Steam box with steam generation strengthening function
By using a combination of segmented flame channels and heat absorber in the steamer, the heat transfer path is optimized, and the problem of low thermal energy utilization in the traditional steamer is solved, achieving efficient, energy-saving and environmentally friendly steam generation.
Patent Information
- Application Number
- CN202421954024.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-13
AI Technical Summary
The low thermal utilization rate of traditional steamers leads to waste of energy and increased operating costs, and complex operation and maintenance.
A steam box with steam generation enhancement function is designed, using a combination of segmented flame channel and heat absorber to optimize the heat transfer path and improve the heat energy utilization rate.
It significantly improves the heat energy utilization efficiency of steam generation, reduces fuel consumption and exhaust gas emissions, reduces operating costs, and simplifies operation and maintenance.
Smart Images

Figure CN223025829U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of intelligent kitchen utensils, in particular to a steam box with a function of enhancing steam generation. Background Art
[0002] In the traditional steam box technology, there is a problem of low thermal energy utilization rate, which leads to energy waste and increased operating costs. There are large heat losses in the process of heat transfer of the traditional steam box, which affects the steam generation efficiency. The operation and maintenance may be relatively complex, resulting in poor user experience. The structural design of the segmented flame channel is unreasonable, and too much additional loss is caused in the process of heat transfer, so that the heat generated by fuel combustion cannot be effectively converted into steam. At the same time, due to the low thermal energy utilization rate, the fuel consumption increases, and more waste gas emissions are generated, causing environmental pollution. Summary of the Utility Model
[0003] An embodiment of the utility model provides a steam box with a function of enhancing steam generation, aiming to solve the problem of low thermal energy utilization rate of the steam box in the existing technical methods.
[0004] The steam box with a function of enhancing steam generation provided by this embodiment includes a box body, a burner control system and a flame channel; the flame channel is arranged inside the box body, and the flame channel includes a first segmented channel, a second segmented channel and a third segmented channel. One end of the first segmented channel is communicated with one end of the second segmented channel through a first transfer channel, the other end of the second segmented channel is communicated with one end of the third segmented channel through a second transfer channel, and the other end of the third segmented channel is open and connected to the flame end of the burner control system. The inner cavity of the box body outside the flame channel is used for storing water, and a burner monitoring module is arranged outside the burner control system; the first segmented channel, the second segmented channel and the third segmented channel are sequentially arranged in the box body from top to bottom, and support codes are arranged between the first segmented channel and the second segmented channel and between the second segmented channel and the third segmented channel; a steam outlet, a water injection port and a water outlet are arranged on the box body, a heat recovery module is arranged outside the steam outlet, and a water quantity monitoring module is arranged on the inner wall of the box body; the burner monitoring module, the heat recovery module and the water quantity monitoring module are all communicatively connected to a control module through a wireless network.
[0005] Further, heat absorption sheets are arranged in the channel spaces of the first segmented channel, the second segmented channel and the third segmented channel, the heat absorption sheets are welded to the inner side of the top wall of the channel space, and the heat conduction direction of the heat absorption sheets is from the inside of the channel space to the outside of the channel space.
[0006] Further, the heat absorption sheets are made of stainless steel.
[0007] Further, the area of the heat absorption sheets accounts for 30%-60% of the area of the top wall of the channel.
[0008] Further, the other end of the first segmented channel is provided with a smoke exhaust port for exhausting the waste smoke generated during the steam generation process.
[0009] Further, a water outlet control valve is provided outside the water outlet.
[0010] Further, the number of heat absorption fins is set to be multiple, and the heat absorption fins are regularly arranged on the inner side of the top wall of the channel space.
[0011] Further, the first transfer channel is movably connected to the first segmented channel and the second segmented channel, and the second transfer channel is movably connected to the second segmented channel and the third segmented channel.
[0012] Further, the steam outlet is provided on the side wall of the box body, and the steam outlet is located above the horizontal plane of the first segmented pipe.
[0013] Further, the support code is made of stainless steel.
