Herringbone roof mounting structure with power generation glass
By installing power-generating glass and supporting panels on the gable roof of the mobile home, the problem of inconvenient access to electricity was solved, enabling self-sufficiency in electricity and enhancing the sturdiness and aesthetics of the roof.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- PRANCE METALWORK BUILDING MATERIAL CO LTD
- Filing Date
- 2025-05-20
- Publication Date
- 2026-04-21
AI Technical Summary
Mobile homes have the problem of inconvenient access to electricity.
The system employs a gable roof installation structure with integrated photovoltaic glass, comprising beams, sloping roof units, supporting panels, and photovoltaic glass. These components are combined using connectors to form a V-shape, concealing the photovoltaic power generation system within the roof and achieving self-sufficiency.
This enables mobile homes to be self-sufficient in electricity, increases the sturdiness and aesthetics of the roof, and provides installation locations and space for photovoltaic power generation systems.
Smart Images

Figure CN224148970U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mobile housing technology, and in particular to a gable roof installation structure with a power-generating glass. Background Technology
[0002] Mobile homes are dwellings that can be easily assembled and moved. These homes are usually installed outdoors and have problems such as inconvenient access to electricity. Utility Model Content
[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a gable roof installation structure with generator glass to solve the problem of inconvenient power supply for mobile homes.
[0004] The objective of this utility model is achieved through the following technical solution:
[0005] A gable roof mounting structure with power-generating glass includes a crossbeam and two sloping roof units. The tops of the two sloping roof units are inclined and mounted on the crossbeam to form a V-shape. Each sloping roof unit includes a base plate, a support assembly plate, and power-generating glass. The top of the base plate is mounted on the crossbeam. The support assembly plate is located between the base plate and the power-generating glass and its top is mounted on the crossbeam. The power-generating glass is mounted on the support assembly plate via connectors.
[0006] Furthermore, the support assembly plate includes a plurality of support plate units, and the connector includes a first splicing profile and a second splicing profile. The first splicing profile is detachably disposed between adjacent support plate units in the lateral direction, and the second splicing profile is detachably disposed between two support plate units in the longitudinal direction.
[0007] Furthermore, the support plate unit includes a plate and a support frame. The plate is fixed inside the support frame. The support frame has two protruding parallel locking strips on its four sides. The sides of the first splicing profile and the second splicing profile are both provided with locking grooves, and the locking strips can be inserted into the locking grooves.
[0008] Furthermore, the power generation combined glass includes a plurality of glass units, the number of which is the same as the number of the support plate units. The glass units are located directly above the support plate units. The horizontally adjacent glass units are detachably connected by the first splicing profile, and the vertically adjacent glass units are detachably connected by the second splicing profile.
[0009] Furthermore, the top surface of the first splicing profile is provided with first limiting grooves on both sides, and a first sealing strip is defined in the first limiting groove. The top surface of the first splicing profile is provided with an upwardly protruding support rod, and sealing grooves are provided on both sides of the support rod. The lateral edge of the glass unit is inserted into the sealing groove and the first sealing strip abuts against the lower surface of the glass unit.
[0010] Furthermore, the second splicing profile includes splicing component A and splicing component B. The two sides of splicing component A are provided with the slots, and the two sides of the top surface of splicing component A are provided with second limiting grooves, within which a second sealing strip is defined. A fixing rod is provided in the middle of the top surface of splicing component A. The two sides of the bottom surface of splicing component B are provided with third limiting grooves, within which a third sealing strip is defined. The longitudinal edge of the glass unit is pressed between the second sealing strip and the third sealing strip. The fixing rod extends out of the gap between adjacent glass units. The splicing component B and the fixing rod are fixed together by fasteners.
[0011] Furthermore, the splicing component B includes a fixed component and a movable component. The fixed component is fixed together with the fixed rod by fasteners. The fixed component has a third limiting groove on both sides of its bottom surface and a sliding groove on its side. The movable component has an open bottom and is hollow inside. The movable component has sliding strips on both sides of its inner wall, and the sliding strips can slide along the sliding groove.
