Steamed vermicelli roll machine
By introducing multiple belt pressing modules and guide section designs into the rice noodle roll machine, the slippage problem between the conveyor belt and the drive roller is solved, achieving stable pressing and correction of the conveyor belt, and improving the operational stability and processing efficiency of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2026-03-06
AI Technical Summary
In existing rice noodle roll machines, slippage easily occurs between the conveyor belt and the drive roller, affecting the normal operation of the equipment, especially when the water vapor causes slippage during the heating process.
Multiple belt pressing modules are used, including elastic connectors, mounting bases and pressure rollers. The pressure rollers are located on the side of the conveyor belt away from the drive roller. The elastic force of the elastic connectors presses the conveyor belt tightly onto the drive roller. Combined with the guide section and convex strip design, it ensures that all areas of the conveyor belt in the width direction can be close to the drive roller.
It effectively reduces the probability of slippage between the conveyor belt and the drive roller, ensuring the normal operation of the rice noodle roll machine, reducing the offset and tilt of the conveyor belt in the width direction, and improving the stability and processing efficiency of the equipment.
Smart Images

Figure CN223968608U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of rice noodle roll production equipment, and in particular to a rice noodle roll machine. Background Technology
[0002] A rice noodle roll machine is a device that automatically produces rice noodle rolls. It includes a conveyor belt wound around a drive roller. Driven by the drive roller, the conveyor belt passes sequentially through a feeding module and a heating module. The feeding module feeds the raw materials for making rice noodle rolls onto the conveyor belt, and the heating module processes the raw materials to form rice noodle rolls. However, during the heating process, a large amount of water vapor is generated, making the surface of the conveyor belt slippery. Consequently, slippage easily occurs between the drive roller and the conveyor belt, thus affecting the normal operation of the rice noodle roll processing device.
[0003] In related technologies, rice noodle roll machines also include pressure rollers, which press the conveyor belt onto the drive rollers to reduce the probability of slippage between the drive rollers and the conveyor belt.
[0004] However, because it is difficult to keep the axis of the pressure roller parallel to the axis of the drive roller, the pressure roller can often only press one end of the conveyor belt in the width direction onto the drive roller. In this case, the other end of the conveyor belt in the width direction is prone to slipping with the drive roller, which causes the conveyor belt to tilt and affects the normal operation of the rice noodle machine. Utility Model Content
[0005] The purpose of this utility model is to at least solve one of the technical problems existing in the prior art. This utility model provides a rice noodle roll machine. In the rice noodle roll machine of this embodiment, the probability of the conveyor belt slipping is lower.
[0006] The rice noodle roll machine provided according to the present invention includes a machine body, a conveying module, and a pressing module. The conveying module is disposed on the machine body and includes a conveyor belt and a drive roller. The conveyor belt is wound around the drive roller, and the drive roller is used to drive the conveyor belt to convey rice noodle rolls. Multiple pressing modules are provided and are distributed at intervals along the extension direction of the drive roller. Each pressing module includes an elastic connector, a mounting base, and a pressure roller. The pressure roller is rotatably disposed on the mounting base and located on the side of the conveyor belt away from the drive roller. The elastic connector is connected to the mounting base and the machine body respectively. Under the elastic force of the elastic connector, the pressure roller can press the conveyor belt tightly onto the drive roller.
[0007] The rice noodle roll machine of this utility model has at least the following beneficial effects: In the rice noodle roll machine of this application, the pressing module includes an elastic connector, a mounting base, and a pressure roller. The pressure roller is rotatably mounted on the mounting base and located on the side of the conveyor belt away from the drive roller. The elastic connector is connected to the mounting base and the machine body respectively. Under the elastic force of the elastic connector, the pressure roller can press the conveyor belt tightly onto the drive roller. Since there are multiple pressing modules, and the multiple pressing modules are distributed at intervals along the extension direction of the drive roller, each pressing module can, under the action of its own elastic connector, enable the pressure roller to work independently with the drive roller to press the conveyor belt, so that all areas of the conveyor belt in its width direction can be close to the drive roller, thereby reducing the probability of the conveyor belt slipping.
[0008] According to the embodiment of the present invention, the rice noodle roll machine includes a mounting base, a mounting part, and a connecting part. The pressure roller is rotatably disposed on the mounting part. The hinge part is hinged to the machine body. The connecting part is located on the side of the mounting part away from the hinge part. The elastic connecting member is connected to the connecting part and the machine body respectively.
