Sugar fermentation device with wireless power supply and temperature measurement functions
By using a wireless power supply temperature measurement device in the furnace head of the marshmallow machine, self-generating power supply is achieved using magnetic induction components and synchronously rotating coil components, the stability and safety problems caused by external power supply in the prior art are solved, and the operation stability and safety of the marshmallow machine are improved.
Patent Information
- Application Number
- CN202510409863.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2025-05-27
AI Technical Summary
The furnace head of the existing marshmallow machine relies on external power supply, which causes battery aging or carbon brush wear, affecting the stability and safety of temperature detection.
The sugar-generating device that uses wireless power supply and temperature measurement can be used to realize self-generating power supply through magnetic induction components and synchronously rotating coil components, and power is supplied to the temperature transmission simulator and thermocouple to avoid dependence on external power supplies.
It realizes stable power supply detection of the furnace head, improves the operating stability and safety of the marshmallow machine, and reduces maintenance costs.
Smart Images

Figure CN120049585A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of marshmallow equipment, and specifically, it is a sugar dispensing device with wireless power supply and temperature measurement. Background Art
[0002] In the prior art, the burners of semi-automatic or fully automatic marshmallow machines need to detect the temperature in real time and transmit the temperature information to the background for monitoring.
[0003] However, the burners of the marshmallow machines in the prior art rely on external power supply, such as wireless charging batteries or carbon brush power supply. The above two power supply methods have the following defects:
[0004] First, due to the limitation of battery life, frequent replacement will increase the maintenance cost. Moreover, during the operation of the marshmallow machine, the surrounding environment is relatively high temperature, and the battery is prone to aging in the high temperature environment, resulting in inaccurate stable detection of the burner and abnormal operation of the burner.
[0005] Second, the stable power supply of the carbon brush depends on the quality of the carbon brush. The long-term contact between the carbon brush and the slip ring is prone to wear, resulting in power supply interruption or voltage fluctuation, and abnormal operation of the burner.
[0006] In view of the above problems, there is an urgent need for a burner solution that does not require external power supply, is stable and safe. Summary of the Invention
[0007] In order to overcome the defects existing in the prior art, the present invention provides a sugar dispensing device with wireless power supply and temperature measurement, aiming to solve the problems in the above prior art.
[0008] The technical solution adopted by the present invention to solve its technical problems is: a sugar dispensing device with wireless power supply and temperature measurement, including a mounting plate and a burner main shaft. A motor support plate is installed on the mounting plate, and a magnetic induction component is fixedly installed on the motor support plate. A coil component, a temperature emission simulator and a thermocouple that rotate synchronously are arranged on the burner main shaft. The coil component and the magnetic induction component are distributed vertically.
[0009] The beneficial effect of the present invention is that the coil component rotates synchronously with the burner main shaft, so that the coil component cuts the magnetic induction lines of the magnetic induction component to generate electricity, enabling the temperature emission simulator to be powered and operated through the coil component. Thus, the thermocouple can be stably powered and detected during the operation of the device, without relying on external power supply, improving the operation stability of the marshmallow machine. Moreover, without the participation of external power supply, the device is safer.
[0010] Further, the magnetic induction component is fixedly installed on the upper side of one end of the motor support plate. The furnace head main shaft passes through the magnetic induction component. A coil component is fixedly installed on the outer wall of the furnace head main shaft. Above the coil component, there is a temperature emission simulator installed on the furnace head main shaft. The thermocouple is located inside the furnace head main shaft. The coil component is electrically connected to the temperature emission simulator, and the electrical connection is electrically connected to the thermocouple.
[0011] After adopting the above further structure, the structure of the entire sugar-making device is more compact. During the rotation process, the coil component can stably cut the magnetic induction lines of the magnetic induction component, so that the generated current powers the temperature emission simulator for the thermocouple to perform real-time monitoring.
[0012] Further, the magnetic induction component includes a magnet mounting seat. The magnet mounting seat is fixedly installed on the motor support plate in a suspended manner. A plurality of magnets are evenly distributed on the magnet mounting seat. The coil component is located within the magnetic induction line region of the plurality of magnets.
