A vertical taro slicer
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-14
- Publication Date
- 2026-08-14
AI Technical Summary
[0003]公告号为CN222244912U的专利技术公开了一种芋头切片装置,包括底座,所述底座的底部固定连接有四个呈均匀分布的防滑橡胶垫,所述底座的上端固定连接有支撑板,所述支撑板的上端固定连接有气缸,所述气缸的输出端与支撑板滑动连接,所述气缸输出端的下端固定连接有连接柱,所述连接柱的下端固定连接有连接条,所述连接条的下端固定连接有两个呈对称分布的连接杆,本实用新型通过设计气缸的作用,气缸可带动切片盘移动对芋头进行切片,同时通过连接杆的作用,在切割过程中连接杆带动滚轮的下移可对滑座进行挤压,可实现滑座的水平移动,进而可通过滑座的侧边对芋头进行夹紧定位,可实现对芋头的自动定位,使用方便快捷,但是该方案中其夹紧定位机构过于简单,芋头本身多为不规则形状,仅是通过两侧夹紧的定位方式易出现芋头滑脱的情况,无法有效对芋头进行加工,影响了芋头的加工生产效率,因而提出一种立式芋头切瓣机以解决现有技术所存在的问题
[0015]采用上述技术方案后,本实用新型有益效果为:通过在加工台上设置带滑轨的弹性夹紧机构,配合顶部下压机构,能够实现自动居中夹紧芋头,并进行切瓣作业,整体结构简单,对芋头的紧固定位效果好,有效提升了芋头的生产加工效率。
Smart Images

Figure CN224630905U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a vertical taro slicer, and belongs to the technical field of taro processing equipment. Background Technology
[0002] Taro is a common food in people's daily lives. In production enterprises, taro is processed in various ways according to people's preferences before consumption, and cutting equipment is the main production equipment in taro processing.
[0003] Patent CN222244912U discloses a taro slicing device, including a base. Four evenly distributed anti-slip rubber pads are fixedly connected to the bottom of the base. A support plate is fixedly connected to the upper end of the base, and a cylinder is fixedly connected to the upper end of the support plate. The output end of the cylinder is slidably connected to the support plate. A connecting column is fixedly connected to the lower end of the cylinder output end, and a connecting strip is fixedly connected to the lower end of the connecting column. Two symmetrically distributed connecting rods are fixedly connected to the lower end of the connecting strip. This invention utilizes the design of the cylinder to drive the slicing disc to move. Taro is sliced, and during the cutting process, the connecting rod drives the roller to move downward, which squeezes the slide block and enables the slide block to move horizontally. The taro is then clamped and positioned by the side of the slide block, achieving automatic positioning of the taro. This method is convenient and quick to use. However, the clamping and positioning mechanism in this solution is too simple. Taro itself is mostly irregular in shape, and the positioning method of clamping from both sides is prone to taro slipping out, which cannot effectively process the taro and affects the processing efficiency of taro. Therefore, a vertical taro slicing machine is proposed to solve the problems existing in the prior art. Utility Model Content
[0004] The purpose of this utility model is to address the defects or deficiencies in the existing technology by providing a vertical taro slicing machine. By setting an elastic clamping mechanism with a slide rail on the processing table, and cooperating with a top pressing mechanism, it can automatically center and clamp the taro and perform slicing operations. The overall structure is simple, and the clamping and positioning effect of the taro is good, which effectively improves the production and processing efficiency of taro.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: It includes a processing machine table 1, a cutting tool 2 is arranged at the top center of the processing machine table 1, an adaptive clamping mechanism 3 is slidably connected to the processing machine table 1, the adaptive clamping mechanism 3 is located directly above the cutting tool 2, four mounting columns 4 are arranged on the processing machine table 1, a fixing plate 12 is arranged at the top of the mounting columns 4, a driving mechanism 6 and a lifting rack 7 are arranged on the fixing plate 12, the lifting rack 7 passes through the fixing plate 12 and is connected to the driving mechanism 6 for transmission, and a pressure cylinder 8 is arranged at the bottom of the lifting rack 7 corresponding to the adaptive clamping mechanism 3.
[0006] Furthermore, the adaptive clamping mechanism 3 includes two symmetrically arranged slide plates 31, and clamping plates 32 are symmetrically arranged on the middle surface of the slide plates 31. The clamping plates 32 have a V-shaped bending structure.
