Mixer for processing taro balls
By designing a mixing machine for taro ball processing, the scald problems during manual mashing and cassava flour agglomeration problems are solved, and efficient mixing of ingredients and the production of high-quality taro balls are achieved.
Patent Information
- Application Number
- CN202422325057.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-09-24
AI Technical Summary
When mashing taro balls manually, it is easy to burn your hands, and tapioca flour is easy to absorb moisture and agglomerate, affecting the mixing of ingredients.
A mixer for taro ball processing is designed, which includes a mashing bowl, a support bracket, a mashing piece and a pounding mechanism. Through the activity of the pounding tool, the mashing of ingredients and the synchronous mixing of tapioca flour is achieved. The up and down floating of the pounding rod and the small-scale swing of the pounding rod are used to accelerate the mashing of the ingredients to ensure the even mixing of tapioca flour and the ingredients.
It reduces the risk of manual mashing, avoids cassava flour clumping, improves the mixing effect and production efficiency of ingredients, and produces high-quality taro balls.
Smart Images

Figure CN223055508U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of taro ball processing, and more specifically, to a mixer for taro ball processing. Background Art
[0002] For the processing of taro balls, select high-quality taro or purple sweet potatoes and other root vegetables. After careful cleaning and peeling, slice and steam them until soft and glutinous. Mash them into a paste while they are still hot. Mix with an appropriate amount of tapioca starch and granulated sugar, knead into a smooth and elastic dough, then roll the dough into a long strip and evenly cut it into small and round taro ball grains. Finally, put the taro balls into boiling water and cook until they float and become transparent, then take them out and rinse them with cold water to maintain their Q-bounce texture.
[0003] In order to pursue a specific texture of taro balls, many manufacturers choose to manually mash the ingredients. Since the just-cooked taro and purple sweet potatoes are very hot, it is easy to scald the hands during manual mashing. In addition, during the mashing process, it is necessary to quickly mix with tapioca starch. Tapioca starch is easy to absorb moisture and form lumps. If directly added to the hot ingredient paste, it may quickly form particles or lumps, affecting the mixing of the ingredients. Summary of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides a mixer for taro ball processing to solve the problems of easy hand scalding during manual mashing and easy moisture absorption and caking of tapioca starch, and is convenient to use.
[0005] To achieve the above object, the utility model is realized by the following technical solutions:
[0006] A mixer for taro ball processing includes a mashing bowl, a supporting bracket, a mashing member and a mashing mechanism. The mashing bowl is placed on the supporting bracket, the mashing mechanism is installed on the supporting bracket, the mashing member is connected to the mashing mechanism, and the mashing mechanism drives the mashing member to mash the materials in the mashing bowl; the mashing member includes a mashing tool, a connecting member and a mashing rod. The mashing tool is located inside the bowl body, the mashing tool is in the shape of a concave disc, and the surface of the mashing tool is evenly provided with leakage holes. The connecting member is installed on the outer edge of the mashing tool, the top end of the mashing rod is connected to the mashing mechanism, and the lower end of the mashing rod is connected to the connecting member.
[0007] Furthermore, the tamping mechanism includes an L-shaped mounting rod, a connecting rod, a turntable, and a driving telescopic rod, which is mounted on a support bracket. The L-shaped mounting rod includes a first rod segment and a second rod segment that are perpendicular to each other. The first rod segment is perpendicular to the connecting rod, and a limiting groove is provided on the first rod segment. One end of the connecting rod is connected to the driving telescopic rod, and the other end passes through the limiting groove on the first rod segment. The second rod segment is parallel to the connecting rod and is connected to the support bracket. The turntable is located between the second rod segment and the connecting rod. The turntable is provided with an eccentric shaft, which is rotatably mounted on the second rod segment. The eccentric shaft is perpendicular to the connecting rod. An annular traction groove is provided on the side of the turntable facing the connecting rod, and a traction guide rod inserted into the annular traction groove is installed on the connecting rod. The driving telescopic rod reciprocates and extends to drive the connecting rod to move so that the traction guide rod slides in the annular traction groove, thereby driving the turntable, and the top end of the tamping rod is connected to the turntable.
