Quantitative dough kneading fermentation machine

The design of dual stirring rods working together and multi-dimensional composite motion trajectory solves the problem of uneven flour distribution caused by a single stirring roller, improves the dough mixing effect and efficiency of the dough mixer, and adapts to different dough textures.

CN120753289AActive Publication Date: 2025-10-10JIANGXI HAIHE FOOD CO LTD
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Patent Information

Application Number
CN202511229275.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-10-10
Estimated Expiration
2045-08-29

AI Technical Summary

Technical Problem

When kneading flour, existing equipment mostly uses a single stirring roller rotating method, which causes uneven flour kneading, takes a long time, and affects the efficiency of equipment use.

Method used

It adopts a dual-stirring rod collaborative operation mode, combined with a rotating component and an adjusting component to form a multi-dimensional composite motion trajectory, which enhances the kneading effect of the dough, and supports the dough through a vertical rod to prevent movement from affecting the stability of the dough.

Benefits of technology

It improves the uniformity and fineness of the dough, shortens the processing cycle, improves the dough kneading efficiency, and adapts to the dough processing capabilities of different working conditions.

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Abstract

The invention relates to the technical field of dough kneading and fermentation, and discloses a quantitative dough kneading and fermentation machine which comprises a base, a top rail on the rear side of the base is connected with a moving device, an outer wall rail of the moving device is connected with an operation panel, and the front end of the top of the moving device is movably connected with a stirring mechanism. The top of the base is provided with a dough kneading bin, the dough kneading bin is connected with the base through a driving device, the driving device at the bottom of the dough kneading bin can drive the dough kneading bin to rotate, and by arranging the rotating assembly, in the dough kneading operation process, the dough kneading operation is completed without depending on a single rotating action, and the dough kneading efficiency is greatly improved while the rotating motion is kept. According to the multi-dimensional dough kneading and stirring device, the multi-dimensional kneading and stirring effects on flour and dough can be enhanced through the cooperative action, the stress balance of all areas of the dough is effectively improved, the processing capacity of the device on the dough is enhanced, and the overall dough kneading quality and processing efficiency are optimized.
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Description

Technical Field

[0001] The invention relates to the technical field of dough kneading and fermentation, in particular to a quantitative dough kneading and fermentation machine. Background Art

[0002] A dough mixing and fermentation machine is a device that integrates dough mixing and fermentation functions. It is mainly used to mix flour with water and other ingredients to make dough, and realize the fermentation process of the dough through constant temperature control. It is a type of pasta processing machinery and is widely used in homes, hotels, bakeries and other scenarios.

[0003] The patent application with application number CN202322315287.4 discloses a quantitative dough fermentation machine, which relates to the field of dough fermentation technology; it solves the problems of existing quantitative dough fermentation machines, which can assist in the quantitative application of flour, cumbersome dough addition, and inconvenient cleaning of residual dough blocks; it includes an installed fermentation part, on which an auxiliary closing device is fixedly connected; the installed fermentation part is fixedly connected to a scraping wall and a face portion; the auxiliary closing device is fixedly connected to a storage device; a quantitative dough discharge device is installed on the storage device; a humidification auxiliary device is fixedly connected to the auxiliary closing device; the quantitative dough discharge device can realize rapid quantitative discharge of flour, ensure the accuracy of flour and dough, and the overall structure is simpler, ensuring the quality of dough. By adopting the set humidification auxiliary device, it can achieve auxiliary efficient humidification work to ensure the quality of dough.

[0004] When kneading flour, existing equipment mostly uses a single stirring roller to rotate, which easily leads to uneven kneading of the flour. It is not only time-consuming, but also has poor kneading effect, which in turn affects the efficiency of the equipment. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention provides a quantitative dough fermentation machine to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: a quantitative dough-making and fermenting machine, comprising a base, a top track on the rear side of the base being connected to a moving device, an outer wall track of the moving device being connected to an operation panel, a front end of the top of the moving device being movably connected to a stirring mechanism, a dough-making bin being provided on the top of the base, the dough-making bin being connected to the base via a driving device, wherein the driving device at the bottom of the dough-making bin can drive the dough-making bin to rotate; The stirring mechanism comprises: The outer shell has an inner wall on the rear side of the outer shell movably connected to the moving device, and the moving device is used to control the height of the entire stirring mechanism. The inner wall of the outer shell is rotatably connected to the central component through a bearing, and the inner wall of the outer shell is rotatably connected to the rotating component through a bearing. The inner wall height of the outer shell is connected to an adjustment component, and the top of the outer shell away from the moving device is fixedly connected to a motor, and the output end of the motor is fixedly connected to the central component. The motor is used as a power source to drive the central component and the rotating component to rotate. By setting up the rotating component and adopting the mode of collaborative operation of double stirring rods, the stirring coverage of the dough can be broadened, and the stirring dead angle can be effectively reduced, so that all areas of the dough can be fully kneaded; and then combined with the up and down reciprocating movement of the stirring rod, a multi-dimensional composite motion trajectory is formed, which further enhances the three-dimensional kneading and homogenization processing capabilities of the dough, improves the uniformity and fineness of the dough, and shortens the processing cycle and optimizes the overall dough kneading efficiency.

