Multifunctional intelligent temperature control pet house
By combining the load-bearing and heating components, and utilizing water bag heating and a crank-slider structure, the design solves the problems of cumbersome mode switching and stability issues in existing temperature-controlled pet beds, achieving convenient and safe dual-mode switching and energy-saving heating effects.
Patent Information
- Application Number
- CN202511765340.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-27
- Publication Date
- 2026-03-06
AI Technical Summary
Existing multi-functional intelligent temperature-controlled pet beds suffer from cumbersome operation for switching modes, inaccurate temperature control triggering, and difficulty in balancing structural stability and heating circuit sealing when switching between dual modes.
The design employs a combination of load-bearing components, heating components, and deformation components. Heating is initiated by the pet's own weight squeezing the water bag, and the water in the bag is used for uniform heating. Combined with a crank-slider structure and a rotating connecting component, stable shape switching is achieved, avoiding localized overheating and energy waste in traditional heating methods.
It achieves convenient and reliable dual-mode switching, improves the comfort and safety of pets, reduces energy consumption, ensures structural stability and heating circuit connectivity, and avoids safety hazards caused by accidental deformation of the nest.
Smart Images

Figure CN121605931A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of pet products, and in particular to a multifunctional intelligent temperature-controlled pet bed. Background Technology
[0002] As pet owners demand a higher quality living experience for their pets, dual-mode pet beds that can accommodate both single pets and multiple pets have become a market trend. Products with integrated temperature control are better suited to different seasons, making multifunctional smart temperature-controlled pet beds a necessity for pet-owning families. These beds need to meet both the need for a snug fit in single-pet scenarios and the need for shared space in multi-pet scenarios.
[0003] Existing multifunctional smart temperature-controlled pet beds mostly achieve shape adjustment through simple folding or splicing. Some products integrate heating modules to provide a constant temperature environment, but they generally suffer from cumbersome shape switching operations and inaccurate temperature control triggering. Furthermore, it is difficult to balance structural stability and heating circuit sealing when switching between dual modes.
[0004] Regarding the aforementioned technologies, the inventors believe that there are shortcomings in achieving both stable heating temperature control and convenient and reliable switching between dual modes. Summary of the Invention
[0005] To address the aforementioned technical issues, this application provides a multifunctional intelligent temperature-controlled pet bed.
[0006] This application provides a multifunctional intelligent temperature-controlled pet bed, which adopts the following technical solution:
[0007] A multifunctional intelligent temperature-controlled pet bed includes a frame, on which multiple sets of support components, heating components, and deformable components are arranged; adjacent sets of support components are rotatably connected, and the multiple sets of support components are interconnected; one side of the outermost set of support components is rotatably mounted on the frame; each support component includes a contact soft shell, a water bag, two sets of support columns, and a support plate; both ends of the support plate are fixedly connected to the bottom of the two sets of support columns; the interior of each support column is a hollow cavity, the contact soft shell is disposed on the support plate, and the contact soft shell is connected to the two sets of support columns; the water bag is fixedly disposed inside the contact soft shell, and both ends of the water bag are provided with connection ports; the heating component is connected to the connection ports of the water bags in the multiple sets of support components; the deformable component is disposed at the connection point in the middle of the multiple sets of support components, and the deformable component is used to drive the connection point in the middle of the multiple sets of support components to slide longitudinally.
[0008] By adopting the above technical solution, the connection port for heating is opened by the pet's own weight squeezing the water bag. The heating medium is water in the water bag, and the heat from the water is evenly distributed, avoiding the problem of localized overheating and scalding of pets caused by traditional electric heating wires. At the same time, the design of the soft shell with the water bag provides a soft touch for the pet and gently transfers heat during heating, improving the pet's comfort while resting. When the heating component is not providing temperature, the water in the water bag can also be used for cooling. The water bag, which is not squeezed by the pet, does not consume energy unnecessarily, effectively reducing unnecessary power waste. Multiple sets of support components are rotatably connected, and with the sliding of the transformation components, it is possible to switch between multiple pet or single pet modes. This facilitates companionship between pets and eliminates the need to purchase multiple pet beds, reducing feeding costs. The support column of the support component is a hollow cavity that is connected to the soft shell. With the rotatable connection structure, it provides stable support for the soft shell and adapts to transformation needs. Multiple sets of support components are interconnected, and the heating component can connect to multiple water bags simultaneously, eliminating the need to set up a separate heating unit for each support component.
