Energy-saving window
By designing the mirrored connection strips and isolation structures in the aluminum alloy window, the heat insulation strips and reinforcement strips absorb indoor heat, the problem of heat loss in the aluminum alloy window is solved and better energy-saving effects are achieved.
Patent Information
- Application Number
- CN202422359783.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-26
AI Technical Summary
During use, existing aluminum alloy windows transmit indoor heat through window frame slide rails to the outdoors, resulting in heat loss and affecting energy-saving performance.
An energy-saving window is designed, using mirrored connection strips and isolation structures, including heat insulation strips, reinforcement strips, limiting components and guides. The heat insulation strips and reinforcement strips absorb indoor heat, reduce heat loss, and ensure indoor temperature.
Through the insulation performance of the insulation strips and reinforced strips, heat loss is reduced and energy consumption of indoor heating equipment is reduced, thus achieving better energy saving effects.
Smart Images

Figure CN223135993U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of doors and windows, in particular to an energy-saving window. Background Art
[0002] In a broken bridge window, the aluminum alloy is divided into two parts, and the two aluminum alloys are connected and fixed together through a heat-insulating plastic core to assemble a window with a heat-insulating effect.
[0003] For example, an aluminum alloy window frame structure for increasing the heat-insulating effect with the authorization announcement number of CN208686272U. In the above document, when manufacturing the nylon heat-insulating strip, cross partitions are added to the inner cavity of the nylon heat-insulating strip. The cross partitions effectively increase the overall support ability and stability ability of the nylon heat-insulating strip. Due to the relatively low thermal conductivity of the nylon heat-insulating strip itself, and the heat-insulating cavity formed by the cross partitions and the inner wall of the nylon heat-insulating strip, the heat transfer is further reduced, thus effectively improving the stability of the nylon heat-insulating strip, increasing the service life of the nylon heat-insulating strip, reducing the heat conduction at the same time, and increasing the heat preservation effect. However, in the process of using the aluminum alloy window in the above document, since the aluminum alloy window slides through the window frame to open, and the contact position between the aluminum alloy window and the window frame slide rail is usually an integral structure and made of aluminum alloy material, the aluminum alloy window is easy to transfer the absorbed temperature to the outside through the slide rail in the window frame when absorbing heat, increasing the heat loss in the room, and making the energy-saving performance of the aluminum alloy window poor. Content of the Utility Model
[0004] The purpose of the utility model is to solve the problem that in the prior art, when the aluminum alloy window absorbs the heat in the room, it is easy to transfer the heat to the outside through the window frame guide rail, resulting in heat loss in the room, and to propose an energy-saving window.
[0005] To achieve the above purpose, the utility model provides the following technical solutions:
[0006] Design an energy-saving window, including an energy-saving window main body, a connecting strip and an isolation structure. One side of the energy-saving window main body is an inner aluminum frame, and the other side of the energy-saving window main body is an outer aluminum frame;
[0007] Two groups of connecting strips are respectively arranged at the side ends of the inner aluminum frame and the outer aluminum frame, and the axial length of the connecting strip is the same as the axial lengths of the inner aluminum frame and the outer aluminum frame;
[0008] Each two groups of the connecting strips are arranged in a mirror image, and guide holes are respectively arranged on both sides of the end of the connecting strip;
[0009] A plurality of positioning holes are arranged in the middle section of the connecting strip, and the distance between the adjacent two positioning holes is the same;
[0010] One side of the connecting bar is provided with an isolation structure, and the isolation structures provided for every two groups of the connecting bars are distributed in a mirror image manner.
[0011] Preferably, the isolation structure includes a heat insulation strip, a reinforcing strip, a limiting component and a guiding member;
[0012] One side of the heat insulation strip is connected to the side of the connecting bar away from the energy-saving window main body, and the axial dimension of the heat insulation strip is the same as the axial dimension of the connecting bar;
[0013] The other side of the heat insulation strip is connected to the reinforcing strip, and the axial dimension of the reinforcing strip is the same as the dimension of the reinforcing strip;
[0014] The limiting component is arranged inside the guiding hole, and a plurality of guiding members are arranged at the side end of the reinforcing strip.