[0007] Furthermore, one end of the slide plate 31 is provided with an elastic limiting mechanism 33, and the bottom of the slide plate 31 is provided with four sliders 34 with grooves. The end of the elastic limiting mechanism 33 is provided with a limiting mechanism protective cover 10, which is installed on the processing machine table 1.
[0008] Furthermore, the elastic limiting mechanism 33 includes a rotating connecting plate 331, and rotating push plates 332 are rotatably connected to both ends of the rotating connecting plate 331.
[0009] Furthermore, the rotating connecting plate 331 is connected to a fixed shaft 333 by a central bearing. The fixed shaft 333 is mounted on the processing machine base 1. The bottom outer sides of the two rotating push plates 332 are provided with connecting columns 334 that are rotatably connected to the two sliding plates 31.
[0010] Furthermore, a strong torsion spring 335 is provided at the center of the rotary connecting plate 331 and connected to the bearing outer sleeve.
[0011] Furthermore, the drive mechanism 6 includes a drive motor 61, the output shaft of the drive motor 61 is arranged downward, and the output shaft end is connected to a speed change gearbox 62. The speed change gearbox 62 is mounted on the fixed plate 12. A driven shaft extends out from the side of the speed change gearbox 62, and a driven gear 63 is connected to the driven shaft to mesh with the lifting rack 7. A bearing seat 64 is connected to the end of the driven shaft, and the bearing seat 64 is mounted on the fixed plate 12.
[0012] Furthermore, the fixed plate 12 is provided with a pressure roller seat 11, on which a pressure roller 111 is rotatably provided and rolls in contact with the outer side of the lifting gear 7. The fixed plate 12 is provided with a lifting hole 121 at the center to match the lifting gear 7. The fixed plate 12 is also provided with a protective cover 9 to protect the transmission gearbox 62.
[0013] Furthermore, the bottom of the lifting gear 7 is provided with a connector 71 that connects to the pressure cylinder 8, and the bottom of the pressure cylinder 8 is provided with a concave pressing groove 81.
[0014] Furthermore, the surface of the processing machine table 1 is provided with two guide rails 101 that are slidably connected to the slider 34.
[0015] After adopting the above technical solution, the beneficial effects of this utility model are as follows: by setting an elastic clamping mechanism with a slide rail on the processing table, and cooperating with the top pressing mechanism, it is possible to automatically center and clamp the taro and perform the segment cutting operation. The overall structure is simple, the clamping and positioning effect of the taro is good, and the production and processing efficiency of taro is effectively improved. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 yes Figure 1 Second angle view; Figure 3 yes Figure 1 Third-angle view; Figure 4 yes Figure 3 A schematic diagram of the structure after removing protective cover 9; Figure 5 This is a schematic diagram of the adaptive clamping mechanism 3 in this utility model; Figure 6 This is a schematic diagram of the elastic limiting mechanism 33 in this utility model.
[0018] Explanation of reference numerals in the attached drawings: 1. Machining table; 2. Cutting tool; 3. Adaptive clamping mechanism; 4. Mounting column; 5. Stabilizing plate; 6. Drive mechanism; 7. Lifting rack; 8. Pressure cylinder; 9. Protective cover; 10. Limiting mechanism protective cover; 11. Pressure roller seat; 12. Fixing plate; 31. Slide plate; 32. Clamping plate; 33. Elastic limiting mechanism; 34. Slider; 61. Drive motor; 62. Gearbox; 63. Driven gear; 64. Bearing seat; 71. Connector; 101. Guide rail; 111. Pressure roller; 121. Lifting hole; 331. Rotary connecting plate; 332. Rotary pushing plate; 333. Fixed shaft; 333. Connecting column; 334. High-strength torsion spring; 335. Detailed Implementation
[0019] See Figures 1-6As shown, the technical solution adopted in this specific embodiment is as follows: It includes a processing machine table 1, with a cutting tool 2 set at the top center of the processing machine table 1. The processing machine table 1 is slidably connected to an adaptive clamping mechanism 3, which is located directly above the cutting tool 2. Four mounting columns 4 are set on the processing machine table 1, and a fixing plate 12 is set on the top of the mounting columns 4. A driving mechanism 6 and a lifting rack 7 are set on the fixing plate 12. The lifting rack 7 passes through the fixing plate 12 and is connected to the driving mechanism 6. A pressure cylinder 8 is set at the bottom of the lifting rack 7, corresponding to the adaptive clamping mechanism 3. In this embodiment, by setting an adaptive clamping mechanism above the cutting tool to fix the taro, it can adaptively deform according to the specifications of the taro itself, thereby cooperating with different specifications of taro for clamping and obtaining an automatic centering effect. Then, when the driving mechanism drives the lifting rack to descend, it drives the pressure cylinder to press down the taro, and the cutting tool performs the slicing operation. Different cutting tools can be used according to different slicing requirements to obtain different slicing effects. The taro will not move during the entire operation process and will always be in the center position of the cutting tool, thereby effectively improving the processing production efficiency. In addition, a stabilizing plate 5 is installed in the upper part of the installation column as a limit plate for the pressure cylinder to prevent it from rising excessively. This also helps to stabilize the installation column, prevent it from shaking, and increase the overall stability of the equipment.
