A novel low-sugar cooking appliance
By combining a heating water inlet device, a drainage device, and a control device, the low-sugar new type of steamer achieves automated liquid control, solving the problems of tedious and error-prone manual operation, improving ease of operation and cooking effect, and enhancing the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGSHAN OUDI ELECTRIC APPLIANCE CO LTD
- Filing Date
- 2025-08-16
- Publication Date
- 2026-07-31
AI Technical Summary
Existing low-sugar steamers require manual water addition and drainage during the cooking process, which is cumbersome, prone to errors, and affects the cooking results and user experience.
By combining a heating water inlet device, a drainage device, and a control device, the injection and discharge of liquid are automatically controlled. The heating water inlet device delivers hot fluid into the outer shell of the pot, the drainage device discharges the liquid, and the control device precisely regulates the timing and amount of liquid injection and discharge.
The new low-sugar rice cooker has improved ease of operation, avoided human error, ensured the cooking effect and taste of rice, and enhanced the user experience.
Smart Images

Figure CN224572547U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of kitchen appliances, specifically relating to a novel low-sugar steamer. Background Technology
[0002] Rice is one of the most common staple foods in people's diets and is a major source of energy and sugar. With the popularization of healthy eating concepts and the need for dietary control for diabetic patients and those with high blood sugar, low-sugar new-type steamers, which can reduce the starch content of rice, are very popular among consumers.
[0003] Patent document CN214905847U discloses a novel low-sugar steamer, which includes a rice cooker body, a heating base located at the bottom of the rice cooker body, an inner pot detachably disposed within the rice cooker body, a steamer detachably fitted onto the inner pot, and a lid hinged to the top of the rice cooker body for covering the rice cooker body. The bottom and sides of the steamer are respectively provided with drainage holes and water inlets. A snap-fit structure is provided between the steamer and the top of the inner pot. The height of the steamer is h, and the height of the inner pot is H, where h < H. The problem is that the novel low-sugar steamer requires different settings during the cooking process depending on the different cooking stages. Adding or draining water in the above-mentioned low-sugar steamers requires manual operation, making the cooking process cumbersome and complex. This reduces the ease of use and leads to a poor user experience. Furthermore, insufficient or excessive water addition, or delayed drainage, directly affects the cooking and low-sugar treatment of the rice, resulting in poor cooking performance and a further negative user experience.
[0004] Therefore, further improvements are needed. Utility Model Content
[0005] The purpose of this utility model is to overcome at least one of the shortcomings of the prior art and provide a new type of low-sugar steamer, which can control the injection or discharge of liquid into or from the outer shell of the pot through a control device, thereby improving the convenience of cooking operation of the new type of low-sugar steamer and enhancing people's user experience of the new type of low-sugar steamer.
[0006] To achieve the above objectives, the technical solution provided by this utility model embodiment is as follows: A novel low-sugar cooking appliance includes an outer shell, and the novel low-sugar cooking appliance further includes components disposed within the outer shell: The outer shell of the pot and the inner pot are disposed inside the outer shell, and the inner pot is disposed inside the outer shell; A water heating inlet device, which is connected to the inside of the outer shell of the pot and is used to supply hot fluid into the outer shell of the pot; A drainage device, which is connected to the inside of the outer shell of the pot and is used to drain the liquid inside the outer shell of the pot; A control device, which is electrically connected to a heating water inlet device and a drainage device.
[0007] The outer shell is provided with a first mounting plate and a second mounting plate arranged horizontally. The first mounting plate and the second mounting plate are arranged opposite to each other on the left and right sides of the inner cavity of the outer shell. The outer shell of the pot is fixed to the outer shell through the first mounting plate and the second mounting plate. The outer shell of the pot is provided with a liquid inlet and a liquid outlet, both of which are located on the bottom surface of the outer shell. The liquid inlet is connected to the heating water inlet device, and the liquid outlet is connected to the drainage device.
