Multifunctional climbing slide device capable of being detached and combined
By designing a detachable and combinable multi-functional climbing and sliding device, the problems of high cost and unstable connection of climbing ladders and slides when purchased separately in the existing technology are solved, realizing a safe and stable climbing and sliding experience, and improving the multi-functionality and practicality of the product.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-28
- Publication Date
- 2026-03-31
AI Technical Summary
The existing ladders and slides exist as separate products, resulting in high purchase costs, inefficient space utilization, and unstable temporary connections, which cannot meet the diverse needs of children.
Design a multi-functional climbing slide device that can be disassembled and assembled. By integrating the climbing ladder and climbing slide components into one design, and using structures such as screws and nuts, limit blocks and grooves, and connecting components, a stable connection and convenient disassembly can be achieved.
It provides a safe, stable, and continuous climbing and sliding experience, meets children's diverse play needs, and is easy to disassemble and store, enhancing the product's versatility and practicality.
Smart Images

Figure CN121754893A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of children's toy technology, and in particular to a multifunctional climbing slide device that can be disassembled and assembled. Background Technology
[0002] Climbing ladders and slides, common functional installations in children's playgrounds and home settings, are widely used due to their safety, convenience, and fun. Climbing ladders are primarily used for children's climbing training, effectively improving their coordination and courage. They can also serve as a temporary aid for retrieving items within the home environment. Slides, through their fun-filled descent, not only allow children to experience speed and joy but also subtly cultivate their sense of balance and self-confidence. These two types of installations are often combined in parks, kindergartens, community playgrounds, and family courtyards, satisfying children's entertainment needs and creating more possibilities for parent-child interaction.
[0003] In existing technologies, ladders and slides exist as two completely separate products. Users who want a seamless "climb then slide" experience need to purchase and place both separate devices. This not only increases purchase costs but is also less efficient in terms of space utilization, requiring storage space for two independent items. Furthermore, if users want to combine a ladder and slide, they often simply lean the slide against the ladder, a makeshift arrangement that poses serious safety hazards due to unstable connections, easy slippage, or dislocation, especially failing to meet the safety requirements for children using the equipment dynamically.
[0004] In summary, existing climbing ladders and slides suffer from limited structural functionality and cannot meet the needs of children in different scenarios. Summary of the Invention
[0005] This invention provides a detachable and combinable multifunctional climbing slide device, which can solve the problem that existing climbing slides and slides have a single structure and function and cannot meet the usage needs of children in different scenarios.
[0006] A detachable and combinable multi-functional climbing slide device, comprising: The ladder includes two side panels and a plurality of first step plates, the two side panels are arranged opposite to each other, and the plurality of first step plates are located between the two side panels; A climbing slide component, wherein the climbing slide component is located between two side panels.
[0007] This invention provides a detachable and combinable multifunctional climbing slide device, which, compared with the prior art, has, but is not limited to, the following beneficial effects: This detachable and combinable multi-functional climbing slide device includes a climbing ladder structure comprising two side panels and several first-step plates. The side panels, serving as lateral support components, can be rectangular or irregularly shaped, and can be made of high-strength plastic or wood. The first-step plates serve as steps for users, and their number can be adjusted according to the required climbing height. The climbing slide component is positioned between the two side panels. The climbing slide component is typically located at the top or a high position of the climbing ladder. The climbing slide component can have various functional forms and can be used in conjunction with the climbing ladder to further enhance the stability, safety, and adaptability of the entire detachable and combinable multi-functional climbing slide device, making it more flexible and versatile.
[0008] This invention provides a detachable and combinable multi-functional climbing and sliding device. By integrating the climbing ladder and sliding components into a single design, it effectively solves the safety hazards of high purchase cost, inefficient space utilization, and unstable temporary assembly connections in existing technologies. This device provides a safe, stable, and continuous climbing and sliding experience, meeting various play needs of children. It is also easy to disassemble and store, enhancing the product's versatility and practicality.
[0009] Furthermore, two first locking screws are provided on both the front and rear sides of the first step plate; A first limiting through hole is provided on the side panel corresponding to the position of the first locking screw, and a first locking nut is provided on one end of the first locking screw that passes through the first limiting through hole.
[0010] Furthermore, the first step plate is provided with a first limiting block on both the front and rear sides, and the first limiting block is located between the two first locking screws; The side panel is provided with a first limiting groove that cooperates with the first limiting block.
[0011] Furthermore, a connecting component is provided on the climbing slide near the edge panel; The climbing slide is connected to the side panel via a connecting component.
[0012] Furthermore, the climbing slide component has a slide-shaped structure, and the bottom of the climbing slide component is provided with several reinforcing blocks.