[0014] The utility model discloses a steam box with a steam generation enhancement function, which includes a box body, a burner control system and a flame channel; the flame channel is arranged inside the box body, and the flame channel includes a first segmented channel, a second segmented channel and a third segmented channel. One end of the first segmented channel is communicated with one end of the second segmented channel through a first transfer channel, the other end of the second segmented channel is communicated with one end of the third segmented channel through a second transfer channel, and the other end of the third segmented channel is open and connected to the flame end of the burner control system. The inner cavity of the box body outside the flame channel is used for storing water, and a burner monitoring module is arranged outside the burner control system; the first segmented channel, the second segmented channel and the third segmented channel are arranged in the box body from top to bottom in sequence, and support codes are arranged between the first segmented channel and the second segmented channel and between the second segmented channel and the third segmented channel; a steam outlet, a water injection port and a water outlet are arranged on the box body, a heat recovery module is arranged outside the steam outlet, and a water volume monitoring module is arranged on the inner wall of the box body; the burner monitoring module, the heat recovery module and the water volume monitoring module are all communicatively connected to the control module through a wireless network. The design of the steam box of the utility model realizes efficient, energy-saving and environment-friendly steam generation, and provides a more efficient, reliable and easy-to-maintain steaming solution for users. Description of the Drawings
[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0016] Figure 1Schematic diagram of a partial structure of a steam box with a steam generation enhancement function provided by an embodiment of the present utility model;
[0017] Figure 2 Schematic side view of the overall structure of a steam box with a steam generation enhancement function provided by an embodiment of the present utility model;
[0018] Figure 3 Exploded schematic diagram of the flame passage structure of a steam box with a steam generation enhancement function provided by an embodiment of the present utility model;
[0019] Figure 4 Front view of a steam box with a steam generation enhancement function provided by an embodiment of the present utility model.
[0020] Reference numerals in the drawings:
[0021] 1. First segmented channel; 2. Second segmented channel; 3. Third segmented channel; 4. First transfer channel; 5. Second transfer channel; 6. Support code; 7. Steam outlet; 8. Water outlet; 9. Heat absorption fin; 10. Water outlet control valve; 11. Box body. Detailed implementation manners
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are some, but not all, of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] It should be understood that when used in this specification and the appended claims, the terms "comprises" and "comprising" indicate the presence of the described features, wholes, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, wholes, steps, operations, elements, components, and / or their combinations.
[0024] It should also be understood that the terms used in the specification of the present utility model are only for the purpose of describing specific embodiments and are not intended to limit the present utility model. As used in the specification of the present utility model and the appended claims, unless the context clearly indicates otherwise, the singular forms "a", "an", and "the" are intended to include the plural forms.
[0025] It should be further understood that the term " / and / " used in the specification of the present utility model and the appended claims refers to any combination and all possible combinations of one or more of the related listed items, and includes these combinations.
[0026] Such as Figures 1 to 4As shown, the steam box can accommodate multiple groups of flame channels composed of a first segmented channel 1, a second segmented channel 2, a third segmented channel 3, a first transfer channel 4, and a second transfer channel 5, which are used to generate the heat source inside the box. An embodiment of the present invention discloses a steam box with a steam generation enhancement function, including a box body 11, a burner control system, and a flame channel; the flame channel is disposed inside the box body 11, and the flame channel includes a first segmented channel 1, a second segmented channel 2, and a third segmented channel 3. One end of the first segmented channel 1 is connected to one end of the second segmented channel 2 through the first transfer channel 4, and the other end of the second segmented channel 2 is connected to one end of the third segmented channel 3 through the second transfer channel 5. The other end of the third segmented channel 3 is open and connected to the flame end of the burner control system. The inner cavity of the box body 11 outside the flame channel is used for storing water, and a burner monitoring module is arranged outside the burner control system; the first segmented channel 1, the second segmented channel 2, and the third segmented channel 3 are sequentially arranged in the box body 11 from top to bottom, and support codes 6 are arranged between the first segmented channel 1 and the second segmented channel 2, and between the second segmented channel 2 and the third segmented channel 3; a steam outlet 7, a water injection port, and a water outlet 8 are arranged on the box body 11, a heat recovery module is arranged outside the steam outlet 7, and a water volume monitoring module is arranged on the inner wall of the box body 11; the burner monitoring module, the heat recovery module, and the water volume monitoring module are all communicatively connected to the control module through a wireless network.
