Zip line device
Patent Information
- Application Number
- CN202521983672.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-15
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-09-15
AI Technical Summary
[0003]有鉴于此,本实用新型提供了一种滑索装置,以解决屋面面积大的建筑的屋面中心区域施工时需要人工搬运或其他方式将构件运输至指定位置进行安装,导致效率低、安全性差,无法保证施工项目的正常履约要求的问题
[0013]有益效果:通过设置滑动组件包括滑动件和第一固定件,滑动件和第一固定件在本实施例中分别为滑动绳索和第一固定耳,其中,第一固定件安装在屋面上,滑动件的一端与第一支撑组件远离屋面的端部连接,另一端则能够与第一固定件连接,如此,滑动件的两端会被固定住,此时,部分滑动件会搭设在第二支撑组件远离屋面的端部上,以使第一支撑组件和第二支撑组件能够同时为滑动件提供支撑,并使运输件能够在滑动件上滑动。
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Figure CN224813500U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building construction technology, and specifically to a cableway device. Background Technology
[0002] In recent years, the construction of large stadiums, airports, and high-speed railway stations has experienced rapid growth in my country. A common characteristic of these buildings is their large roof area. During the construction of these buildings, the sheer size of the roof area means that tower cranes, truck cranes, or crawler cranes cannot reach the central area of the roof when workers are working on it. This makes it impossible to mechanically hoist large components such as roof purlins into place. Instead, large components must be transported to designated locations manually or by other means. However, this method is often inefficient and unsafe, failing to guarantee the normal fulfillment of project requirements. Utility Model Content
[0003] In view of this, the present invention provides a cable-stayed device to solve the problem that when constructing the central area of the roof of a building with a large roof area, it is necessary to manually handle or use other methods to transport components to the designated location for installation, which results in low efficiency, poor safety, and inability to guarantee the normal performance requirements of the construction project.
[0004] In a first aspect, this utility model provides a zipline device, comprising:
[0005] The support structure includes a first support component, a second support component, and a plurality of fixing components. The first support component and the second support component are adapted to be disposed on the roof at relative intervals. One end of any of the fixing components is adapted to be fixed to the roof, and the other end is adapted to be connected to the end of the first support component away from the roof, and / or the other end is adapted to be connected to the end of the second support component away from the roof.
[0006] A transport structure includes a transport component and a sliding component. One end of the sliding component is connected to a first support component, and the other end is adapted to be fixed to the roof. A portion of the sliding component is mounted on the end of the second support component away from the roof. The transport component is slidably mounted on the sliding component and is adapted to be connected to the item to be transported so as to transport the item to be transported via the sliding component.
[0007] Beneficial effects: The first and second support components provide support for the sliding component, allowing the transport component to be slidably mounted on the sliding component. The transport component can then be connected to the item to be transported, enabling the item to move by sliding the transport component relative to the sliding component. This allows the item to be transported to a designated location, thus avoiding manual handling of the item. This improves the transport efficiency and safety of the item and ensures the normal performance of the construction project.
[0008] In one optional embodiment, the transport assembly includes a transport component, a rolling component, and a hook component. The rolling component is rotatably disposed on the transport component and adapted to abut against the sliding component. The transport component is adapted to be slidably connected to the sliding component via the rolling component. The hook component is disposed on the transport component and adapted to be connected to the component to be transported.
[0009] Beneficial effects: By setting the transportation component including a transportation component, a rolling component, and a hook, in this embodiment, the transportation component, the rolling component, and the hook are respectively a transportation shell, a rolling pulley, and a hook. The rolling component is rotatably mounted on the transportation component and can abut against the sliding component, thereby enabling the transportation component to be connected to the sliding component through the rolling component. The rolling component can rotate relative to the transportation component and move relative to the sliding component, thus realizing a sliding connection between the transportation component and the sliding component. The hook is mounted on the transportation component and can be connected to the item to be transported. In this way, the item to be transported can be transported through the sliding connection between the transportation component and the sliding component, avoiding manual handling of the item to be transported.