[0007] According to the above technical solution, a cover plate is fixedly connected to the side of the shell away from the mobile device, a vertical rod is fixedly connected to the bottom of the cover plate, and a feed pipe is fixedly connected to the top of the cover plate, wherein the feed pipe is used to assist in supporting the position of the dough. By setting a stirring mechanism, a fixed vertical rod is configured at the front end as a supporting structure, which can effectively limit the large-scale displacement of the dough and prevent the stability and effectiveness of the dough kneading operation from being affected by the random movement of the dough. At the same time, the vertical rod can also cooperate in the kneading action of the dough in the process of playing a supporting and positioning role, and cooperate with the stirring component, thereby further enhancing the dough kneading effect of the equipment and improving the overall processing efficiency and dough processing quality.

[0008] According to the above technical solution, a feeding box is fixedly connected to the top of the base away from the moving device. There are two feeding boxes, and the two feeding boxes are respectively arranged on both sides of the top of the base away from the moving device. The inner walls of the tops of the two feeding boxes are fixedly connected with input pipes, and the end of the input pipe away from the feeding box is fixedly connected to the feeding pipe, wherein the feeding box is used to store flour or water, and feeds it into the dough bin through the input pipe.

[0009] According to the above technical solution, the central component includes a circular plate, the top of the circular plate is fixedly connected to the output end of the motor, the bottom of the circular plate is fixedly connected to a first eccentric column, the bottom of the first eccentric column is fixedly connected to a first connecting plate, the bottom of the first connecting plate away from one end of the first eccentric column is fixedly connected to a second eccentric column, the bottom of the second eccentric column is fixedly connected to a first bevel gear, the bottom of the first bevel gear is rotatably connected to the outer shell through a bearing, and the outer walls of the first eccentric column and the second eccentric column are both provided with a device for transmission.

[0010] According to the technical scheme, the bottom of the inner wall of the shell is fixedly connected with a push rod, the top of the push rod is fixedly connected with a second hydraulic rod, one end of the second hydraulic rod away from the push rod is fixedly connected with an embedded plate, wherein the push rod can control the height of the second hydraulic rod and the embedded plate, the bottom of the inner wall of the shell is fixedly connected with a second connecting frame, and the top of the second connecting frame is fixedly connected with a first hydraulic rod.

[0011] According to the technical scheme, the adjusting assembly comprises a third connecting frame, the top of the third connecting frame is fixedly connected with the shell, the outer wall of the second hydraulic rod and the first hydraulic rod is fixedly connected with a flexible pipe, one end of the two flexible pipes away from the second hydraulic rod or the first hydraulic rod is fixedly connected with a third hydraulic rod, and the bottom of the third connecting frame is fixedly connected with the third hydraulic rod, wherein the hydraulic oil in the second hydraulic rod or the first hydraulic rod can be transported to the inside of the third hydraulic rod through the flexible pipe, by arranging the adjusting assembly, the activity mode of the two rotating assemblies can be flexibly adjusted according to the actual situation of the dough state, processing demand and the like during the dough mixing process, when the alternating operation mode is adopted, the two rotating assemblies can alternately carry out kneading and mixing operation, different areas in the dough mixing bin can be more comprehensively covered, the stirring dead angle is reduced, the force on each part of the dough is more balanced, the fine kneading effect and the homogenization processing capacity of the dough are effectively enhanced; when the synchronous movement mode is adopted, the two rotating assemblies cooperatively act, the superimposed kneading intensity can be formed, the concentrated kneading effect of the dough is strengthened, the dough gluten forming speed is accelerated, the dough mixing efficiency is improved, and the adjusting assembly is especially suitable for processing dough with large processing capacity or hard texture, thereby the adaptability of the equipment to different working conditions and the overall processing efficiency are enhanced.

