Energy-saving door and window profile with inner side and inner surface of outer side wrapped in embedded mode
By embedding multiple layers of insulation on the inner and outer surfaces of door and window profiles, the traditional surface heat transfer method is changed to a line heat transfer method, which solves the problem of insufficient thermal insulation performance of existing profiles and meets the thermal insulation requirements of ultra-low energy consumption buildings.
Patent Information
- Application Number
- CN202520076523.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-01-14
AI Technical Summary
The thermal insulation performance of existing composite energy-saving profiles for doors and windows cannot meet the standards for ultra-low energy consumption and near-zero energy consumption buildings, and traditional surface heat transfer methods need to be improved.
The design of energy-saving door and window profiles with embedded wrapping on the inner and outer surfaces changes the traditional surface heat transfer mode to line heat transfer mode by installing multiple layers of heat insulation on the inner and outer surfaces of the window sash and window frame profiles, thereby reducing the heat transfer coefficient of the profiles.
It achieves thermal insulation effects that meet the standards for ultra-low energy consumption and near-zero energy consumption buildings, and improves the thermal insulation performance of doors and windows.
Smart Images

Figure CN223724425U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to energy -conserving door and window section bar technical field, more specifically, the utility model relates to a kind of energy -conserving door and window section bar of inside and outside inside surface embedded covering. BACKGROUND
[0002] The energy-saving composite section bar for doors and windows in the prior art has broken bridge aluminum alloy composite energy-saving section bar, broken bridge steel composite energy-saving section bar and copper composite section bar, and the size of the heat insulation strip is limited and cannot be too large, so the heat preservation performance cannot meet high requirements.
[0003] A door and window composite energy-saving section bar is disclosed in Chinese Utility Model No. CN201721457719.3, which comprises an outdoor side metal section bar, an intermediate plastic section bar and an indoor side metal section bar. The outdoor side metal section bar and the intermediate plastic section bar are connected by a slot that engages with each other, and the indoor side metal section bar and the intermediate plastic section bar are also connected by a slot that engages with each other. The outdoor side metal section bar, the intermediate plastic section bar and the indoor side metal section bar are connected together to form the door and window composite energy-saving section bar. A first cavity is provided between the outdoor side metal section bar and the intermediate plastic section bar, and a second cavity is provided between the indoor side metal section bar and the intermediate plastic section bar. Foaming sealing material is poured into the first cavity and the second cavity to strengthen the connection between the outdoor side metal section bar and the intermediate plastic section bar and the connection between the indoor side metal section bar and the intermediate plastic section bar. The metal is located on the outdoor and indoor sides, and can be subjected to various surface treatments to have good weather resistance. The plastic section bar is located in the middle to achieve good energy-saving effect.
[0004] However, the door and window composite energy-saving section bar in the above technical solution has a heat preservation mode that belongs to the traditional section bar surface heat transfer mode, and still needs to meet the ultra-low energy consumption and near-zero energy consumption building standards. Therefore, it is necessary to propose a kind of energy-saving door and window section bar with inside and outside inside surface embedded covering to at least partially solve the problems existing in the prior art. SUMMARY
[0005] A series of simplified concepts are introduced in the summary section, which will be further described in detail in the detailed description section. The summary section of the utility model does not mean to attempt to limit the key features and necessary technical features of the claimed technical solution, and even less means to determine the protection scope of the claimed technical solution.
[0006] To at least partially solve the above problems, the utility model provides a kind of energy-saving door and window section bar of inside and outside inner surface embedded covering, comprising: energy-saving door and window section bar main body, the energy-saving door and window section bar main body includes sash section bar part and window frame section bar part, the sash section bar part is configured in the upside of window frame section bar part, and the inside, outside inner surface of sash section bar part is respectively configured with first inner upper covering heat insulation layer, first outer upper covering heat insulation layer, the inside, outside inner surface of window frame section bar part is respectively configured with first inner lower covering heat insulation layer, first outer lower covering heat insulation layer.
[0007] According to the energy-saving door and window section bar of inside and outside inner surface embedded covering of the utility model embodiment, the sash section bar part includes first inner sash section bar, first intermediate heat insulation strip part, first outer sash section bar, the first intermediate heat insulation strip part is configured between first outer sash section bar, first inner sash section bar, the first inner upper covering heat insulation layer is configured on the outer surface of first inner sash section bar, and the first outer upper covering heat insulation layer is configured on the outside inner surface of first outer sash section bar.