[0012] Furthermore, baffles are provided on both sides of the base plate, and the baffles cover both sides of the inclined top unit.
[0013] Furthermore, the top of the inclined top unit is provided with a first connecting profile, the top surface of the first connecting profile is mounted on the crossbeam, and the bottom surface of the first connecting profile is also provided with the slot. The locking strip on the support plate unit can be inserted into the slot. A fourth limiting groove is provided on one side of the first connecting profile, and a fourth sealing strip is defined in the fourth limiting groove. The lower surface of the power generation combination glass abuts against the fourth sealing strip. A fifth limiting groove is provided on the crossbeam, and a fifth sealing strip is defined in the fifth limiting groove. The fifth sealing strip abuts against the upper surface of the power generation combination glass.
[0014] Furthermore, the bottom of the sloping roof unit is provided with a second connecting profile, and the top surface of the second connecting profile is also provided with a slot. The locking strip on the support plate unit can be inserted into the slot. The bottom surface of the second connecting profile is installed on the top of the wall of the gable roof. A sixth limiting groove is provided on one side of the second connecting profile and an installation groove is provided at the end of the side. The bottom of the power generation combination glass is inserted into the installation groove. A sixth sealing strip is defined in the sixth limiting groove. The sixth sealing strip abuts against the lower surface of the power generation combination glass.
[0015] The beneficial effects of this utility model are:
[0016] This invention enables self-sufficiency in electricity for A-frame houses by incorporating power-generating glass, thus solving the problem of inconvenient electricity access for mobile homes. The addition of a supporting panel increases the roof's stability and provides installation space and location for the photovoltaic power generation system. Furthermore, the base plate provides shelter from the inside of the house for the supporting panel and power-generating glass, enhancing both safety and aesthetics. Attached Figure Description
[0017] Figure 1 This is a structural diagram of an A-frame house;
[0018] Figure 2 This is a structural diagram of a gable roof;
[0019] Figure 3 This is a schematic diagram of the horizontal splicing structure of the inclined top unit in this utility model;
[0020] Figure 4 yes Figure 3 Exploded structural diagram;
[0021] Figure 5 This is a structural schematic diagram of the first splicing profile in this utility model;
[0022] Figure 6 This is a structural schematic diagram of the second splicing profile in this utility model;
[0023] Figure 7 This is a schematic diagram of the longitudinal splicing structure of the inclined top unit in this utility model;
[0024] Figure 8 It is a cross-sectional view of a gable roof;
[0025] Figure 9 yes Figure 8 Enlarged view of the structure of region A in the middle;
[0026] Figure 10 yes Figure 8 Enlarged view of the structure of region B in the middle;
[0027] Figure 11 yes Figure 8 Enlarged view of the structure of region C in the middle;
[0028] In the diagram: 1. Crossbeam; 111. Cover plate; 112. Crossbeam profile; 12. Fifth limiting groove; 13. Fifth sealing strip; 2. Sloping top unit; 21. Base plate; 22. Support combination plate; 221. Support plate unit; 2211. Plate; 2212. Support frame; 2213. Clip; 23. Power generation combination glass; 231. Glass unit; 3. Connector; 31. First splicing profile; 311. First limiting groove; 312. First sealing strip; 313. Support rod; 314. Sealing groove; 32. Second splicing profile; 321. Splicing Part B; 3211, Fixing component; 3212, Moving component; 3213, Slide groove; 3214, Slide strip; 3215, Third limiting groove; 3216, Third sealing strip; 322, Splicing component A; 3221, Second limiting groove; 3222, Second sealing strip; 3223, Slot; 3224, Fixing rod; 4, Baffle; 5, First connecting profile; 51, Fourth limiting groove; 52, Fourth sealing strip; 6, Second connecting profile; 61, Sixth limiting groove; 62, Mounting groove; 63, Sixth sealing strip; 7, Triangular roof panel; 8, Profile. Detailed Implementation
[0029] To make the technical problems solved, the technical solutions and the beneficial effects of the utility model clearer, the utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0030] like Figure 1-11 As shown, this utility model provides a gable roof installation structure with power-generating glass, including a crossbeam 1 and two inclined roof units 2. The tops of the two inclined roof units 2 are inclined and installed on the crossbeam 1 to form a V-shape. The inclined roof unit 2 includes a base plate 21, a support assembly plate 22 and a power-generating assembly glass 23. The top of the base plate 21 is installed on the crossbeam 1. The support assembly plate 22 is located between the base plate 21 and the power-generating assembly glass 23 and its top is installed on the crossbeam 1. The power-generating assembly glass 23 is installed on the support assembly plate 22 through a connector 3.