[0009] Preferably, a switch assembly is provided at the connection ports at both ends of the water bag. The switch assembly includes a piston block and a return spring. A stop block is provided at one end of the piston block, and the other end of the piston block is slidably disposed in the connection port. The return spring is sleeved on the piston block, with one end of the return spring fixedly disposed at the connection port and the other end of the return spring fixedly disposed at the stop block.
[0010] By adopting the above technical solution, when a pet steps onto the support component, its weight compresses the water bag, increasing the internal pressure. This pushes the piston block to overcome the elasticity of the return spring and slide, opening the connection port and connecting it to the heating component, thus starting heating. After the pet leaves, the pressure in the water bag disappears, the return spring drives the piston block back to its original position, automatically closing the connection port and ending heating. The triggering and resetting of the switching component are more sensitive and controllable, avoiding energy waste caused by insufficient elasticity of the water bag leading to the inability of the connection port to close completely and the continuous operation of heating. It also prevents the heating component from running idle when no pet is in use, resulting in a more prominent energy-saving effect.
[0011] Preferably, the deformation assembly includes a fixed plate, a rotating plate, a connecting rod, and a shaping slider; one end of the fixed plate is fixedly mounted on the frame; one side of the rotating plate is rotatably mounted on the lower part of the fixed plate, and the shaping slider is slidably mounted on the upper part of the fixed plate; one end of the connecting rod is rotatably mounted on the other side of the rotating plate, and the other end of the connecting rod is rotatably mounted on the shaping slider; a handle is provided on the other side of the rotating plate.
[0012] By adopting the above technical solution, the structure of the fixed plate, rotating plate, connecting rod and shaping slider is combined into a crank-slider structure. When the shaping slider is the driving component, there are two sets of dead point positions. Self-locking is achieved by using the dead point positions. The two sets of dead point positions correspond to the single pet state and the multi-pet state. The force direction of the connecting rod, rotating plate and shaping slider is collinear. It is difficult for external force to push the mechanism away from the current position. The target shape can be stably maintained without additional buckles or locking parts. This avoids the problem of loosening and displacement of traditional deformable structures. It ensures that the shape of the nest does not change unexpectedly when the pet is resting and moving in the nest, and eliminates the safety hazards of pets being squeezed, frightened or falling due to sudden deformation of the nest.
[0013] Preferably, the rotating plate has fixing grooves on both sides of one side; the fixing plate has two sets of positioning structures, which are arranged on both sides of the fixing plate. Each positioning structure includes a positioning groove, a positioning pin, and a positioning spring; the positioning groove is arranged on the fixing plate, and the positioning pin is slidably arranged in the positioning groove; one end of the positioning spring is fixedly arranged in the positioning groove, and the other end of the positioning spring is fixedly arranged at the bottom of the positioning pin.
[0014] By adopting the above technical solution, the dead point position of the crank-slider mechanism prevents the nest from deforming on its own through mechanical characteristics. The positioning structure uses a positioning spring to push the positioning pin into the fixed groove of the rotating plate, forming a physical limit. The two work together to avoid the risk of the mechanism breaking through the dead point due to the pet's violent activities or external impacts when relying solely on the dead point self-locking. It also prevents accidental switching of modes caused by accidental touch of the handle or slight shaking, ensuring that the single-pet mode and multi-pet mode remain stable during use. It completely eliminates the risk of squeezing, fright, or falling caused by the sudden deformation of the nest when the pet is in the nest, greatly improving the safety of pet use. Only by applying a clear external force through the handle can the rotating plate overcome the elasticity of the positioning spring, causing the fixed groove to disengage from the positioning pin, thereby breaking through the dead point position and completing the mode switching.
[0015] Preferably, the heating assembly includes a fixed housing, a water tank, two sets of water pipes, and a heating coil; one end of the fixed housing is disposed on one side of the outermost set of the supporting components; the fixed housing is rotatably connected to the supporting column, and the fixed housing communicates with the supporting column; the other end of the fixed housing is fixedly disposed on the frame; the water tank is fixedly disposed inside the fixed housing; one end of each of the two sets of water pipes is connected to both ends of the water tank, and the other end of each of the two sets of water pipes is disposed in the hollow cavity inside the multiple sets of supporting columns; the water pipes communicate with the connection port of the water bag; the heating coil is disposed inside the water tank.