[0013] After adopting the above further structure, the coil component rotates within the magnetic induction line region formed by the plurality of magnets, so that current can be generated for power supply. After the device stops, no current will be generated either, to achieve the effect of real-time detection synchronized with the device.
[0014] Further, both ends of the magnet mounting seat are installed on the motor support plate through support columns, so that the magnet mounting seat is in a non-contact state with the motor support plate.
[0015] After adopting the above further structure, the magnet mounting seat is in a suspended state, with faster heat dissipation, preventing the magnet mounting seat from accumulating too much heat and resulting in magnetic failure or weakening.
[0016] Further, the coil component includes a wireless power generation pcb board. The furnace head main shaft passes through the wireless power generation pcb board. The wireless power generation pcb board is fixedly connected to the furnace head main shaft. A plurality of coils are arranged on the wireless power generation pcb board. The wireless power generation pcb board is electrically connected to the temperature emission simulator.
[0017] After adopting the above further structure, by rotating a plurality of coils within the magnetic induction line region, current is generated, and then the wireless power generation pcb board powers the temperature emission simulator. The structure is compact and stable.
[0018] Further, a thermocouple connection pipe is fixedly installed inside the furnace head main shaft. A thermocouple wire groove is formed on the outer wall of the thermocouple connection pipe. The thermocouple is fixedly installed in the thermocouple wire groove.
[0019] After adopting the above further structure, the thermocouple can rotate synchronously with the furnace head main shaft, and the thermocouple can be wired through the thermocouple wire groove, with a more stable structure, preventing the connection wire of the thermocouple from loosening due to whipping.
[0020] Further, an electromagnetic heating coil is installed at the upper end of the furnace head main shaft, a sugar-making furnace head is arranged at the upper end of the electromagnetic heating coil, and the thermocouple wire groove extends into the sugar-making furnace head, so that the thermocouple is located in the sugar-making furnace head.
[0021] After adopting the above further structure, the sugar-making furnace head is heated by the electromagnetic heating coil, so that the sugar-making furnace head can melt and spin the sugar material.
[0022] Further, a furnace head motor is installed at the other end of the motor support plate, a driving wheel is installed on the motor shaft of the furnace head motor, a driven wheel mounting seat is arranged at the lower end of the furnace head main shaft, a driven wheel is installed on the driven wheel mounting seat, and the driving wheel and the driven wheel are connected by a conveyor belt.
[0023] After adopting the above further structure, the driving wheel is driven by the furnace head motor, and then the driven wheel is driven to rotate by the conveyor belt, so that the furnace head main shaft rotates, facilitating the rotation and spinning of the sugar-making furnace head.
[0024] Further, a sugar delivery pipe is inserted into the furnace head main shaft, the outer wall of the sugar delivery pipe does not contact the inner wall of the furnace head main shaft, the upper end of the sugar delivery pipe is communicated with the sugar-making furnace head, and the lower end is communicated with a sugar pipe seat.
[0025] After adopting the above further structure, the sugar delivery pipe is stationary relative to the furnace head main shaft, enabling the sugar delivery pipe to better convey sugar material to the sugar-making furnace head. Brief Description of the Drawings
[0026] Figure 1 It is an exploded structural schematic diagram of the sugar-making device of the present invention.
[0027] Figure 2 It is a three-dimensional structural schematic diagram of the magnetic induction component, furnace head main shaft, coil component and temperature emission simulator of the present invention.
[0028] Figure 3 It is an exploded structural schematic diagram of the magnetic induction component, furnace head main shaft, coil component and temperature emission simulator of the present invention.
[0029] Figure 4 It is an exploded structural schematic diagram of the magnetic induction component, coil component and temperature emission simulator of the present invention.
