Panel for installing solar cell module
The solar cell module installation panel addresses the challenges of constructability and detachment issues by incorporating flow prevention members, ensuring secure and stable installation of solar cell modules.
Patent Information
- Application Number
- PCT/KR2024/019542
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-15
- Filing Date
- 2024-12-03
- Publication Date
- 2025-06-19
AI Technical Summary
Conventional solar cell module installation methods face challenges such as reduced constructability and construction quality due to the need for separate installation frames and the risk of solar cell modules detaching from the installation panel due to reduced adhesive strength.
A solar cell module installation panel featuring a panel body with mounting portions and a connecting portion, along with first and second flow prevention members. The flow prevention members, including coupling protrusions, cover members, and stoppers, prevent the solar cell modules from shifting or detaching in either direction.
The solution effectively prevents solar cell modules from separating from the installation panel, enhancing constructability and construction quality while ensuring secure and stable installation.
Smart Images

Figure KR2024019542_19062025_PF_FP_ABST
Abstract
Description
Panels for installing solar modules
[0001] The present invention relates to a panel for installing solar cell modules.
[0002] In general, power generation facilities for generating electricity can be divided into thermal power generation facilities that generate electricity using fossil fuels such as oil or coal, solar power generation facilities that generate electricity using solar energy, nuclear power generation facilities that generate electricity using nuclear power, hydroelectric power generation facilities that generate electricity using water power, tidal power generation facilities that generate electricity using tidal power, and wind power generation facilities that generate electricity using wind power.
[0003] Among these power generation facilities, nuclear power plants, which utilize nuclear energy, offer the advantage of generating electricity at a lower cost than thermal power plants. However, their installation is limited due to concerns about environmental pollution and human health hazards caused by radiation. Furthermore, investment in nuclear power plants is hampered by issues such as the disposal of nuclear waste generated after electricity generation.
[0004] Furthermore, thermal power plants typically use fossil fuels like coal and oil for power generation. These fuels not only emit pollutants during electricity generation, but also incur significant costs. Furthermore, with oil prices rising due to declining resource reserves, there's a growing demand for clean energy sources that don't pollute the environment. Furthermore, with regulations being implemented worldwide to curb carbon dioxide emissions, there's a growing demand for new power generation facilities that don't emit carbon dioxide.
[0005] Meanwhile, interest in solar power generation facilities, which utilize solar energy as a clean energy source and emit no carbon dioxide, is growing. Consequently, technological development in solar power generation facilities is accelerating, and as installation costs decrease, their widespread adoption is expanding.
[0006] These solar power generation facilities generate solar power by installing solar cell modules on a target object, such as a building roof or rooftop. However, conventional methods typically require assembling a separate installation frame onto the target object, and then reinstalling the solar cell modules onto the frame. This reduces constructability and quality.
[0007] In addition, as thin-film solar cell modules are developed and used, a method of directly attaching thin-film solar cell modules to an installation target is also being introduced. However, since these thin-film solar cell modules are attached to the solar cell module installation panel through an adhesive means such as an adhesive, there is a problem that when the adhesive strength between the solar cell module installation panel and the solar cell module is reduced, the solar cell module is separated from the solar cell module installation panel and falls off.
[0008] Accordingly, there is a need for the development of a solar cell module installation panel that can effectively prevent a solar cell module from being separated from the solar cell module installation panel and has improved constructability and construction quality.
[0009] Embodiments of the present invention have been devised to solve the problems of the above-described prior art, and to provide a solar cell module installation panel that can effectively prevent a solar cell module from being separated from a solar cell module installation panel and has improved constructability and construction quality.
[0010] According to one aspect of the present invention, a panel for installing a solar cell module may be provided, comprising: a panel body that is provided to be fixable on an installation object on which installation of a solar cell module is required, and on which the solar cell module is selectively mounted; a first flow prevention unit provided on the panel body and preventing the solar cell module mounted on the panel body from moving in either a first direction or a second direction intersecting the first direction with respect to the panel body; and a second flow prevention unit provided on the panel body and preventing the solar cell module mounted on the panel body from moving in the other of the first direction and the second direction with respect to the panel body.