[0009] According to the embodiment of the present invention, the rice noodle roll machine includes a first guide section, a bearing section and a second guide section connected in sequence. Along the direction away from the bearing section, the cross-sectional size of the first guide section gradually decreases and the cross-sectional size of the second guide section gradually decreases.
[0010] According to the embodiment of the present invention, the rice noodle roll machine includes a first guide section, a bearing section and a second guide section connected in sequence. Along the direction away from the bearing section, the cross-sectional size of the first guide section gradually increases and the cross-sectional size of the second guide section gradually increases.
[0011] According to the embodiment of the present invention, the rice noodle roll machine has a first annular groove on the drive roller and a protrusion on the conveyor belt, the protrusion passing through the first annular groove.
[0012] According to the embodiment of the present invention, the rice noodle roll machine has two first annular grooves on the drive roller and two protrusions on the conveyor belt. The two protrusions are symmetrically distributed along the width direction of the conveyor belt and are respectively inserted into the two first annular grooves.
[0013] According to the embodiment of the present invention, the rice noodle roll machine has a first groove sidewall near the middle of the conveyor belt and a second groove sidewall away from the middle of the conveyor belt. The gap between the corresponding convex strip and the first groove sidewall has a first size, and the gap between the convex strip and the second groove sidewall has a second size. The first size is smaller than the second size.
[0014] According to the embodiment of the present invention, the rice noodle roll machine has a raised strip disposed between the drive roller and one of the pressure rollers.
[0015] According to the embodiment of the present invention, the conveyor belt is divided into a carrying part and a clamping part along the width direction of the conveyor belt. The carrying part is used to carry the rice noodle rolls, and the protrusions are provided on the clamping part. The surface of the clamping part is provided with an anti-slip layer.
[0016] According to the embodiment of the present invention, the conveying module of the rice noodle machine further includes a driven roller, on which a second annular groove is provided. The width of the second annular groove is greater than that of the first annular groove. The conveyor belt is wound on the drive roller, and the protrusions pass through the second annular groove.
[0017] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0019] Figure 1 This is a schematic diagram of the structure of a rice noodle roll machine according to an embodiment of the present invention;
[0020] Figure 2 for Figure 1 The diagram shows the structure of the pressing module of the rice noodle roll machine.
[0021] Figure 3 This is a schematic diagram of the conveyor belt and drive roller according to one embodiment of the present invention;
[0022] Figure 4 for Figure 3 A magnified view of the structure at point A in the image;
[0023] Figure 5 for Figure 1 The diagram shows the structure of the driven roller of the rice noodle roll machine.
[0024] Figure label:
[0025] Body 100;
[0026] Conveying module 200; conveyor belt 210; convex strip 211; drive roller 220; first annular groove 220a; first groove sidewall 220b; second groove sidewall 220c; first guide section 221; bearing section 222; second guide section 223; driven roller 230; second annular groove 231;
[0027] Pressure module 300; mounting base 310; hinge part 311; mounting part 312; connecting part 313; pressure roller 320. Detailed Implementation
[0028] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0029] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0030] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0031] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0032] The following is for reference. Figures 1 to 5 The rice noodle roll machine described in this application is described in detail.
[0033] refer to Figure 1 and Figure 2 According to an embodiment of the present invention, a rice noodle roll machine includes a body 100, a conveying module 200, and a pressing module 300. The conveying module 200 is disposed on the body 100 and includes a conveyor belt 210 and a drive roller 220. The conveyor belt 210 is wound around the drive roller 220, and the drive roller 220 is used to drive the conveyor belt 210 to convey rice noodle rolls. Multiple pressing modules 300 are provided and are distributed at intervals along the extension direction of the drive roller 220. Each pressing module 300 includes an elastic connector (not shown in the figure), a mounting base 310, and a pressure roller 320. The pressure roller 320 is rotatably disposed on the mounting base 310 and is located on the side of the conveyor belt 210 away from the drive roller 220. The elastic connector is connected to the mounting base 310 and the body 100 respectively. Under the elastic force of the elastic connector, the pressure roller 320 can press the conveyor belt 210 tightly onto the drive roller 220.