[0030] In the figure: mounting plate 1, motor support plate 2, magnetic induction component 3, furnace head main shaft 4, coil component 5, temperature emission simulator 6, thermocouple 7, driving wheel 8, conveyor belt 9, furnace head motor 10, electromagnetic heating coil 11, sugar-making furnace head 12, magnet mounting seat 13, magnet 14, wireless power generation pcb board 15, coil 16, thermocouple wire groove 17, sugar delivery pipe 18, sugar dropping pipe seat 19, thermocouple connecting pipe 20, driven wheel mounting seat 21. Detailed implementation manners
[0031] The following further describes the detailed implementation manners of the present invention in conjunction with the accompanying drawings. It should be noted here that the description of these implementation manners is for helping to understand the present invention, but does not constitute a limitation to the present invention. In addition, the technical features involved in the various implementation manners of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0032] Combined with Figures 1 to 4 A sugar delivery device for wireless power supply and temperature measurement as shown, includes a mounting plate 1 and a furnace head main shaft 4. A motor support plate 2 is mounted on the mounting plate 1, and a magnetic induction component 3 is fixedly mounted on the motor support plate 2. A coil component 5, a temperature emission simulator 6 and a thermocouple 7 which rotate synchronously are arranged on the furnace head main shaft 4. The coil component 5 and the magnetic induction component 3 are distributed vertically. In this embodiment, the coil component 5 rotates synchronously with the furnace head main shaft 4, so that the coil component 5 cuts the magnetic induction lines of the magnetic induction component 3 to generate electricity, enabling the temperature emission simulator 6 to be powered and operated through the coil component 5, so that the thermocouple 7 can be stably powered and detected during the operation of the device, without relying on an external power source, improving the operation stability of the cotton candy machine, and without the participation of an external power source, making the device safer.
[0033] Specifically, the magnetic induction component 3 of this embodiment is fixedly mounted on the upper side of one end of the motor support plate 2. The furnace head main shaft 4 passes through the magnetic induction component 3. A coil component 5 is fixedly mounted on the outer wall of the furnace head main shaft 4. A temperature emission simulator 6 mounted on the furnace head main shaft 4 is arranged above the coil component 5. The thermocouple 7 is located inside the furnace head main shaft 4. The coil component 5 is electrically connected to the temperature emission simulator 6, and is electrically connected to the thermocouple 7; the structure of the entire sugar delivery device is more compact. During the rotation process, the coil component 5 can stably cut the magnetic induction lines of the magnetic induction component 3, so that the generated current powers the temperature emission simulator 6, facilitating the thermocouple 7 to perform real-time monitoring.
[0034] The magnetic induction component 3 of this embodiment includes a magnet mounting base 13, which is suspended and fixedly installed on the motor support plate 2. A plurality of magnets 14 are evenly distributed on the magnet mounting base 13, and the coil assembly 5 is located within the magnetic induction line area of the plurality of magnets 14; the coil assembly 5 rotates within the magnetic induction line area formed by the plurality of magnets 14, so as to generate current for power supply. After the device stops, no current will be generated either, so as to achieve the effect of real-time detection synchronously with the device.
[0035] It should be noted that both ends of the magnet mounting base 13 are installed on the motor support plate 2 through support columns, so that the magnet mounting base 13 and the motor support plate 2 are in a non-contact state; the magnet mounting base 13 is in a suspended state, with faster heat dissipation, preventing the magnet mounting base 13 from accumulating too much heat and causing magnetic failure or weakening.
[0036] The coil assembly 5 of this embodiment includes a wireless power generation pcb board 15. The furnace head main shaft 4 passes through the wireless power generation pcb board 15, and the wireless power generation pcb board 15 is fixedly connected to the furnace head main shaft 4. A plurality of coils 16 are arranged on the wireless power generation pcb board 15, and the wireless power generation pcb board 15 is electrically connected to the temperature emission simulator 6; by rotating the plurality of coils 16 within the magnetic induction line area, after generating current, the temperature emission simulator 6 is powered by the wireless power generation pcb board 16, with a compact and stable structure.