[0020] More specifically, the adaptive clamping mechanism 3 includes two symmetrically arranged sliding plates 31, and clamping plates 32 are symmetrically arranged on the middle surface of the sliding plates 31. The clamping plates 32 have a V-shaped bending structure. In this embodiment, the taro is adaptively clamped by setting two sliding plates and two clamping plates. The sliding plates can slide on the processing table, thereby driving the clamping plates to open and close, clamping and positioning the taro.
[0021] More specifically, the slide plate 31 is provided with an elastic limiting mechanism 33 at one end, and four sliders 34 with grooves are provided at the bottom of the slide plate 31. A limiting mechanism protective cover 10 is provided at the end of the elastic limiting mechanism 33. The limiting mechanism protective cover 10 is installed on the processing machine table 1. The elastic limiting mechanism 33 includes a rotating connecting plate 331. Rotating push plates 332 are rotatably connected to both ends of the rotating connecting plate 331. A fixed shaft 333 is connected to the center bearing of the rotating connecting plate 331. The fixed shaft 333 is installed on the processing machine table 1. A connecting... The column 334 is rotatably connected to two sliding plates 31. A strong torsion spring 335 is provided at the center of the rotating connecting plate 331 and connected to the bearing sleeve. In this embodiment, the core of the adaptive clamping mechanism is an elastic limiting mechanism. Two rotating push plates are rotatably connected to both sides of the rotating connecting plate. At the same time, a strong torsion spring is provided at the center of the rotating connecting plate and connected to the bearing sleeve at its center. Therefore, when the rotating connecting plate rotates, the strong torsion spring will provide a reverse rotational force, thereby driving the rotating push plate to maintain an inward tightening force, thus driving the sliding plate to maintain clamping, thereby clamping the taro and ensuring the sliced effect.
[0022] More specifically, the drive mechanism 6 includes a drive motor 61, the output shaft of the drive motor 61 is arranged downward, and the output shaft end is connected to a speed change gearbox 62. The speed change gearbox 62 is mounted on the fixed plate 12. A driven shaft extends out from the side of the speed change gearbox 62, and a driven gear 63 is connected to the driven shaft to mesh with the lifting rack 7. A bearing seat 64 is connected to the end of the driven shaft, and the bearing seat 64 is mounted on the fixed plate 12. In this embodiment, the drive motor changes speed through the speed change gearbox, and the driven gear at the output end drives the lifting rack to rise and fall, thereby driving the pressure cylinder to rise and fall. When it descends, it presses the taro downward to cut it into slices.
[0023] More specifically, the fixed plate 12 is provided with a pressure roller seat 11, and a pressure roller 111 is rotatably provided on the pressure roller seat 11 to roll in contact with the outer side of the lifting gear 7. In this embodiment, in order to ensure the stable lifting of the lifting gear, the pressure roller is provided to contact the lifting gear, so that the lifting gear is constrained by the pressure roller when it lifts and lowers, thus achieving stable lifting and lowering. The fixed plate 12 has a lifting hole 121 in the center that matches the lifting rack 7. The fixed plate 12 is also equipped with a protective cover 9 to protect the transmission gearbox 62.
[0024] More specifically, the bottom of the lifting toothed rod 7 is provided with a connector 71 that connects to the pressing cylinder 8. The connector and the pressing cylinder are detachably connected. Different pressing cylinders can be replaced according to different taro shapes in order to better adapt to different taro and obtain the best slicing effect. The bottom of the pressing cylinder 8 is provided with a concave pressing groove 81. The pressing groove has an arc-shaped surface structure so as to fit with the top of the taro.
[0025] More specifically, the surface of the processing machine table 1 is provided with two guide rails 101 that are slidably connected to the slider 34. The slide plate moves on the processing machine table through the sliding connection between the slider and the guide rail, thereby achieving an adaptive clamping effect.