[0031] The bottom of the base plate 21 and the support assembly plate 22 are installed on the top of the wall of the gable roof. The support assembly plate 22 is installed on the beam 1 and the gable roof wall using screws or other detachable methods for easy on-site assembly. The base plate 21 can be installed on the beam 1 and the gable roof wall using screws, or it can be installed by snapping the top and bottom of the base plate 21 into the corresponding slots on the beam 1 and the gable roof wall. The above installation methods are all existing technologies and will not be described in detail here.
[0032] During installation, gaps are left between the base plate 21 and the supporting composite plate 22, and between the supporting composite plate 22 and the photovoltaic composite glass 23. The photovoltaic power generation system connected to the photovoltaic composite glass 23 can be installed within these gaps, thus concealing itself within the gable roof for a more aesthetically pleasing appearance. The photovoltaic composite glass 23, combined with the photovoltaic power generation system, converts solar energy into electrical energy, providing power to appliances within the gable roof and enabling the gable roof to achieve self-sufficiency in electricity.
[0033] refer to Figure 2-5 The supporting combination plate 22 includes several supporting plate units 221, and the connector 3 includes a first splicing profile 31 and a second splicing profile 32. The first splicing profile 31 is detachably disposed between the lateral sides of adjacent supporting plate units 221, and the second splicing profile 32 is detachably disposed between the longitudinal sides of two supporting plate units 221.
[0034] Since the gable roof has a large overall area, the supporting composite panel 22 is made up of multiple supporting panel units 221 spliced together, which is more practical and safer. The multiple supporting panel units 221 are spliced together by the first splicing profile 31 and the second splicing profile 32 to form the supporting composite panel 22.
[0035] The support plate unit 221 includes a plate 2211 and a support frame 2212. The plate 2211 is fixed inside the support frame 2212. The support frame 2212 has two protruding parallel retaining strips 2213 on its four sides. The sides of the first splicing profile 31 and the second splicing profile 32 are both provided with slots 3223, into which the retaining strips 2213 can be inserted. The material of the plate 2211 can be set according to requirements. The support frame 2212 is made of metal, which is not easily deformed. Several support plate units 221 are spliced together by the retaining strips 2213 and the slots 3223, making operation simple.
[0036] Furthermore, the power generation combined glass 23 includes a number of glass units 231, the number of which is the same as the number of support plate units 221. The glass units 231 are located directly above the support plate units 221. The horizontally adjacent glass units 231 are detachably connected by a first splicing profile 31, and the vertically adjacent glass units 231 are detachably connected by a second splicing profile 32.
[0037] Similarly, the power generation combined glass 23 is spliced together by multiple glass units 231. The glass units 231 and the support plate units 221 are in one-to-one correspondence in terms of their vertical positions. While splicing multiple support plate units 221, the first splicing profile 31 and the second splicing profile 32 splice multiple glass units 231 together to form the power generation combined glass 23.