[0008] The heating water inlet device includes an inlet connector for connecting to an external clean water source, an inlet pump for sending liquid into the outer shell of the pot, a liquid heater for heating the outer shell of the pot and causing the liquid at its bottom to be heated and vaporized into high-temperature steam, and a hose assembly. The inlet connector is located on the rear wall of the outer shell, the inlet pump is located in the inner cavity of the outer shell and is mounted on the first mounting plate, the liquid heater is located on the bottom surface of the outer shell of the pot, and the hose assembly is made of high-temperature resistant material and is located between the inlet connector and the inlet pump, and / or between the inlet pump and the liquid heater.
[0009] A first mounting structure is provided between the water inlet pump and the first mounting plate, and the water inlet pump is fixedly mounted on the first mounting plate through the first mounting structure. The first mounting structure includes a locking post disposed on the water inlet pump and a locking hole disposed on the first mounting plate corresponding to the locking post. The locking post is located on the bottom end of the housing of the water inlet pump, and the locking hole penetrates the first mounting plate along the height direction. When the water inlet pump is placed on the bottom surface of the first mounting plate, the locking post extends into the locking hole and the two are locked together, so that the water inlet pump is fixedly mounted on the first mounting plate.
[0010] The drainage device includes a drain connector for connecting to an external sewage source, a drain valve assembly for drawing liquid out of the outer shell of the pot, and a hose component. The drain connector is located on the rear wall of the outer shell, the drain valve assembly is located in the inner cavity of the outer shell and is mounted on the second mounting plate, and the hose component is made of high-temperature resistant material and is located between the drain valve assembly and the drain connector.
[0011] The drainage device also includes a clamp component, and a second mounting structure is provided between the clamp component and the second mounting plate. The clamp component is fixedly mounted on the second mounting plate through the second mounting structure, and the drain valve assembly is fixedly mounted on the second mounting plate through the clamp component. The second mounting structure includes a mounting through hole on the clamp component, a mounting screw hole on the second mounting plate corresponding to the mounting through hole, and a fastening component that mates with the mounting screw hole. The mounting through hole penetrates the clamp component along the height direction, and the mounting screw hole is located on the bottom surface of the second mounting plate. When the drain valve assembly is placed on the second mounting plate, the bottom surface of the drain valve assembly abuts against the second mounting plate, the clamp component abuts against the top surface of the drain valve assembly, and the fastening component passes through the mounting through hole and is screwed to the mounting screw hole, so that the drain valve assembly is fixedly mounted on the second mounting plate.
[0012] The drain valve assembly includes a straight-through water valve, a drain solenoid valve for controlling the opening and closing of the straight-through water valve, and a connecting joint for connecting the hose component. The horizontal projection of the straight-through water valve is T-shaped. The drain solenoid valve is located at the lower control end of the straight-through water valve. There are two connecting joints, which are respectively located at the front and rear connection ends of the straight-through water valve.
[0013] The outer shell of the pot is also equipped with a water inlet, a drain anti-clogging nozzle, and a dry-boil prevention thermostat. The water inlet is located on the liquid inlet, the drain anti-clogging nozzle is located on the liquid outlet, and the dry-boil prevention thermostat is located on the bottom surface of the outer shell of the pot. The water inlet has several water inlet holes arranged circumferentially on the side wall of the water inlet. The drain anti-clogging nozzle has several drain holes evenly distributed on the top surface of the drain anti-clogging nozzle and / or arranged circumferentially on the side wall of the drain anti-clogging nozzle.
[0014] When the inner pot is placed inside the outer shell of the pot, there is a gap A between the outer wall of the inner pot and the inner wall of the outer shell, where 1cm≤A≤3cm. There is also a gap B between the bottom surface of the outer pot and the bottom surface of the inner shell, where 10cm≤B≤15cm.
[0015] The control device includes a control panel, a circuit board, a power connector, and a power switch. The control panel is located on the front side wall of the housing and its control end extends out of the housing. The circuit board is located in the inner cavity of the housing. The power connector and the power switch are both located on the rear side wall of the housing. The power connector and the power switch are electrically connected to the circuit board. The control panel is electrically connected to the circuit board, the heating water inlet device, and the drainage device.
