Stirring type heating mechanism

By designing an agitation-type heating mechanism, the agitator accelerates water flow and, combined with a relatively stationary heating element, solves the problems of low heating efficiency and poor uniformity in existing boilers. This achieves efficient and uniform heating, extends the lifespan of the heating element, and improves its applicability.

CN223460596UActive Publication Date: 2025-10-21WENZHOU PINYUE ENERGY SAVING EQUIP CO LTD
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Patent Information

Application Number
CN202422949017.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-02
Publication Date
2025-10-21
Estimated Expiration
2034-12-02

AI Technical Summary

Technical Problem

Existing boiler heating methods are inefficient and cannot achieve uniform heating of water, making them unsuitable for harsh operating environments.

Method used

The agitation heating mechanism accelerates water flow through agitation components and combines this with relatively stationary heating components to avoid direct contact and prevent scale buildup. Permanent magnet drive and non-mechanical connections reduce the risk of leakage, and the layout of the heating components is optimized to improve efficiency and uniformity.

Benefits of technology

It achieves efficient and uniform heating, extends the life of heating elements, improves the versatility and adaptability of the mechanism, and facilitates maintenance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stirring type heating mechanism, which comprises a shell, a stirring device, a heating device and a heating device, the shell is provided with an inner cavity for accommodating a water body, and the inner cavity is communicated with at least two interfaces; the stirring piece is arranged in the inner cavity and is configured to accelerate the movement of the water body, and the stirring piece is provided with an isolation cavity; the driving assembly is configured to drive the stirring piece to act; and the heating piece is arranged on the shell, extends into the isolation cavity and is configured to generate heat, and the heating piece and the stirring piece are relatively static. The mechanism has the following advantages and effects that the mechanism is high in heating efficiency and uniform in heating, so that the universality and the adaptability of the mechanism are improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a kind of heating equipment technical field, in particular to a kind of stirring type heating mechanism. BACKGROUND

[0002] Water vapor, simply called water vapor or steam, is the gaseous form of water (H2O). When water reaches boiling point, it becomes water vapor. Water vapor has a variety of applications, can be used for heating / humidification, or as a power-driven purpose, therefore, water vapor has quite large and extensive application space in various fields.

[0003] The conversion between water and water vapor requires heating, so a heating mechanism is needed. In existing industry, the heating method usually uses a boiler to heat. In the process of heating water, the temperature is gradually conducted from the side close to the boiler heat source to the outside. When the volume of water in the boiler is large, it will lead to slow heating efficiency and the inability to achieve uniform heating of the entire water body, so this heating method cannot be applied to some harsh environments. Therefore, the present improvement is born according to the above problems. SUMMARY

[0004] The purpose of the utility model is to provide a kind of stirring type heating mechanism, the stirring type heating mechanism is high in heating efficiency and is heated uniformly, to improve the versatility and adaptability of the mechanism.

[0005] The above technical purpose of the utility model is realized by the following technical scheme: a kind of stirring type heating mechanism, the stirring type heating mechanism includes: shell, the shell has the inner cavity of containing water body and at least two interfaces are communicated on the inner cavity;Stirring part, the stirring part is set in the inner cavity and is configured to accelerate water movement, the stirring part has a isolation cavity;Driving assembly, configured to drive the stirring part to act;Heating element, the heating element is set in the shell and extends into the isolation cavity and is configured to generate heat, the heating element and the stirring part constitute relative static.

[0006] By adopting the above technical scheme, water enters the inner cavity through the interface, and the heating element extending into the isolation cavity heats the water in the inner cavity. The water vapor generated by heating is discharged from another interface. The driving assembly drives the stirring part to act to accelerate the flow of water in the inner cavity, achieving rapid temperature conduction while balancing the temperature of the water, achieving high heating efficiency and uniform heating. This improves the versatility and adaptability of the mechanism. By constituting relative static, the stirring part and the heating element are prevented from contacting, protecting the heating element.

[0007] Further provided is that the stirring part and the shell are sealed and rotated to separate the isolation cavity and the inner cavity.