[0011] In addition, the panel body may include a plurality of mounting portions having mounting surfaces on which the solar cell module can be mounted, and spaced apart from each other in either the first direction or the second direction; and a connecting portion having a connecting surface that connects between the plurality of mounting portions and is positioned closer to the installation target than the mounting surfaces of the mounting portions.
[0012] In addition, the panel body further includes a first connecting portion extending from one end of either the mounting portion or the connecting portion; and a second connecting portion extending from the other end of either the mounting portion or the connecting portion, wherein the one end and the other end of either the mounting portion or the connecting portion may face each other in either the first direction or the second direction.
[0013] In addition, the first flow prevention part includes a coupling protrusion formed by bending upward at least a portion of one of the mounting part and the connecting part; and a cover member coupled to at least a portion of the coupling protrusion and covering at least a portion of the coupling protrusion, wherein at least a portion of an outer surface of the cover member can be in surface contact with the solar cell module mounted on the mounting part.
[0014] In addition, the above-mentioned connecting member may include an overlapping portion arranged to overlap in one of the first direction and the second direction when at least a portion of either the securing portion or the connecting portion is bent upward; and a wedge portion arranged above the overlapping portion and spaced apart in one of the first direction and the second direction when at least a portion of either the securing portion or the connecting portion is bent upward.
[0015] In addition, the first flow prevention member may further include a protective member provided inside the cover member and arranged to surround the outside of the wedge member.
[0016] In addition, the second flow prevention unit includes a stopper provided at both ends of at least one of the mounting portion and the connecting portion, and the both ends of at least one of the mounting portion and the connecting portion may face the other of the first direction and the second direction.
[0017] Additionally, at least a portion of the circumferential surface of the stopper may be in surface contact with the solar cell module mounted on the mounting portion.
[0018] The solar cell module installation panel according to embodiments of the present invention can effectively prevent the solar cell module from being separated and detached from the solar cell module installation panel, and has the effect of having improved constructability and construction quality.
[0019] FIG. 1 is a cross-sectional view illustrating a panel for installing a solar cell module according to one embodiment of the present invention.
[0020] Figure 2 is a perspective view illustrating a panel for installing a solar cell module of Figure 1.
[0021] FIG. 3 is a drawing showing a modified example of the first flow prevention part of the solar cell module installation panel of FIG. 1.
[0022] FIG. 4 is a drawing showing another modified example of the first flow prevention part of the solar cell module installation panel of FIG. 1.
[0023] FIG. 5 is a drawing showing another modified example of the first flow prevention part of the solar cell module installation panel of FIG. 1.
[0024] FIG. 6 is a drawing showing another modified example of the first flow prevention part of the solar cell module installation panel of FIG. 1.
[0025] FIG. 7 is a cross-sectional view illustrating a panel for installing a solar cell module according to another embodiment of the present invention.
[0026] Fig. 8 is a perspective view illustrating a panel for installing a solar cell module of Fig. 7.
[0027] FIG. 9 is a perspective view illustrating a panel for installing a solar cell module according to another embodiment of the present invention.
[0028] Hereinafter, specific embodiments for implementing the idea of the present invention will be described in detail with reference to the drawings.
[0029] In addition, when explaining the present invention, if it is determined that a detailed description of a related known configuration or function may obscure the gist of the present invention, the detailed description is omitted.
[0030] Additionally, when it is said that a component is 'connected' to another component, it should be understood that while it may be directly connected to that other component, there may also be other components in between.
[0031] The terminology used herein is intended solely to describe specific embodiments and is not intended to limit the invention. Singular expressions include plural expressions unless the context clearly dictates otherwise.
[0032] Additionally, please note that the terms "upper side," "lower side," and "side" in this specification are based on the illustrations in the drawings and may be expressed differently if the orientation of the subject changes. For the same reason, some components in the attached drawings are exaggerated, omitted, or schematically depicted, and the sizes of each component do not fully reflect the actual size.
[0033] Additionally, terms that include ordinal numbers, such as "first," "second," etc., may be used to describe various components, but these components are not limited by such terms. These terms are used solely to distinguish one component from another.