[0016] The beneficial effects of this utility model are as follows: This invention features a heating water inlet device, a drainage device, and a control device. The heating water inlet device and the drainage device are electrically connected to the control device. The heating water inlet device heats the purified water and injects hot fluid into the outer shell of the cooker. The drainage device drains the liquid from the outer shell of the cooker. The control device precisely regulates the timing and amount of liquid injection and drainage, eliminating the need for manual intervention. This solves the problem of cumbersome manual operation in low-sugar cookers, improves the ease of operation, and enhances the user experience.
[0017] The low-sugar steamer, employing the above technical solutions, solves the problem of errors that easily occur during manual operation. It avoids situations such as insufficient or excessive water addition or untimely drainage during the cooking process. Furthermore, during steaming, purified water is first injected and heated to a certain temperature (drainage initiated and continued until completion), then purified water is added midway through the process with controlled flow. The purified water heats up upon contact with the high temperature and instantly vaporizes into high-temperature steam, ensuring the rice is thoroughly penetrated and expanded by the high-temperature steam. This improves the cooking effect and the low-sugar treatment. Subsequent delayed heat drying dehydration makes the rice softer and more elastic, resulting in a better taste. This ensures the cooking effect of the low-sugar steamer, allowing the food cooked using it to suit the tastes of different groups and further enhancing the user experience. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of a novel low-sugar cooking appliance according to an embodiment of the present invention.
[0019] Figure 2 This is a cross-sectional view of a novel low-sugar cooking appliance according to an embodiment of the present invention.
[0020] Figure 3 This is an exploded view of a novel low-sugar cooking appliance according to an embodiment of the present invention.
[0021] Figure 4 This is an exploded view of a novel low-sugar cooking appliance according to an embodiment of the present invention.
[0022] Figure 5 This is an exploded view of the outer shell of an embodiment of the present invention.
[0023] Figure 6 This is an exploded view of the outer shell of an embodiment of the present invention.
[0024] Figure 7 This is an exploded view of the outer shell of a pot according to an embodiment of the present invention.
[0025] Figure 8 This is an exploded view of a drain valve assembly according to an embodiment of the present invention.
[0026] Figure 9 This is a schematic diagram of a heating water inlet device and a drainage device installed on the outer casing according to an embodiment of the present invention. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some embodiments of this utility model, but not all embodiments.
[0028] See Figure 1-9 This novel low-sugar steamer includes an outer shell 1, a pot shell 2, a pot inner 3, a heating water inlet device, a drainage device, and a control device. In this embodiment, the outer shell 1 is provided with a first mounting plate 11 and a second mounting plate 12 arranged horizontally, and a bottom plate 7 covering the bottom opening of the outer shell 1. The first mounting plate 11 is located on the left side of the inner cavity of the outer shell 1, and the second mounting plate 12 is located on the right side of the inner cavity of the outer shell 1. The pot shell 2 is embedded in the inner cavity of the outer shell 1 from top to bottom and is fixed to the outer shell 1 with the first mounting plate 11 and the second mounting plate 12 respectively by a screw and nut fastening structure, so as to achieve a stable installation of the pot shell 2 in the outer shell 1 and prevent the pot shell 2 from shaking during use. The pot shell 2 is provided with a liquid inlet 22 and a liquid outlet 23, both of which are provided through the bottom surface of the pot shell 2. The liquid inlet 22 and the heating water inlet device are connected by a high-temperature resistant edible... A high-temperature resistant food-grade silicone tube connects the liquid outlet 23 to the drainage device. The inner pot 3 is equipped with a lid 6, which covers the opening of the inner pot 3. The heating water inlet device is located on the outer shell 1 and on the left side of the inner cavity of the outer shell 1, with its inlet end connected to an external clean water source to inject pure water into the outer shell 2. The drainage device is located on the outer shell 1 and on the right side of the inner cavity of the outer shell 1, with its outlet end connected to an external sewage source to discharge waste liquid from the outer shell 2. The control device is located on the outer shell 1 and is electrically connected to the heating water inlet device and the drainage device respectively. The timing and amount of liquid injection and drainage can be precisely controlled through the control device, realizing liquid injection and drainage without relying on manual intervention. This solves the problem of cumbersome manual operation of the low-sugar new type of steam cooker, improves the ease of operation of the low-sugar new type of steam cooker, and improves people's user experience of the low-sugar new type of steam cooker.