[0027] During actual use, the cabinet 11 is the main part of the steam box, which surrounds and supports the entire structure of the steam box. The interior of the cabinet 11 is divided into two main spaces: the flame passage and the water storage space. The burner control system is located on one side of the cabinet 11, through which the size and temperature of the flame can be adjusted to control the heating process. At the uppermost part of the cabinet 11 is the first passage for the flame to enter; a temperature detector is provided at the tail end of the heat recovery module. When the temperature reaches the set value, another burner is automatically turned off. If there are three flame passages in the inner cavity of the cabinet 11 during actual use, a burner can be set at the front port of each flame passage. It is located below the first segmented passage 1 and is connected to the first segmented passage 1 through the first transfer passage 4. It is located below the second segmented passage 2 and is connected to the second segmented passage 2 through the second transfer passage 5. The first transfer passage 4 and the second transfer passage 5 are respectively connected to the first segmented passage 1 and the second segmented passage 2, and the second segmented passage 2 and the third segmented passage 3 to ensure that the flame can flow smoothly from top to bottom. Structures for supporting and fixing the flame passages are located between the first segmented passage 1 and the second segmented passage 2, and between the second segmented passage 2 and the third segmented passage 3 to maintain the stability of the passages and the smooth flow of the air current. These functional openings are respectively located at appropriate positions on the cabinet 11 for the release of steam, the replenishment of water, and the discharge of excess water. Through the design of the segmented flame passages, heat can be more effectively transferred to the water storage space, reducing heat loss and thus improving the utilization rate of thermal energy. The flame passages directly heat the water storage space, enabling the water to be quickly converted into steam and improving the steam generation efficiency. The flame can be conveniently adjusted through the burner control system, and the settings of the steam outlet 7, the water injection port, and the water outlet 8 make the operation and maintenance of the steam box simpler. In the design of traditional steam boxes, there are significant losses during heat transfer, resulting in a low utilization rate of thermal energy. The utility model significantly improves the utilization rate of thermal energy through the design of segmented flame passages and the optimization of the heat transfer path. Due to the low utilization rate of thermal energy, the steam generation efficiency of traditional steam boxes is also low. The utility model improves the steam generation efficiency by directly heating the water storage space. Traditional steam boxes may be relatively complex in terms of operation and maintenance. The utility model makes the operation and maintenance more convenient through an integrated design and convenient functional openings. The steam box of the embodiment of the utility model not only solves the problems of low utilization rate of thermal energy and low steam generation efficiency in the prior art through its unique structural design and optimization, but also enhances the user experience, having significant technological progress and practical value.
[0028] The main purpose of the steam box described in the embodiments of the present utility model is to improve the thermal energy utilization efficiency during the steam generation process of the steam box. In the traditional steam box design, due to the unreasonable heat transfer path, a large amount of heat is often dissipated during the transfer process, resulting in energy waste. The present utility model optimizes the heat transfer path by designing a steam generation enhancement device, enabling more thermal energy to be effectively utilized and reducing unnecessary energy losses. Improving the thermal energy utilization efficiency means that more steam can be obtained with the same fuel consumption, or the fuel consumption can be reduced when generating the same amount of steam. This directly reduces the operating cost of the steam box and enhances the economic benefits of using the steam box. Reducing fuel consumption not only reduces costs but also reduces the emissions of greenhouse gases and other pollutants, contributing to environmental protection and sustainable development. By dividing the flame channel into multiple segments and arranging them in a specific order, heat can be transferred to the water storage space more evenly and effectively, reducing heat loss during the transfer process. Precisely controlling the size and temperature of the flame ensures that the heat output matches the actual demand of the steam box, avoiding overheating or unnecessary energy consumption. Support codes 6 are provided between the segments of the flame channel, which not only increases the structural stability but also keeps the air flow smooth, reducing the energy loss caused by air flow resistance. Placing the water storage space outside the flame channel allows it to directly receive the heat transferred from the flame channel, improving the thermal energy utilization efficiency. Through the above technical means, the steam box in the embodiments of the present utility model can more efficiently utilize the heat generated by fuel combustion during the steam generation process, thereby achieving the purpose of improving the thermal energy utilization efficiency. This not only enhances the performance of the steam box but also meets the social requirements of energy conservation, emission reduction, and sustainable development.
[0029] In summary, the most core technical effect of the steam box described in the embodiments of the present utility model is to significantly improve the thermal energy utilization efficiency during the steam generation process of the steam box. Through the design of the segmented flame channel, more efficient heat transfer from the flame to the water storage space is achieved, reducing heat loss. The structural optimization of the flame channel enables heat to act more directly on the water storage space, thereby enhancing the overall thermal efficiency of the steam box. Under the same steam generation amount, the steam box of the present utility model can reduce fuel consumption and lower the operating cost. While reducing fuel consumption, it also reduces waste gas emissions, playing a positive role in environmental protection. In conclusion, the steam box achieves a significant improvement in the thermal energy utilization efficiency of the steam box, which not only improves the economy of the equipment but also enhances its environmental protection performance.