[0010] In one alternative embodiment, the transport component has a receiving cavity; the transport assembly further includes a drive component and a control component, both of which are disposed within the receiving cavity, the drive end of the drive component being adapted to connect with the rolling component to drive the rolling component to rotate, and the control component being electrically connected to the drive component to control the rotational speed of the drive end of the drive component.
[0011] Beneficial effects: By setting the transport component to have a receiving cavity and setting the transport assembly to include a driving component and a control component, the driving component and the control component in this embodiment are respectively a drive motor and a controller. The driving component and the control component are both set in the receiving cavity. The driving end of the driving component is connected to the rolling component to drive the rolling component to rotate, thereby realizing the movement of the rolling component and the sliding component, as well as the sliding of the transport component and the sliding component. The control component is electrically connected to the driving component, thereby enabling the control component to control the rotational speed of the driving end of the driving component, and thus controlling the sliding speed of the transport component relative to the sliding component. This avoids the transport component sliding too fast relative to the sliding component, which would reduce safety, and the transport component sliding too slow, which would reduce transport efficiency.
[0012] In one alternative embodiment, the sliding assembly includes a slider and a first fixing member, the first fixing member being adapted to be mounted on the roof, one end of the slider being connected to the end of the first support assembly away from the roof, the other end being connected to the first fixing member, and a portion of the slider being mounted on the end of the second support assembly away from the roof.
[0013] Beneficial effects: By setting the sliding component to include a sliding member and a first fixing member, in this embodiment the sliding member and the first fixing member are respectively a sliding rope and a first fixing ear. The first fixing member is installed on the roof. One end of the sliding member is connected to the end of the first support component away from the roof, and the other end can be connected to the first fixing member. In this way, both ends of the sliding member will be fixed. At this time, part of the sliding member will be placed on the end of the second support component away from the roof, so that the first support component and the second support component can simultaneously provide support for the sliding member and allow the transport component to slide on the sliding member.
[0014] In one optional embodiment, the first support assembly includes a first support member and at least two first adapter members. The first support member is adapted to be installed on the roof. The two first adapter members are respectively installed on opposite sides of the first support member and are both connected to the first support member. After the two first adapter members are connected to the first support member, the two first adapter members are adapted to be welded to the roof to fix the first support member to the roof.
[0015] Beneficial effects: By setting the first support assembly including a first support member and two first adapter members, the first support member and the first adapter members in this embodiment are respectively a first support rod and a first adapter plate. The first support member can be set on the roof, and the two first adapter members are respectively set on opposite sides of the first support member, and each first adapter member is connected to the first support member. In addition, after the two first adapter members are respectively connected to the first support member, each first adapter member can be welded to the roof, thereby fixing the first support member to the roof through the two first adapter members; the first adapter members and the first support member are specifically connected by bolts.
[0016] In one alternative embodiment, the first support assembly further includes a second fastener disposed at the end of the first support assembly away from the roof, the second fastener being adapted to connect with the end of the fastening assembly and the end of the sliding member.
[0017] Beneficial effects: By including a second fixing member in the first support component, which is a second fixing ear in this embodiment, the second fixing member is specifically disposed on the end of the first support component away from the roof. At the same time, the second fixing member can be connected to the end of the fixing component, so that the fixing component can provide tension to the first support component in different directions, thereby preventing the first support component from tipping over. In addition, the second fixing member can also be connected to the end of the sliding member, so that one end of the sliding member can be fixed and the first support component can provide support for the sliding member.
[0018] In one optional embodiment, the second support assembly includes a second support member and at least two second adapter members. The second support member is adapted to be installed on the roof. The two second adapter members are respectively installed on opposite sides of the second support member and are both connected to the second support member. After the two second adapter members are connected to the second support member, the two second adapter members are adapted to be welded to the roof to fix the second support member to the roof.