[0008] According to the energy-saving door and window section bar of inside and outside inner surface embedded covering of the utility model embodiment, the first inner upper covering heat insulation layer includes first inner upper covering heat insulation section, second inner upper covering heat insulation section, third inner upper covering heat insulation section, the first inner upper covering heat insulation section is configured on the outer upper surface of first inner sash section bar, the second inner upper covering heat insulation section is configured on the outer left surface of first inner sash section bar, and the third inner upper covering heat insulation section is configured on the outer lower surface of first inner sash section bar.
[0009] According to the energy-saving door and window section bar of inside and outside inner surface embedded covering of the utility model embodiment, the outer left surface of first inner sash section bar has a plurality of first inner composite ribs, and the inside of first inner upper covering heat insulation section has composite groove corresponding to first inner composite rib.
[0010] According to the energy-saving door and window section bar of inside and outside inner surface embedded covering of the utility model embodiment, the first inner upper covering heat insulation layer, first inner lower covering heat insulation layer have inner heat insulation strip between, and the first outer upper covering heat insulation layer, first outer lower covering heat insulation layer have outer heat insulation strip between.
[0011] According to the energy-saving door and window section bar of inside and outside inner surface embedded covering of the utility model embodiment, the lower end of second inner upper covering heat insulation section has inner pull groove, first clamping seat strip is configured in the inner pull groove, and the inner heat insulation strip is configured on first clamping seat strip.
[0012] According to the energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side, the first intermediate heat insulation strip part comprises a first intermediate upper heat insulation strip, a first intermediate lower heat insulation strip and a first cotton strip.
[0013] According to the energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side, the window frame profile part comprises a second inner window frame profile, a second intermediate heat insulation strip part and a second outer window frame profile, the second intermediate heat insulation strip part is arranged between the second outer window frame profile and the second inner window frame profile, the first inner lower coated heat insulation layer is arranged on the outer surface of the second inner window frame profile, and the first outer lower coated heat insulation layer is arranged on the inner surface of the outer side of the second outer window frame profile.
[0014] According to the energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side, the inner rubber strip is arranged between the sash profile part and the window frame profile part.
[0015] According to the energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side, the end of the first cotton strip is provided with a first side heat insulation strip.
[0016] Compared with the prior art, the energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side has at least the following beneficial effects:
[0017] The utility model provides a kind of energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side, which comprises an energy-saving door and window profile main body, the energy-saving door and window profile main body includes sash profile part and window frame profile part, wherein the sash profile part is located in the upper side of the window frame profile part, the first inner upper coated heat insulation layer and the first outer upper coated heat insulation layer are respectively installed on the inner side and the inner surface of the outer side of the sash profile part, the first inner lower coated heat insulation layer and the first outer lower coated heat insulation layer are respectively installed on the inner side and the inner surface of the outer side of the window frame profile part, the first inner upper coated heat insulation layer, the first outer upper coated heat insulation layer, the first inner lower coated heat insulation layer and the first outer lower coated heat insulation layer are embeddedly coated, and then the existing conventional profile surface heat transfer mode is changed to line heat transfer mode, the heat transfer coefficient of profile is reduced, so as to meet the ultra-low energy consumption, near zero energy consumption building standard.
[0018] The energy-saving door and window profile embeddedly coated on the inner side and the inner surface of the outer side has other advantages, objects and features, which will be embodied in the following description, and will be understood by those skilled in the art through research and practice of the utility model. BRIEF DESCRIPTION OF DRAWINGS
[0019] The accompanying drawings are used to provide further understanding of the present application, and constitute a part of the specification, and are used to explain the present application together with embodiments of the present application, and do not constitute a limitation to the present application. In the drawings:
[0020] Figure 1 Structure diagram of the present application Figure 1 .
[0021] Figure 2 Structure diagram of the present application Figure 2 .
[0022] Figure 3 Structure diagram of the present application
[0023] Figure 4 Structure diagram of the present application
[0024] Figure 5 Structure diagram of the present application
[0025] Figure 6 Structure diagram of the present application DETAILED DESCRIPTION
[0026] The present application will be further described in detail below in conjunction with the drawings and embodiments, so that those skilled in the art can implement the present application according to the description.
[0027] It should be understood that the terms such as "have", "contain" and "include" used herein do not exclude the presence or addition of one or more other elements or combinations thereof.