[0037] The power generation principle of the coil 16 in the present invention is based on the principle of generating electricity by cutting magnetic induction lines, that is, based on Faraday's law of electromagnetic induction. Its core is that when the conductor of the coil 16 moves in the magnetic field, the free charges inside the conductor are affected by the magnetic field force, resulting in charge separation, thus generating electromotive force voltage.
[0038] In this embodiment, a thermocouple connecting pipe 20 is fixedly installed inside the furnace head main shaft 4. A thermocouple wire groove 17 is opened on the outer wall of the thermocouple connecting pipe 20, and the thermocouple 7 is fixedly installed in the thermocouple wire groove 17; the thermocouple 7 can rotate synchronously with the furnace head main shaft 4, and the thermocouple 7 can be wired through the thermocouple wire groove 17, with a more stable structure, preventing the connection wire of the thermocouple 7 from loosening due to whipping.
[0039] Specifically, an electromagnetic heating coil 11 is installed at the upper end of the furnace head main shaft 4. A sugar-making furnace head 12 is arranged at the upper end of the electromagnetic heating coil 11, and the thermocouple wire groove 17 extends into the sugar-making furnace head 12, so that the thermocouple 7 is located inside the sugar-making furnace head 12; the sugar-making furnace head 12 is heated by the electromagnetic heating coil 11, so that the sugar-making furnace head 12 can melt and spin the sugar material.
[0040] At the other end of the motor support plate 2 of this embodiment, a burner motor 10 is installed. A driving wheel 8 is installed on the motor shaft of the burner motor 10. At the lower end of the main burner shaft 4, a driven wheel mounting seat 21 is provided. A driven wheel is installed on the driven wheel mounting seat 21. The driving wheel 8 and the driven wheel are connected by a conveyor belt 9. The burner motor 10 drives the driving wheel 8, so as to drive the driven wheel to rotate through the conveyor belt 9, causing the main burner shaft 4 to rotate, so as to facilitate the rotation and wire throwing of the sugar-making burner 12.
[0041] It should be noted that a sugar delivery pipe 18 is passed through the main burner shaft 4. The outer wall of the sugar delivery pipe 18 does not contact the inner wall of the main burner shaft 4. The upper end of the sugar delivery pipe 18 is communicated with the sugar-making burner 12, and a sugar discharge pipe seat 19 is communicated and arranged at the lower end. The sugar delivery pipe 18 is stationary relative to the main burner shaft 4, so that the sugar delivery pipe 18 can better convey sugar material to the sugar-making burner 12.
[0042] When making marshmallows in this embodiment, the burner motor 10 is started. The burner motor 10 drives the sugar-making burner 12 to rotate through the conveyor belt 9. At the same time, the electromagnetic heating coil 11 is started to heat the sugar-making burner 12. Sugar material is conveyed through the sugar delivery pipe 18. Under the magnetic induction heating effect of the electromagnetic heating coil 11, the sugar material melts into syrup in the inner cavity of the sugar-making burner 12, and is thrown out in the form of "sugar filaments" under the rotational centrifugal force of the sugar-making burner 12. The sugar filaments can be wound with a paper stick. During the whole production process, the thermocouple 7 will detect the temperature of the sugar-making burner 12 in real time, and feed the measured temperature data back to the temperature emission simulator 6. The temperature emission simulator 6 converts it into an analog quantity and transmits it to the control system of the marshmallow machine. The control system adjusts the electromagnetic heating coil 11 in real time according to the feedback data. Due to the use of rotating strong magnetic coupling wireless power generation, the mechanical energy is converted into electrical energy to continuously supply power to the wireless power generation pcb board 15 and the thermocouple 7, ensuring that the temperature emission simulator 6 has continuous electrical energy, ensuring its continuous operation, and preventing the troubles caused by the need to disassemble the burner to replace the battery due to battery life, battery power exhaustion, and unstable carbon brush quality.