[0034] For example, such as Figure 1 As shown, the drive roller 220 extends in the left-right direction, the conveyor belt 210 is wound on the drive roller 220, and multiple belt pressing modules 300 are provided, which are distributed at intervals in the left-right direction.
[0035] Understandably, since the belt pressing module 300 includes an elastic connector, a mounting base 310, and a pressure roller 320, the pressure roller 320 is rotatably mounted on the mounting base 310 and located on the side of the conveyor belt 210 away from the drive roller 220. The elastic connector is connected to the mounting base 310 and the machine body 100 respectively. Therefore, under the elastic force of the elastic connector, the mounting base 310 can drive the pressure roller 320 to approach the drive roller 220, so that the pressure roller 320 can press the conveyor belt 210 tightly onto the drive roller 220, thereby reducing the probability of the conveyor belt 210 slipping relative to the drive roller 220.
[0036] Understandably, since there are multiple belt pressing modules 300, and these multiple belt pressing modules 300 are distributed at intervals along the extension direction of the drive roller 220, and each belt pressing module 300 has an independent elastic connector that provides the elastic force to keep the pressure roller 320 pressing the drive roller 220, the pressure roller 320 of each belt pressing module 300 can press the conveyor belt 210 onto the drive roller 220, thereby ensuring that all areas of the conveyor belt 210 in its width direction can be pressed onto the drive roller 220, thus reducing the probability of the conveyor belt 210 slipping relative to the drive roller 220.
[0037] It is understandable that since there are multiple pressing modules 300, and the multiple pressing modules 300 are distributed at intervals along the extension direction of the drive roller 220, the rice noodle rolls conveyed on the conveyor belt 210 can pass smoothly between two adjacent pressing modules 300, so as to reduce the impact of the pressing modules 300 on the rice noodle rolls on the conveyor belt 210.
[0038] In some embodiments of this utility model, reference is made to Figure 2 The mounting base 310 includes a hinge portion 311, a mounting portion 312, and a connecting portion 313. The pressure roller 320 is rotatably disposed on the mounting portion 312. The hinge portion 311 is hinged to the machine body 100. The connecting portion 313 is located on the side of the mounting portion 312 away from the hinge portion 311. The elastic connecting member is connected to the connecting portion 313 and the machine body 100 respectively.
[0039] Understandably, under the elastic force of the elastic connector, the connecting part 313 can rotate relative to the hinge part 311, so that the pressure roller 320 connected on the mounting part 312 gets close to the drive roller 220, so that the pressure roller 320 can cooperate with the drive roller 220 to press the conveyor belt 210.
[0040] It is understandable that, since the connecting part 313 is located on the side of the mounting part 312 away from the hinge part 311, and the elastic connecting member is connected to the connecting part 313 and the machine body 100 respectively, the mounting base 310 presents the form of a force-saving lever. Under the condition that the elastic force provided by the elastic connecting member to the connecting part 313 is certain, the pressure roller 320 can apply greater pressure to the conveyor belt 210.
[0041] In some embodiments of this utility model, the drive roller 220 includes a first guide section 221, a bearing section 222, and a second guide section 223 connected in sequence. Along the direction away from the bearing section 222, the cross-sectional size of the first guide section 221 gradually decreases, and the cross-sectional size of the second guide section 223 gradually decreases.
[0042] For example, such as Figure 3 As shown, the drive roller 220 includes a first guide section 221, a support section 222, and a second guide section 223 connected in sequence. The first guide section 221 is connected to the left end of the support section 222, and the second guide section 223 is connected to the right end of the support section 222. From right to left, the cross-sectional size of the first guide section 221 gradually decreases, and from left to right, the cross-sectional size of the second guide section 223 gradually decreases.
[0043] Understandably, after the conveyor belt 210 wraps around the drive roller 220, the conveyor belt 210 can respectively adhere to the first guide section 221, the bearing section 222, and the second guide section 223. When the conveyor belt 210 shifts to the left relative to the drive roller 220, the conveyor belt 210 presses against the circumferential surface of the second guide section 223, and the second guide section 223 provides a rightward reaction force to the conveyor belt 210 to achieve the rightward reset of the conveyor belt 210. When the conveyor belt 210 shifts to the right relative to the drive roller 220, the conveyor belt 210 presses against the circumferential surface of the first guide section 221, and the first guide section 221 provides a leftward reaction force to achieve the leftward reset of the conveyor belt 210. Furthermore, the arrangement of the first guide section 221 and the second guide section 223 can achieve positional correction of the conveyor belt 210 in its own width direction, thereby reducing the probability of the conveyor belt 210 shifting along its own width direction during operation.