[0012] According to the technical scheme, the inner wall of the shell is fixedly connected with a track, the bottom of the track is movably connected with a pressing plate, the movable end of the third hydraulic rod is fixedly connected with a second connecting plate, and one end of the second connecting plate away from the third hydraulic rod is fixedly connected with the pressing plate, wherein the change of the third hydraulic rod state can control the position of the pressing plate in the track.

[0013] According to the technical scheme, the rotating assembly comprises a hollow column, the outer wall of the hollow column is rotatably connected with the shell through a bearing, the outer wall of the top of the hollow column is fixedly connected with a second bevel gear, the second bevel gear is engaged with a first bevel gear, and the rotation of the first bevel gear can drive the whole rotating assembly to rotate, by arranging the rotating assembly, during the dough mixing operation, the dough mixing operation is no longer completed by relying on a single rotating action, but the reciprocating displacement in the up-down direction is synchronously realized while the rotating movement is maintained, and a composite movement track is formed, the cooperative action can strengthen the multidimensional kneading and stirring effect of the flour and the dough, effectively improve the balance of the force on each area of the dough, and thereby enhance the processing capacity of the equipment, optimize the overall dough mixing quality and processing efficiency.

[0014] According to the above technical solution, the inner wall of the hollow column is movably connected to a movable column, the top of the movable column is fixedly connected to a sliding plate, the outer wall of the sliding plate is movably connected to the hollow column, the outer wall of the movable column is sleeved with a spring, the top of the spring is fixedly connected to the sliding plate, the bottom of the spring is fixedly connected to the raised part of the inner wall of the hollow column, the bottom of the movable column is fixedly connected to a fixed column, the outer wall of the fixed column is sleeved with a sleeve, the sleeve is fixedly connected to the fixed column by bolts, and the bottom of the sleeve is fixedly connected to a spiral stirring rod.

[0015] According to the above technical solution, the inner wall of the top of the movable column is rotatably connected to the second connecting column through a bearing, the top of the second connecting column is fixedly connected to the third connecting column, the top of the third connecting column is provided with a slot, the inner wall of the top of the third connecting column is movably connected to the extrusion plate, and the inner wall of the top of the third connecting column is fixedly connected to the force-bearing plate.

[0016] Compared with the prior art, the present invention provides a quantitative dough fermentation machine, which relates to bio-industry technology and has the following beneficial effects: 1. By setting up a rotating component, the present invention no longer relies on a single rotating action to complete the dough kneading operation during the dough kneading process. Instead, while maintaining the rotational motion, it simultaneously realizes the reciprocating displacement in the up and down directions to form a compound motion trajectory. This coordinated action can enhance the multi-dimensional kneading and stirring effect of flour and dough, effectively improve the balance of force in various areas of the dough, thereby enhancing the equipment's dough processing ability and optimizing the overall dough kneading quality and processing efficiency.

[0017] 2. The present invention provides a stirring mechanism with a fixed vertical rod at the front end as a supporting structure, which can effectively limit the large-scale displacement of the dough and prevent the stability and effectiveness of the dough kneading operation from being affected by the random movement of the dough. At the same time, the vertical rod can also cooperate with the kneading action of the dough while playing a supporting and positioning role, and cooperate with the stirring component, thereby further enhancing the dough kneading effect of the equipment and improving the overall processing efficiency and dough processing quality.

[0018] 3. The present invention provides a rotating component and adopts a dual stirring rod collaborative operation mode, which can broaden the stirring coverage of the dough, effectively reduce the stirring dead angle, and ensure that all areas of the dough can be fully kneaded; combined with the up and down reciprocating movement of the stirring rod, a multi-dimensional composite motion trajectory is formed, further enhancing the three-dimensional kneading and homogenization processing capabilities of the dough, improving the uniformity and fineness of the dough, while shortening the processing cycle and optimizing the overall dough kneading efficiency.