[0015] Preferably, a plurality of positioning blocks are arranged in the middle section of the heat insulation strip, and the shape and size of the positioning blocks are exactly the same as those of the positioning holes;
[0016] The distance between the adjacent two sides of the positioning blocks is the same, and the distance between the adjacent two sides of the positioning blocks is the same as the distance between the adjacent two sides of the positioning holes, and the positioning blocks are matched with the positioning holes.
[0017] Preferably, a plurality of connecting holes are arranged on the side of the heat insulation strip adjacent to the energy-saving window, and the axes of the connecting holes are on the same axis as the axis of the guiding hole
[0018] Preferably, the heat insulation strip is fixedly connected to the reinforcing strip, and a connecting groove is arranged at the side end of the reinforcing strip.
[0019] Preferably, the guiding member includes a rotating shaft and a roller;
[0020] Both sides of the plurality of rotating shafts are rotatably arranged inside the connecting groove, and rollers are connected to the outer wall of the rotating shaft.
[0021] Preferably, the limiting component includes a connecting block, a pull ring, a spring and a guiding ring;
[0022] The outer wall of the guiding ring is fixedly arranged at the wall end of the guiding hole, and the inner ring surface of the guiding ring is in clearance fit with the middle section of the connecting block;
[0023] The spring is sleeved on one side of the middle part of the connecting block, and both ends of the spring are fixedly connected to the guiding ring and the connecting block respectively;
[0024] A pull ring is movably connected to the side of the connecting block adjacent to the connecting bar.
[0025] Preferably, the diameter dimension of the end of the connecting block away from the connecting bar is the same as the diameter dimension of the connecting hole, and the end of the connecting block away from the connecting bar can be matched with the connecting hole.
[0026] Preferably, the diameter dimension of the circumferential surface of the connection block adjacent to the connection strip is the same as the diameter dimension of the guide hole, and the side of the connection block adjacent to the connection strip is matched with the guide hole.
[0027] Preferably, the material of the reinforcing strip adjacent to the energy-saving window main body is the same as that of the inner aluminum frame and the outer aluminum frame, and the material of the reinforcing strip away from the outer side of the energy-saving window main body is the same as that of the heat insulation strip.
[0028] The energy-saving window proposed by the present utility model has the beneficial effects that when personnel simultaneously pull the pull rings on both sides, the connection block drives the spring to compress, and then the positioning block of the heat insulation strip is connected to the positioning hole of the connection strip, and then the pull rings are released, so as to fix the isolation structure to the connection strip. Similarly, other connection strips are connected to the corresponding isolation structures. The rolling friction between the rollers and the sliding rails in the window frame drives the rollers to rotate, making the energy-saving window main body slide smoothly along the sliding rails in the window frame. When the energy-saving window main body absorbs the indoor heat and transfers it to the heat insulation strip and the reinforcing strip, due to the good heat insulation performance of the heat insulation strip and the reinforcing strip itself, the heat loss is reduced, the indoor temperature is guaranteed, the consumption of indoor pipe heating equipment is reduced, and energy conservation is further realized. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 is a schematic structural diagram of the present utility model;
[0030] Figure 2 is an exploded view of the partial structure of the present utility model;
[0031] Figure 3 is Figure 2 a schematic structural diagram of A in
[0032] Figure 4 is Figure 2 a schematic structural diagram of the heat insulation strip, the reinforcing strip and the guiding member in
[0033] In the figure: 1. Energy-saving window main body; 101. Inner aluminum frame; 102. Outer aluminum frame; 2. Connection strip; 201. Guide hole; 202. Positioning hole; 3. Isolation structure; 301. Heat insulation strip; 3011. Positioning block; 3012. Connection hole; 302. Reinforcing strip; 3021. Connection groove; 303. Limiting assembly; 3031. Connection block; 3032. Pull ring; 3033. Spring; 3034. Guide ring; 304. Guiding member; 3041. Rotating shaft; 3042. Roller. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0034] The present utility model will be further described below with reference to the accompanying drawings:
[0035] An energy-saving window proposed by the present utility model, asFigure 1 , Figure 2 , Figure 3 and Figure 4 As shown in Figure 1 , Figure 2 , Figure 3 and Figure 4 , it includes an energy-saving window body 1, a connecting strip 2 and an isolation structure 3. One side of the energy-saving window body 1 is an inner aluminum frame 101, and the other side of the energy-saving window body 1 is an outer aluminum frame 102. Two groups of connecting strips 2 are respectively arranged at the side ends of the inner aluminum frame 101 and the outer aluminum frame 102, and the axial length of the connecting strip 2 is the same as the axial lengths of the inner aluminum frame 101 and the outer aluminum frame 102. Every two groups of connecting strips 2 are arranged in a mirror image. Guide holes 201 are respectively arranged on both sides of the end of the connecting strip 2, and a plurality of positioning holes 202 are arranged in the middle section of the connecting strip 2, and the distance between adjacent positioning holes 202 on both sides is the same. An isolation structure 3 is arranged on one side of the connecting strip 2, and the isolation structures 3 arranged for every two groups of connecting strips 2 are distributed in a mirror image. The energy-saving window body 1 is connected to the sliding rail in the window frame through the isolation structure 3, so that the energy-saving window body 1 can move along the window frame sliding rail. The heat absorbed by the outer aluminum frame 102 and the inner aluminum frame 101 is isolated through the isolation structure 3, preventing the heat absorbed by the outer aluminum frame 102 and the inner aluminum frame 101 from being lost due to contact with the sliding rail in the window frame, ensuring the indoor temperature, reducing the energy consumption of the heating equipment, and achieving energy conservation.
[0036] The isolation structure 3 includes a heat insulation strip 301, a reinforcing strip 302, a limiting component 303 and a guiding component 304. The material of the heat insulation strip 301 is nylon 66, which has good heat insulation performance and reduces the heat transfer between the energy-saving window body 1 and the heat insulation strip 301. One side of the heat insulation strip 301 is connected to the side of the connecting strip 2 away from the energy-saving window body 1, and the axial dimension of the heat insulation strip 301 is the same as the axial dimension of the connecting strip 2. The other side of the heat insulation strip 301 is connected to the reinforcing strip 302, and the axial dimension of the reinforcing strip 302 is the same as the dimension of the reinforcing strip 302. The reinforcing strip 302 is used to connect the guiding component 304 and at the same time ensure the overall strength of the isolation structure 3, making the sliding of the energy-saving window body 1 smoother. The limiting component 303 is arranged inside the guide hole 201, and a plurality of guiding components 304 are arranged at the side end of the reinforcing strip 302. The limiting component 303 is used to connect the heat insulation strip 301 and the connecting strip 2, enabling the heat insulation strip 301 to be disassembled.
[0037] A plurality of positioning blocks 3011 are arranged in the middle section of the heat insulation strip 301, and the shape and size of the positioning blocks 3011 are exactly the same as those of the positioning holes 202. The distance between adjacent positioning blocks 3011 on both sides is the same, and the distance between adjacent positioning blocks 3011 on both sides is the same as the distance between adjacent positioning holes 202 on both sides. The positioning blocks 3011 are matched with the positioning holes 202. The heat insulation strip 301 is restricted from tilting through the cooperation between the plurality of positioning blocks 3011 and the positioning holes 202, making the heat insulation strip 301 and the connecting strip 2 always in a parallel state.
[0038] On one side of the heat insulation strip 301 adjacent to the energy-saving window, a plurality of connection holes 3012 are provided, and the axes of the connection holes 3012 and the axis of the guiding hole 201 are on the same axis, so that the limiting component can be connected to the connection holes 3012 and the guiding hole 201 at the same time. The heat insulation strip 301 is fixedly connected to the reinforcing strip 302, and a connection groove 3021 is provided at the side end of the reinforcing strip 302.