[0016] By adopting the above technical solution, the heating coil is built into the water tank. The connection between the water bag and the water tank is connected through a water pipe, so that the heating coil can centrally heat the water in the water tank and the water bag. Compared with decentralized heating, it continues the water medium heating logic of the water bag. The heating coil does not directly contact the pet, but transfers heat through the water, which can effectively avoid the risk of burns caused by exposed heating wires. At the same time, water has a high specific heat capacity and good heat preservation effect after heating. Even if the heating coil works intermittently, it can maintain a stable temperature of the pet and reduce energy consumption.
[0017] Preferably, the water pipe is a high-temperature resistant flexible hose.
[0018] By adopting the above technical solution, the high-temperature resistant hose has good flexibility and bending performance. When the load-bearing component rotates with the deformation component, the hose can bend and stretch flexibly with the rotation angle of the load-bearing column. Unlike rigid pipes, it does not restrict the rotation range of the load-bearing component. It also avoids the breakage and damage of the pipe due to pulling and squeezing. It ensures smooth switching of the housing shape while always maintaining the continuity of the heating circuit and will not cause the hot water supply to be interrupted due to deformation.
[0019] Preferably, a water inlet is provided on one side of the fixed housing, the water inlet is connected to the water tank, and a one-way valve is provided inside the water inlet.
[0020] Preferably, the system further includes multiple sets of rotating communication components, which are respectively disposed between the fixed housing and the supporting column and between two adjacent sets of supporting columns.
[0021] Preferably, the rotating communication assembly includes a slide rail, a locking slider, a locking rod, and a bellows; one end of the locking rod is rotatably mounted on a single set of the bearing columns; the slide rail is fixedly mounted on an adjacent set of the bearing columns or on the fixed housing; the locking slider is slidably mounted on the slide rail; both ends of the slide rail are provided with locking grooves, and each of the two sets of locking grooves is provided with a locking spring and a locking pin; the locking pin is slidably mounted in the locking groove; one end of the locking spring is fixedly mounted in the locking groove, and the other end of the locking spring is fixedly mounted at the bottom of the locking pin; the bottom of the locking slider is provided with a mating groove; one end of the bellows is fixedly mounted on a single set of the bearing columns, and the other end of the bellows is fixedly mounted on an adjacent set of the bearing columns or on the fixed housing, and the bellows communicates with the hollow cavity of the bearing column or the fixed housing.
[0022] By adopting the above technical solution, the locking logic of the rotating connecting component is completely synchronized with the dead point position of the deformable component. When the nest is switched to the multi-pet mode, the bearing component moves upward, causing the locking rod to pull the locking slider to the top of the slide rail. At this time, the locking spring in the locking groove pushes the locking pin into the slider's mating groove. When switched to the single-pet mode, the slider slides to the bottom of the slide rail, and the bearing component moves downward, causing the locking rod to pull the locking slider to the bottom of the slide rail, where it engages synchronously with the locking pin at the other end of the slide rail, reinforcing the movement between multiple bearing components. This resists stronger impacts such as pets' vigorous activities and external collisions, completely preventing accidental displacement of the nest after mode switching, and ensuring the safety of pets when resting and moving in the nest. The corrugated pipe combines flexibility and sealing, with both ends fixed to the bearing column or fixed shell, and connected to the hollow cavity and fixed shell. It can flexibly bend and extend with the rotation and sliding of the bearing component, and can completely seal the water passage to prevent hot water from leaking from the rotating connection.
[0023] Preferably, the corrugated pipe of the rotating communication component is separately provided at the connection point of the middle part of the multiple sets of bearing components, and the corrugated pipe at the connection point of the middle part of the multiple sets of bearing components is connected to the deformable component.
[0024] By adopting the above technical solution, the central connection of the load-bearing component is the core area for the longitudinal sliding of the deformable component. If rigid structures such as slide rails and locking sliders are retained, mechanical interference will occur during the up and down sliding, resulting in switching jams or even failure to reach the desired position. By retaining only the design of the bellows, its flexible, bendable, and stretchable characteristics can fully adapt to the longitudinal sliding of the central connection and the rotation requirements of the load-bearing component. It will not cause any obstruction to the dead point switching of the deformable component, making the switching between multi-pet mode and single-pet mode smoother and less labor-intensive, and avoiding component wear or failure due to structural interference.