[0013] Furthermore, the connecting component includes a second limiting block; The ladder is provided with a second limiting groove, which cooperates with a second limiting block.
[0014] Furthermore, a third limiting block is also provided on the climbing slide component near the position of the second limiting block; The ladder is provided with a third limiting groove, which cooperates with a third limiting block.
[0015] Furthermore, the third limiting block is provided with a second locking screw; The third limiting groove is also provided with a second limiting through hole, and a second locking nut is provided at one end of the second locking screw that passes through the second limiting through hole.
[0016] Furthermore, the ladder is also equipped with a support member, which has a plate-like structure.
[0017] Furthermore, the top surface of the first step plate is provided with several cartoon anti-slip grooves. Attached Figure Description
[0018] The accompanying drawings, which are included to provide a further understanding of the invention and form part of this application, illustrate exemplary embodiments of the invention and, together with their description, serve to explain the invention and do not constitute an undue limitation thereof. In the drawings: Figure 1 A schematic diagram of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 2 A partial structural schematic diagram of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 3 Provided by the present invention Figure 2 Enlarged view of the structure at point A in the image; Figure 4 Rear view of the side panel structure of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 5 A schematic diagram of the structure of the first step of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 6 The rear view of the structure of the climbing slide component of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 7 The bottom structural view of the first step of a detachable and combinable multifunctional climbing slide device provided by the present invention; Figure 8 This is a schematic diagram of another embodiment of the present invention.
[0019] Explanation of reference numerals in the attached figures: 1. Climbing ladder; 2. Climbing slide component; 101. Side panel; 102. First step plate; 103. First locking screw; 104. First limiting through hole; 105. First limiting block; 106. First limiting groove; 107. Second limiting groove; 108. Third limiting groove; 109. Second limiting through hole; 100. Cartoon anti-slip groove; 201. Reinforcing block; 202. Second limiting block; 203. Third limiting block; 204. Second locking screw; 205. Connector; 206. Second step plate; 200. Reinforcing groove; 300. Reinforcing rib. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings showing multiple embodiments according to this application. It should be understood that the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments described in this application without creative effort will fall within the scope of protection of this application.
[0021] Unless otherwise defined, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains; the terminology used in the description of this application is for the purpose of describing specific embodiments only and is not intended to limit this application; the terms "comprising," "including," "having," "containing," etc., in the description, claims, and accompanying drawings of this application are open-ended terms. Therefore, "comprising," "including," or "having" refers to, for example, a method or apparatus having one or more steps or elements, but is not limited to having only these one or more elements. The terms "first," "second," etc., in the description, claims, or accompanying drawings of this application are used to distinguish different objects, not to describe a specific order or hierarchy. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "a plurality of" means two or more.
[0022] In the description of this invention, it should be understood that the terms "upper", "lower", "left", "right", "front", "rear", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0023] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "attachment" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0024] It should be emphasized that when the term "comprising / including" is used in this specification, it is used to explicitly indicate the presence of the stated feature, integer, step, or component, but does not exclude the presence or addition of one or more other features, integers, steps, parts, or groups of features, integers, steps, or parts.
[0025] In this application, the term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, B and / or C can represent: B existing alone, B and C existing simultaneously, or C existing alone. Additionally, in this application, the character " / " generally indicates that the preceding and following related objects have an "or" relationship.
[0026] Traditionally, ladders and slides are usually sold as separate products. If users want a continuous experience, they need to purchase and install two separate devices, which increases purchase costs and reduces space utilization efficiency. In addition, temporary combination methods pose safety hazards such as unstable connections, easy sliding or dislocation, and cannot meet the safety requirements for children's dynamic use. This results in a single structural function that is difficult to adapt to children's diverse usage needs.
[0027] In this regard, such as Figures 1 to 2 As shown in the figure, an embodiment of the present invention provides a detachable and combinable multifunctional climbing slide device, characterized in that it includes: The climbing ladder 1 includes two side panels 101 and several first step plates 102. The two side panels 101 are arranged opposite to each other, and the several first step plates 102 are located between the two side panels 101. The climbing slide component 2 is located between the two side panels 101.
[0028] For ease of understanding, the following explains some key terms in this embodiment: The climbing ladder 1 is a structure that provides a climbing surface for children. It is usually composed of lateral support members and transverse step members to achieve the height increase.
[0029] Side panels 101, which serve as lateral support structures for the climbing ladder 1, are typically installed in pairs to define the climbing area and support the step panels.
[0030] The first step 102 serves as a transverse step component of the climbing ladder 1, allowing users to step on it to climb upwards.