[0039] The guiding member includes a rotating shaft 3041 and a roller 3042. Both sides of a plurality of rotating shafts 3041 are rotatably arranged inside the connection groove 3021. The outer wall of the rotating shaft 3041 is connected with the roller 3042. The material of the roller 3042 is the same as that of the heat insulation strip 301, and the diameter of the roller 3042 is the same as the width dimension of the connection groove 3021, so that the roller 3042 fits with the connection groove 3021. When the roller 3042 fits with the sliding rail inside the window frame, the reinforcing strip 302 fits with the sliding rail inside the window frame, avoiding heat loss caused by a gap between the reinforcing strip 302 and the sliding rail inside the window frame.
[0040] The limiting component 303 includes a connection block 3031, a pull ring 3032, a spring 3033 and a guiding ring 3034. The outer wall of the guiding ring 3034 is fixedly arranged at the wall end of the guiding hole 201. The inner ring surface of the guiding ring 3034 has a clearance fit with the middle section of the connection block 3031. The spring 3033 is sleeved on one side of the middle part of the connection block 3031. The two ends of the spring 3033 are respectively fixedly connected to the guiding ring 3034 and the connection block 3031. A pull ring 3032 is movably connected to one side of the connection block 3031 adjacent to the connection strip 2. The pull ring can rotate along the connection block 3031, facilitating a person to drive the connection block 3031 to move through the pull ring 3032. The connection block 3031 can slide along the guiding ring 3034, and at the same time, the connection block 3034 can drive the spring 3033 to be compressed.
[0041] The diameter dimension of the end of the connection block 3031 far from the connection strip 2 is the same as the diameter dimension of the connection hole 3012, and the end of the connection block 3031 far from the connection strip 2 can match the connection hole 3012. The position of the connection block 3031 is restricted by the elastic force of the spring 3033, thereby fixing the heat insulation strip.
[0042] The diameter dimension of the toroidal surface on one side of the connecting block 3031 adjacent to the connecting strip 2 is the same as the diameter dimension of the guiding hole 201. The side of the connecting block 3031 adjacent to the connecting strip 2 matches the guiding hole 201, and the connecting block 3031 can be embedded inside the guiding hole 201 to prevent people from getting scratched by the connecting block. The material of the side of the reinforcing strip 302 adjacent to the energy-saving window main body 1 is the same as the materials of the inner aluminum frame 101 and the outer aluminum frame 102. The material of the outer side of the reinforcing strip 302 away from the energy-saving window main body 1 is the same as the material of the heat insulation strip 301. While ensuring the strength of the reinforcing strip 302, the excellent wear resistance and aging resistance of the material of the reinforcing strip 302 itself ensure the service life of the reinforcing strip 302, and at the same time reduce the situation where the heat absorbed by the energy-saving window main body 1 is transferred and lost through the window frame slide rail.
[0043] Specifically, when a person pulls the pull rings 3032 on both sides simultaneously, the connecting block 3031 drives the spring 3033 to compress along the guiding ring 3034. Subsequently, the positioning block 3011 of the heat insulation strip 302 is connected to the positioning hole 202 of the connecting strip 2. Then, the pull rings 3032 are released, and the elastic force of the spring 3033 drives the connecting block 303 to be connected to the connecting hole 3012, thereby fixing the isolation structure 3 to the connecting strip 2. Similarly, other connecting strips 2 are connected to the corresponding isolation structures 3, and the isolation structure 3 can be replaced through the limiting component 303.
[0044] When the energy-saving window main body 1 is pulled to slide along the guide rail inside the window frame, the sliding friction between the roller 3042 and the slide rail inside the window frame drives the roller 3042 to rotate, making the energy-saving window main body 1 slide smoothly along the slide rail inside the window frame.
[0045] When the heat absorbed by the energy-saving window main body 1 is transferred to the heat insulation strip 301 and the reinforcing strip 302, due to the good heat insulation performance of the heat insulation strip and the reinforcing strip 302 themselves, the heat loss is reduced, the indoor temperature is ensured, the consumption of indoor pipe heating equipment is reduced, and energy conservation is further achieved.