[0028] As Figures 1-5The utility model provides a kind of energy-saving door and window section bar of inside and outside inside surface embedded coating, comprising: energy-saving door and window section bar main body 100, the energy-saving door and window section bar main body 100 includes sash section bar part 1 and window frame section bar part 2, wherein, sash section bar part 1 is located in the upper side of window frame section bar part 2, glass can be installed on sash section bar part 1, here there is enough space to install high-specification high-performance glass 200, such as hollow glass, laminated glass;To further comply with ultra-low energy consumption, near zero energy consumption building standard, first inner upper coating heat insulation layer 3, first outer upper coating heat insulation layer 4 are respectively installed in the inside, outside inside surface of sash section bar part 1, first inner lower coating heat insulation layer 5, first outer lower coating heat insulation layer 6 are respectively installed in the inside, outside inside surface of window frame section bar part 2, the first inner upper coating heat insulation layer 3 of above-mentioned, first outer upper coating heat insulation layer 4, first inner lower coating heat insulation layer 5, first outer lower coating heat insulation layer 6 are embedded by coating, and then change the heat transfer mode of existing conventional section bar face into line heat transfer mode, reduce the heat transfer coefficient of section bar, so as to comply with ultra-low energy consumption, near zero energy consumption building standard.
[0029] Exemplary sash section bar part
[0030] Further, some embodiments of the utility model provide the specific structure of the above-mentioned sash section bar part 1, here the structure of sash section bar part 1 includes first inner sash section bar 11, first intermediate heat insulation strip part 12, first outer sash section bar 13, wherein, first intermediate heat insulation strip part 12 is installed between first outer sash section bar 13, first inner sash section bar 11, and first intermediate heat insulation strip part 12 is used to cut off the transmission of heat through first inner sash section bar 11, first outer sash section bar 13, so that the energy-saving door and window section bar main body 100 is the energy-saving door and window section bar of broken bridge aluminum type;Wherein, first inner upper coating heat insulation layer 3 is embeddedly coated and installed on the outer surface of first inner sash section bar 11, and first outer upper coating heat insulation layer 4 is embeddedly coated and installed on the inside surface of first outer sash section bar 13, so that the inside and outside inside surface of sash section bar part 1 is embeddedly coated and heat-insulated, to change the heat transfer mode of conventional section bar face into line heat transfer mode, reduce the heat transfer coefficient of section bar.Further, inner rubber strip 9 is installed in the space between the above-mentioned sash section bar part 1 and window frame section bar part 2, and the inner rubber strip 9 is a ternary ethylene-propylene foam rubber strip;Through inner rubber strip 9, also play a heat-insulating effect, meet the use requirement.
[0031] Exemplary window frame section bar part
[0032] Further, some embodiments of the utility model provide the specific structure of the above window frame section 2, here the structure's window frame section 2 includes second inner window frame section 21, second intermediate thermal barrier part 22, second outer window frame section 23, wherein, second intermediate thermal barrier part 22 is installed between second outer window frame section 23, second inner window frame section 21, second intermediate thermal barrier part 22 is used to cut off the transmission of heat through second inner window frame section 21, second outer window frame section 23, so that the energy-saving door and window section body 100 is the energy-saving door and window section of broken bridge aluminum type, wherein, first inner lower cladding thermal insulation layer 5 is embeddedly installed on the outer surface of second inner window frame section 21, and first outer lower cladding thermal insulation layer 6 is embeddedly installed on the inner surface of the outside of second outer window frame section 23, so that the embedded cladding thermal insulation is carried out on the inner surface and the outer surface of the inside of window sash section 1, the heat transfer mode of traditional section surface is changed into line heat transfer mode, and the heat transfer coefficient of section is reduced.
[0033] Exemplary first inner upper cladding thermal insulation layer
[0034] Further, some embodiments of the utility model provide the specific structure of the above first inner upper cladding thermal insulation layer 3, here the structure's first inner upper cladding thermal insulation layer 3 includes first inner upper cladding thermal insulation section 31, second inner upper cladding thermal insulation section 32, third inner upper cladding thermal insulation section 33, wherein, first inner upper cladding thermal insulation section 31 is embeddedly installed on the outer upper surface of first inner window sash section 11, second inner upper cladding thermal insulation section 32 is embeddedly installed on the outer left surface of first inner window sash section 11, and third inner upper cladding thermal insulation section 33 is embeddedly installed on the outer lower surface of first inner window sash section 11, so that corresponding cladding thermal insulation sections are installed on the three surfaces of first inner window sash section 11, the heat transfer coefficient of section is reduced, and the heat insulation effect is increased.