[0019] Beneficial effects: By setting the second support assembly, which includes a second support member and two second adapter members, the second support member and the second adapter member in this embodiment are respectively a second support rod and a second adapter plate. The second support member can be installed on the roof, and the two second adapter members are respectively installed on opposite sides of the second support member, and each second adapter member is connected to the second support member. In addition, after the two second adapter members are connected to the second support member, each second adapter member can be welded to the roof, thereby fixing the second support member to the roof through the two second adapter members. The second adapter members and the second support member are specifically connected by bolts.
[0020] In one optional embodiment, the second support component further includes a third fixing member and a fourth fixing member, the third fixing member and the fourth fixing member being respectively disposed on opposite sides of the second support component and both being connected to the second support component, and both the third fixing member and the fourth fixing member being adapted to be connected to the end of the fixing component.
[0021] Beneficial effects: By setting the second support component, a third fixing member and a fourth fixing member are also included. In this embodiment, the third fixing member and the fourth fixing member are respectively the third fixing ear and the fourth fixing ear. The third fixing member and the fourth fixing member are respectively set on opposite sides of the second support member and are both connected to the second support member. The third fixing member and the fourth fixing member can be connected to the end of the fixing component, so that the fixing component can provide the second support member with tensile force in different directions.
[0022] In one alternative embodiment, the second support assembly further includes a rotating member rotatably disposed at the end of the second support assembly away from the roof. When the sliding member is disposed between the first support assembly and the second support assembly, a portion of the sliding member is adapted to be wound around the rotating member to adjust the tension of the sliding member by means of the rotating member.
[0023] Beneficial effects: By including a rotating component in the second support assembly, which is a rotating roller in this embodiment, the rotating component is specifically rotatably disposed on the end of the second support assembly away from the roof. When the sliding component is disposed between the first and second support assemblies, part of the sliding component will be wrapped around the rotating component. Thus, when the rotating component rotates, the rotating component can tighten or loosen the sliding component, thereby allowing the rotating component to adjust the tension of the sliding component by rotating, so that the sliding component can provide sufficient support force for the transport component.
[0024] In one alternative embodiment, the fixing component includes a connector and a fifth fixing member, the fifth fixing member being adapted to be installed on the roof, one end of the connector being adapted to be connected to the fifth fixing member, the other end being adapted to be connected to the second fixing member, and / or the other end being adapted to be connected to the third fixing member or the fourth fixing member.
[0025] Beneficial effects: By setting the fixing components including a connector and a fifth fixing member, in this embodiment the connector and the fifth fixing member are respectively a connecting rope and a fifth fixing lug. The second fixing member is installed on the roof. One end of the connector is connected to the fifth fixing member, and the other end can be connected to the second fixing member. The connector can provide tension to the first support member. When the other end of the connector is connected to the third or fourth fixing member, the connector can provide tension to the second support member.
[0026] In one optional embodiment, the support structure includes two spaced-apart first support components and two spaced-apart second support components, and any one of the fixing members is disposed on a straight line along the transport direction of the item to be transported.
[0027] Beneficial effects: By setting the support structure to include two spaced-apart first support components and two spaced-apart second support components, the transport component has two sliding members to provide support when transporting the item to be transported, which helps to improve the transport stability of the transport component; by setting each fixing member on the straight line of the transport direction of the item to be transported, since the transport component and the item to be transported will exert a gravitational pull on the first and second support members through the sliding members when the transport component is moving with the item to be transported, and the direction of the gravitational pull is in the aforementioned straight line, by setting all the fixing members on the aforementioned straight line, the connecting member can provide a pull force to the first or second support member through the fixing members to counteract the gravitational pull, thereby maintaining the stability of the first and second support members. Attached Figure Description
[0028] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0029] Figure 1 This is a plan view of a zipline device according to an embodiment of the present utility model;
[0030] Figure 2 This is a schematic diagram of the structure of the first support component of a zipline device according to an embodiment of the present invention;
[0031] Figure 3 This is a schematic diagram showing the connection between the fixing component and the second fixing member of a zipline device according to an embodiment of the present invention;
[0032] Figure 4 This is a schematic diagram of the structure of the second support component of a zipline device according to an embodiment of the present invention;
[0033] Figure 5 This is a schematic diagram showing the connection between the sliding component and the rotating component of a zipline device according to an embodiment of the present invention;
[0034] Figure 6 This is a schematic diagram of the external structure of a transport component of a zipline device according to an embodiment of the present invention;
[0035] Figure 7 This is a schematic diagram of the internal structure of a zipline device according to an embodiment of the present invention.