[0038] refer to Figure 5 and Figure 11The first splicing profile 31 has first limiting grooves 311 on both sides of its top surface, and a first sealing strip 312 is defined within the first limiting grooves 311. A support rod 313 protrudes upwards from the center of the top surface of the first splicing profile 31, and sealing grooves 314 are formed on both sides of the support rod 313. The lateral edge of the glass unit 231 is inserted into the sealing groove 314, and the first sealing strip 312 abuts against the lower surface of the glass unit 231. Under the compression and sealing of the first sealing strip 312, the lateral edge of the glass unit 231 is firmly defined within the sealing groove 314, thereby splicing the glass unit 231 together laterally with the first splicing profile 31.
[0039] refer to Figure 6 and Figure 7 The second splicing profile 32 includes splicing component A322 and splicing component B321. Splicing component A322 has slots 3223 on both sides. The retaining strip 2213 on the support plate unit 221 is inserted into the slots 3223, thereby splicing the support plate unit 221 together longitudinally using splicing component A322. The top surface of splicing component A322 has second limiting grooves 3221 on both sides, each containing a second sealing strip 3222. The splicing component A322... A fixing rod 3224 is provided in the middle of the top surface of 22; a third limiting groove 3215 is provided on both sides of the bottom surface of the splicing component B321, and a third sealing strip 3216 is defined in the third limiting groove 3215. The longitudinal edge of the glass unit 231 is pressed between the second sealing strip 3222 and the third sealing strip 3216. The fixing rod 3224 extends out of the gap between adjacent glass units 231. The splicing component B321 and the fixing rod 3224 are fixed together by fasteners.
[0040] Fasteners include bolts, etc. By setting the second sealing strip 3222, the third sealing strip 3216 and fasteners, the longitudinal edge of the glass unit 231 is firmly fixed between the second sealing strip 3222 and the third sealing strip 3216, thereby the glass unit 231 is spliced together in the longitudinal direction by the second splicing profile 32.
[0041] The splicing component B321 includes a fixing component 3211 and a movable component 3212. The fixing component 3211 is fixed together with the fixing rod 3224 by fasteners. The bottom surface of the fixing component 3211 has third limiting grooves 3215 on both sides, and the side surface of the fixing component 3211 has sliding grooves 3213. The movable component 3212 has an open bottom and is hollow inside. The inner walls on both sides of the movable component 3212 are provided with sliding strips 3214, which can slide along the sliding grooves 3213. During installation, the fixing component 3211 and the fixing rod 3224 are first locked together by fasteners. Then, the movable component 3212 is slid into the fixing component 3211 from the end until it completely covers the fixing component 3211 and the gap between adjacent glass units 231.
[0042] refer to Figure 1 The base plate 21 has baffles 4 on both sides, which cover the sides of the inclined top unit 2. The baffles 4 can cover and seal the sides of the inclined top unit 2, increasing the aesthetics.
[0043] refer to Figure 8 and Figure 9 The top of the inclined top unit 2 is provided with a first connecting profile 5. The top surface of the first connecting profile 5 is mounted on the crossbeam 1, and its bottom surface is also provided with a slot 3223. The locking strip 2213 on the support plate unit 221 can be inserted into the slot 3223. A fourth limiting groove 51 is provided on one side of the first connecting profile 5. A fourth sealing strip 52 is defined in the fourth limiting groove 51. The lower surface of the power generation combination glass 23 abuts against the fourth sealing strip 52. A fifth limiting groove 12 is provided on the crossbeam 1. A fifth sealing strip 13 is defined in the fifth limiting groove 12. The fifth sealing strip 13 abuts against the upper surface of the power generation combination glass 23. Through this structure, the top of the support combination plate 22 and the power generation combination glass 23 are firmly fixed to the first connecting profile 5, and then fixed to the crossbeam 1 by the first connecting profile 5. Specifically, the crossbeam 1 can be composed of a detachable cover plate 111 and a crossbeam profile 112. The fifth limiting groove 12 and the like are provided on the crossbeam profile 112, and the cover plate 111 is provided on the top of the crossbeam profile 112, serving a sealing and decorative function.
