Ultra-thin side air outlet type heating equipment
By designing an ultra-thin side-discharge heating device, which adopts natural air circulation and a pin-magnet structure, the problem of limited installation methods in existing heating equipment has been solved, enabling flexible switching between vertical and wall-mounted installations, and improving the flexibility and reliability of applicable scenarios.
Patent Information
- Application Number
- CN202520419967.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-03-11
AI Technical Summary
The existing heating equipment has limited installation methods and is difficult to adapt to the usage needs of different scenarios.
An ultra-thin side-discharge heating device was designed, which adopts an upper and lower air duct design. Cold air is drawn in from the bottom and hot air is output from the top, forming a natural air circulation. The fan is eliminated, and the device can be quickly switched between vertical and wall-mounted installation through a pin and magnetic block structure.
It enables quick switching between vertical and wall-mounted installations, improving the flexibility of application scenarios and the reliability of use.
Smart Images

Figure CN223840477U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heating equipment technology, specifically an ultra-thin side-discharge heating device. Background Technology
[0002] Heating equipment is a heating facility designed to maintain a suitable thermal state in spaces where people live or work. It heats a space through various means. There are many types of heating equipment, including but not limited to electric heating equipment, gas heating equipment, and other equipment that uses different energy sources for heating. Nowadays, common heating equipment on the market can be divided into freestanding and wall-mounted types according to the installation method. Therefore, traditional heating equipment is limited by its installation method, making it difficult to adapt to the usage needs of different scenarios. In view of the above situation, technological innovation is carried out on the basis of existing heating equipment. Utility Model Content
[0003] The purpose of this invention is to provide an ultra-thin side-discharge heating device to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: an ultra-thin side-discharge heating device, comprising:
[0005] The housing has two sets of connecting sleeves evenly distributed at its bottom. Each connecting sleeve has a concave seat on its outer side wall, and a support foot at its bottom. A through hole is formed on the right side of each connecting sleeve, and a damping shaft is installed within the through hole. The damping shaft is fixedly installed within the concave seat. A set of insertion holes is formed on opposite sides of each of the two sets of concave seats. A first fixing hole and a second fixing hole are formed on the outer side of each connecting sleeve. A set of iron blocks is installed within each of the first and second fixing holes. The insertion hole of the concave seat communicates with the first fixing hole and corresponds to the second fixing hole. Two sets of mounting holes are formed on the top of each support foot, and an adjustment component is placed between the two sets of support feet.
[0006] Preferably, the front and bottom of the housing are evenly provided with air inlets, the front of the housing is provided with an air outlet, and the air outlet is located above the air inlets.
[0007] Preferably, the interior of the housing is provided with a graphene-coated aluminum sheet heating element and a temperature controller. The temperature controller is located to the left of the graphene-coated aluminum sheet heating element and is electrically connected to the graphene-coated aluminum sheet heating element. The graphene-coated aluminum sheet heating element is located between the air outlet and the air inlet.
[0008] Preferably, the adjusting assembly includes a connecting rod, the top of which is evenly provided with two sets of convex grooves, each convex groove containing a protrusion, and each set of springs is provided on opposite sides of the two sets of protrusions. The springs are fixedly disposed within the convex grooves. A connecting block is provided on the top of each protrusion, and each set of pins is provided on opposite sides of the two sets of connecting blocks. A magnet is provided on the side of the pins away from the connecting blocks, and a pull ring is provided on opposite sides of the two sets of connecting blocks.
[0009] Preferably, the connecting rod is disposed between the two sets of support feet, the bottom of the connecting rod is flush with the bottom of the support feet, and the pull ring is fixedly disposed on the top of the protrusion.
[0010] Preferably, the side of the pin away from the connecting block passes through the insertion hole of the concave seat and is inserted into the first fixing hole, and corresponds to the second fixing hole. The magnetic block is magnetically attracted to the iron block located in the first fixing hole, and corresponds to the iron block in the second fixing hole.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0012] This invention adopts an upper and lower air duct design, with cold air drawn in from the bottom and hot air output from the top, forming a natural circulating airflow, eliminating the need for a fan and achieving silent operation.
[0013] Inserting the pin into the first fixing hole will fix the support foot to the bottom of the housing, allowing the device to be installed vertically. Inserting the pin into the second fixing hole will fix the support foot to the rear of the housing, allowing the device to be wall-mounted. By enabling quick switching between vertical and wall-mounted installation, the applicable scenarios of the device can be effectively improved.
[0014] Once the pin is inserted into the fixing hole, the magnetic attraction between the magnet and the iron block can effectively improve the insertion stability of the pin, thereby improving the reliability of the device. Attached Figure Description
[0015] Figure 1 This is a structural schematic diagram of an ultra-thin side-discharge heating device according to the present invention;
[0016] Figure 2 This is a front sectional view of an ultra-thin side-discharge heating device according to the present invention;
[0017] Figure 3 This is a partial sectional view of the front of an ultra-thin side-discharge heating device according to the present invention;
[0018] Figure 4 This is a partial sectional view of the right side of an ultra-thin side-discharge heating device according to this utility model.