[0036] Explanation of reference numerals in the attached figures:
[0037] 1-Support structure; 11-First support assembly; 111-First support member; 112-First adapter; 113-Second fixing member; 12-Second support assembly; 121-Second support member; 122-Second adapter; 123-Third fixing member; 124-Fourth fixing member; 125-Rotating member; 13-Fixing assembly; 131-Connecting member; 132-Fifth fixing member;
[0038] 2-Transport structure; 21-Transport component; 211-Transport part; 212-Rolling part; 213-Hook and hanger; 214-Driver; 215-Control unit; 22-Sliding assembly; 221-Sliding part; 222-First fixing part;
[0039] 3-Items to be shipped. Detailed Implementation
[0040] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0041] The following is combined Figures 1 to 7 The following describes embodiments of the present invention.
[0042] According to an embodiment of the present invention, in one aspect, a zipline device is provided, such as... Figures 1 to 7 As shown, the structure includes a support structure 1 and a transport structure 2. The support structure 1 includes a first support component 11, a second support component 12, and several fixing components 13. The first support component 11 and the second support component 12 are adapted to be arranged on the roof at relative intervals. One end of any fixing component 13 is adapted to be fixed on the roof, and the other end is adapted to be connected to the end of the first support component 11 away from the roof, and / or the other end is adapted to be connected to the end of the second support component 12 away from the roof. The transport structure 2 includes a transport component 21 and a sliding component 22. One end of the sliding component 22 is connected to the first support component 11, and the other end is adapted to be fixed on the roof. Part of the sliding component 22 is mounted on the end of the second support component 12 away from the roof. The transport component 21 is slidably mounted on the sliding component 22, and the transport component 21 is adapted to be connected to the item 3 to be transported so as to transport the item 3 through the sliding component 22.
[0043] The aforementioned zipline device utilizes a transport structure 2 mounted on a support structure 1. The support structure 1 includes a first support component 11, a second support component 12, and several fixing components 13. The first support component 11 and the second support component 12 are positioned at intervals on the roof. One end of each fixing component 13 is fixed to the roof, while the other end of some fixing components 13 is connected to the end of the first support component 11 away from the roof, and the other end of other fixing components 13 is connected to the end of the second support component 12 away from the roof. In this way, the first support component 11 and the second support component 12 can be fixed to the roof using the fixing components 13. Simultaneously, the fixing components 13 can provide tension in different directions to the first support component 11 and the second support component 12 to prevent them from tipping over.
[0044] The transport structure 2 specifically includes a transport component 21 and a sliding component 22. One end of the sliding component 22 is connected to the end of the first support component 11, while the other end can be fixed to the roof. When both ends of the sliding component 22 are fixed, a portion of the sliding component 22 can be placed on the end of the second support component 12 away from the roof. Thus, when both ends of the sliding component 22 are fixed, the first support component 11 and the second support component 12 can provide support for the sliding component 22, allowing the transport component 21 to be slidably mounted on the sliding component 22. The transport component 21 can also be connected to the item to be transported 3. This allows the item to be transported 3 to move through the sliding of the transport component 21 relative to the sliding component 22, thereby transporting the item to a designated location. This avoids the need for manual handling of the item, improving the transport efficiency and safety of the item, and ensuring the normal performance requirements of the construction project.