[0029] By adopting the above technical solutions, the low-sugar new type of steamer solves the problem of easy errors in manual operation, avoids insufficient or excessive water addition or untimely drainage during the cooking process, ensures the cooking effect and low-sugar treatment effect of rice, and further improves people's user experience of the low-sugar new type of steamer.
[0030] This low-sugar steamer can simultaneously perform steaming, boiling, and baking operations via a control device, and each operation can be adjusted independently. Specifically: Boiling: Pure water is directly injected into the outer shell 2 of the cooker and the main control is turned on, causing the liquid heater 33 to heat the pure water in the outer shell 2, enabling the low-sugar steamer to cook hot pot, porridge, soup, and broth; Automatic steaming of low-sugar rice: The water flow rate, boiling power, and baking power of this low-sugar steamer can all be adjusted independently; When an appropriate amount of pure water is injected into the outer shell 2, the liquid heater 33 is controlled to heat the pure water... The system features intelligent band temperature control. The rice grains are repeatedly subjected to high and low temperature purified water, resulting in more thorough sugar decomposition and more even heating. A siphon effect allows the starch and sugars released from the rice to drain from the inner pot 3. When water automatically fills the bottom of the outer pot 2 and is heated to a high temperature by the liquid heater 33, purified water is sprayed out through the liquid outlet 23 while simultaneously draining. The purified water is instantly vaporized upon contact with the high temperature at the bottom of the outer pot 2, generating high-temperature, high-pressure steam. By controlling the flow rate of purified water entering the outer pot 2, different levels of steam can be generated to achieve the desired low-sugar cooking effect. For cooking needs, the generated high-temperature steam can decompose the sugar in the rice, loosen the rice grains, and absorb water, making the rice grains expand and soften, ensuring the cooking effect of the low-sugar new type of steamer. Moreover, the high-temperature steam can impact the inner wall of the outer shell 2 and the inner pot 3, reducing the adhesion of rice grains to the outer shell 2 and the inner pot 3, making it easier to clean. After the liquid in the outer shell 2 is drained, the control device intelligently controls the bottom of the outer shell 2 to heat up, generating high temperature at the bottom of the outer shell 2 to heat-dry the food. High-temperature dehydration can tighten the surface moisture of the rice grains, making the rice full and chewy. The food tastes better; Steaming: Automatic water filling and high-temperature heating through liquid heater 33, pure water is sprayed out through liquid outlet 23 while drainage is turned on or off. The pure water is instantly vaporized when it encounters the high-temperature heating bottom of the pot shell 2, thus generating high-temperature and high-pressure steam that can process food, such as steaming seafood, steaming meat, steaming pastries, and high-temperature sterilization; Hot drying and dehydration: High-temperature heating through liquid heater 33 can achieve dehydration and hot drying of heat-resistant and non-deformable items such as cups, saucers, chopsticks, and spoons; This product is multifunctional, space-saving, cost-effective, and easy to use.