[0034] The term "comprising" as used in the specification means specifying a particular characteristic, region, integer, step, operation, element and / or component, but does not exclude the presence or addition of any other particular characteristic, region, integer, step, operation, element, component and / or group.
[0035] Hereinafter, a panel for installing a solar cell module according to one embodiment of the present invention will be described with reference to the drawings.
[0036] Referring to FIGS. 1 and 2, a panel (1) for installing a solar cell module according to one embodiment of the present invention may include a panel body (10), a first flow prevention part (20), and a second flow prevention part (30).
[0037] The panel body (10) can be provided so as to be fastened to an installation target (not shown) where installation of a solar cell module (2) is required, and the solar cell module (2) can be selectively mounted on the panel body (10). The installation target to which the panel body (10) can be fastened can be a land structure such as a roof, or other offshore structures.
[0038] At this time, the panel body (10) may include a plurality of fixing portions (11) and a connecting portion (12) connecting between the plurality of fixing portions (11). These plurality of fixing portions (11) and connecting portions (12) may be formed integrally and may be made of a metal material, for example.
[0039] A plurality of mounting portions (11) may have mounting surfaces on which solar cell modules (2) may be mounted, and may be spaced apart in either a first direction or a second direction intersecting the first direction. Here, when defining terms for directions, the first direction means the width direction of the panel body (10), and the second direction means the length direction of the panel body (10).
[0040] Meanwhile, before the solar cell module (2) is mounted on the mounting surface provided in the mounting portion (11), an adhesive means such as an adhesive may be applied, and by applying pressure to the solar cell module (2) while the solar cell module (2) is placed on the mounting surface to which the adhesive has been applied, the solar cell module (2) can be adhered to the mounting portion (11).
[0041] However, even if the solar cell module (2) is adhered to the mounting portion (11) by an adhesive means, there is a risk that the solar cell module (2) may move in the first direction and the second direction with respect to the panel body (10) due to various situations. In order to prevent this, in the present embodiment, a first movement prevention portion (20) and a second movement prevention portion (30) may be provided on the panel body (10). This will be described later.
[0042] The connecting portion (12) may have a connecting surface that is positioned closer to the installation target than the mounting surface of the mounting portion (11) when the panel body (10) is fastened to the installation target. Since the connecting surface of the connecting portion (12) is positioned closer to the installation target than the mounting surface of the mounting portion (11), the solar cell module (2) mounted on the mounting portion (11) and the connecting portion (12) may be spaced apart by a predetermined interval.
[0043] When outside air or cooling water passes through the gap formed between the solar cell module (2) mounted on the mounting portion (11) and the connection portion (12), the heat generated during the operation of the solar cell module (2) can be quickly cooled. This can suppress the phenomenon of a decrease in power generation efficiency due to heat generation of the solar cell module (2). In addition, although not shown, by arranging the wiring electrically connected to the solar cell module (2) in the gap formed between the solar cell module (2) mounted on the mounting portion (11) and the connection portion (12), the appearance can be prevented from being deteriorated due to the wiring being exposed to the outside.
[0044] Meanwhile, a first coupling portion (13) may extend from one end of either the mounting portion (11) or the connecting portion (12), and a second coupling portion (14) may extend from the other end of either the mounting portion (11) or the connecting portion (12). At this time, the first coupling portion (13) and the second coupling portion (14) may face each other in either the first direction or the second direction.
[0045] Regarding the coupling relationship between the first coupling portion (13) and the second coupling portion (14), the second coupling portion (14) of one of the panel bodies (10) adjacent in the first direction among the plurality of panel bodies (10) is coupled to the first coupling portion (13) of one of the panel bodies (10) adjacent in the first direction among the plurality of panel bodies (10), so that the panel bodies (10) adjacent in the first direction can be mutually connected along the first direction.
[0046] Meanwhile, in this embodiment, a case in which insulation is provided in the panel body (10) is described as an example, but whether insulation is provided or not can be appropriately changed depending on the type of panel body (10).
[0047] The first flow prevention member (20) can prevent the solar cell module (2) mounted on the panel body (10) from flowing in either the first direction or the second direction with respect to the panel body (10). To this end, the first flow prevention member (20) can include a connecting protrusion (21), a cover member (22), and a protection member (23).