[0030] Furthermore, heat absorption fins 9 are provided in the channel spaces of the first segmented channel 1, the second segmented channel 2, and the third segmented channel 3. The heat absorption fins 9 are welded to the inner side of the top wall of the channel space, and the heat conduction direction of the heat absorption fins 9 is from the inside of the channel space to the outside of the channel space.
[0031] Furthermore, the heat absorption fins 9 are made of stainless steel.
[0032] Furthermore, the area of the heat absorption fin 9 accounts for 30%-60% of the area of the top wall of the channel.
[0033] Furthermore, a smoke exhaust port is provided at the other end of the first segmented channel 1 for exhausting the waste smoke generated during the steam generation process.
[0034] Furthermore, a water outlet control valve 10 is provided outside the water outlet 8.
[0035] Specifically, heat absorption fins 9 are provided in the channel spaces of the first segmented channel 1, the second segmented channel 2, and the third segmented channel 3. The heat absorption fins 9 are welded to the inner side of the top wall of the channel space, and their heat conduction direction is from the inside of the channel space to the outside of the channel space. The heat absorption fins 9 are made of stainless steel, which has good heat conductivity and corrosion resistance. The area of the heat absorption fins 9 accounts for 30%-60% of the area of the top wall of the channel, ensuring sufficient heat absorption area to improve the heat transfer efficiency. A smoke exhaust port is provided at the other end of the first segmented channel 1 for exhausting the waste smoke generated during the steam generation process. A water outlet control valve 10 is provided outside the water outlet 8 for controlling the discharge of water. The presence of the heat absorption fins 9 significantly enhances the heat absorption and transfer ability of the flame channel, enabling the heat to be more effectively used for heating the water storage space. The design and position of the heat absorption fins 9 optimize the heat flow path, reducing heat loss during the transfer process, thereby improving the thermal efficiency of the steam box. The heat absorption fins 9 made of stainless steel improve the durability and reliability of the steam box and extend the service life of the equipment. The setting of the smoke exhaust port ensures the effective discharge of waste smoke, improves the working environment inside the steam box, and reduces possible pollution. The addition of the water outlet control valve 10 enables users to more precisely control the discharge of water, optimizing the operability and user experience of the steam box. In summary, the addition of these technical designs further improves the thermal energy utilization efficiency of the steam box, enhances the operability and durability of the equipment, and at the same time provides users with a cleaner and more convenient user experience.
[0036] Furthermore, the number of the heat absorption fins 9 is set to be multiple, and the heat absorption fins 9 are regularly arranged on the inner side of the top wall of the channel space.
[0037] Furthermore, the first transfer channel 4 is movably connected to the first segmented channel 1 and the second segmented channel 2, and the second transfer channel 5 is movably connected to the second segmented channel 2 and the third segmented channel 3.
[0038] Furthermore, the steam outlet 7 is provided on the side wall of the box body 11, and the steam outlet 7 is located above the horizontal plane of the first segmented pipe.
[0039] Furthermore, the support code 6 is made of stainless steel.
[0040] Specifically, the number of heat absorption fins 9 is set to be multiple and is regularly arranged on the inner side of the top wall of the channel space, so as to maximize the heat energy absorption and transfer efficiency. The first transfer channel 4 is movably connected between the first segmented channel 1 and the second segmented channel 2. Similarly, the second transfer channel 5 is also movably connected between the second segmented channel 2 and the third segmented channel 3. This design facilitates installation and maintenance, and at the same time can ensure the airtightness and stability of the flame channel. The steam outlet 7 is arranged on the side wall of the box body 11 and is located above the horizontal plane of the first segmented pipeline. Such a position design helps the smooth discharge of steam and at the same time avoids interference with the flame channel. The support code 6 is made of stainless steel and matches the material of the heat absorption fin 9, ensuring the corrosion resistance and strength of the support code 6. By arranging multiple regularly arranged heat absorption fins 9 in the channel space, the heat absorption efficiency of heat energy is significantly improved, enabling the heat to be transferred to the water storage space more evenly. The design of the movably connected transfer channels makes the maintenance of the steamer more convenient, and at the same time provides the possibility of adjusting the channel layout to adapt to different usage requirements. The position design of the steam outlet 7 helps the efficient flow of steam, reduces the resistance during the steam flow process, and improves the steam output efficiency. The support code 6 made of stainless steel enhances the stability of the entire flame channel structure and ensures the reliability and durability during long-term use. In summary, the addition of these technical features further enhances the heat energy utilization efficiency of the steamer, improves the maintainability and operation convenience of the device, and at the same time ensures the stability and durability of the steamer during long-term use.