[0019] 4. The present invention provides an adjustment component, which can flexibly adjust the activity mode of the two rotating components during the dough kneading process according to actual conditions such as dough state and processing requirements. When the alternating operation mode is adopted, the two rotating components can perform kneading operations alternately, which can more comprehensively cover different areas in the dough kneading bin, reduce mixing dead angles, make the forces on various parts of the dough more balanced, and effectively enhance the fine kneading effect and homogenization processing ability of the dough; when the synchronous movement mode is adopted, the two rotating components work together to form a superimposed kneading force, strengthen the concentrated kneading and pressing effect on the dough, accelerate the dough gluten formation speed, and improve the dough kneading efficiency, which is especially suitable for processing large amounts of dough or hard dough, thereby enhancing the adaptability of the equipment to different working conditions and the overall processing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings: Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the stirring mechanism of the present invention Figure 1 ; Figure 3 Schematic diagram of the stirring mechanism of the present invention Figure 2 ; Figure 4 Schematic diagram of the stirring mechanism of the present invention Figure 3 ; Figure 5 It is a schematic diagram of the movement of the stirring mechanism of the present invention; Figure 6 is a cross-sectional view of the stirring mechanism of the present invention; Figure 7 This is a diagram showing the internal structure of the stirring mechanism of the present invention; Figure 8 Schematic diagram of the central component of the present invention Figure 1 ; Figure 9 Schematic diagram of the central component of the present invention Figure 2 ; Figure 10 Schematic diagram of the central component of the present invention Figure 3 ; Figure 11 is a schematic diagram of the adjustment component of the present invention; Figure 12 This is a schematic diagram of the movement of the adjustment component of the present invention; Figure 13 Schematic diagram of the rotating assembly of the present invention Figure 1 ; Figure 14 Schematic diagram of the rotating assembly of the present invention Figure 2 ; Figure 15 Schematic diagram of the rotating assembly of the present invention Figure 3 ; Figure 16 It is a cross-sectional view of the rotating assembly of the present invention.

[0021] In the figure: 1. base; 101. moving device; 102. operation panel; 103. dough mixing bin; 104. feeding box; 105. input pipe; 2. stirring mechanism; 201. housing; 202. cover plate; 203. feeding pipe; 204. vertical rod; 205. motor; 21. center assembly; 211. circular plate; 212. circular hole; 213. first eccentric column; 214. first connecting plate; 215. second eccentric column; 216. first bevel gear; 217. first connecting frame; 218. sliding column; 219. chute plate; 2110. first connecting column; 2111. notch; 2112. second connecting frame; 2 113. First hydraulic rod; 2114. Push rod; 2115. Second hydraulic rod; 2116. Embedded plate; 2117. Flexible tube; 22. Adjustment assembly; 221. Third connecting frame; 222. Third hydraulic rod; 223. Track; 224. Extrusion plate; 225. Second connecting plate; 226. Distance measuring device; 23. Rotation assembly; 231. Hollow column; 232. Second bevel gear; 233. Movable column; 234. Sliding plate; 235. Spring; 236. Second connecting column; 237. Third connecting column; 238. Force plate; 239. Fixed column; 2310. Sleeve; 2311. Spiral stirring rod. DETAILED DESCRIPTION

[0022] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0023] Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, but are not to be construed as limiting the present invention.

[0024] In the present invention, unless otherwise expressly specified or limited, the terms "mounted," "connected," "connect," "fixed," etc. should be understood broadly. For example, they may refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0025] Example 1: See Figures 1-6 The present invention provides a technical solution: a quantitative dough-making and fermenting machine, comprising a base 1, a top track on the rear side of the base 1 connected to a moving device 101, and an outer wall track of the moving device 101 connected to an operating panel 102. When the existing equipment is performing dough-making operations, if only a single-lever stirring mode is used, the dough-making effect will be poor due to the limited stirring coverage and single force. Not only will the dough be easily unevenly mixed and the local raw materials not be fully mixed, but obvious dead corners will also be formed, and the gluten network will be incoherent and loose, thereby affecting the stability of subsequent processing. In order to solve this problem, , so a stirring mechanism 2 is provided, the front end of the top of the mobile device 101 is movably connected with the stirring mechanism 2, the top of the base 1 is provided with a dough bin 103, and the dough bin 103 is connected to the base 1 through a driving device, wherein the driving device at the bottom of the dough bin 103 can drive the dough bin 103 to rotate, and the top of the base 1 away from the mobile device 101 is fixedly connected with a feeding box 104, and the number of the feeding boxes 104 is two, and the two feeding boxes 104 are respectively provided on both sides of the top of the base 1 away from the mobile device 101, and the inner walls of the tops of the two feeding boxes 104 are fixedly connected It is connected to an input pipe 105, and one end of the input pipe 105 away from the feeding box 104 is fixedly connected to the feeding pipe 203, wherein the feeding box 104 is used to store flour or water, and feeds it into the dough mixing bin 103 through the input pipe 105. The base 1 serves as the basic supporting structure of the equipment and provides a stable installation platform for each component. When the equipment is started, the moving device 101 first adjusts the height of the stirring mechanism 2 so that the working parts at the front end enter the dough mixing bin 103. The dough mixing bin 103 is connected to the base 1 through the bottom driving device. During the dough mixing process, the driving device can drive the dough mixing bin 103 to move. Rotation. This rotational motion can evenly distribute the raw materials in the bin, avoid local accumulation, and provide a more balanced basis for subsequent stirring. The two feeding boxes 104 at one end of the base 1 away from the mobile device 101 respectively undertake the storage functions of flour and water. When working, according to the set quantitative parameters, the feeding box 104 can use the internal control structure (such as valves, metering pumps, etc.) to transport the preset amount of raw materials through the input pipe 105 to the feed pipe 203, and finally fall into the dough bin 103, realizing the quantitative addition of raw materials, reducing manual operation errors, and fermenting in the dough bin 103 after stirring.