[0045] In summary, the first support component 11 and the second support component 12 provide support for the sliding component 22, allowing the transport component 21 to be slidably mounted on the sliding component 22. The transport component 21 can be connected to the item to be transported 3, enabling the item to be transported 3 to move through the sliding of the transport component 21 relative to the sliding component 22. This allows the item to be transported to a designated location, thus avoiding manual handling of the item. This improves the transport efficiency and safety of the item and ensures the normal performance requirements of the construction project.
[0046] In one embodiment, such as Figure 6 As shown, the transport component 21 includes a transport member 211, a rolling member 212, and a hook member 213. The rolling member 212 is rotatably disposed on the transport member 211 and is adapted to abut against the sliding component 22. The transport member 211 is adapted to be slidably connected to the sliding component 22 through the rolling member 212. The hook member 213 is disposed on the transport member 211 and is adapted to be connected to the item 3 to be transported.
[0047] The above-described zipline device, by setting a transport component 21 including a transport component 211, a rolling component 212, and a hook component 213, in this embodiment, the transport component 211, the rolling component 212, and the hook component 213 are respectively a transport housing, a rolling pulley, and a hook. The rolling component 212 is rotatably mounted on the transport component 211 and can abut against the sliding component 22, so that the transport component 211 can be connected to the sliding component 22 through the rolling component 212. The rolling component 212 can rotate relative to the transport component 211 and move relative to the sliding component 22, thereby realizing a sliding connection between the transport component 211 and the sliding component 22. The hook component 213 is mounted on the transport component 211 and can be connected to the item 3 to be transported. In this way, the item 3 to be transported can be transported through the sliding connection between the transport component 211 and the sliding component 22, which can avoid manual handling of the item 3 to be transported.
[0048] In one embodiment, such as Figure 6 and Figure 7 As shown, the transport component 211 has a receiving cavity; the transport assembly 21 also includes a drive component 214 and a control component 215, both of which are disposed within the receiving cavity. The drive end of the drive component 214 is adapted to be connected to the rolling component 212 to drive the rolling component 212 to rotate. The control component 215 is electrically connected to the drive component 214 to control the rotational speed of the drive end of the drive component 214.
[0049] The above-described zipline device, by providing a receiving cavity for the transport component 211 and the transport assembly 21, also includes a drive component 214 and a control component 215. In this embodiment, the drive component 214 and the control component 215 are a drive motor and a controller, respectively. Both the drive component 214 and the control component 215 are disposed within the receiving cavity. The drive end of the drive component 214 is connected to the rolling component 212 to drive the rolling component 212 to rotate, thereby realizing the movement of the rolling component 212 and the sliding assembly 22, as well as the sliding of the transport component 211 and the sliding assembly 22. The control component 215 is electrically connected to the drive component 214, thereby enabling the control component 215 to control the rotational speed of the drive end of the drive component 214. This allows for control of the sliding speed of the transport component 211 relative to the sliding assembly 22, preventing the sliding speed of the transport component 211 relative to the sliding assembly 22 from being too fast, which would reduce safety, or too slow, which would reduce transport efficiency.
[0050] In one embodiment, such as Figure 5 As shown, the sliding assembly 22 includes a slider 221 and a first fixing member 222. The first fixing member 222 is adapted to be installed on the roof. One end of the slider 221 is connected to the end of the first support assembly 11 away from the roof, and the other end is connected to the first fixing member 222. Part of the slider 221 is mounted on the end of the second support assembly 12 away from the roof.
[0051] The above-described zipline device includes a sliding component 221 and a first fixing component 222. In this embodiment, the sliding component 221 and the first fixing component 222 are a sliding rope and a first fixing lug, respectively. The first fixing component 222 is installed on the roof. One end of the sliding component 221 is connected to the end of the first support component 11 away from the roof, and the other end can be connected to the first fixing component 222. Thus, both ends of the sliding component 221 are fixed. At this time, part of the sliding component 221 will be placed on the end of the second support component 12 away from the roof, so that the first support component 11 and the second support component 12 can simultaneously provide support for the sliding component 221 and allow the transport component 211 to slide on the sliding component 221.