[0041] In summary, for the above steamer, in the embodiment of the present utility model, through the segmented flame channel, the regular arrangement of the heat absorption fins 9 and the optimization of the heat transfer path, the heat loss is significantly reduced, and the heat energy conversion efficiency is improved, enabling the heat generated by fuel combustion to be more effectively used for steam generation. The stainless steel material and regular arrangement of the multiple heat absorption fins 9 effectively enhance the heat absorption and transfer, ensuring the efficient utilization of heat energy. The heat absorption fins 9 and the support code 6 made of stainless steel improve the corrosion resistance and mechanical strength of the steamer and extend the service life of the device. The design of the smoke exhaust port effectively discharges the waste smoke, while the position of the steam outlet 7 optimizes the steam flow path and improves the steam output efficiency. The movably connected transfer channels make the maintenance and adjustment of the steamer more convenient and enhance the flexibility and adaptability of the device. By improving the heat energy utilization efficiency, the fuel consumption is reduced, the operating cost is lowered, and at the same time the energy waste is reduced. The energy-saving and consumption-reducing design reduces the emissions of greenhouse gases and other pollutants, meeting the requirements of environmental protection and sustainable development. Generally speaking, the design of the steamer of the present utility model realizes efficient, energy-saving and environmentally friendly steam generation, providing a more efficient, reliable and easy-to-maintain cooking solution for users.
[0042] The above are only the specific embodiments of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model can easily think of various equivalent modifications or substitutions, and these modifications or substitutions should all be covered within the protection scope of the present utility model. Therefore, the protection scope of the present utility model shall be subject to the protection scope of the claims.
Claims
1. A steamer with steam generation enhancement function, characterized in that: include: Box, burner control system and flame channel; The flame channel is arranged inside the box, and the flame channel includes a first segmented channel, a second segmented channel and a third segmented channel. One end of the first segmented channel is connected with one end of the second segmented channel through a first switching channel, and the other end of the second segmented channel is connected with one end of the third segmented channel through a second switching channel. The other end of the third segmented channel is open and connected to the flame end of the burner control system. The inner cavity of the box outside the flame channel is used for water storage, and a burner monitoring module is arranged outside the burner control system. The first segmented channel, the second segmented channel and the third segmented channel are sequentially arranged in the box from top to bottom, and support codes are arranged between the first segmented channel and the second segmented channel, and between the second segmented channel and the third segmented channel; The box body is provided with a steam outlet, a water injection port and a water outlet, a heat recovery module is provided outside the steam outlet, and a water volume monitoring module is provided on the inner wall of the box body; The burner monitoring module, the heat recovery module and the water volume monitoring module are all connected to the control module through a wireless network.
2. The steamer with steam generation enhancement function according to claim 1, characterized in that: Heat absorbing sheets are arranged in the channel spaces of the first segmented channel, the second segmented channel and the third segmented channel. The heat absorbing sheets are welded to the inner side of the top wall of the channel space. The heat conduction direction of the heat absorbing sheets is from the inside of the channel space to the outside of the channel space.
3. The steamer with steam generation enhancement function according to claim 2, characterized in that: The heat absorbing sheet is made of stainless steel.
4. The steamer with steam generation enhancement function according to claim 2, characterized in that: The area of the heat absorbing sheet accounts for 30%-60% of the area of the top wall of the channel.
5. The steamer with steam generation enhancement function according to claim 1, characterized in that: The other end of the first segmented channel is provided with a smoke exhaust port for exhausting waste smoke generated during the steam generation process.
6. The steamer with steam generation enhancement function according to claim 1, characterized in that: A water outlet control valve is arranged outside the water outlet.
7. The steamer with steam generation enhancement function according to claim 2, characterized in that: The number of the heat absorbing sheets is set to be multiple, and the heat absorbing sheets are regularly arranged on the inner side of the top wall of the channel space.
8. The steamer with steam generation enhancement function according to claim 1, characterized in that: The first transfer channel is movably connected to the first segmented channel and the second segmented channel, and the second transfer channel is movably connected to the second segmented channel and the third segmented channel.
9. The steamer with steam generation enhancement function according to claim 1, characterized in that: The steam outlet is arranged on the side wall of the box body, and the steam outlet is located above the horizontal plane of the first segmented pipeline.
10. The steamer with steam generation enhancement function according to claim 1, characterized in that: The supporting code is made of stainless steel.