[0026] The stirring mechanism 2 includes a shell 201, the inner wall of the rear side of the shell 201 is movably connected to the mobile device 101, the mobile device 101 is used to control the height of the stirring mechanism 2 as a whole, the inner wall of the shell 201 is rotatably connected to the central component 21 through a bearing, the inner wall of the shell 201 is rotatably connected to the rotating component 23 through a bearing, the inner wall of the shell 201 is height-adjustable The component 22, the top of the shell 201 away from the mobile device 101 is fixedly connected to the motor 205, the output end of the motor 205 is fixedly connected to the central component 21, the motor 205 is used as a power source to drive the central component 21 and the rotating component 23 to rotate, and the shell 201 is fixed on one side away from the mobile device 101. A cover plate 202 is fixedly connected to the bottom of the cover plate 202, and a vertical rod 204 is fixedly connected to the top of the cover plate 202, wherein the feed pipe 203 is used to assist in supporting the position of the dough. The outer shell 201 serves as a core support frame, and its rear side is movably connected to the mobile device 101. The mobile device 101 can adjust the overall height of the stirring mechanism 2 through a track. The central component 21, the rotating component 23, and the adjusting component 22 integrated inside the outer shell 201 are powered by the motor 205 on the top. The side of the outer shell 201 away from the mobile device 101 is closed by the cover plate 202. The vertical rod 204 at the bottom of the cover plate 202 can assist in stabilizing the position of the dough during the stirring process.

[0027] Example 2: Please refer to Figure 7-12, based on the first embodiment, the present invention provides a technical solution: in order to adjust the working state of the equipment, a central component 21 and an adjustment component 22 are set, and the central component 21 includes a circular plate 211, the top of the circular plate 211 is fixedly connected to the output end of the motor 205, the bottom of the circular plate 211 is fixedly connected to the first eccentric column 213, the bottom of the first eccentric column 213 is fixedly connected to the first connecting plate 214, the bottom of the first connecting plate 214 away from the first eccentric column 213 is fixedly connected to the second eccentric column 215, the bottom of the second eccentric column 215 is fixedly connected to the first bevel gear 216, and the bottom of the first bevel gear 216 is rotatably connected to the housing 201 through a bearing, wherein the outer walls of the first eccentric column 213 and the second eccentric column 215 are both provided with a transmission device, the bottom of the inner wall of the housing 201 is fixedly connected to a push rod 2114, the top of the push rod 2114 is fixedly connected to the second hydraulic rod 2115, and the second hydraulic rod 21 15 is fixedly connected to an embedded plate 2116 at one end away from the push rod 2114, wherein the push rod 2114 can control the height of the second hydraulic rod 2115 and the embedded plate 2116, and the bottom of the inner wall of the shell 201 is fixedly connected to a second connecting frame 2112, and the top of the second connecting frame 2112 is fixedly connected to the first hydraulic rod 2113. The motor 205 serves as a power source. When the motor 205 is started, it directly drives the circular plate 211 to rotate, and the first eccentric column 213 fixed at the bottom of the circular plate 211 rotates synchronously with the circular plate 211. Since the first eccentric column is eccentrically set, its rotational motion is transmitted to the second eccentric column 215 through the first connecting plate 214, driving the second eccentric column 215 to perform eccentric motion, and the first bevel gear 216 fixed at the bottom of the second eccentric column 215 rotates synchronously with it. The first bevel gear 216, as a key component of power transmission, transmits the rotational power to the subsequent actuator by meshing with the rotating assembly 23, driving the surface-related components to operate.