[0044] refer to Figure 10 The bottom of the sloping top unit 2 is provided with a second connecting profile 6, and the top surface of the second connecting profile 6 is also provided with a slot 3223. The clip 2213 on the support plate unit 221 can be inserted into the slot 3223. The bottom surface of the second connecting profile 6 is installed on the top of the wall of the gable roof. A sixth limiting groove 61 is provided on one side of the second connecting profile 6, and an installation groove 62 is provided at the end of the side. The bottom of the power generation combination glass 23 is inserted into the installation groove 62. A sixth sealing strip 63 is defined in the sixth limiting groove 61. The sixth sealing strip 63 abuts against the lower surface of the power generation combination glass 23.
[0045] Through this structure, the bottom of the supporting composite panel 22 and the power generation composite glass 23 are firmly fixed to the second connecting profile 6, and then fixed to the top of the gable wall by the second connecting profile 6. The top of the gable wall should be provided with a fixed connecting profile 8 that matches the connecting profile, and the metal profiles are easier to fix and install with bolts or the like.
[0046] Working principle: After assembling the walls of the gable roof, the support plate unit 221 and the glass unit 231 are first spliced together by the first splicing profile 31 and the second splicing profile 32. The top and bottom of the support plate unit 221 and the glass unit 231 are installed on the beam 1 and the wall respectively by the first connecting profile 5 and the second connecting profile 6. Then, the top and bottom of the bottom plate 21 are installed on the beam 1 and the wall respectively. Finally, the two triangular roof panels 7 are installed at both ends of the two V-shaped sloping roof units 2, and finally, the gable roof with power-generating glass is assembled.
[0047] This utility model achieves self-sufficiency in electricity for the A-frame house by setting up a power-generating combination glass 23, solving the problem of inconvenient electricity use for mobile houses; by setting up a support combination plate 22, the stability of the roof is increased, while providing installation location and space for photovoltaic power generation system devices; by setting up a base plate 21, the support combination plate 22 and power-generating combination glass 23 can be shielded from inside the house, making it safer and more aesthetically pleasing.
[0048] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model shall fall within the protection scope of the present utility model.
Claims
1. A gabled roof mounting structure with power-generating glass, characterized by, The device includes a crossbeam (1) and two inclined top units (2). The tops of the two inclined top units (2) are installed at an angle on the crossbeam (1) and form a V-shape. The inclined top unit (2) includes a base plate (21), a support assembly plate (22), and a power generation assembly glass (23). The top of the base plate (21) is installed on the crossbeam (1). The support assembly plate (22) is located between the base plate (21) and the power generation assembly glass (23) and its top is installed on the crossbeam (1). The power generation assembly glass (23) is installed on the support assembly plate (22) by a connector (3).
2. The installation structure of a gable roof with power generation glass according to claim 1, wherein The support assembly plate (22) includes a plurality of support plate units (221), and the connector (3) includes a first splicing profile (31) and a second splicing profile (32). The first splicing profile (31) is detachably disposed between the lateral sides of adjacent support plate units (221), and the second splicing profile (32) is detachably disposed between the longitudinal sides of two support plate units (221).
3. The installation structure of a gable roof with power-generating glass according to claim 2, characterized in that, The support plate unit (221) includes a plate (2211) and a support frame (2212). The plate (2211) is fixed inside the support frame (2212). The support frame (2212) has two protruding parallel clips (2213) on its four sides. The first splicing profile (31) and the second splicing profile (32) are both provided with slots (3223) on their sides. The clips (2213) can be inserted into the slots (3223).
4. The installation structure of a gable roof with power generation glass according to claim 3, characterized in that, The power generation combined glass (23) includes a plurality of glass units (231), the number of which is the same as the number of the support plate units (221). The glass units (231) are located directly above the support plate units (221). The horizontally adjacent glass units (231) are detachably connected by the first splicing profile (31), and the vertically adjacent glass units (231) are detachably connected by the second splicing profile (32).