[0035] Further, a plurality of first inner composite ribs 111 are installed on the outer upper surface, the outer left surface and the outer lower surface of first inner window sash section 11, and a plurality of composite grooves 311 are correspondingly arranged in first inner upper cladding thermal insulation section 31, second inner upper cladding thermal insulation section 32 and third inner upper cladding thermal insulation section 33, so that the composite grooves 311 correspond to the first inner composite ribs 111, and when the first inner upper cladding thermal insulation layer 3 is installed on the outer left surface of first inner window sash section 11, the composite grooves 311 can wrap the first inner composite ribs 111, and further, the first inner composite ribs 111 are T-shaped reinforcing composite ribs, which increase the contact surface of section and cladding thermal insulation section, weaken the material peeling risk caused by thermal expansion and cold shrinkage of material, so that the embedding firmness of first inner upper cladding thermal insulation section 31 on first inner window sash section 11 can be greatly improved.
[0036] It can be understood that the second composite rib is also provided on the first outer window sash profile 13, the second inner window frame profile 21 and the second outer window frame profile 23, so that the first outer upper cladding insulation layer 4, the first inner lower cladding insulation layer 5 and the first outer lower cladding insulation layer 6 are fixed, and the material peeling risk caused by thermal expansion and cold contraction of the material is reduced.
[0037] Further, the inner insulation strip 7 is installed between the first inner upper cladding insulation layer 3 and the first inner lower cladding insulation layer 5, and the outer insulation strip 8 is correspondingly provided between the first outer upper cladding insulation layer 4 and the first outer lower cladding insulation layer 6, so that the inner side and the outer side gaps between the sash profile part 1 and the window frame profile part 2 are blocked by the inner insulation strip 7 and the outer insulation strip 8 respectively, and the heat insulation effect is achieved.
[0038] Further, the inner pull groove 321 is provided at the lower end of the second inner upper cladding insulation layer 32, the first clamping seat strip 322 is connected in the inner pull groove 321, and the inner insulation strip 7 can be fixed on the first clamping seat strip 322, so that the inner insulation strip 7 can abut against the first inner lower cladding insulation layer 5, and the inner insulation strip 7 is fixed.
[0039] Exemplary first intermediate insulation strip part
[0040] Further, the specific structure of the first intermediate insulation strip part 12 is provided in some embodiments of the utility model, and the first intermediate insulation strip part 12 of the structure comprises a first intermediate upper insulation strip 121, a first intermediate lower insulation strip 122 and a first cotton strip 123, wherein the first cotton strip 123 is installed between the first intermediate upper insulation strip 121 and the first intermediate lower insulation strip 122, so that the heat insulation performance of the first intermediate insulation strip part is increased.
[0041] Correspondingly, the second intermediate insulation strip part 22 comprises a second intermediate upper insulation strip 221, a second intermediate lower insulation strip 222 and a second cotton strip 223, wherein the second cotton strip 223 is installed between the second intermediate upper insulation strip 221 and the second intermediate lower insulation strip 222, so that the heat insulation performance of the second intermediate insulation strip part is increased. The first intermediate upper insulation strip 121, the first intermediate lower insulation strip 122, the second intermediate upper insulation strip 221 and the second intermediate lower insulation strip 222 are all PA66 insulation strips, and the first cotton strip 123 and the second cotton strip 223 are both heat preservation foamed cotton strips.
[0042] As shown in Figure 6 Further, the first side insulation strip 124 is arranged at the end of the first cotton strip 123, and the first side insulation strip 124 can be installed at both ends of the first cotton strip 123, and the second side insulation strip 224 is correspondingly arranged at the end of the second cotton strip 223. The first side insulation strip 124 and the second side insulation strip 224 can be made of the same material as the first inner upper cladding insulation layer 3 and the first outer upper cladding insulation layer 4.
[0043] In the description of the utility model, need understanding is, the term "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom" "internal", "external", "clockwise", "counterclockwise", "axial", "radial", "circumferential" etc. Indicated orientation or positional relationship is based on the orientation or positional relationship shown in the drawing, just for the convenience of describing the utility model and simplifying the description, and not indicate or imply the device or element indicated must have a particular orientation, with a particular orientation configuration and operation, therefore can not be understood as the restriction of the utility model.
[0044] In the utility model, unless another explicit provision and limitation, the term "installation", "connection", "connect", "fixed" etc. Term should be broad understanding, for example, can be fixed connection, can also be detachable connection, or integrated;Can be mechanical connection, can also be electrical connection or each other can communicate;It can be directly connected, can also be indirectly connected through intermediate medium, can be two elements internal communication or two elements interaction, unless another explicit limitation. For ordinary skilled in the art, can understand the specific meaning of the above-mentioned terms in the utility model according to the specific circumstances.