[0008] Furthermore, the support bracket includes a base plate, an extension pole and a top end block, the extension pole is located on one side of the mashing bowl, the lower end of the extension pole is connected to the base plate, the top end block is arranged at the top of the extension pole, and the base plate is used to place the mashing bowl.
[0009] Furthermore, a groove for accommodating the base plate is provided at the bottom of the mashing bowl, and the base plate and the groove cooperate to position the mashing bowl.
[0010] Furthermore, a receiving groove chamber is opened on the side surface of the top end block, the driving telescopic rod is located in the receiving groove chamber, the traction guide rod is connected to the driving telescopic rod through a connecting block, and the connecting block performs stable reciprocating translation in the receiving groove chamber.
[0011] Furthermore, a traction block is installed at one end of the traction guide rod, and the traction block is located in the annular traction groove. The traction guide rod is connected to the annular traction groove through the traction block.
[0012] The utility model has the following beneficial effects:
[0013] 1. The utility model discloses a mixer for processing taro balls, which is provided with a pounding piece and a pounding mechanism. Cassava flour is placed in advance inside the pounding piece, and the pounding of food materials and the synchronous mixing of cassava flour and food materials are achieved through the movement of the pounding piece, thereby ensuring that cassava flour can be mixed with food materials in small amounts and multiple times, alleviating the problem that cassava flour is easy to absorb moisture and agglomerate, improving the proportion and mixing effect of food materials, and facilitating the production of high-quality taro balls with excellent taste.
[0014] 2. By controlling the extension and retraction of the telescopic rod, the entire pounding device is activated, and the guide rod slides along the limit groove and the annular traction groove. The eccentric shaft enables the turntable to swing around its eccentric position, thereby driving the pounding rod to swing and float up and down in a small range, which helps to quickly disperse and refine the food particles, accelerates the pounding process, replaces manual pounding, and improves production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is the overall structure diagram of the mixing machine for processing taro balls of the present utility model;
[0016] Figure 2 This is the exploded view of the support bracket and the smashing mechanism of the present utility model;
[0017] Figure 3 This is the structural diagram of the smashing bowl of the present utility model;
[0018] Figure 4 This is the combined view of the smashing member and the smashing mechanism of the present utility model.
[0019] In the figure: 1. Smashing bowl; 11. Bowl body; 12. Base plate; 2. Smashing member; 21. Smashing tool; 211. Leakage hole; 22. Connecting member; 23. Smashing rod; 3. Smashing mechanism; 31. L-shaped mounting rod; 32. Limiting groove; 33. Turntable; 34. Annular traction groove; 35. Eccentric shaft; 36. Traction guide rod; 37. Connecting block; 38. Driving telescopic rod; 39. Connecting rod; 4. Support bracket; 41. Extended vertical rod; 42. Top end block; 43. Accommodating chamber. Specific embodiments
[0020] The present utility model will be further described below with reference to the accompanying drawings and embodiments.
[0021] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model.
[0022] Such as Figures 1 to 4As shown in the figure, this embodiment discloses a mixer for processing taro balls, which includes a mashing bowl 1, a supporting bracket 4, a mashing member 2 and a mashing mechanism 3. The mashing bowl 1 is placed on the supporting bracket 4, the mashing mechanism 3 is installed on the supporting bracket 4, the mashing member 2 is connected to the mashing mechanism 3, and the mashing mechanism 3 drives the mashing member 2 to mash the materials in the mashing bowl 1; the mashing member 2 includes a mashing tool 21, a connecting member 22 and a mashing rod 23. The mashing tool 21 is located inside the bowl body 11. The mashing tool 21 is in the shape of a concave disc, and the surface of the mashing tool 21 is evenly provided with leakage holes 211. The connecting member 22 is installed on the outer edge of the mashing tool 21. The top end of the mashing rod 23 is connected to the mashing mechanism 3, and the lower end of the mashing rod 23 is connected to the connecting member 22. The mashing tool 21 is used to hold tapioca starch, the mashing bowl 1 is used to hold taro, purple sweet potato, etc. The mashing mechanism 3 controls the mashing member 2 to mash the ingredients in the mashing bowl 1. By controlling the movement of the mashing member 2, the mashing mechanism 3 realizes the efficient mashing of the ingredients in the bowl body 11. Compared with the traditional manual mashing method, while ensuring the fineness of the taro balls, it not only improves the processing speed, but also reduces the labor cost and time consumption.