[0052] In one embodiment, such as Figure 2 and Figure 3 As shown, the first support assembly 11 includes a first support member 111 and at least two first adapter members 112. The first support member 111 is adapted to be installed on the roof. The two first adapter members 112 are respectively installed on opposite sides of the first support member 111 and are both connected to the first support member 111. After the two first adapter members 112 are connected to the first support member 111, the two first adapter members 112 are adapted to be welded to the roof to fix the first support member 111 on the roof.
[0053] The above-described zipline device includes a first support assembly 11 comprising a first support member 111 and two first adapter members 112. In this embodiment, the first support member 111 and the first adapter members 112 are respectively a first support rod and a first adapter plate. The first support member 111 can be installed on the roof, and the two first adapter members 112 are respectively installed on opposite sides of the first support member 111. Each first adapter member 112 is connected to the first support member 111. After the two first adapter members 112 are connected to the first support member 111, each first adapter member 112 can be welded to the roof, thereby fixing the first support member 111 to the roof through the two first adapter members 112. The first adapter members 112 and the first support member 111 are specifically connected by bolts.
[0054] In one embodiment, such as Figure 2 and Figure 3 As shown, the first support assembly 11 also includes a second fastener 113, which is disposed on the end of the first support assembly 111 away from the roof. The second fastener 113 is adapted to connect with the end of the fastener assembly 13 and the end of the slider 221.
[0055] The above-described zipline device, by providing a first support component 11, also includes a second fixing member 113. In this embodiment, the second fixing member 113 is a second fixing lug. The second fixing member 113 is specifically disposed on the end of the first support component 111 away from the roof. At the same time, the second fixing member 113 can be connected to the end of the fixing component 13, so that the fixing component 13 can provide tension to the first support component 111 in different directions, thereby preventing the first support component 111 from tipping over. In addition, the second fixing member 113 can also be connected to the end of the sliding member 221, so that one end of the sliding member 221 can be fixed and the first support component 111 can provide support for the sliding member 221.
[0056] In one embodiment, such as Figure 4 and Figure 5 As shown, the second support assembly 12 includes a second support member 121 and at least two second adapter members 122. The second support member 121 is adapted to be installed on the roof. The two second adapter members 122 are respectively installed on opposite sides of the second support member 121 and are both connected to the second support member 121. After the two second adapter members 122 are connected to the second support member 121, the two second adapter members 122 are adapted to be welded to the roof to fix the second support member 121 on the roof.
[0057] The above-described zipline device includes a second support assembly 12 comprising a second support member 121 and two second adapter members 122. In this embodiment, the second support member 121 and the second adapter members 122 are respectively a second support rod and a second adapter plate. The second support member 121 can be installed on the roof, and the two second adapter members 122 are respectively installed on opposite sides of the second support member 121, with each second adapter member 122 connected to the second support member 121. Furthermore, after the two second adapter members 122 are connected to the second support member 121, each second adapter member 122 can be welded to the roof, thereby fixing the second support member 121 to the roof through the two second adapter members 122. The second adapter members 122 and the second support member 121 are specifically connected by bolts.
[0058] In one embodiment, such as Figure 4 As shown, the second support assembly 12 also includes a third fixing member 123 and a fourth fixing member 124. The third fixing member 123 and the fourth fixing member 124 are respectively disposed on opposite sides of the second support member 121 and are both connected to the second support member 121. The third fixing member 123 and the fourth fixing member 124 are both adapted to be connected to the end of the fixing assembly 13.
[0059] The zipline device with the above-described structure further includes a third fixing member 123 and a fourth fixing member 124 by setting the second support component 12. In this embodiment, the third fixing member 123 and the fourth fixing member 124 are respectively the third fixing ear and the fourth fixing ear. The third fixing member 123 and the fourth fixing member 124 are respectively disposed on opposite sides of the second support member 121 and are both connected to the second support member 121. The third fixing member 123 and the fourth fixing member 124 can be connected to the end of the fixing component 13, so that the fixing component 13 can provide the second support member 121 with tension in different directions.