[0048] The connecting protrusion (21) may be formed by bending upward at least a portion of either the mounting portion (11) or the connecting portion (12). In other words, the connecting protrusion (21) means a portion that is not connected to either the mounting portion (11) or the connecting portion (12), but is formed integrally with either the mounting portion (11) or the connecting portion (12). This connecting protrusion (21) may be formed of an overlapping portion (211) and a wedge portion (212). The overlapping portion (211) and the wedge portion (212) may be formed integrally.
[0049] The overlapping portion (211) can be arranged to overlap in either the first direction or the second direction when at least a portion of either the fixing portion (11) or the connecting portion (12) is bent upward. The overlapping portion (211) can serve to support the wedge portion (212).
[0050] The wedge portion (212) may be positioned higher than the overlapping portion (211) when at least a portion of either the mounting portion (11) or the connecting portion (12) is bent upward, and may be positioned spaced apart in either the first direction or the second direction.
[0051] Meanwhile, the circumferential surface of the wedge portion (212) may be formed by at least one surface. For example, in the present embodiment, the wedge portion (212) may have a circumferential surface with three surfaces connected, and each surface may be connected in a rounded manner. However, this is merely an example, and the spirit of the present invention is not limited thereby. The surfaces forming the circumferential surface of the wedge portion (212) may also be connected without being rounded.
[0052] The cover member (22) can be coupled to at least a portion of the connecting protrusion (21) to cover at least a portion of the connecting protrusion (21). At least a portion of the outer surface of the cover member (22) can be in surface contact with the solar cell module (2) mounted on the mounting portion (11). For example, the cover member (22) can be formed of a rubber material.
[0053] At this time, an inner groove (221) having a shape corresponding to the shape of the connecting protrusion (21) may be provided on the inside of the cover member (22), and an outer groove (222) into which a protective member (23) may be inserted may be provided on the outside of the inner groove (221).
[0054] Meanwhile, the cover member (22) can be coupled to the connecting protrusion (21) while the solar cell module (2) is placed on the mounting portion (11). However, this is merely an example, and the spirit of the present invention is not limited thereby. If necessary, a panel body (10) having the cover member (22) pre-coupled to the connecting protrusion (21) may be provided on site, and in this case, the solar cell module (2) may be configured to be slidably inserted from the second direction side end of the panel body (10) so that the solar cell module (2) can be fixed to the mounting portion (11).
[0055] The protective member (23) can prevent the connecting protrusion (21) coupled to the cover member (22) from being damaged by external force. To this end, the protective member (23) can be provided on the inside of the cover member (22) and can be arranged to surround the outside of the wedge portion (212). To this end, the protective member (23) can be provided with, for example, spring steel.
[0056] The second flow prevention unit (30) can prevent the solar cell module (2) mounted on the panel body (10) from flowing in the other of the first and second directions with respect to the panel body (10).
[0057] To this end, the second flow prevention unit (30) may include a stopper (31) provided at both ends of at least one of the mounting unit (11) and the connecting unit (12). Here, both ends of at least one of the mounting unit (11) and the connecting unit (12) may face each other in the first direction and the second direction.
[0058] At this time, the extent to which the stopper (31) extends in either the first direction or the second direction may be provided so as not to exceed the extent to which at least one of the mounting portion (11) and the connecting portion (12) extends in either the first direction or the second direction. In addition, the extent to which the stopper (31) extends upward from both ends of at least one of the mounting portion (11) and the connecting portion (12) may be provided so as to sufficiently interface with the solar cell module (2) mounted on the mounting portion (11).
[0059] Accordingly, at least a portion of the circumferential surface of the stopper (31) can be in surface contact with the solar cell module (2) mounted on the mounting portion (11). Therefore, even if the adhesive force between the solar cell module (2) and the mounting portion (11) is reduced and the solar cell module (2) is separated from the mounting portion (11), the solar cell module (2) can be prevented from flowing down because the position of the second end of the solar cell module (2) is regulated by the stopper (31).
[0060] Below, variations of the first flow prevention unit will be described with reference to FIGS. 3 to 6.