[0026] The working principle of this utility model is as follows: When in use, the taro is placed directly between the clamping plates 32. Due to the different sizes of the taro, after being placed in the clamping plates 32, the clamping plates 32 will be clamped by the elastic limiting mechanism 33 to achieve an automatic centering effect. After the equipment is started, the drive motor 61 drives the lifting toothed rod 7 to move downward, pushing the pressure cylinder 8 downward. During the continuous downward movement of the pressure cylinder 8, the taro will fall and be cut by the blade 2 to complete the slicing operation. Due to the constraint of the clamping plates, the taro will not move randomly, thus obtaining the best slicing effect.
[0027] The above description is only used to illustrate the technical solution of this utility model and is not intended to limit it. Any other modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model, as long as they do not depart from the spirit and scope of the technical solution of this utility model, should be covered within the scope of the claims of this utility model.
Claims
1. A vertical type taro quartering machine, characterized by: It includes a processing table (1), on which a cutting tool (2) is set at the top center. The processing table (1) is slidably connected to an adaptive clamping mechanism (3), which is located directly above the cutting tool (2). Four mounting columns (4) are set on the processing table (1). A fixing plate (12) is set on the top of the mounting columns (4). A driving mechanism (6) and a lifting rack (7) are set on the fixing plate (12). The lifting rack (7) passes through the fixing plate (12) and is connected to the driving mechanism (6) for transmission. A pressure cylinder (8) is set at the bottom of the lifting rack (7) and corresponds to the adaptive clamping mechanism (3).
2. A vertical type taro quarterer according to claim 1, wherein: The adaptive clamping mechanism (3) includes two symmetrically arranged sliding plates (31), and clamping plates (32) are symmetrically arranged on the middle surface of the sliding plates (31). The clamping plates (32) have a V-shaped bending structure.
3. A vertical type taro quarterer according to claim 2, characterized in that: The slide plate (31) is provided with an elastic limiting mechanism (33) at one end, and four sliders (34) with grooves are provided at the bottom of the slide plate (31). The end of the elastic limiting mechanism (33) is provided with a limiting mechanism protective cover (10), and the limiting mechanism protective cover (10) is installed on the processing machine table (1).
4. A vertical type taro quarterer according to claim 3, wherein: The elastic limiting mechanism (33) includes a rotating connecting plate (331), and rotating push plates (332) are rotatably connected to both ends of the rotating connecting plate (331).
5. A vertical type taro quarterer according to claim 4, wherein: The rotating connecting plate (331) has a central bearing connected to a fixed shaft (333), which is mounted on the processing machine table (1). The bottom outer side of the two rotating push plates (332) is provided with connecting columns (334) that are rotatably connected to the two sliding plates (31).
6. A vertical type taro quartering machine according to claim 4, wherein: The rotating connecting plate (331) is provided with a strong torsion spring (335) at its center, which is connected to the bearing outer sleeve.
7. A vertical type taro quarterer according to claim 1, wherein: The drive mechanism (6) includes a drive motor (61), the output shaft of the drive motor (61) is arranged downward, and the output shaft end is connected to a speed change gearbox (62). The speed change gearbox (62) is mounted on a fixed plate (12). A driven shaft extends from the side of the speed change gearbox (62), and a driven gear (63) is connected to the driven shaft to mesh with the lifting rack (7). A bearing seat (64) is connected to the end of the driven shaft, and the bearing seat (64) is mounted on the fixed plate (12).
8. A vertical type taro quarterer according to claim 1, wherein: The fixed plate (12) is provided with a pressure roller seat (11), and a pressure roller (111) is rotatably provided on the pressure roller seat (11) and rolls in contact with the outer side of the lifting gear (7). The fixed plate (12) is provided with a lifting hole (121) in the center to match the lifting gear (7). The fixed plate (12) is also provided with a protective cover (9) to protect the gearbox (62).
9. A vertical type taro quarterer according to claim 1, wherein: The lifting gear (7) is provided with a connector (71) at the bottom, which is connected to the pressure cylinder (8). The pressure cylinder (8) is provided with a concave pressing groove (81) at the bottom.
10. A vertical type taro quarterer according to claim 1, wherein: The surface of the processing machine table (1) is provided with two guide rails (101) that are slidably connected to the slider (34).
Citation Information
Patent Citations
Taro slicing device
CN222244912U