[0060] In one embodiment, such as Figure 4 and Figure 5 As shown, the second support assembly 12 also includes a rotating member 125, which is rotatably disposed on the end of the second support member 121 away from the roof. When the sliding member 221 is disposed between the first support assembly 11 and the second support assembly 12, a portion of the sliding member 221 is adapted to be wound around the rotating member 125 so as to adjust the tension of the sliding member 221 by means of the rotating member 125.
[0061] The above-described zipline device further includes a rotating member 125 by setting a second support component 12. In this embodiment, the rotating member 125 is a rotating roller. Specifically, the rotating member 125 is rotatably disposed on the end of the second support component 121 away from the roof. When the sliding member 221 is disposed between the first support component 11 and the second support component 12, part of the sliding member 221 will be wrapped around the rotating member 125. Thus, when the rotating member 125 rotates, the rotating member 125 can tighten or loosen the sliding member 221, thereby allowing the rotating member 125 to adjust the tension of the sliding member 221 by rotating, so that the sliding member 221 can provide sufficient support force for the transport component 211.
[0062] In one embodiment, such as Figure 3 As shown, the fixing component 13 includes a connector 131 and a fifth fixing member 132. The fifth fixing member 132 is adapted to be installed on the roof. One end of the connector 131 is adapted to be connected to the fifth fixing member 132, and the other end is adapted to be connected to the second fixing member 113, and / or the other end is adapted to be connected to the third fixing member 123 or the fourth fixing member 124.
[0063] The above-described zipline device includes a connecting member 131 and a fifth fixing member 132, which are respectively a connecting rope and a fifth fixing lug in this embodiment. The second fixing member 113 is installed on the roof. One end of the connecting member 131 is connected to the fifth fixing member 132, and the other end is connected to the second fixing member 113. The connecting member 131 can provide tension to the first support member 111. When the other end of the connecting member 131 is connected to the third fixing member 123 or the fourth fixing member 124, the connecting member 131 can provide tension to the second support member 121.
[0064] In one embodiment, such as Figure 1 As shown, the support structure 1 includes two spaced-apart first support components 11 and two spaced-apart second support components 12, with any one of the fixing members positioned on a straight line along the transport direction of the item 3 to be transported.
[0065] The above-described zipline device, by setting the support structure 1 to include two spaced-apart first support components 11 and two spaced-apart second support components 12, allows the transport component 211 to have two sliding members 221 providing support when transporting the transport component 3, which is beneficial to improving the transport stability of the transport component 211. By setting each fixing member on the straight line of the transport direction of the transport component 3, since the transport component 211 and the transport component 3 will exert a gravitational pull on the first support component 111 and the second support component 121 through the sliding members 221 when the transport component 211 is moving with the transport component 3, and the direction of the gravitational pull is on the aforementioned straight line, by setting all the fixing members on the aforementioned straight line, the connecting member 131 can provide a pull force to the first support component 111 or the second support component 121 through the fixing members to counteract the gravitational pull, thereby maintaining the stability of the first support component 111 and the second support component 121.
[0066] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.
Claims
1. A zipline device, characterized in that, include: The support structure (1) includes a first support component (11), a second support component (12) and a plurality of fixing components (13). The first support component (11) and the second support component (12) are adapted to be arranged on the roof at relative intervals. One end of any of the fixing components (13) is adapted to be fixed on the roof, and the other end is adapted to be connected to the end of the first support component (11) away from the roof, and / or the other end is adapted to be connected to the end of the second support component (12) away from the roof. The transport structure (2) includes a transport component (21) and a sliding component (22). One end of the sliding component (22) is connected to the first support component (11), and the other end is adapted to be fixed on the roof. Part of the sliding component (22) is mounted on the end of the second support component (12) away from the roof. The transport component (21) is slidably mounted on the sliding component (22), and the transport component (21) is adapted to be connected to the item to be transported (3) so as to transport the item to be transported (3) through the sliding component (22).