[0025] In summary, this application includes at least one of the following beneficial technical effects:
[0026] 1. The structure of the fixed plate, rotating plate, connecting rod, and shaping slider is combined into a crank-slider structure. When the shaping slider is the driving component, there are two sets of dead point positions. Self-locking is achieved by utilizing the dead point positions. The two sets of dead point positions correspond to the single pet state and the multi-pet state. The force direction of the connecting rod, rotating plate, and shaping slider is collinear, making it difficult for external forces to push the mechanism out of its current position. The target shape can be stably maintained without the need for additional buckles or locking components, avoiding the problems of loosening and displacement of traditional deformable structures. This ensures that the shape of the nest does not change unexpectedly when the pet is resting or moving in the nest, and eliminates the safety hazards of pets being squeezed, frightened, or falling due to sudden deformation of the nest.
[0027] 2. The locking logic of the rotating connecting component is completely synchronized with the dead point position of the deformable component. When the pet enclosure switches to multi-pet mode, the supporting component moves upward, causing the locking rod to pull the locking slider to the top of the slide rail. At this time, the locking spring in the locking groove pushes the locking pin into the slider's mating groove. When switching to single-pet mode, the slider slides to the bottom of the slide rail, and the supporting component moves downward, causing the locking rod to pull the locking slider to the bottom of the slide rail, where it engages synchronously with the locking pin at the other end of the slide rail, reinforcing the movement between multiple supporting components. This resists stronger impacts from pets' vigorous activities and external collisions, completely preventing accidental displacement of the pet enclosure after mode switching and ensuring the safety of pets resting and moving around in the enclosure. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the overall structure of the multi-pet mode in the embodiment.
[0029] Figure 2 This is a schematic diagram of the overall structure of the single-pet mode in the embodiment.
[0030] Figure 3 This is a cross-sectional schematic diagram of the internal structure of the carrier component in the embodiment.
[0031] Figure 4 This is a cross-sectional schematic diagram of the internal structure of the heating component in the embodiment.
[0032] Figure 5 This is a cross-sectional schematic diagram of the positioning structure in the embodiment.
[0033] Figure 6 This is a cross-sectional schematic diagram of the rotating connecting component in the embodiment.
[0034] Figure 7 yes Figure 6 A magnified view of part A in the middle.
[0035] Explanation of reference numerals in the attached drawings: 1. Frame; 2. Bearing component; 21. Contact soft shell; 22. Water bag; 221. Connection port; 23. Bearing column; 231. Hollow cavity; 24. Switching assembly; 241. Piston block; 2411. Stop block; 242. Return spring; 25. Support plate; 3. Heating assembly; 31. Fixed shell; 311. Water inlet; 312. One-way valve; 32. Water tank; 33. Water pipe; 34. Heating coil; 4. Variable... 41. Shaped component; 41. Fixing plate; 411. Positioning structure; 4111. Positioning groove; 4112. Positioning pin; 4113. Positioning spring; 42. Rotating plate; 421. Fixing groove; 43. Connecting rod; 44. Shaped slider; 45. Handle; 5. Rotary connecting component; 51. Slide rail; 511. Locking groove; 512. Locking spring; 513. Locking pin; 52. Locking slider; 521. Mating groove; 53. Locking rod; 54. Bellows. Detailed Implementation
[0036] The following is in conjunction with the appendix Figure 1-7 This application will be described in further detail.