[0061] Referring to Fig. 3, the first flow prevention part (20a) may include a joining protrusion (21a), a cover member (22a), and a protection member (23). However, since the protection member (23) is substantially the same as the protection member (23) described with reference to Figs. 1 and 2, the joining protrusion (21a) and the cover member (22a), which correspond to the differences, will be described below.
[0062] The connecting protrusion (21a) may be formed by bending upward at least a portion of either the mounting portion (11) or the connecting portion (12). This connecting protrusion (21a) may be formed of an overlapping portion (211) and a wedge portion (212a). The overlapping portion (211) and the wedge portion (212a) may be formed integrally.
[0063] The overlapping portion (211) can be arranged to overlap in either the first direction or the second direction when at least a portion of either the fixing portion (11) or the connecting portion (12) is bent upward. The overlapping portion (211) can serve to support the wedge portion (212a).
[0064] The wedge portion (212a) may be positioned higher than the overlapping portion (211) when at least a portion of either the mounting portion (11) or the connecting portion (12) is bent upward, and may be positioned spaced apart in either the first direction or the second direction. This wedge portion (212a) may be inserted into an inner groove (221a) formed inside the cover member (22), and the shape of the inner groove (221a) may be provided in a shape corresponding to the shape of the wedge portion (212a).
[0065] Meanwhile, the peripheral surface of the wedge portion (212a) may be formed of at least one surface. For example, in the present embodiment, the wedge portion (212a) may have a peripheral surface with one surface connected, and these surfaces may be connected in a round shape.
[0066] Referring to Fig. 4, the first flow prevention part (20b) may include a joining protrusion (21b), a cover member (22b), and a protection member (23). However, since the protection member (23) is substantially the same as the protection member (23) described with reference to Figs. 1 and 2, the joining protrusion (21b) and the cover member (22b), which correspond to the differences, will be described below.
[0067] The connecting protrusion (21b) may be formed by bending upward at least a portion of either the mounting portion (11) or the connecting portion (12). This connecting protrusion (21b) may be formed of an overlapping portion (211) and a wedge portion (212b). The overlapping portion (211) and the wedge portion (212b) may be formed integrally.
[0068] The overlapping portion (211) can be arranged to overlap in either the first direction or the second direction when at least a portion of either the fixing portion (11) or the connecting portion (12) is bent upward. The overlapping portion (211) can serve to support the wedge portion (212b).
[0069] The wedge portion (212b) may be positioned higher than the overlapping portion (211) when at least a portion of either the mounting portion (11) or the connecting portion (12) is bent upward, and may be positioned spaced apart in either the first direction or the second direction. This wedge portion (212b) may be inserted into an inner groove (221b) formed inside the cover member (22), and the shape of the inner groove (221b) may be provided in a shape corresponding to the shape of the wedge portion (212b).
[0070] Meanwhile, the circumferential surface of the wedge portion (212b) may be formed of at least one surface. For example, in the present embodiment, the wedge portion (212b) may have a circumferential surface with four surfaces connected, and each surface may be connected in a rounded manner. However, this is merely an example, and the spirit of the present invention is not limited thereby. The surfaces forming the circumferential surface of the wedge portion (212b) may also be connected without being rounded.
[0071] Referring to Fig. 5, the first flow prevention part (20c) may include a connecting protrusion (21c), a cover member (22c), and a protection member (23). However, since the protection member (23) is substantially the same as the protection member (23) described with reference to Figs. 1 and 2, the connecting protrusion (21c) and the cover member (22c), which correspond to the differences, will be described below.
[0072] The connecting protrusion (21c) may be formed by bending upward at least a portion of either the mounting portion (11) or the connecting portion (12). This connecting protrusion (21c) may be formed of an overlapping portion (211) and a wedge portion (212c). The overlapping portion (211) and the wedge portion (212c) may be formed integrally.
[0073] The overlapping portion (211) can be arranged to overlap in either the first direction or the second direction when at least a portion of either the fixing portion (11) or the connecting portion (12) is bent upward. The overlapping portion (211) can serve to support the wedge portion (212c).
[0074] The wedge portion (212c) may be positioned higher than the overlapping portion (211) when at least a portion of either the mounting portion (11) or the connecting portion (12) is bent upward, and may be positioned spaced apart in either the first direction or the second direction. This wedge portion (212c) may be inserted into an inner groove (221c) formed inside the cover member (22), and the shape of the inner groove (221c) may be provided in a shape corresponding to the shape of the wedge portion (212c).