[0031] Furthermore, in this embodiment, the heating water inlet device includes a water inlet connector 31, a water inlet pump 32, a liquid heater 33, and a hose component. Specifically, the water inlet connector 31 is preferably made of metal, and there is preferably one of it, which is detachably installed on the rear wall of the outer shell 1. Through the water inlet connector 31, the water inlet of the low-sugar new type of cooker can be stably connected to an external purified water source, so as to achieve a stable water supply to the low-sugar new type of cooker. The water inlet pump 32 is preferably an electric pump and is located in the inner cavity of the outer shell 1 and is fixed to the first mounting plate 11 through the first mounting structure to provide power to ensure that purified water can be continuously pumped into the outer shell 2 of the cooker. The mounting structure includes corresponding locking posts 321 and locking holes 111. The locking posts 321 are mounted on the water inlet pump 32 and located at the bottom end of the pump's housing. The locking holes 111 are located on the first mounting plate 11 and extend through it along its height. When the water inlet pump 32 is placed on the bottom surface of the first mounting plate 11, the locking posts 321 extend into the locking holes 111, and the two engage with each other, thus fixing the water inlet pump 32 to the first mounting plate 11. This engagement structure allows for installation or disassembly without complex tools, and the tight fit between the locking posts 321 and the locking holes 111 effectively prevents the water inlet pump 32 from loosening during operation, thus enhancing the performance of the water inlet pump 32. For installation stability, the liquid heater 33 is preferably a steam composite heating element disposed on the outer bottom surface of the pot shell 2 and integrally formed with the pot shell 2. The heating end of the liquid heater 33 abuts against the outer bottom surface of the pot shell 2 to heat the liquid inside the pot shell 2. The liquid heater 33 is provided with a water channel. When purified water passes through the water channel, it is heated by the liquid heater 33 and injected into the pot shell 2 through the liquid outlet 23. Upon heating, it instantly vaporizes to generate high-temperature steam, enabling the liquid heater 33 to generate high-temperature steam to cook the food inside the pot 3. Alternatively, when purified water passes through the water channel, it is preheated by the liquid heater 33, which can improve the liquid heating efficiency. The heating efficiency of the heater 33 for the liquid inside the outer shell 2 of the pot is improved. The hose component is preferably made of high-temperature resistant food-grade silicone material. It is set between the water inlet connector 31 and the water pump 32 to connect the two, and between the water pump 32 and the liquid heater 21 to connect the two. The high-temperature resistant material solves the problem of aging and damage caused by long-term contact with high-temperature liquid in traditional pipelines. The water inlet circuit of the low-sugar new type of cooker is formed by the cooperation of the water inlet connector 31, the water pump 32, the liquid heater 33 and the hose component, which ensures that the hot fluid can be continuously supplied into the low-sugar new type of cooker. This is understandable to those skilled in the art.
[0032] Furthermore, in this embodiment, the drainage device includes a drain connector 41, a drain valve assembly 42, a hose component, and a clamp component 43. Specifically, the drain connector 41 is preferably made of metal, and there is preferably one of it, which is detachably installed on the rear wall of the outer casing 1. The drain connector 41 enables a stable connection between the drainage path of the low-sugar novel cooker and the external sewage source, ensuring the directional discharge of sewage from the low-sugar novel cooker. The drain valve assembly 42 is located in the inner cavity of the outer casing 1 and is fixed to the second mounting plate 12 by the clamp component 43 to control the drainage path. To ensure the timely discharge of wastewater from the outer shell 2, the clamping components 43 are fixed to the second mounting plate 12 via a second mounting structure. Preferably, there are two clamping components 43 spaced apart along the length of the drain valve assembly 42. The second mounting structure includes mounting through holes 431, mounting screw holes 121, and fastening components. The mounting through holes 431 are located on the clamping components 43 and penetrate the clamping components 43 along the height direction. Preferably, there are two mounting through holes 431 on each clamping component 43, spaced apart along the length of the clamping component 43. The mounting screw holes 121 are located on the second mounting plate 12 via a second mounting structure. The second mounting plate 12 has four mounting screw holes 121, which are located on the bottom surface of the second mounting plate 12 and correspond to the mounting through holes 431 of the two clamping components 43. When the drain valve assembly 42 is placed on the second mounting plate 12, the bottom surface of the drain valve assembly 42 abuts against the second mounting plate 12, the clamping components 43 abut against the top surface of the drain valve assembly 42, and the fastening components pass through the mounting through holes 431 and are screwed into the mounting screw holes 121, so that the drain valve assembly 42 is fixed on the second mounting plate 12. The second mounting structure forms a stable structure with fixed upper and lower parts, which can effectively prevent... The drain valve assembly 42 is designed to prevent loosening during operation, thus enhancing its installation stability. The hose component is preferably made of high-temperature resistant food-grade silicone material and is positioned between the drain valve assembly 42 and the drain connector 41 to connect the two. The high-temperature resistant material solves the problem of aging and damage caused by long-term contact with high-temperature liquids in traditional pipelines. The combination of the drain connector 41, the drain valve assembly 42, and the hose component forms the drainage path of the low-sugar novel cooker, ensuring that wastewater can be discharged from the low-sugar novel cooker. This is understandable to those skilled in the art.