[0045] Although the embodiments of the utility model have been disclosed as above, it is not limited to the application listed in the specification and embodiments only, it can be fully applied to various fields suitable for the utility model, and other modifications can be easily realized for those skilled in the art, therefore, the utility model is not limited to specific details and the drawings shown and described herein without departing from the general concept defined by the claims and equivalent scope, the utility model is not limited to the specific details and the drawings shown and described herein.
Claims
1. An energy saving door and window profile with embedded covering of inner and outer inner surfaces, characterized in that, The energy-saving door and window profile body (100) comprises a sash profile part (1) and a window frame profile part (2), the sash profile part (1) is arranged on the upper side of the window frame profile part (2), and the inner side and the outer side inner surface of the sash profile part (1) are respectively provided with a first inner upper cladding heat insulation layer (3) and a first outer upper cladding heat insulation layer (4); the inner side and the outer side inner surface of the window frame profile part (2) are respectively provided with a first inner lower cladding heat insulation layer (5) and a first outer lower cladding heat insulation layer (6). The sash profile part (1) comprises a first inner sash profile (11), a first intermediate heat insulation strip part (12) and a first outer sash profile (13), the first intermediate heat insulation strip part (12) is arranged between the first outer sash profile (13) and the first inner sash profile (11), the first inner upper cladding heat insulation layer (3) is arranged on the outer surface of the first inner sash profile (11), and the first outer upper cladding heat insulation layer (4) is arranged on the outer side inner surface of the first outer sash profile (13).
2. An energy saving door and window profile with embedded inner side and outer side inner surface covering according to claim 1, characterized in that, The first inner upper cladding heat insulation layer (3) comprises a first inner upper cladding heat insulation section (31), a second inner upper cladding heat insulation section (32) and a third inner upper cladding heat insulation section (33), the first inner upper cladding heat insulation section (31) is arranged on the outer upper surface of the first inner sash profile (11), the second inner upper cladding heat insulation section (32) is arranged on the outer left surface of the first inner sash profile (11), and the third inner upper cladding heat insulation section (33) is arranged on the outer lower surface of the first inner sash profile (11).
3. A door and window profile of energy saving type with embedded covering of inner and outer inner surfaces according to claim 2, characterized in that, The outer left surface of the first inner sash profile (11) is provided with a plurality of first inner composite ribs (111), and the first inner upper cladding heat insulation section (31) is internally provided with a composite groove (311) corresponding to the first inner composite ribs (111).
4. A door and window profile of energy saving type with embedded covering of inner and outer inner surfaces according to claim 3, characterized in that, The first inner upper cladding heat insulation layer (3) and the first inner lower cladding heat insulation layer (5) are provided with an inner heat insulation strip (7) therebetween, and the first outer upper cladding heat insulation layer (4) and the first outer lower cladding heat insulation layer (6) are provided with an outer heat insulation strip (8) therebetween.
5. An energy saving door and window profile covered from inside and outside with embedded inner surfaces according to claim 3, characterized in that, The lower end of the second inner upper cladding heat insulation section (32) is provided with an inner pull groove (321), the inner pull groove (321) is internally provided with a first clamping seat strip (322), and the inner heat insulation strip (7) is arranged on the first clamping seat strip (322).
6. An energy saving door and window profile covered from inside and outside with embedded inner surfaces according to claim 5, characterized in that, The first intermediate heat insulation strip part (12) comprises a first intermediate upper heat insulation strip (121), a first intermediate lower heat insulation strip (122) and a first cotton strip (123), and the first cotton strip (123) is arranged between the first intermediate upper heat insulation strip (121) and the first intermediate lower heat insulation strip (122).
7. An energy saving door and window profile covered from inside and outside with embedded inner surfaces according to claim 5, characterized in that, The window frame profile part (2) comprises a second inner window frame profile (21), a second intermediate heat insulation strip part (22) and a second outer window frame profile (23), the second intermediate heat insulation strip part (22) is arranged between the second outer window frame profile (23) and the second inner window frame profile (21), the first inner lower cladding heat insulation layer (5) is arranged on the outer surface of the second inner window frame profile (21), and the first outer lower cladding heat insulation layer (6) is arranged on the outer side inner surface of the second outer window frame profile (23).
8. A door and window profile according to claim 1, characterized in that, 9. A door and window profile according to claim 1 or 8, characterized in that, An inner rubber strip (9) is arranged between the sash profile part (1) and the window frame profile part (2).
10. An energy efficient door and window profile of claim 7, wherein, An end of the first cotton strip (123) is provided with a first side heat insulation strip (124).
Citation Information
Patent Citations
Door and window is with compound energy -conserving section bar
CN207673199U