[0044] In some other embodiments of the present invention, the drive roller 220 includes a first guide section 221, a bearing section 222, and a second guide section 223 connected in sequence. Along the direction away from the bearing section 222, the cross-sectional size of the first guide section 221 gradually increases, and the cross-sectional size of the second guide section 223 gradually increases.
[0045] It is understandable that, along the direction away from the load-bearing section 222, as the cross-sectional size of the first guide section 221 gradually increases and the cross-sectional size of the second guide section 223 gradually increases, the first guide section 221 and the second guide section 223 can cooperate to correct the conveyor belt 210 in the width direction, thereby reducing the probability of the conveyor belt 210 deviating in its own width direction.
[0046] In some embodiments of this utility model, reference is made to Figure 3 and Figure 4 The drive roller 220 is provided with a first annular groove 220a, and the conveyor belt 210 is provided with a protrusion 211, which passes through the first annular groove 220a.
[0047] It is understandable that, since the protrusion 211 passes through the first annular groove 220a, the groove wall of the first annular groove 220a can limit the conveyor belt 210 in the width direction of the conveyor belt 210, so as to reduce the probability of the conveyor belt 210 deviating in its own width direction.
[0048] In some embodiments of this utility model, reference is made to Figure 3 The drive roller 220 is provided with two first annular grooves 220a, and the conveyor belt 210 is provided with two protrusions 211. The two protrusions 211 are symmetrically distributed along the width direction of the conveyor belt 210, and the two protrusions 211 are respectively inserted into the two first annular grooves 220a.
[0049] It is understandable that by setting two first annular grooves 220a on the drive roller 220 and two protrusions 211 on the conveyor belt 210, the groove walls of the two first annular grooves 220a can respectively limit the two protrusions 211 in the width direction of the conveyor belt 210, so as to further reduce the probability of the conveyor belt 210 deviating in its own width direction.
[0050] It should be noted that, in addition to setting two, the number of the first annular grooves 220a on the drive roller 220 can also be set to three, four or even more depending on actual needs, and no specific limit is set here.
[0051] In some embodiments of this utility model, reference is made to Figure 4 The first annular groove 220a has a first groove sidewall 220b near the middle of the conveyor belt 210 and a second groove sidewall 220c away from the middle of the conveyor belt 210. The gap between the corresponding protrusion 211 and the first annular groove 220a, the gap between the protrusion 211 and the first groove sidewall 220b has a first size, and the gap between the protrusion 211 and the second groove sidewall 220c has a second size. The first size is smaller than the second size.
[0052] It should be noted that during the use of the rice noodle roll machine, the conveyor belt 210 needs to pass through the heating zone. Due to the effects of thermal expansion and contraction, the size of the conveyor belt 210 itself will increase. Correspondingly, the gap between the convex strip 211 and the first annular groove 220a, the gap between the convex strip 211 and the side wall 220b of the first groove has a first size, and the gap between the convex strip 211 and the side wall 220c of the second groove has a second size. Since the first size is smaller than the second size, after the size of the conveyor belt 210 itself increases, the first size can approach the second size, so that the conveyor belt 210 moves more smoothly during operation.
[0053] In some embodiments of this utility model, the protrusion 211 is disposed between the drive roller 220 and one of the pressure rollers 320.
[0054] It is understandable that since the protrusion 211 is located between the drive roller 220 and one of the pressure rollers 320, the protrusion 211 can be stably inserted into the annular groove under the pressing action of the pressure roller 320, thereby reducing the probability of the protrusion 211 leaving the annular groove and thus reducing the probability of the conveyor belt 210 deviating during operation.
[0055] In some embodiments of this utility model, the conveyor belt 210 is divided into a carrying part and a clamping part along the width direction of the conveyor belt 210. The carrying part is used to carry rice noodle rolls, and the protrusion 211 is provided on the clamping part. The surface of the clamping part is provided with an anti-slip layer.
[0056] It is understandable that, since the clamping part is located between the pressure roller 320 and the drive roller 220, and the surface of the clamping part is provided with an anti-slip layer, it can further increase the difficulty of slippage between the drive roller 220 and the conveyor belt 210.