[0033] Furthermore, the drain valve assembly 42 includes a straight-through water valve 421, a drain solenoid valve 422, and a connecting joint 423. Specifically, in this embodiment, the horizontal projection of the straight-through water valve 421 is T-shaped. The drain solenoid valve 422 is preferably one and is fixed to the lower connection end of the straight-through water valve 421 by a threaded structure. The control device controls the drain solenoid valve 422 to achieve precise control of the opening and closing of the drain water path, thereby improving the accuracy and flexibility of the drain control. The connecting joint 423 is preferably two and is fixed to the front connection end and the rear connection end of the straight-through water valve 421 by a threaded structure, respectively, ensuring a tight connection between the drain valve assembly 42 and the hose component. This is understood by those skilled in the art.
[0034] Furthermore, the outer shell 2 of the pot is also equipped with a water inlet 24, a drain anti-clogging nozzle 25, and an anti-dry-burning thermostat 26. Specifically, in this embodiment, the water inlet 24 is fixed to the liquid inlet 22 by a threaded structure, which effectively prevents food residue from settling and accumulating on the liquid inlet 22, ensuring smooth water flow in the low-sugar new type of steam cooker. The water inlet 24 is provided with several water inlet holes 241, which are evenly spaced in a circumferential manner on the side wall of the water inlet 24, so that pure water can be evenly input into the outer shell 2 of the pot.
[0035] The drain anti-clogging nozzle 25 is fixed to the liquid outlet 23 by a threaded structure, effectively preventing food residue from settling and accumulating on the liquid outlet 23, ensuring smooth drainage of the low-sugar new type of steam cooker. The drain anti-clogging nozzle 25 is provided with drain holes 251, a total of twenty-one holes 251. Five drain holes 251 are evenly distributed on the top surface of the drain anti-clogging nozzle 25, and sixteen drain holes 251 are evenly spaced circumferentially on the side wall of the drain anti-clogging nozzle 25. The drain holes 251 can increase the flow area of the liquid, ensuring that waste liquid can be discharged smoothly. The anti-dry-burning thermostat 26 is fixed to the bottom surface of the outer shell 2 of the pot shell by a fastening structure. The anti-dry-burning thermostat 26 can detect the temperature of the outer shell 2 of the pot shell in real time, preventing the temperature of the outer shell 2 of the pot shell 2 from exceeding the set value, ensuring the normal operation of the low-sugar new type of steam cooker, which can be understood by those skilled in the art.
[0036] Furthermore, in this embodiment, when the inner pot 3 is placed inside the outer shell 2, a gap A is left between the outer wall of the inner pot 3 and the inner wall of the outer shell 2, and a gap B is left between the outer bottom surface of the inner pot 3 and the inner bottom surface of the outer shell 2. Specifically, A is preferably 2 cm and B is preferably 13 cm. Through the above technical solutions, a reasonable gap is maintained between the inner pot 3 and the outer shell 2, providing sufficient physical space for the separation of rice and water. This allows the starch and sugar released by the food during cooking to easily flow out with the liquid and be discharged outside the inner pot 3, which can improve the low-sugar cooking effect of the low-sugar new steamer to a certain extent. This is understandable to those skilled in the art.