[0075] Meanwhile, the circumferential surface of the wedge portion (212c) may be formed by at least one surface. For example, in the present embodiment, the wedge portion (212c) may have a circumferential surface with three surfaces connected, and each surface may be connected without being rounded. However, this is merely an example, and the spirit of the present invention is not limited thereby. The surfaces forming the circumferential surface of the wedge portion (212c) may also be connected in a rounded manner.
[0076] Referring to Fig. 6, the first flow prevention part (20d) may include a joining protrusion (21d), a cover member (22d), and a protection member (23). However, since the protection member (23) is substantially the same as the protection member (23) described with reference to Figs. 1 and 2, the joining protrusion (21d) and the cover member (22d), which correspond to the differences, will be described below.
[0077] The connecting protrusion (21d) may be formed by bending upward at least a portion of either the mounting portion (11) or the connecting portion (12). This connecting protrusion (21d) may be formed of an overlapping portion (211) and a wedge portion (212d). The overlapping portion (211) and the wedge portion (212d) may be formed integrally.
[0078] The overlapping portion (211) can be arranged to overlap in either the first direction or the second direction when at least a portion of either the fixing portion (11) or the connecting portion (12) is bent upward. The overlapping portion (211) can serve to support the wedge portion (212d).
[0079] The wedge portion (212d) may be positioned higher than the overlapping portion (211) when at least a portion of either the mounting portion (11) or the connecting portion (12) is bent upward, and may be positioned spaced apart in either the first direction or the second direction. This wedge portion (212d) may be inserted into an inner groove (221d) formed inside the cover member (22), and the shape of the inner groove (221d) may be provided in a shape corresponding to the shape of the wedge portion (212d).
[0080] Meanwhile, the circumferential surface of the wedge portion (212d) may be formed by at least one surface. For example, in the present embodiment, the wedge portion (212d) may have a circumferential surface with five surfaces connected, and each surface may be connected without being rounded. However, this is merely an example, and the spirit of the present invention is not limited thereby. The surfaces forming the circumferential surface of the wedge portion (212d) may also be connected in a rounded manner.
[0081] Hereinafter, a panel for installing a solar cell module according to another embodiment of the present invention will be described with reference to FIGS. 7 and 8.
[0082] Referring to FIGS. 7 and 8, a panel (1') for installing a solar cell module according to another embodiment of the present invention may include a panel body (10'), a first flow prevention part (20), and a second flow prevention part (30).
[0083] However, the solar cell module installation panel (1') illustrated in FIGS. 7 and 8 is substantially the same as the solar cell module installation panel (1) illustrated in FIGS. 1 and 2, except for the first connecting portion (13') and the second connecting portion (14') of the panel body (10'), so the first connecting portion (13') and the second connecting portion (14') of the panel body (10') corresponding to the differences will be described below, and any overlapping description will be omitted.
[0084] The panel body (10') is different from the panel body (10) illustrated in FIGS. 1 and 2 in that it is not provided with an insulating structure, and the shapes of the first connecting portion (13') and the second connecting portion (14') are different from the first connecting portion (13) and the second connecting portion (14) of the panel body (10) illustrated in FIGS. 1 and 2. Accordingly, even if the type of the panel body (10') is different, the first movement prevention portion (20) and the second movement prevention portion (30) can be applied to the panel body (10') without any problem, so that the first direction movement and the second direction movement of the solar cell module (2) with respect to the panel body (10') can be regulated by the first movement prevention portion (20) and the second movement prevention portion (30), respectively.
[0085] Hereinafter, a panel for installing a solar cell module according to another embodiment of the present invention will be described with reference to FIG. 9.
[0086] Referring to FIG. 9, a panel (1'') for installing a solar cell module according to another embodiment of the present invention may include a panel body (10''), a first flow prevention part (20), and a second flow prevention part (30).