[0028] The inner wall of the housing 201 is fixedly connected to a first connecting frame 217, and a sliding column 218 is fixedly connected to the inner side of the first connecting frame 217. The number of sliding columns 218 is 4, which are respectively arranged on both sides of the first connecting frame 217. The outer walls of each two sliding columns 218 are movably connected to a slide plate 219. The inner wall of the upper slide plate 219 is movably connected to the first eccentric column 213, and the inner wall of the lower slide plate 219 is movably connected to the second eccentric column 215. The outer walls of the two slide plates 219 are fixedly connected to the first connecting column 211. 0, the end of the first connecting column 2110 away from the slide plate 219 is fixedly connected to the notch 2111, and the inner wall of the notch 2111 is movably connected to the embedded plate 2116, wherein circular holes 212 are opened on both sides of the outer wall of the circular plate 211, and the end of the track 223 close to the circular plate 211 is fixedly connected to the distance measuring device 226. Since the eccentric positions of the first eccentric column 213 and the second eccentric column 215 are different, when the two rotate with the circular plate 211, they will drive the corresponding slide plate 219 to produce different reciprocating sliding trajectories along the sliding column 218. When the equipment needs to adjust the movement rules of the two rotating components, the distance measuring device 226 on the track 223 detects that the circular hole 212 rotates to align with itself, and the motor 205 stops power input. At this time, the push rod 2114 pushes the second hydraulic rod 2115 to extend, driving the embedded plate 2116 to rise, so that the contact position state of the embedded plate 2116 and the notch 2111 changes. Due to the difference in the movement trajectories of the two slide plates 219 themselves, when the connection between the embedded plate 2116 and the notch 2111 changes, the power transmission relationship between it and the subsequent transmission components is changed, thereby realizing the switching of the movement states of the two sets of rotating components 23.

[0029] The adjustment assembly 22 includes a third connecting frame 221, the top of which is fixedly connected to the outer wall of the second hydraulic rod 2115 and the first hydraulic rod 2113, wherein the outer walls are fixedly connected to a flexible tube 2117, and the ends of the two flexible tubes 2117 away from the second hydraulic rod 2115 or the first hydraulic rod 2113 are fixedly connected to the third hydraulic rod 222, and the bottom of the third connecting frame 221 is fixedly connected to the third hydraulic rod 222, wherein the hydraulic oil in the second hydraulic rod 2115 or the first hydraulic rod 2113 can be transported to the interior of the third hydraulic rod 222 through the flexible tube 2117, the inner wall of the outer wall of the outer shell 201 is fixedly connected to a track 223, the bottom of the track 223 is movably connected to an extrusion plate 224, and the movable end of the third hydraulic rod 222 is fixedly connected to the second connecting plate 225. The second connecting plate 225 is fixedly connected to the extrusion plate 224 at one end away from the third hydraulic rod 222, wherein the change in the state of the third hydraulic rod 222 can control the position of the extrusion plate 224 on the track 223. When it is necessary to apply downward pressure to change the state of the rotating component 23, the power is transmitted through the hydraulic pressure, and the second hydraulic rod 2115 or the first hydraulic rod 2113 on the inner wall of the shell 201 moves through the slide plate 219, changing the volume of the internal hydraulic oil, and the hydraulic oil is transported to the inside of the third hydraulic rod 222 through the flexible tube 2117. The injection of hydraulic oil causes the movable end of the third hydraulic rod 222 to produce a downward extension movement, which is transmitted to the extrusion plate 224 through the second connecting plate 225. The extrusion plate 224 moves along the track 223, thereby applying downward pressure on the rotating component 23 and changing the state of the rotating component 23.