[0057] In some embodiments of this utility model, reference is made to Figure 1 and Figure 5 The conveying module 200 also includes a driven roller 230, on which a second annular groove 231 is provided. The width of the second annular groove 231 is greater than the width of the first annular groove 220a. The conveyor belt 210 is wound on the drive roller 220, and the protrusion 211 passes through the second annular groove 231.
[0058] It should be noted that during the process of the drive roller 220 driving the conveyor belt 210 to move, the conveyor belt 210 will inevitably vibrate in its own width direction. When the drive roller 220 drives the conveyor belt 210 to vibrate, the vibration amplitude of the conveyor belt 210 at the driven roller 230 will increase. If the groove width of the second annular groove 231 is the same as the groove width of the first annular groove 220a, under this case, the protrusion 211 is easy to disengage from the second annular groove 231 under the drive of the conveyor belt 210, thereby causing the conveyor belt 210 to deviate.
[0059] In the rice noodle roll machine of this embodiment, since the width of the second annular groove 231 on the driven roller 230 is greater than the width of the first annular groove 220a, even if the conveyor belt 210 vibrates under the influence of the drive roller 220, the protrusion 211 can still be stably inserted into the second annular groove 231, thereby reducing the probability of the conveyor belt 210 leaving the second annular groove 231.
[0060] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A noodle making machine characterized by comprising: The application relates to a machine for producing and conveying rice noodles. The machine comprises a machine body and a conveying module arranged on the machine body. The conveying module comprises a conveying belt and a driving roller. The driving roller is used to drive the conveying belt to convey the rice noodles.
2. The machine according to claim 1, wherein The machine comprises a plurality of pressing belt modules.
3. The machine according to claim 1, wherein The pressing belt modules are arranged along the extension direction of the driving roller.
4. The machine according to claim 1, wherein The pressing belt module comprises an elastic connecting member, a mounting seat and a pressing wheel.
5. The machine according to claim 1, wherein The pressing wheel is rotatably arranged on the mounting seat and located on the side of the conveying belt away from the driving roller.
6. The machine according to claim 5, wherein The elastic connecting member is connected with the mounting seat and the machine body.
7. The machine according to claim 6, wherein The mounting seat comprises a hinge part, a mounting part and a connecting part.
8. A machine according to any one of claims 5 to 7, wherein, The pressing wheel is rotatably arranged on the mounting part.
9. The machine according to claim 8, wherein The hinge part is hingedly connected with the machine body.
10. The machine according to any one of claims 5 to 7, wherein, The connecting part is located on the side of the mounting part away from the hinge part. The elastic connecting member is connected with the connecting part and the machine body. The driving roller comprises a first guide section, a bearing section and a second guide section connected in sequence. The cross-sectional size of the first guide section gradually decreases in the direction away from the bearing section. The cross-sectional size of the second guide section gradually decreases in the direction away from the bearing section. The driving roller comprises a first guide section, a bearing section and a second guide section connected in sequence. The cross-sectional size of the first guide section gradually increases in the direction away from the bearing section. The cross-sectional size of the second guide section gradually increases in the direction away from the bearing section. The driving roller is provided with a first annular groove. The conveying belt is provided with a protruding strip. The protruding strip is arranged in the first annular groove. The driving roller is provided with two first annular grooves. The conveying belt is provided with two protruding strips. The two protruding strips are symmetrically arranged along the width direction of the conveying belt. The two protruding strips are arranged in the two first annular grooves respectively. The first annular groove has a first groove side wall close to the middle part of the conveying belt and a second groove side wall away from the middle part of the conveying belt. The gap between the protruding strip and the first groove side wall has a first size. The gap between the protruding strip and the second groove side wall has a second size. The first size is smaller than the second size. The protruding strip is arranged between the driving roller and one of the pressing wheels. The conveying belt is divided into a bearing part and a clamping part along the width direction of the conveying belt. The bearing part is used to bear the rice noodles. The clamping part is provided with the protruding strip. The surface of the clamping part is provided with an anti-skid layer. The conveying module further comprises a driven roller. The driven roller is provided with a second annular groove. The groove width of the second annular groove is larger than that of the first annular groove. The conveying belt is wound on the driving roller and the protruding strip is arranged in the second annular groove.