[0087] However, the solar cell module installation panel (1'') illustrated in FIG. 9 is substantially the same as the solar cell module installation panel (1) illustrated in FIGS. 1 and 2, except for the first connecting portion (13'') and the second connecting portion (14'') of the panel body (10''). Therefore, the first connecting portion (13'') and the second connecting portion (14'') of the panel body (10'') corresponding to the differences will be described below, and any overlapping description will be omitted.
[0088] The panel body (10'') is provided with an insulating structure similar to the panel body (10) illustrated in FIGS. 1 and 2, but the shapes of the first connecting portion (13'') and the second connecting portion (14'') are different from the first connecting portion (13) and the second connecting portion (14) of the panel body (10) illustrated in FIGS. 1 and 2. Accordingly, even if the type of the panel body (10'') is different, the first movement prevention portion (20) and the second movement prevention portion (30) can be applied to the panel body (10'') without any problem, so that the first direction movement and the second direction movement of the solar cell module (2) with respect to the panel body (10'') can be regulated by the first movement prevention portion (20) and the second movement prevention portion (30), respectively.
[0089] Although the embodiments of the present invention have been described as specific embodiments, these are merely examples, and the present invention is not limited thereto, but should be construed as having the broadest scope in accordance with the basic idea disclosed in this specification. Those skilled in the art may implement patterns of shapes not specified by combining / substituting the disclosed embodiments, but this also does not depart from the scope of the present invention. In addition, those skilled in the art may easily modify or alter the disclosed embodiments based on this specification, and it is clear that such modifications or alterations also fall within the scope of the present invention.
Claims
1. A panel body that is provided so as to be attachable to an installation target where installation of a solar cell module is required, and on which the solar cell module is selectively installed; A first flow prevention unit provided on the panel body and preventing the solar cell module mounted on the panel body from flowing in either a first direction or a second direction intersecting the first direction with respect to the panel body; and A second flow prevention unit is provided on the panel body and prevents the solar cell module mounted on the panel body from flowing in the other of the first direction and the second direction with respect to the panel body. Panels for installing solar modules.
2. In paragraph 1, The above panel body, A plurality of mounting portions having a mounting surface on which the solar cell module can be mounted and spaced apart in one of the first direction and the second direction; and Including a connecting part that connects between the plurality of said fixing parts and has a connecting surface that is positioned closer to the installation target than the fixing surface of the said fixing part. Panels for installing solar modules.
3. In paragraph 2, The above panel body, A first connecting portion extending from one end of the above anchoring portion and the above connecting portion; and Further comprising a second connecting portion extending from the other end of one of the above-described anchoring portion and the above-described connecting portion, The one end and the other end of one of the above-mentioned anchoring portion and the above-mentioned connecting portion face each other in one of the first direction and the second direction. Panels for installing solar modules.
4. In paragraph 2, The above first flow prevention unit is, A connecting protrusion formed by bending upward at least a portion of one of the above-mentioned anchoring portion and the above-mentioned connecting portion; and Including a cover member that is joined to at least a portion of the above-mentioned joining protrusion and covers at least a portion of the above-mentioned joining protrusion, At least a portion of the outer surface of the cover member is in surface contact with the solar cell module mounted on the mounting portion. Panels for installing solar modules.
5. In paragraph 4, The above-mentioned combination stone is, An overlapping portion arranged to overlap in one of the first direction and the second direction when at least a part of either the above-described anchoring portion or the above-described connecting portion is bent upward; and A wedge portion, which is disposed above the overlapping portion and spaced apart in one of the first direction and the second direction, when at least a portion of either the above-mentioned fixing portion or the above-mentioned connecting portion is bent upward, Panels for installing solar modules.
6. In paragraph 5, The above first flow prevention unit is, Further comprising a protective member provided on the inside of the cover member and arranged to surround the outer side of the wedge portion, Panels for installing solar modules.
7. In paragraph 2, The above second flow prevention unit is, Including a stopper provided at at least one end of the above-mentioned fixing portion and the above-mentioned connecting portion, At least one of the two ends of the above-mentioned anchoring portion and the above-mentioned connecting portion faces the other of the first direction and the second direction, Panels for installing solar modules.
8. In paragraph 7, At least a portion of the circumferential surface of the stopper is in surface contact with the solar cell module mounted on the mounting portion. Panels for installing solar modules.
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