[0008] By adopting the technical scheme, the heating element is prevented from directly contacting with the water body, thereby preventing scale from accumulating on the outer surface of the heating element, so as to prolong the service life of the heating element and facilitate the later cleaning and maintenance.

[0009] Further, the installation opening is arranged between the isolation cavity and the outside for mounting the heating element.

[0010] By adopting the technical scheme, the installation opening is arranged between the isolation cavity and the outside for mounting the heating element.

[0011] Further, the heating element is located at the center of the stirring element and forms an isolation gap with the wall of the isolation cavity.

[0012] By adopting the technical scheme, the installed heating element is prevented from interfering with the stirring element, and the two are more safely separated by the formed isolation gap.

[0013] Further, the driving assembly includes a driving source located outside the shell and a linkage connecting the driving source and the stirring element.

[0014] By adopting the technical scheme, the driving source drives the stirring element to act through the linkage, so as to achieve the driving purpose.

[0015] Further, the linkage is non-mechanically connected.

[0016] By adopting the technical scheme, the non-mechanical transmission mode can avoid the risk of leakage.

[0017] Further, the linkage includes a rotating disc connected to the driving source and located outside the shell, an outer magnetic disc mounted on the rotating disc, and an inner magnetic disc mounted on the stirring element and corresponding to the outer magnetic disc, the inner magnetic disc being located in the inner cavity.

[0018] By adopting the technical scheme, permanent magnet transmission is achieved in this way.

[0019] Further, the outer magnetic disc and the rotating disc, and the inner magnetic disc and the stirring element are connected through fasteners.

[0020] By adopting the technical scheme, this fixing method has lower cost and is more stable.

[0021] Further, the stirring element includes a rotating shaft and a blade arranged on the rotating shaft, the isolation cavity is formed in the rotating shaft, and the blade is spiral-shaped.

[0022] By adopting the technical scheme, the structure layout is reasonable and the production and manufacturing are more convenient.

[0023] Further, the heating element has a shape of a spiral or a curved snake shape.

[0024] By using the above technical scheme, the heating area is maximized under the premise of limited installation space.

[0025] In summary, the utility model has the following beneficial effects: the utility model has high heating efficiency and uniform heating, thereby improving the versatility and adaptability of the mechanism. BRIEF DESCRIPTION OF DRAWINGS

[0026] Figure 1 Structure schematic view of an embodiment;

[0027] Figure 2 Structure schematic view of an embodiment; Figure 1 Enlarged view of A part in the middle;

[0028] Figure 3 Another structure schematic view of a heating element in an embodiment.

[0029] In the figure: 1, shell; 2, inner cavity; 3, interface; 4, stirring element; 41, rotating shaft; 42, blade; 5, isolation cavity; 6, heating element; 7, mounting port; 8, isolation gap; 91, driving source; 92, linkage; 921, rotating disc; 922, outer magnetic disc; 923, inner magnetic disc; 10, fastener. DETAILED DESCRIPTION

[0030] The utility model will be further described in detail below in combination with the drawings.

[0031] Reference Figures 1 to 3 An agitating type heating mechanism, which comprises: a shell 1, the shell 1 has an inner cavity 2 containing water body and is provided with at least two interfaces 3 communicating with the inner cavity 2, the interfaces 3 are preferably two and are arranged on the shell 1; a stirring element 4, the stirring element 4 is arranged in the inner cavity 2 and is configured to accelerate the movement of the water body, and the stirring element 4 has an isolation cavity 5; a driving assembly, which is configured to drive the stirring element 4 to act; a heating element 6, the heating element 6 is fixedly installed on the shell 1 and extends into the isolation cavity 5 and is configured to generate heat, and the heating element 6 and the stirring element 4 constitute relative static.

[0032] The stirring element 4 and the shell 1 are sealingly and rotatably connected to form a separation between the isolation cavity 5 and the inner cavity 2, specifically, the stirring element 4 and the shell 1 are mechanically and hard sealingly rotatable. The isolation cavity 5 is in communication with the outside through a mounting port 7 for mounting the heating element 6. The heating element 6 is located at the center of the stirring element 4 and forms an isolation gap 8 between the heating element 6 and the wall of the isolation cavity 5.