[0019] In the diagram: 1. Housing; 11. Air outlet; 12. Air inlet; 13. Graphene-coated aluminum heating element; 14. Temperature controller; 2. Connecting rod; 21. Support foot; 22. Mounting hole; 23. Concave seat; 24. Connecting sleeve; 25. Damping shaft; 26. First fixing hole; 27. Second fixing hole; 28. Pin; 3. Protrusion; 31. Spring; 32. Connecting block; 33. Pull ring; 34. Magnetic block; 35. Iron block. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0021] Please see Figures 1-4 An ultra-thin side-discharge heating device includes a housing 1. Two sets of connecting sleeves 24 are evenly fixedly arranged at the bottom of the housing 1. A concave seat 23 is rotatably arranged on the outer wall of the connecting sleeve 24. A support foot 21 is fixedly arranged at the bottom of the concave seat 23. A through hole is opened through the right side of the connecting sleeve 24. A damping shaft 25 is rotatably arranged in the through hole. The damping shaft 25 is fixedly arranged in the concave seat 23. The concave seat 23 can rotate outside the connecting sleeve 24 through the damping shaft 25. The opposite sides of the two sets of concave seats 23 are through... A set of insertion holes is provided. The outer side of the connecting sleeve 24 is provided with a first fixing hole 26 and a second fixing hole 27. A set of iron blocks 35 are fixedly installed in both the first fixing hole 26 and the second fixing hole 27. The insertion hole of the concave seat 23 is connected to the first fixing hole 26 and corresponds to the second fixing hole 27. The top of the support leg 21 is provided with two sets of mounting holes 22. Expansion bolts are used to pass through the mounting holes 22 and connect to the bolt holes on the wall, so that the device can be fixed to the wall. An adjustment component is placed between the two sets of support legs 21.
[0022] Air inlets 12 are evenly distributed through the front and bottom of the housing 1, and an air outlet 11 is distributed through the front of the housing 1. The air outlet 11 is located above the air inlets 12. A graphene-coated aluminum sheet heating element 13 and a temperature controller 14 are fixedly installed inside the housing 1. The temperature controller 14 is located to the left of the graphene-coated aluminum sheet heating element 13 and is electrically connected to the graphene-coated aluminum sheet heating element 13. The graphene-coated aluminum sheet heating element 13 is located between the air outlet 11 and the air inlet 12. External air enters the housing 1 through the air inlet 12, heats the air inside the housing 1 through the graphene-coated aluminum sheet heating element 13, and exhausts the heated air through the air outlet 11. The heating temperature of the graphene-coated aluminum sheet heating element 13 is controlled by the temperature controller 14.
[0023] The adjusting assembly includes a connecting rod 2. Two sets of convex grooves are evenly distributed on the top of the connecting rod 2. Protrusions 3 are slidably disposed within the convex grooves. A set of springs 31 are fixedly disposed on opposite sides of the two sets of protrusions 3, and the springs 31 are fixedly disposed within the convex grooves. A connecting block 32 is fixedly disposed on the top of the protrusions 3. A set of pins 28 are fixedly disposed on opposite sides of the two sets of connecting blocks 32. A magnet 34 is fixedly disposed on the side of the pins 28 away from the connecting block 32. A pull ring 33 is fixedly disposed on opposite sides of the two sets of connecting blocks 32. The connecting rod 2 is fixedly disposed between two sets of support feet 21, with the bottom of the connecting rod 2 flush with the bottom of the support feet 21. The pull ring 33 is fixedly disposed on the top of the protrusions 3. The side of the pin 28 away from the connecting block 32 passes through the insertion hole of the concave seat 23 and is inserted into the first fixing hole 26, corresponding to the second fixing hole 27. The springs 31, through the protrusions 3 and the connecting blocks 32, drive the pin 28 to pass through the insertion hole of the concave seat 23 and be inserted into the first fixing hole 26. This fixes the support foot 21 to the bottom of the housing 1, allowing the device to be installed vertically. At this time, the magnet 34 is magnetically attracted to the iron block 35 inside the first fixing hole 26, ensuring the stability of the pin 28's insertion. Pulling the pull ring 33 inwards causes the pin 28 and protrusion 3 to move inwards via the connecting block 32. When the pin 28 and magnet 34 separate from the first fixing hole 26, the support foot 21 can be rotated 90 degrees backwards around the damping pivot 25. At this time, the pin 28 and the first fixing hole 26... Align the two fixing holes 27, then release the pull ring 33. The spring 31 uses its own rebound force to drive the pin 28 into the second fixing hole 27 through the protrusion 3 and the connecting block 32, thereby fixing the support foot 21 to the rear side of the housing 1. At this time, the magnetic block 34 is magnetically attracted to the iron block 35 in the second fixing hole 27, thereby ensuring the insertion stability of the pin 28. The magnetic block 34 is magnetically attracted to the iron block 35 located in the first fixing hole 26, and corresponds to the iron block 35 in the second fixing hole 27.