[0037] Furthermore, in this embodiment, the control device includes a control panel 51, a circuit board 52, a power connector 53, and a power switch 54. Specifically, the control panel 51 is fixed to the front wall of the outer casing 1 via a screw and threaded hole structure, with its control end extending out of the outer casing 1, to facilitate operation and control of the low-sugar new type of steam cooker. The circuit board 52 is located in the inner cavity of the outer casing 1 via a screw and threaded hole structure and is fixed to the first mounting plate 11, to facilitate precise control of the coordinated work between various components. The power connector 53 is preferably a power socket and is fixed to the rear wall of the outer casing 1 via a screw and threaded hole structure. The power switch 54 is preferably a push-button switch and is fixed to the rear wall of the outer casing 1 via a screw and threaded hole structure. The power connector 53 and the power switch 54 are electrically connected to the circuit board 52, respectively. The control panel 51 is electrically connected to the circuit board 52, the water inlet pump 32 of the heating water inlet device, and the drain solenoid valve 422 of the drain device, respectively. Through the above technical solutions, integrated control of the heating water inlet device and the drain device is realized, achieving intelligent control during cooking of the low-sugar new type of steam cooker and improving the user experience.
[0038] The above describes the preferred embodiments of this utility model, illustrating and describing its basic principles, main features, and advantages. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made without departing from the spirit and scope of this utility model, and all such changes and modifications fall within the scope of protection of this utility model as defined by the appended claims and their equivalents.
Claims
1. A novel low-sugar cooking appliance, comprising an outer shell (1), characterized in that, The low-sugar novel cooking appliance also includes components all disposed in the outer shell (1): The outer shell (2) and the inner pot (3) are provided inside the outer shell (1) and the inner pot (3) are provided inside the outer shell (2); A heating water inlet device is connected to the inside of the outer shell (2) of the pot and is used to supply hot fluid into the outer shell (2); A drainage device, which is connected to the inside of the outer shell (2) of the pot and is used to drain the liquid inside the outer shell (2); A control device, which is electrically connected to a heating water inlet device and a drainage device.
2. The low-sugar novel digester according to claim 1, characterized by, The outer shell (1) is provided with a first mounting plate (11) and a second mounting plate (12) arranged horizontally. The first mounting plate (11) and the second mounting plate (12) are arranged opposite to each other on the left and right sides of the inner cavity of the outer shell (1). The outer shell (2) of the pot is fixedly mounted on the outer shell (1) through the first mounting plate (11) and the second mounting plate (12). The outer shell (2) of the pot is provided with a liquid inlet (22) and a liquid outlet (23). The liquid inlet (22) and the liquid outlet (23) are both located on the bottom surface of the outer shell (2). The liquid inlet (22) is connected to the heating water inlet device, and the liquid outlet (23) is connected to the drainage device.
3. The low-sugar novel digester according to claim 2, characterized by, The heating water inlet device includes a water inlet connector (31) for connecting to an external clean water source, a water inlet pump (32) for sending liquid into the outer shell (2) of the pot, a liquid heater (33) for heating the outer shell (2) of the pot and causing the liquid at its bottom to be heated and vaporized into high-temperature steam, and a hose component. The water inlet connector (31) is located on the rear wall of the outer shell (1), the water inlet pump (32) is located in the inner cavity of the outer shell (1) and is located on the first mounting plate (11), the liquid heater (33) is located on the bottom surface of the outer shell (2), and the hose component is made of high-temperature resistant material and is located between the water inlet connector (31) and the water inlet pump (32), and / or between the water inlet pump (32) and the liquid heater (33).
4. The novel low-sugar cooking appliance according to claim 3, characterized in that, A first mounting structure is provided between the water inlet pump (32) and the first mounting plate (11), so that the water inlet pump (32) can be fixedly mounted on the first mounting plate (11) through the first mounting structure; The first mounting structure includes a locking post (321) disposed on the water inlet pump (32) and a locking hole (111) disposed on the first mounting plate (11) and corresponding to the locking post (321). The locking post (321) is located on the bottom end of the housing of the water inlet pump (32), and the locking hole (111) penetrates the first mounting plate (11) along the height direction. When the water inlet pump (32) is placed on the bottom surface of the first mounting plate (11), the locking post (321) extends into the locking hole (111) and the two are locked together, so that the water inlet pump (32) is fixedly mounted on the first mounting plate (11).
