterized in that, The clamping assembly also includes a first screw and a second screw. The first clamping member has a first through hole, the second clamping member has a second through hole, the waste receiving box has a first waste through hole and a second waste through hole, the first screw passes through the first through hole and the first waste through hole, and the second screw passes through the second through hole and the second waste through hole.
10. The reciprocating feeding device as described in claim 1, characterized in that, The reciprocating feeding device also includes a limiting component. One end of the limiting component is connected to the waste container, and the other end of the limiting component is connected to the base to limit the movement direction of the waste container, thereby realizing the linear reciprocating motion of the waste container.