[0043] The above has described the embodiments of the present invention in detail with reference to the accompanying drawings, but the present invention is not limited to the described embodiments. For those skilled in the art, without departing from the principle and spirit of the present invention, various changes, modifications, substitutions and variations to these embodiments still fall within the protection scope of the present invention.
Claims
1. A wireless power supply and temperature measurement sugar-making device, comprising a mounting plate (1) and a furnace head spindle (4), characterized in that: A motor support plate (2) is mounted on the mounting plate (1), a magnetic induction component (3) is fixedly mounted on the motor support plate (2), a synchronously rotating coil component (5), a temperature emission simulator (6) and a thermocouple (7) are arranged on the furnace head main shaft (4), and the coil component (5) and the magnetic induction component (3) are distributed up and down.
2. A wireless power supply and temperature measurement candy making device according to claim 1, characterized in that: The magnetic induction component (3) is fixedly mounted on the upper side of one end of the motor support plate (2); the furnace head main shaft (4) is inserted into the magnetic induction component (3); a coil component (5) is fixedly mounted on the outer wall of the furnace head main shaft (4); a temperature emission simulator (6) mounted on the furnace head main shaft (4) is arranged above the coil component (5); the thermocouple (7) is located in the furnace head main shaft (4); the coil component (5) is electrically connected to the temperature emission simulator (6); and the electrical connection is electrically connected to the thermocouple (7).
3. A wireless power supply and temperature measurement candy making device according to claim 2, characterized in that: The magnetic induction component (3) comprises a magnet mounting seat (13), the magnet mounting seat (13) being suspended and fixedly mounted on the motor support plate (2), a plurality of magnets (14) being evenly distributed on the magnet mounting seat (13), and the coil component (5) being located within the magnetic flux lines region of the plurality of magnets (14).
4. A wireless power supply and temperature measurement candy making device according to claim 3, characterized in that: Both ends of the magnet mounting seat (13) are mounted on the motor support plate (2) via support columns, so that the magnet mounting seat (13) and the motor support plate (2) are in a non-contact state.
5. The wireless power supply and temperature measurement candy making device according to claim 3, characterized in that: The coil assembly (5) comprises a wireless power generation PCB (15), the furnace head main shaft (4) is inserted into the wireless power generation PCB (15), the wireless power generation PCB (15) is fixedly connected to the furnace head main shaft (4), a plurality of coils (16) are arranged on the wireless power generation PCB (15), and the wireless power generation PCB (15) is electrically connected to a temperature emission simulator (6).
6. A wireless power supply and temperature measurement candy making device according to claim 2, characterized in that: A thermocouple connecting tube (20) is fixedly installed in the furnace head main shaft (4), a thermocouple wire groove (17) is provided on the outer wall of the thermocouple connecting tube (20), and the thermocouple (7) is fixedly installed in the thermocouple wire groove (17).
7. A wireless power supply and temperature measurement candy making device according to claim 6, characterized in that: An electromagnetic heating coil (11) is installed at the upper end of the furnace head main shaft (4), and a sugar-making furnace head (12) is arranged at the upper end of the electromagnetic heating coil (11). The thermocouple wire slot (17) extends into the sugar-making furnace head (12), so that the thermocouple (7) is located inside the sugar-making furnace head (12).
8. The wireless power supply and temperature measurement candy making device according to claim 7, characterized in that: A furnace head motor (10) is mounted on the other end of the motor support plate (2); a driving wheel (8) is mounted on the motor shaft of the furnace head motor (10); a driven wheel mounting seat (21) is provided at the lower end of the furnace head main shaft (4); a driven wheel is mounted on the driven wheel mounting seat (21); and the driving wheel (8) and the driven wheel are connected via a conveyor belt (9).
9. The wireless power supply and temperature measurement candy making device according to claim 8, characterized in that: A sugar delivery tube (18) is provided inside the furnace head main shaft (4), the outer wall of the sugar delivery tube (18) does not contact the inner wall of the furnace head main shaft (4), the upper end of the sugar delivery tube (18) is connected to the sugar making furnace head (12), and the lower end is connected to a lower sugar tube seat (19).