[0024] Working principle: Spring 31 drives pin 28 through the insertion hole of concave seat 23 via protrusion 3 and connecting block 32 to insert into first fixing hole 26, thereby fixing support foot 21 to the bottom of housing 1, allowing the device to be installed vertically. At this time, magnet 34 is magnetically attracted to iron block 35 in first fixing hole 26, thus ensuring the insertion stability of pin 28. Pulling pull ring 33 inward drives pin 28 and protrusion 3 inward via connecting block 32. When pin 28 and magnet 34 are separated from first fixing hole 26, support foot 21 can be rotated 90 degrees backward around damping pivot 25. At this time, pin 28 is aligned with second fixing hole 27. Then, release pull ring 33, and spring... 31. Using its own rebound force, the pin 28 is inserted into the second fixing hole 27 through the protrusion 3 and the connecting block 32, thereby fixing the support foot 21 to the rear side of the housing 1. At this time, the magnetic block 34 is magnetically attracted to the iron block 35 in the second fixing hole 27, thereby ensuring the insertion stability of the pin 28. The expansion bolt is used to pass through the mounting hole 22 and connect to the bolt hole on the wall, thereby fixing the device to the wall. External air enters the housing 1 through the air inlet 12, heats the air in the housing 1 through the graphene-aluminum-sheet heating element 13, and exhausts the heated air through the air outlet 11. The heating temperature of the graphene-aluminum-sheet heating element 13 is controlled by the temperature controller 14.
Claims
1. An ultra-thin side-discharge heating device, characterized in that, include: The housing (1) has two sets of connecting sleeves (24) evenly arranged at its bottom. The outer side wall of the connecting sleeve (24) is provided with a concave seat (23). The bottom of the concave seat (23) is provided with a support foot (21). A through hole is opened through the right side of the connecting sleeve (24). A damping shaft (25) is provided in the through hole. The damping shaft (25) is fixedly installed in the concave seat (23). A set of connecting sleeves (24) is opened through the opposite sides of the two sets of concave seats (23). The connector sleeve (24) has a first fixing hole (26) and a second fixing hole (27) on its outer side. A set of iron blocks (35) is provided in both the first fixing hole (26) and the second fixing hole (27). The insertion hole of the concave seat (23) is connected to the first fixing hole (26) and corresponds to the second fixing hole (27). The top of the support foot (21) has two sets of mounting holes (22). An adjustment component is placed between the two sets of support feet (21).
2. The ultra-thin side-discharge heating device according to claim 1, characterized in that: The front and bottom sides of the housing (1) are evenly provided with air inlets (12), and the front side of the housing (1) is provided with air outlets (11), which are located above the air inlets (12).
3. The ultra-thin side-discharge heating device according to claim 1, characterized in that: The housing (1) is equipped with a graphene-coated aluminum sheet heating element (13) and a temperature controller (14). The temperature controller (14) is located to the left of the graphene-coated aluminum sheet heating element (13) and is electrically connected to the graphene-coated aluminum sheet heating element (13). The graphene-coated aluminum sheet heating element (13) is located between the air outlet (11) and the air inlet (12).
4. The ultra-thin side-discharge heating device according to claim 1, characterized in that: The adjusting assembly includes a connecting rod (2), the top of which is evenly provided with two sets of convex grooves, and a protrusion (3) is provided in the convex groove. A set of springs (31) is provided on the opposite side of the two sets of protrusions (3). The springs (31) are fixedly provided in the convex groove. A connecting block (32) is provided on the top of the protrusion (3). A set of pins (28) is provided on the opposite side of the two sets of connecting blocks (32). A magnet (34) is provided on the side of the pin (28) away from the connecting block (32). A set of pull rings (33) is provided on the opposite side of the two sets of connecting blocks (32).
5. The ultra-thin side-discharge heating device according to claim 4, characterized in that: The connecting rod (2) is positioned between the two sets of support feet (21), with the bottom of the connecting rod (2) flush with the bottom of the support feet (21), and the pull ring (33) is fixedly positioned on the top of the protrusion (3).
6. The ultra-thin side-discharge heating device according to claim 5, characterized in that: The pin (28) on the side away from the connecting block (32) passes through the insertion hole of the concave seat (23) and is inserted into the first fixing hole (26), and corresponds to the second fixing hole (27). The magnet (34) is magnetically attracted to the iron block (35) located in the first fixing hole (26), and corresponds to the iron block (35) in the second fixing hole (27).