5. The low-sugar novel digester according to claim 2, characterized by, The drainage device includes a drain connector (41) for connecting to an external sewage source, a drain valve assembly (42) for drawing liquid out of the outer shell (2), and a hose component. The drain connector (41) is located on the rear wall of the outer shell (1), the drain valve assembly (42) is located in the inner cavity of the outer shell (1) and is located on the second mounting plate (12), and the hose component is made of high temperature resistant material and is located between the drain valve assembly (42) and the drain connector (41).
6. The low-sugar novel digester according to claim 5, characterized by The drainage device also includes a clamp component (43), and a second mounting structure is provided between the clamp component (43) and the second mounting plate (12). The clamp component (43) is fixedly mounted on the second mounting plate (12) through the second mounting structure, and the drain valve assembly (42) is fixedly mounted on the second mounting plate (12) through the clamp component (43). The second mounting structure includes a mounting through hole (431) on the clamp component (43), a mounting screw hole (121) on the second mounting plate (12) corresponding to the mounting through hole (431), and a fastening component that mates with the mounting screw hole (121). The mounting through hole (431) passes through the clamp component (43) along the height direction. The mounting screw hole (121) is located on the bottom surface of the second mounting plate (12). When the drain valve assembly (42) is placed on the second mounting plate (12), the bottom surface of the drain valve assembly (42) abuts against the second mounting plate (12), the clamp component (43) abuts against the top surface of the drain valve assembly (42), and the fastening component passes through the mounting through hole (431) and is screwed to the mounting screw hole (121) so that the drain valve assembly (42) is fixedly mounted on the second mounting plate (12).
7. The low-sugar novel digester according to claim 5, characterized by The drain valve assembly (42) includes a straight-through water valve (421), a drain solenoid valve (422) for controlling the opening and closing of the straight-through water valve (421), and a connecting joint (423) for connecting the hose component. The horizontal projection of the straight-through water valve (421) is T-shaped. The drain solenoid valve (422) is located at the lower control end of the straight-through water valve (421). There are two connecting joints (423) and they are respectively located at the front and rear connecting ends of the straight-through water valve (421).
8. The novel low-sugar cooking appliance according to claim 2, characterized in that, The outer shell (2) of the pot is also provided with a water inlet (24), a drain anti-clogging nozzle (25) and an anti-dry-burning thermostat (26). The water inlet (24) is located on the liquid inlet (22), the drain anti-clogging nozzle (25) is located on the liquid outlet (23), and the anti-dry-burning thermostat (26) is located on the outer bottom surface of the outer shell (2). The water inlet (24) is provided with a water inlet hole (241), which is a number of holes and is arranged circumferentially on the side wall of the water inlet (24). The drain anti-clogging nozzle (25) is provided with a drain hole (251), which is a number of holes and is evenly distributed on the top surface of the drain anti-clogging nozzle (25) and / or arranged circumferentially on the side wall of the drain anti-clogging nozzle (25).
9. The novel low-sugar cooking appliance according to any one of claims 1-7, characterized in that, When the inner pot (3) is placed inside the outer shell (2), there is a gap between the outer wall of the inner pot (3) and the inner wall of the outer shell (2), the gap is A, 1cm≤A≤3cm, and there is a gap between the outer bottom surface of the inner pot (3) and the inner bottom surface of the outer shell (2), the gap is B, 10cm≤B≤15cm.
10. The novel low-sugar cooking appliance according to any one of claims 1-7, characterized in that, The control device includes a control panel (51), a circuit board (52), a power connector (53), and a power switch (54). The control panel (51) is located on the front side wall of the outer shell (1) and its control end extends out of the outer shell (1). The circuit board (52) is located in the inner cavity of the outer shell (1). The power connector (53) and the power switch (54) are both located on the rear side wall of the outer shell (1). The power connector (53) and the power switch (54) are electrically connected to the circuit board (52) respectively. The control panel (51) is electrically connected to the circuit board (52), the heating water inlet device, and the drainage device respectively.