[0037] This application discloses a multifunctional intelligent temperature-controlled pet bed. (Refer to...) Figure 1 and Figure 3 The system includes a frame 1, on which multiple sets of load-bearing components 2, heating components 3, and deformation components 4 are mounted. Adjacent sets of load-bearing components 2 are rotatably connected, and the multiple sets of load-bearing components 2 are interconnected. One side of the outermost set of load-bearing components 2 is rotatably mounted on the frame 1. Each load-bearing component 2 includes a contact soft shell 21, a water bag 22, two sets of load-bearing columns 23, and a support plate 25. The two ends of the support plate 25 are fixedly connected to the bottom of the two sets of load-bearing columns 23. The support plate 25 is used to support the weight of the pet and also to help the pet squeeze the water bag 22. The interior of the load-bearing column 23 is a hollow cavity 231. The contact soft shell 21 is mounted on the support plate 25 and is connected to the two sets of load-bearing columns 23. The water bag 22 is fixedly mounted inside the contact soft shell 21, and both ends of the water bag 22 are provided with connection ports 221. The heating component 3 is connected to the connection port 221 of the water bag 22 in the multiple bearing components 2; a switch component 24 is provided at the connection port 221 at both ends of the water bag 22, the switch component 24 includes a piston block 241 and a return spring 242; a stop block 2411 is provided at one end of the piston block 241, and the other end of the piston block 241 is slidably disposed in the connection port 221; the return spring 242 is sleeved on the piston block 241, one end of the return spring 242 is fixedly disposed on the connection port 221, and the other end of the return spring 242 is fixedly disposed on the stop block 2411; when the pet enters the bearing component 2, the pressure of the pet causes the water in the water bag 22 to break through the force of the return spring 242 and push open the piston block 241, so that the water bag 22 is connected to the heating component 3, and the water in the water bag 22 is heated by the heating component 3.
[0038] Reference Figure 1 and Figure 2The deformation component 4 is located at the connection point of multiple load-bearing components 2, and is used to drive the longitudinal sliding of the connection point of the multiple load-bearing components 2. The deformation component 4 includes a fixed plate 41, a rotating plate 42, a connecting rod 43, and a shaping slider 44. One end of the fixed plate 41 is fixedly mounted on the frame. One side of the rotating plate 42 is rotatably mounted on the lower part of the fixed plate 41, and the shaping slider 44 is slidably mounted on the upper part of the fixed plate 41. One end of the connecting rod 43 is rotatably mounted on the other side of the rotating plate 42, and the other end of the connecting rod 43 is rotatably mounted on the shaping slider 44. A handle 45 is provided on the other side of the rotating plate 42. The deformation component 4 is driven by the handle 45. When the rotating plate 42 is moved, the shaping slider 44 slides upward, causing the connecting rod 43 of the rotating plate 42 and the shaping slider 44 to form a collinearity. Then, the deforming component 4 reaches the first dead point position. The shaping slider 44 drives the connection point in the middle of the multiple bearing components 2 to slide upward. Through the dead point position, a W-shaped multi-pet mode is formed by self-locking. When the handle 45 is rotated by external force, the top shaping slider 44 slides downward. The connecting rod 43 of the rotating plate 42 and the shaping slider 44 are collinear again. The deforming component 4 reaches the second dead point position. The shaping slider 44 drives the connection point in the middle of the multiple bearing components 2 to slide downward. Through the dead point position, a U-shaped single-pet mode is formed by self-locking.
[0039] Reference Figure 1 and Figure 4 The heating assembly 3 includes a fixed housing 31, a water tank 32, two sets of water pipes 33, and a heating coil 34. One end of the fixed housing 31 is located on one side of the outermost set of supporting components 2. The fixed housing 31 is rotatably connected to the supporting column 23, and the fixed housing 31 communicates with the supporting column 23. The other end of the fixed housing 31 is fixedly mounted on the frame 1. The water tank 32 is fixedly mounted inside the fixed housing 31. One end of each set of water pipes 33 is connected to both ends of the water tank 32. The other end of 33 is located inside the hollow cavity 231 inside the multiple sets of bearing columns 23. The water pipe 33 is connected to the connection port 221 of the water bag 22. The water pipe 33 is a high-temperature resistant hose to avoid affecting the water flow when the bearing component 2 needs to be rotated. The heating coil 34 is located inside the water tank 32. A water inlet 311 is provided on one side of the fixed housing 31. The water inlet 311 is connected to the water tank 32. A one-way valve 312 is provided inside the water inlet 311. The water inlet 311 is used to replenish water into the water tank 32.