[0030] Example 3: Please refer to Figure 13-16On the basis of the second embodiment, the present invention provides a technical solution: the rotating assembly 23 includes a hollow column 231, the outer wall of the hollow column 231 is rotatably connected to the housing 201 through a bearing, the outer wall of the top of the hollow column 231 is fixedly connected to the second bevel gear 232, the second bevel gear 232 is meshed with the first bevel gear 216, and the rotation of the first bevel gear 216 can drive the rotating assembly 23 to rotate as a whole, the inner wall of the hollow column 231 is movably connected to the movable column 233, the top of the movable column 233 is fixedly connected to the sliding plate 234, the outer wall of the sliding plate 234 is movably connected to the hollow column 231, and the outer wall of the movable column 233 is provided with a spring 235, and the spring 235 is The top is fixedly connected to the sliding plate 234, the bottom of the spring 235 is fixedly connected to the raised part of the inner wall of the hollow column 231, the bottom of the movable column 233 is fixedly connected to the fixed column 239, the outer wall of the fixed column 239 is provided with a sleeve 2310, the sleeve 2310 is fixedly connected to the fixed column 239 by a bolt, the bottom of the sleeve 2310 is fixedly connected to the spiral stirring rod 2311, the inner wall of the top of the movable column 233 is rotatably connected to the second connecting column 236 through a bearing, the top of the second connecting column 236 is fixedly connected to the third connecting column 237, the top of the third connecting column 237 is provided with a notch, the inner wall of the top of the third connecting column 237 is movably connected to the extrusion plate 224, and the third connecting column 237 is fixedly connected to the extrusion plate 224. The inner wall of the top of the connecting column 237 is fixedly connected with a force plate 238. The rotational power of the rotating component 23 comes from the first bevel gear 216 of the central component 21, which drives the second bevel gear 232 to rotate through the gear meshing relationship, thereby driving the hollow column 231 to rotate around its own axis. The rotation of the hollow column 231 is transmitted to the internal movable column 233 through the movable connection between the inner wall and the sliding plate 234, so that the movable column 233 rotates synchronously with the hollow column 231, and the fixed column 239, sleeve 2310 and spiral stirring rod 2311 at the bottom of the movable column rotate synchronously therewith, thereby realizing the rotation and stirring action of the raw materials in the noodle bin. At the same time, when the extrusion plate 224 is driven by the third hydraulic rod 222 When moving downward along the track 223, downward pressure is applied to the force-bearing plate 238, and the pressure is transmitted to the movable column 233 through the third connecting column 237 and the second connecting column 236 in turn, pushing the movable column 233 to move downward. At the same time, the sliding plate 234 on the outer wall of the movable column 233 compresses the spring 235; when the extrusion plate 224 is reset upward, the elastic potential energy of the spring 235 is released, pushing the sliding plate 234 and the movable column 233 to reset upward, realizing the up and down reciprocating motion of the movable column 233, and the spiral stirring rod 2311, driven by the movable column 233, realizes rotational motion and up and down reciprocating motion at the same time, forming a compound motion trajectory, which greatly improves the kneading coverage and strength of the dough.

[0031] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0032] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A quantitative dough fermentation machine, comprising a base (1), a top track on the rear side of the base (1) connected to a moving device (101), an outer wall track of the moving device (101) connected to an operating panel (102), characterized in that: The front end of the top of the moving device (101) is movably connected to a stirring mechanism (2), and the top of the base (1) is provided with a dough mixing bin (103), and the dough mixing bin (103) is connected to the base (1) via a driving device, wherein the driving device at the bottom of the dough mixing bin (103) can drive the dough mixing bin (103) to rotate; The stirring mechanism (2) comprises: A housing (201) is provided, wherein the inner wall of the rear side of the housing (201) is movably connected to the moving device (101), the moving device (101) is used to control the overall height of the stirring mechanism (2), the inner wall of the housing (201) is rotatably connected to the central component (21) via a bearing, the inner wall of the housing (201) is rotatably connected to the rotating component (23) via a bearing, the inner wall of the housing (201) is fixedly connected to the adjusting component (22), the top of the housing (201) away from the moving device (101) is fixedly connected to the motor (205), the output end of the motor (205) is fixedly connected to the central component (21), and the motor (205) serves as a power source for driving the central component (21) and the rotating component (23) to rotate.

2. A quantitative dough fermentation machine according to claim 1, characterized in that: A cover plate (202) is fixedly connected to a side of the housing (201) away from the mobile device (101), a vertical rod (204) is fixedly connected to the bottom of the cover plate (202), and a feed pipe (203) is fixedly connected to the top of the cover plate (202), wherein the feed pipe (203) is used to assist in supporting the position of the dough.

3. A quantitative dough fermentation machine according to claim 2, characterized in that: A feeding box (104) is fixedly connected to the top of one end of the base (1) away from the moving device (101), and the number of the feeding boxes (104) is two. The two feeding boxes (104) are respectively arranged on both sides of the top of one end of the base (1) away from the moving device (101), and the inner walls of the tops of the two feeding boxes (104) are fixedly connected to input pipes (105). The end of the input pipe (105) away from the feeding box (104) is fixedly connected to the feeding pipe (203), wherein the feeding box (104) is used to store flour or water, and feeds it into the dough mixing bin (103) through the input pipe (105).