[0033] The driving assembly comprises a driving source 91 located outside the shell 1 and a linkage 92 linking the driving source 91 and the stirring member 4. The linkage 92 is a non-mechanical connection, and the linkage 92 comprises a rotating disc 921 fixedly connected to an output shaft of the driving source 91 and located outside the shell 1, an outer magnetic disc 922 mounted on the rotating disc 921, and an inner magnetic disc 923 mounted on the stirring member 4 and corresponding to the outer magnetic disc 922, the inner magnetic disc 923 being located in the inner cavity 2. The driving source 91 is an electric motor, and the driving source 91 can be selectively fixed in a to-be-mounted position.

[0034] Both the outer magnetic disc 922 and the inner magnetic disc 923 are permanent magnets, and the outer magnetic disc 922 and the rotating disc 921 are connected through fasteners 10, and the inner magnetic disc 923 and the stirring member 4 are connected through the fasteners 10. The fasteners 10 are countersunk bolts, the countersunk bolts are threadedly connected to the outer magnetic disc 922 and the rotating disc 921, and the countersunk bolts are threadedly and sealingly connected to the inner magnetic disc 923 and the stirring member 4, that is, sealing can be realized by adding glue at the threadedly connected positions. The stirring member 4 comprises a rotating shaft 41 and blades 42 fixedly arranged on the rotating shaft 41, the isolation cavity 5 is formed in the rotating shaft 41, and the blades 42 are helical. The heating member 6 is in the shape of a helix or a curved snake, and the heating member 6 is a heating pipe.

[0035] The specific embodiment is merely an explanation of the utility model, and is not a limitation of the utility model. Those skilled in the art can make modifications to the embodiment without creative contribution according to the needs after reading the specification, but as long as the modifications are within the scope of the claims of the utility model, the modifications are protected by the patent law.

Claims

1. An agitator heating mechanism characterized by, The stirring heating mechanism comprises a housing (1) having an inner cavity (2) containing a water body and at least two interfaces (3) communicating with the inner cavity (2); a stirring member (4) arranged in the inner cavity (2) and configured to accelerate the movement of the water body, the stirring member (4) having an isolation cavity (5); a driving assembly configured to drive the stirring member (4) to act; and a heating member (6) arranged in the housing (1) and extending into the isolation cavity (5) and configured to generate heat, the heating member (6) and the stirring member (4) being relatively static.

2. The agitator heating mechanism of claim 1, wherein: The stirring member (4) is sealed to the housing (1) to separate the isolation cavity (5) from the inner cavity (2).

3. The agitator heating mechanism of claim 2, wherein: The isolation cavity (5) is connected to the outside through a mounting port (7) for mounting the heating member (6).

4. The agitator heating mechanism of claim 1, wherein: The heating member (6) is located at the center of the stirring member (4) and forms an isolation gap (8) between the wall of the isolation cavity (5).

5. The agitator heating mechanism of claim 1, wherein: The driving assembly comprises a driving source (91) located outside the housing (1) and a linkage (92) connecting the driving source (91) and the stirring member (4).

6. The agitator heating mechanism of claim 5, wherein: The linkage (92) is non-mechanically connected.

7. The agitator heating mechanism of claim 6, wherein: The linkage (92) comprises a rotating disc (921) connected to the driving source (91) and located outside the housing (1), an outer magnetic disc (922) mounted on the rotating disc (921), and an inner magnetic disc (923) mounted on the stirring member (4) and corresponding to the outer magnetic disc (922), the inner magnetic disc (923) being located in the inner cavity (2).

8. The agitator heating mechanism of claim 7, wherein: The outer magnetic disc (922) and the rotating disc (921), and the inner magnetic disc (923) and the stirring member (4) are connected by fasteners (10).

9. The agitator heating mechanism of claim 1, wherein: The stirring member (4) comprises a rotating shaft (41) and a blade (42) arranged on the rotating shaft (41), the isolation cavity (5) being formed in the rotating shaft (41), and the blade (42) being spiral-shaped.

10. The agitator heating mechanism of claim 1, wherein: The shape of the heating member (6) comprises a spiral shape and a curved snake shape.