[0040] Reference Figure 1 and Figure 5The rotating plate 42 has fixing grooves 421 on both sides of one side; the fixing plate 41 has two sets of positioning structures 411 on both sides of the fixing plate 41. The positioning structure 411 includes a positioning groove 4111, a positioning pin 4112, and a positioning spring 4113; the positioning groove 4111 is set on the fixing plate 41, and the positioning pin 4112 is slidably set in the positioning groove 4111; one end of the positioning spring 4113 is fixedly set in the positioning groove 4111, and the other end of the positioning spring 4113 is fixedly set at the bottom of the positioning pin 4112; the positioning structure 411 pushes the positioning pin 4112 into the fixing groove 421 of the rotating plate 42 through the positioning spring 4113, so that the rotating plate 42 and the fixing plate 41 form a physical limit. With the dead point position generated by the deformation component 4, the nest body is doubly fixed, so that the single pet mode or multi pet mode can only be switched by driving the rotating plate 42 to break through the dead point position and the limit between the rotating plate 42 and the fixing plate 41 through the external force handle 45.
[0041] Reference Figure 1 , Figure 6 and Figure 7It also includes multiple sets of rotating communication components 5, which are respectively disposed between the fixed housing 31 and the bearing column 23 and between two adjacent sets of bearing columns 23. Each rotating communication component 5 includes a slide rail 51, a locking slider 52, a locking rod 53, and a bellows 54. One end of the locking rod 53 is rotatably disposed on a single set of bearing columns 23. The slide rail 51 is fixedly disposed on another adjacent set of bearing columns 23 or on the fixed housing 31. The locking slider 52 is slidably disposed on the slide rail 51. When the bearing column 23 rotates under the force of the deformation component 4, the locking mechanism locks the column. Rod 53 drives locking slider 52 to slide on slide rail 51; both ends of slide rail 51 are provided with locking grooves 511, and each set of locking grooves 511 is provided with locking spring 512 and locking pin 513; locking pin 513 is slidably disposed in locking groove 511; one end of locking spring 512 is fixedly disposed in locking groove 511, and the other end of locking spring 512 is fixedly disposed at the bottom of locking pin 513; the bottom of locking slider 52 is provided with mating groove 521; when deformation component 4 drives multiple sets of bearing components 2 to slide upward, the housing moves towards the multiple pet molds When switching modes, the locking lever 53 drives the locking slider 52 to slide towards one end of the slide rail 51. The locking pin 513 on the slide rail 51 pops out and locks with the mating groove 521, fixing the groups of bearing components 2 together. The dead point position of the mating deformation component 4 stabilizes the structure. When the deformation component 4 drives multiple groups of bearing components 2 to slide downward, the housing switches to single-feed mode. The locking lever 53 drives the locking slider 52 to slide towards the other end of the slide rail 51. The locking pin 513 at the other end pops out and locks with the mating groove 521, fixing the groups of bearing components 2 together in single-feed mode. The bellows 54 is fixed at one end on a single set of bearing columns 23, and the other end of the bellows 54 is fixed on an adjacent set of bearing columns 23 or a fixed housing 31. The bellows 54 is connected to the hollow cavity 231 of the bearing column 23 or the fixed housing 31. The bellows 54 cooperates with the rotation between the bearing components 2 to avoid affecting the connection of the water pipe 33. A bellows 54 for rotating connection component 5 is separately provided at the connection point in the middle of multiple sets of bearing components 2. The bellows 54 at the connection point in the middle of multiple sets of bearing components 2 is connected to the deformation component 4.