4. A quantitative dough fermentation machine according to claim 3, characterized in that: The central component (21) includes a circular plate (211), the top of the circular plate (211) is fixedly connected to the output end of the motor (205), the bottom of the circular plate (211) is fixedly connected to a first eccentric column (213), the bottom of the first eccentric column (213) is fixedly connected to a first connecting plate (214), the bottom of the first connecting plate (214) away from the first eccentric column (213) is fixedly connected to a second eccentric column (215), the bottom of the second eccentric column (215) is fixedly connected to a first bevel gear (216), the bottom of the first bevel gear (216) is rotatably connected to the housing (201) via a bearing, wherein the outer walls of the first eccentric column (213) and the second eccentric column (215) are both provided with a transmission device.

5. A quantitative dough fermentation machine according to claim 4, characterized in that: The bottom of the inner wall of the shell (201) is fixedly connected to a push rod (2114), the top of the push rod (2114) is fixedly connected to a second hydraulic rod (2115), and the end of the second hydraulic rod (2115) away from the push rod (2114) is fixedly connected to an embedded plate (2116), wherein the push rod (2114) can control the height of the second hydraulic rod (2115) and the embedded plate (2116), and the bottom of the inner wall of the shell (201) is fixedly connected to a second connecting frame (2112), and the top of the second connecting frame (2112) is fixedly connected to the first hydraulic rod (2113).

6. A quantitative dough fermentation machine according to claim 5, characterized in that: The adjustment assembly (22) includes a third connecting frame (221), the top of the third connecting frame (221) is fixedly connected to the outer wall of the second hydraulic rod (2115) and the first hydraulic rod (2113), wherein the outer walls are fixedly connected to a flexible tube (2117), and one end of the two flexible tubes (2117) away from the second hydraulic rod (2115) or the first hydraulic rod (2113) is fixedly connected to the third hydraulic rod (222), and the bottom of the third connecting frame (221) is fixedly connected to the third hydraulic rod (222), wherein the hydraulic oil in the second hydraulic rod (2115) or the first hydraulic rod (2113) can be transported to the interior of the third hydraulic rod (222) through the flexible tube (2117).

7. A quantitative dough fermentation machine according to claim 6, characterized in that: The inner wall of the housing (201) is fixedly connected to a track (223), the bottom of the track (223) is movably connected to an extrusion plate (224), the movable end of the third hydraulic rod (222) is fixedly connected to a second connecting plate (225), and one end of the second connecting plate (225) away from the third hydraulic rod (222) is fixedly connected to the extrusion plate (224), wherein the change in the state of the third hydraulic rod (222) can control the position of the extrusion plate (224) on the track (223).

8. The quantitative dough fermentation machine according to claim 7, characterized in that: The rotating assembly (23) comprises a hollow column (231), the outer wall of the hollow column (231) being rotatably connected to the housing (201) via a bearing, the outer wall of the top of the hollow column (231) being fixedly connected to a second bevel gear (232), the second bevel gear (232) being meshed with the first bevel gear (216), and the rotation of the first bevel gear (216) can drive the rotating assembly (23) to rotate as a whole.

9. A quantitative dough fermentation machine according to claim 8, characterized in that: The inner wall of the hollow column (231) is movably connected to a movable column (233), the top of the movable column (233) is fixedly connected to a sliding plate (234), the outer wall of the sliding plate (234) is movably connected to the hollow column (231), the outer wall of the movable column (233) is sleeved with a spring (235), the top of the spring (235) is fixedly connected to the sliding plate (234), the bottom of the spring (235) is fixedly connected to a raised portion of the inner wall of the hollow column (231), the bottom of the movable column (233) is fixedly connected to a fixed column (239), the outer wall of the fixed column (239) is sleeved with a sleeve (2310), the sleeve (2310) is fixedly connected to the fixed column (239) by a bolt, and the bottom of the sleeve (2310) is fixedly connected to a spiral stirring rod (2311).

10. The quantitative dough fermentation machine according to claim 9, characterized in that: The inner wall of the top of the movable column (233) is rotatably connected to the second connecting column (236) through a bearing, the top of the second connecting column (236) is fixedly connected to the third connecting column (237), the top of the third connecting column (237) is provided with a notch, the inner wall of the top of the third connecting column (237) is movably connected to the extrusion plate (224), and the inner wall of the top of the third connecting column (237) is fixedly connected to the force-bearing plate (238).

Citation Information

Patent Citations

  • Quantitative dough kneading fermentation machine

    CN220607161U

  • Method and device for processing material in at least two conical vessels

    CH339800A

  • Noodle processing device

    CN107581204A

  • Dough mixer

    CN212065519U

  • Quantitative dough kneading fermentation device

    CN219961825U