5. The gable roof mounting structure with power-generating glass according to claim 4, characterized in that, The first splicing profile (31) has a first limiting groove (311) on both sides of its top surface. A first sealing strip (312) is defined in the first limiting groove (311). A support rod (313) protruding upward is provided in the middle of the top surface of the first splicing profile (31). Sealing grooves (314) are provided on both sides of the support rod (313). The lateral edge of the glass unit (231) is inserted into the sealing groove (314) and the first sealing strip (312) abuts against the lower surface of the glass unit (231).
6. The installation structure of a gable roof with power-generating glass according to claim 4, characterized in that, The second splicing profile (32) includes splicing component A (322) and splicing component B (321). The two sides of the splicing component A (322) are provided with the slots (3223). The two sides of the top surface of the splicing component A (322) are provided with the second limiting grooves (3221). The second limiting grooves (3221) are defined with the second sealing strip (3222). The top surface of the splicing component A (322) is provided with the fixing rod (3224). The bottom of the splicing component B (321) is provided with the second limiting grooves (3221) and the second sealing strip (3222) is defined with the second limiting grooves (3221). A third limiting groove (3215) is provided on both sides of the surface. A third sealing strip (3216) is defined in the third limiting groove (3215). The longitudinal edge of the glass unit (231) is pressed between the second sealing strip (3222) and the third sealing strip (3216). The fixing rod (3224) extends out of the gap between adjacent glass units (231). The splicing piece B (321) and the fixing rod (3224) are fixed together by fasteners.
7. The gable roof mounting structure with power-generating glass according to claim 6, characterized in that, The splicing component B (321) includes a fixing component (3211) and a movable component (3212). The fixing component (3211) is fixed together with the fixing rod (3224) by fasteners. The fixing component (3211) has a third limiting groove (3215) on both sides of its bottom surface and a sliding groove (3213) on its side. The movable component (3212) has an open bottom and is hollow inside. The movable component (3212) has a sliding strip (3214) on both sides of its inner wall. The sliding strip (3214) can slide along the sliding groove (3213).
8. The installation structure of a gable roof with power generation glass according to claim 1, wherein The base plate (21) is provided with baffles (4) on both sides, and the baffles (4) cover the sides of the inclined top unit (2).
9. The installation structure of a gable roof with power-generating glass according to claim 3, characterized in that, The top of the inclined top unit (2) is provided with a first connecting profile (5). The top surface of the first connecting profile (5) is installed on the crossbeam (1), and the bottom surface of the first connecting profile (5) is also provided with the slot (3223). The slot strip (2213) on the support plate unit (221) can be inserted into the slot (3223). A fourth limiting groove (51) is provided on one side of the first connecting profile (5). A fourth sealing strip (52) is defined in the fourth limiting groove (51). The lower surface of the power generation combination glass (23) abuts against the fourth sealing strip (52). A fifth limiting groove (12) is provided on the crossbeam (1). A fifth sealing strip (13) is defined in the fifth limiting groove (12). The fifth sealing strip (13) abuts against the upper surface of the power generation combination glass (23).
10. The installation structure of a gable roof with power-generating glass according to claim 3, characterized in that, The bottom of the inclined roof unit (2) is provided with a second connecting profile (6), the top surface of the second connecting profile (6) is also provided with a clamping groove (3223), the clamping strip (2213) on the supporting plate unit (221) can be clamped into the clamping groove (3223), the bottom surface of the second connecting profile (6) is installed on the top of the wall of the gable roof, one side surface of the second connecting profile (6) is provided with a sixth limiting groove (61) and the side surface end is provided with a mounting groove (62), the bottom of the power generation combined glass (23) is inserted into the mounting groove (62), the sixth limiting groove (61) is limited with a sixth sealing rubber strip (63), and the sixth sealing rubber strip (63) abuts against the lower surface of the power generation combined glass (23).