[0042] The working principle of the multifunctional intelligent temperature-controlled pet nest in this application is as follows: When switching to multi-pet mode, rotating the handle 45 of the deformation component 4 drives the rotating plate 42. The rotating plate 42 drives the shaping slider 44 to slide upward along the fixed plate 41 via the connecting rod 43. When the rotating plate 42, the connecting rod 43, and the shaping slider 44 are collinear, the deformation component 4 reaches the first dead point position. The dead point position can achieve self-locking. At the same time, the shaping slider 44 drives the connection of the middle part of multiple sets of bearing components 2 to slide upward, finally forming a structure that can accommodate multiple pets. During this process, when the deformation component 4 drives the bearing components 2 to move, it will drive the locking rod 53 in the rotating connecting component 5 to move, thereby allowing the locking slider 52 to slide along the slide rail 51 to one end. At this time, the locking spring 512 in the locking groove 511 at the end of the slide rail 51 will push the locking pin 513 to pop out and lock with the mating groove 521 at the bottom of the locking slider 52, fixing the position of each set of bearing components 2, and further ensuring the safety of multiple pets. In addition to ensuring the stability of the structure in the single pet mode, the positioning spring 4113 of the positioning structure 411 on the fixed plate 41 will push the positioning pin 4112 into the fixing groove 421 on the corresponding side of the rotating plate 42 to form a physical limit, which, together with the dead point self-locking, achieves double fixation. When it is necessary to switch to the single pet mode, an external force is applied to rotate the handle 45 to cause the shaping slider 44 to slide down. When the rotating plate 42, the connecting rod 43 and the shaping slider 44 are collinear again, the deformation component 4 reaches the second dead point position and achieves self-locking. The shaping slider 44 will drive the connection in the middle of the bearing component 2 to slide down, so that the whole structure is suitable for a single pet. Similarly, when the bearing component 2 moves, the locking rod 53 will drive the locking slider 52 to slide to the other end of the slide rail 51. The locking pin 513 at this end pops out and locks with the matching groove 521, fixing the bearing component 2. The positioning pin 4112 of the positioning structure 411 will also be inserted into the fixing groove 421 on the other side of the rotating plate 42. Again, the double fixation ensures that the structure does not loosen in the single pet mode.In the initial state, the return spring 242 of the switch assembly 24 at the connection port 221 of the water bag 22 is in its natural state, the piston block 241 closes the connection port 221, and the water bag 22 is disconnected from the heating assembly 3. When the pet enters the bearing assembly 2, the pet's own weight exerts pressure on the water bag 22 inside the contact soft shell 21. The force generated by the water in the water bag 22 under pressure overcomes the elastic force of the return spring 242 and pushes open the piston block 241. At this time, the water bag 22 forms a communication channel with the water pipe 33 of the heating assembly 3, and the water tank 32 of the heating assembly 3 can be connected by a one-way valve 312. Water inlet 311 replenishes the water source to prevent backflow. After connection, activating heating coil 34 heats the water in water tank 32 and the water connected to water bag 22 via two sets of high-temperature resistant flexible water pipes 33. Because water pipe 33 is flexible, even if the supporting component 2 rotates to switch modes, the water flow remains unaffected. Multiple supporting components 2 are connected via the corrugated pipe 54 of the rotating connecting component 5. The corrugated pipe 54 adapts to the rotation of the supporting components 2, preventing damage or blockage of the water pipe 33 due to rotation and ensuring water continuity.
[0043] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A multifunctional smart temperature control pet house, characterized in that: The utility model provides a kind of heating device, including frame (1), which is provided with multiple groups of bearing assembly (2), heating assembly (3) and deformation assembly (4) on the frame (1);Two groups of the bearing assembly (2) adjacent are rotatably connected, and multiple groups of the bearing assembly (2) are interconnected;The side of the bearing assembly (2) of most edge group is rotatably arranged on frame (1);The bearing assembly (2) includes contact soft shell (21), water bag (22), two groups of bearing column (23) and support plate (25);Two ends of the support plate (25) are fixedly connected at the bottom of two groups of bearing column (23) respectively;The inside of bearing column (23) is hollow cavity (231), and the contact soft shell (21) is arranged on the support plate (25), and the contact soft shell (21) is communicated with two groups of bearing column (23);The water bag (22) is fixedly arranged in the inside of the contact soft shell (21), and two ends of the water bag (22) are provided with connecting port (221);The heating assembly (3) is communicated with the connecting port (221) of water bag (22) in multiple groups of bearing assembly (2);The deformation assembly (4) is arranged at the connecting portion of the middle of multiple groups of bearing assembly (2), and the deformation assembly (4) is used to drive the connecting portion of the middle of multiple groups of bearing assembly (2) to slide longitudinally.
2. The multifunctional intelligent temperature-controlled pet house according to claim 1, characterized in that: The connecting port (221) of both ends of the water bag (22) is provided with switch assembly (24), and the switch assembly (24) includes piston block (241) and reset spring (242);One end of the piston block (241) is provided with stopper (2411), and the other end of the piston block (241) is slidably arranged in the connecting port (221);The reset spring (242) is sleeved on the piston block (241), one end of the reset spring (242) is fixedly arranged on the connecting port (221), and the other end of the reset spring (242) is fixedly arranged on the stopper (2411).