[0023] The mashing mechanism 3 includes an L-shaped mounting rod 31, a connecting rod 39, a turntable 33, and a driving telescopic rod 38. The driving telescopic rod 38 is installed on the supporting bracket 4. The L-shaped mounting rod 31 includes a first rod section and a second rod section that are perpendicular to each other. The first rod section is perpendicular to the connecting rod 39. A limiting groove 32 is provided on the first rod section. One end of the connecting rod 39 is connected to the driving telescopic rod 38, and the other end passes through the limiting groove 32 on the first rod section. The second rod section is parallel to the connecting rod 39 and is connected to the supporting bracket. The turntable 33 is located between the second rod section and the connecting rod 39. The turntable 33 is provided with an eccentric shaft 35. The eccentric shaft 35 is rotatably installed on the second rod section. The eccentric shaft 35 is perpendicular to the connecting rod 39. A ring-shaped traction groove 34 is provided on the side of the turntable 33 facing the connecting rod 39. A guiding rod 36 inserted into the ring-shaped traction groove 34 is installed on the connecting rod 39. The driving telescopic rod 38 reciprocates to drive the connecting rod 39 to move so that the guiding rod 36 slides in the ring-shaped traction groove 34, thereby driving the turntable 33. The top end of the mashing rod 23 is connected to the turntable 33. One end of the guiding rod 36 is installed with a traction block, and the traction block is located in the ring-shaped traction groove 34. The guiding rod 36 is docked with the ring-shaped traction groove 34 through the traction block.
[0024] The support bracket 4 includes a base plate 12, an extension rod 41 and a top end block 42. The extension rod 41 is located on one side of the mashing bowl 1. The lower end of the extension rod 41 is connected to the base plate 12. The top end block 42 is arranged at the top of the extension rod 41. The base plate 12 is used to place the mashing bowl 1. A groove for accommodating the base plate 12 is provided at the bottom of the mashing bowl 1. The base plate 12 and the groove cooperate to position the mashing bowl 1. The driving telescopic rod is a component with telescopic function such as a cylinder or an electric telescopic rod. A receiving slot chamber 43 is provided on the side surface of the top end block 42. The driving telescopic rod 38 is located in the receiving slot chamber 43. The traction guide rod 36 is connected to the driving telescopic rod 38 through a connecting block 37. The connecting block 37 performs stable reciprocating translation in the receiving slot chamber 43. The docking design of the extension rod 41 and the base plate 12 provides a stable support foundation for the entire mixer. This structure ensures the stability of the mashing bowl 1 when it is running at high speed.
[0025] The rotation plate 33 is allowed to rotate in the horizontal plane by the limitation of the L-shaped mounting rod 31. At the same time, the eccentric shaft 35 is connected to the L-shaped mounting rod 31, so that the masher 2 can reciprocate up and down. The rotation plate 33 is connected to the L-shaped mounting rod 31 through the eccentric shaft 35. A traction guide rod 36 is provided on the inner side of the limiting groove 32. A connecting block 37 is installed at one end of the traction guide rod 36. The connecting block 37 matches the accommodating groove chamber 43.