[0046] Although the present utility model has been illustrated and described by referring to the preferred embodiments, those of ordinary skill in the art should understand that various changes in form and details can be made within the scope of the claims.
Claims
1. An energy-saving window, characterized in that: It includes an energy-saving window body, connecting bars, and a separation structure. One side of the energy-saving window body is an inner aluminum frame, and the other side is an outer aluminum frame; Two sets of connecting bars are respectively arranged at the side ends of the inner aluminum frame and the outer aluminum frame, and the axial length of the connecting bars is the same as the axial lengths of the inner aluminum frame and the outer aluminum frame; Every two sets of the connecting bars are arranged in a mirror image, and guiding holes are respectively arranged on both sides of the end of each connecting bar; A plurality of positioning holes are arranged in the middle section of the connecting bar, and the spacing between adjacent positioning holes on both sides is the same; A separation structure is arranged on one side of the connecting bar, and the separation structures arranged for every two sets of the connecting bars are distributed in a mirror image.
2. The energy-saving window according to claim 1, characterized in that: The separation structure includes a heat-insulating strip, a reinforcing strip, a limiting component, and a guiding component; One side of the heat-insulating strip is connected to the side of the connecting bar away from the energy-saving window body, and the axial dimension of the heat-insulating strip is the same as the axial dimension of the connecting bar; The other side of the heat-insulating strip is connected to the reinforcing strip, and the axial dimension of the reinforcing strip is the same as the dimension of the reinforcing strip; The limiting component is arranged inside the guiding hole, and a plurality of guiding components are arranged at the side end of the reinforcing strip.
3. The energy-saving window according to claim 2, wherein: A plurality of positioning blocks are arranged in the middle section of the heat-insulating strip, and the shape and size of the positioning blocks are exactly the same as those of the positioning holes; The spacing between adjacent positioning blocks on both sides is the same, and the spacing between adjacent positioning blocks on both sides is the same as the spacing between adjacent positioning holes on both sides, and the positioning blocks are matched with the positioning holes.
4. The energy-saving window according to claim 2, characterized in that: A plurality of connecting holes are arranged on the side of the heat-insulating strip adjacent to the energy-saving window, and the axis of the connecting holes is on the same axis as the axis of the guiding holes.
5. The energy-saving window according to claim 2, characterized in that: The heat-insulating strip is fixedly connected to the reinforcing strip, and a connecting groove is arranged at the side end of the reinforcing strip.
6. The energy-saving window according to claim 2, wherein: The guiding component includes a rotating shaft and a roller; Both sides of a plurality of the rotating shafts are rotatably arranged inside the connecting groove, and rollers are connected to the outer walls of the rotating shafts.
7. The energy-saving window according to claim 2, characterized in that: The limiting component includes a connecting block, a pull ring, a spring, and a guiding ring; The outer wall of the guiding ring is fixedly arranged at the wall end of the guiding hole, and the inner ring surface of the guiding ring has a clearance fit with the middle section of the connecting block; The spring is sleeved on one side of the middle part of the connecting block, and both ends of the spring are fixedly connected to the guiding ring and the connecting block respectively; A pull ring is movably connected to the side of the connecting block adjacent to the connecting bar.
8. The energy-saving window according to claim 7, wherein: The diameter dimension of the end of the connecting block away from the connecting bar is the same as the diameter dimension of the connecting hole, and the end of the connecting block away from the connecting bar can be matched with the connecting hole.
9. The energy-saving window according to claim 7, characterized in that: The diameter dimension of the side surface of the connecting block adjacent to the connecting bar is the same as the diameter dimension of the guiding hole, and the side of the connecting block adjacent to the connecting bar is matched with the guiding hole.
10. The energy-saving window according to claim 2, wherein: The material of the side of the reinforcing strip adjacent to the energy-saving window body is the same as the materials of the inner aluminum frame and the outer aluminum frame, and the material of the outer side of the reinforcing strip away from the energy-saving window body is the same as the material of the heat-insulating strip.
Citation Information
Patent Citations
Increase aluminum alloy window frame structure of thermal -insulated effect
CN208686272U