3. The multifunctional intelligent temperature-controlled pet house according to claim 1, characterized in that: The deformation assembly (4) includes fixed plate (41), rotating plate (42), connecting rod (43) and shaped sliding block (44);One end of the fixed plate (41) is fixedly arranged on the rack;One side of the rotating plate (42) is rotatably arranged on the lower part of the fixed plate (41), and the shaped sliding block (44) is slidably arranged on the upper part of the fixed plate (41);One end of the connecting rod (43) is rotatably arranged on the other side of the rotating plate (42), and the other end of the connecting rod (43) is rotatably arranged on the shaped sliding block (44);The other side of the rotating plate (42) is provided with handle (45).
4. The multifunctional intelligent temperature-controlled pet house according to claim 3, characterized in that: One side of the rotating plate (42) is provided with a fixed groove (421); the fixed plate (41) is provided with two groups of positioning structures (411), and the two groups of positioning structures (411) are arranged on the two sides of the fixed plate (41); the positioning structure (411) comprises a positioning groove (4111), a positioning pin (4112) and a positioning spring (4113); the positioning groove (4111) is arranged on the fixed plate (41), the positioning pin (4112) is slidably arranged in the positioning groove (4111), and one end of the positioning spring (4113) is fixedly arranged in the positioning groove (4111), and the other end of the positioning spring (4113) is fixedly arranged at the bottom of the positioning pin (4112).
5. The multifunctional smart temperature-controlled pet house according to claim 1, characterized in that: The heating assembly (3) comprises a fixed shell (31), a water tank (32), two groups of water passing pipelines (33) and a heating coil (34); one end of the fixed shell (31) is arranged on one side of the other group of the bearing assembly (2) at the edge; the fixed shell (31) is rotationally connected with the bearing column (23), and the fixed shell (31) communicates with the bearing column (23); the other end of the fixed shell (31) is fixedly arranged on the frame body (1); the water tank (32) is fixedly arranged in the fixed shell (31), one end of each of the two groups of water passing pipelines (33) is communicated with the two ends of the water tank (32), and the other end of each of the two groups of water passing pipelines (33) is arranged in the hollow cavity (231) inside the plurality of bearing columns (23), and the water passing pipeline (33) communicates with the connecting port (221) of the water bag (22); the heating coil (34) is arranged in the water tank (32).
6. The multifunctional smart temperature-controlled pet house according to claim 5, characterized in that: The water passing pipeline (33) is a high-temperature-resistant hose.
7. The multi-functional smart temperature-controlled pet house according to claim 5, wherein: One side of the fixed shell (31) is provided with a water supplementing port (311), the water supplementing port (311) communicates with the water tank (32), and a one-way valve (312) is arranged in the water supplementing port (311).
8. The multi-functional smart temperature-controlled pet house according to claim 5, wherein: A plurality of rotating communication assemblies (5) are further included, and the plurality of rotating communication assemblies (5) are arranged between the fixed shell (31) and the bearing column (23) and between the adjacent two groups of bearing columns (23).
9. The multi-functional smart temperature-controlled pet house according to claim 8, characterized in that: The rotating communication assembly (5) comprises a sliding rail (51), a locking slider (52), a locking rod (53) and a bellows (54); one end of the locking rod (53) is rotatably arranged on a single set of the bearing column (23); the sliding rail (51) is fixedly arranged on the adjacent another set of the bearing column (23) or the fixed shell (31); the locking slider (52) is slidingly arranged on the sliding rail (51); both ends of the sliding rail (51) are provided with locking grooves (511), and two sets of the locking grooves (511) are provided with locking springs (512) and locking pins (513) therein; the locking pin (513) is slidingly arranged in the locking groove (511); one end of the locking spring (512) is fixedly arranged in the locking groove (511), and the other end of the locking spring (512) is fixedly arranged at the bottom of the locking pin (513); the bottom of the locking slider (52) is provided with a matching groove (521); one end of the bellows (54) is fixedly arranged on a single set of the bearing column (23), and the other end of the bellows (54) is fixedly arranged on the adjacent another set of the bearing column (23) or the fixed shell (31), and the bellows (54) is in communication with the hollow cavity (231) of the bearing column (23) or the fixed shell (31).
10. The multi-functional smart temperature-controlled pet house according to claim 9, wherein: The connecting part of the middle part of the plurality of sets of the bearing assembly (2) is separately provided with the bellows (54) of the rotating communication assembly (5), and the bellows (54) of the connecting part of the middle part of the plurality of sets of the bearing assembly (2) is connected with the deformation assembly (4).