[0026] In this embodiment, the cooked sweet potatoes and taro are put into the bowl body 11, and the extension and retraction of the telescopic rod 38 is controlled and driven to pull the connecting block 37 to reciprocate along the accommodating groove chamber 43. At the same time, the pulling guide rod 36 is reciprocated along the limiting groove 32, and the pulling guide rod 36 slides along the annular traction groove 34. By utilizing the eccentric position of the eccentric shaft 35, the turntable 33 swings around the eccentric shaft 35 as the axis, so that the tamping rod 23 can float up and down when swinging in a small range, prompting the tamping tool 21 to squeeze and grind the sweet potatoes and taro inside the bowl body 11, and utilizing the leakage hole 211 to promote the rapid crushing of the food.
[0027] While the sweet potatoes and taro are being squeezed and ground, cassava flour is placed inside the pounding tool 21. As the pounding tool 21 moves, the cassava flour is evenly scattered downward along the leakage hole 211. As the pounding action occurs, the cassava flour is mixed with the food materials in small amounts multiple times, thereby completing the mixing of the cassava flour while the food materials are being pounded.
[0028] As described above, the embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention. Therefore, all other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the protection scope of the present invention.
Claims
1. A mixing machine for processing taro balls, characterized in that, The utility model comprises a pounding bowl, a supporting bracket, a pounding piece and a pounding mechanism. The pounding bowl is placed on the supporting bracket, the pounding mechanism is installed on the supporting bracket, the pounding piece is connected to the pounding mechanism, and the pounding mechanism drives the pounding piece to pound the material in the pounding bowl; the pounding piece comprises a pounding tool, a connecting piece and a pounding rod. The pounding tool is located inside the bowl body, the pounding tool is in a concave disc shape, leakage holes are evenly opened on the surface of the pounding tool, the connecting piece is installed on the outer edge of the pounding tool, the top end of the pounding rod is connected to the pounding mechanism, and the lower end of the pounding rod is connected to the connecting piece.
2. The mixing machine for processing taro balls according to claim 1, wherein The tamping mechanism includes an L-shaped mounting rod, a connecting rod, a turntable, and a driving telescopic rod. The driving telescopic rod is installed on a supporting bracket. The L-shaped mounting rod includes a first rod segment and a second rod segment that are perpendicular to each other. The first rod segment is perpendicular to the connecting rod. A limiting groove is provided on the first rod segment. One end of the connecting rod is connected to the driving telescopic rod and the other end passes through the limiting groove on the first rod segment. The second rod segment is parallel to the connecting rod and is connected to the supporting bracket. The turntable is located between the second rod segment and the connecting rod. The turntable is provided with an eccentric shaft, which is rotatably installed on the second rod segment. The eccentric shaft is perpendicular to the connecting rod. An annular traction groove is provided on the side of the turntable facing the connecting rod. A traction guide rod inserted into the annular traction groove is installed on the connecting rod. The driving telescopic rod reciprocates and extends to drive the connecting rod to move so that the traction guide rod slides in the annular traction groove, thereby driving the turntable. The top end of the tamping rod is connected to the turntable.
3. The mixing machine for processing taro balls according to claim 2, characterized in that, The support bracket includes a base plate, an extension pole and a top end block. The extension pole is located at one side of the mashing bowl, the lower end of the extension pole is connected to the base plate, the top end block is arranged at the top of the extension pole, and the base plate is used to place the mashing bowl.
4. The mixing machine for processing taro balls according to claim 3, characterized in that, The bottom of the mashing bowl is provided with a groove for accommodating the base plate, and the base plate and the groove cooperate to position the mashing bowl.
5. The mixing machine for processing taro balls according to claim 3, wherein, A receiving groove chamber is provided on the side surface of the top end block, the driving telescopic rod is located in the receiving groove chamber, the traction guide rod is connected to the driving telescopic rod through a connecting block, and the connecting block performs stable reciprocating translation in the receiving groove chamber.
6. The mixing machine for processing taro balls according to claim 2, wherein, A traction block is installed at one end of the traction guide rod, and the traction block is located in the annular traction groove. The traction guide rod is connected to the annular traction groove through the traction block.