2. The zipline device according to claim 1, characterized in that, The transport component (21) includes a transport component (211), a rolling component (212), and a hook component (213). The rolling component (212) is rotatably disposed on the transport component (211) and adapted to abut against the sliding component (22). The transport component (211) is adapted to be slidably connected to the sliding component (22) through the rolling component (212). The hook component (213) is disposed on the transport component (211) and is adapted to be connected to the item to be transported (3).
3. The zipline device according to claim 2, characterized in that, The transport component (211) has a receiving cavity; the transport assembly (21) further includes a drive component (214) and a control component (215), both of which are disposed within the receiving cavity. The drive end of the drive component (214) is adapted to connect with the rolling component (212) to drive the rolling component (212) to rotate. The control component (215) is electrically connected to the drive component (214) to control the rotational speed of the drive end of the drive component (214).
4. The zipline device according to any one of claims 1-3, characterized in that, The sliding assembly (22) includes a sliding member (221) and a first fixing member (222). The first fixing member (222) is adapted to be installed on the roof. One end of the sliding member (221) is connected to the end of the first support assembly (11) away from the roof, and the other end is connected to the first fixing member (222). Part of the sliding member (221) is mounted on the end of the second support assembly (12) away from the roof.
5. The zipline device according to claim 4, characterized in that, The first support assembly (11) includes a first support member (111) and at least two first adapter members (112). The first support member (111) is adapted to be installed on the roof. The two first adapter members (112) are respectively installed on opposite sides of the first support member (111) and are both connected to the first support member (111). After the two first adapter members (112) are connected to the first support member (111), the two first adapter members (112) are adapted to be welded to the roof to fix the first support member (111) on the roof.
6. The zipline device according to claim 5, characterized in that, The first support assembly (11) further includes a second fastener (113), which is disposed on the end of the first support assembly (111) away from the roof and is adapted to connect with the end of the fastener assembly (13) and the end of the slider (221).
7. The zipline device according to claim 6, characterized in that, The second support assembly (12) includes a second support member (121) and at least two second adapter members (122). The second support member (121) is adapted to be installed on the roof. The two second adapter members (122) are respectively installed on opposite sides of the second support member (121) and are both connected to the second support member (121). After the two second adapter members (122) are connected to the second support member (121), the two second adapter members (122) are adapted to be welded to the roof to fix the second support member (121) on the roof.
8. The zipline device according to claim 7, characterized in that, The second support assembly (12) further includes a third fixing member (123) and a fourth fixing member (124). The third fixing member (123) and the fourth fixing member (124) are respectively disposed on opposite sides of the second support member (121) and are both connected to the second support member (121). The third fixing member (123) and the fourth fixing member (124) are both adapted to be connected to the end of the fixing assembly (13).
9. The zipline device according to claim 8, characterized in that, The second support assembly (12) further includes a rotating member (125) which is rotatably disposed on the end of the second support member (121) away from the roof. When the sliding member (221) is disposed between the first support assembly (11) and the second support assembly (12), a portion of the sliding member (221) is adapted to be wound around the rotating member (125) so as to adjust the tension of the sliding member (221) by means of the rotating member (125).
10. The zipline device according to claim 9, characterized in that, The fixing component (13) includes a connector (131) and a fifth fixing member (132), the fifth fixing member (132) being adapted to be installed on the roof, one end of the connector (131) being adapted to be connected to the fifth fixing member (132), the other end being adapted to be connected to the second fixing member (113), and / or the other end being adapted to be connected to the third fixing member (123) or the fourth fixing member (124).
11. The zipline device according to claim 10, characterized in that, The support structure (1) includes two spaced-apart first support components (11) and two spaced-apart second support components (12), and any of the fixing members is located on the straight line of the transport direction of the item to be transported (3).