[0031] The climbing slide component 2 can be a slide, i.e., a structure that provides a sliding surface for children. Such slides typically have a smooth, sloping surface, allowing users to slide down safely and smoothly from a height, providing a fun experience. Based on this, this embodiment provides a detachable and combinable multifunctional climbing slide device. The core of this device lies in the organic combination of the climbing ladder 1 and the climbing slide component 2 to achieve functional complementarity and expansion. The climbing ladder 1 can be used independently as a climbing training device, while the climbing slide component 2 can serve as a support device for the climbing ladder 1 and / or an independent slide device. When combined, they provide a seamless experience from climbing to sliding. For example, the climbing ladder 1 and the climbing slide component 2 can be made of wood, plastic, or metal, respectively, and connected via snap-fit or plug-in structures.
[0032] Specifically, the structure of the climbing ladder 1 includes two side panels 101 and several first step plates 102. The side panels 101 serve as lateral support members of the climbing ladder 1, and their shape can be rectangular or irregular, and their material can be high-strength plastic or wood. The first step plates 102 serve as steps for users to step on, and their number can be adjusted according to the required climbing height; their surface can be flat or textured.
[0033] The two side panels 101 are positioned opposite each other to form a passageway. This opposite arrangement ensures the structural stability of the ladder 1 and provides a supporting surface for the installation of the first step 102. For example, the side panels 101 can be arranged parallel to each other or slightly tilted outward at the top to increase stability.
[0034] Several first step plates 102 are arranged between two side panels 101. The first step plates 102 can be installed in various ways; for example, they can be inserted into pre-set grooves on the inner side of the side panels 101 at both ends, or fixed to the inner side of the side panels 101 using bolts, rivets, or other methods. The spacing of the first step plates 102 can be designed according to a child's stride to ensure comfort and safety.
[0035] The climbing slide component 2 is disposed between the two side panels 101. The climbing slide component 2 is typically installed at the top or higher position of the climbing ladder 1 to support it. The climbing slide component 2 can be simply placed on the top edge of the side panel 101, or connected to the inner side of the side panel 101 via a connecting structure. Its material can be a smooth-surfaced plastic or composite material to ensure smooth operation.
[0036] The present invention provides a detachable and combinable multi-functional climbing and sliding device. By integrating the climbing ladder 1 and the climbing slide component 2 into a single design and combination, it effectively solves the safety hazards of high purchase cost of independent equipment, inefficient space utilization, and unstable temporary assembly connections in existing technologies. This device provides a safe, stable, and continuous climbing and sliding experience, meeting various play needs of children, while also being easy to disassemble and store, thus enhancing the product's versatility and practicality.
[0037] In some embodiments of the present invention described above, a multifunctional climbing slide device that can be disassembled and assembled is proposed. The climbing slide 1 includes side panels 101 and a plurality of first step plates 102, with the first step plates 102 located between two side panels 101. However, in actual use, ensuring the stability and reliability of the connection between the first step plates 102 and the side panels 101, while also facilitating disassembly and assembly, is a technical problem that needs to be solved. If the connection is not secure, the first step plates 102 may shake or even accidentally detach during use, posing a safety hazard and affecting the overall stability and safety of the device.
[0038] To address this, the present invention further proposes, in order to achieve a stable and detachable connection between the first step plate 102 and the side panel 101, as follows: Figures 1 to 5 As shown, the front and rear sides of the first step plate 102 are each provided with two first locking screws 103; A first limiting through hole 104 is provided on the side panel 101 at the position corresponding to the first locking screw 103, and a first locking nut is provided at one end of the first locking screw 103 that passes through the first limiting through hole 104.
[0039] These first locking screws 103 serve as connecting parts, with their threaded portions able to pass through the side panel 101. Specifically, a first limiting through hole 104 is provided on the side panel 101 at the position corresponding to the first locking screw 103. The size design of the first limiting through hole 104 allows the first locking screw 103 to pass smoothly while providing a certain limiting effect to reduce the gap at the connection. After the first locking screw 103 passes through the first limiting through hole 104, a first locking nut is provided at one end of its extension from the side panel 101. This first locking nut, through its threaded engagement with the first locking screw 103, can tightly clamp the first stepped plate 102 together with the side panel 101. By tightening the first locking nut, the first stepped plate 102 can be firmly fixed; by loosening the first locking nut, the first stepped plate 102 can be easily removed from the side panel 101. This design, with screws on both the front and rear sides, provides multi-point support and effectively enhances the first step plate 102's resistance to rotation and swaying.
[0040] Through the above technical solution, a reliable and detachable connection between the first step plate 102 and the side panel 101 is achieved by utilizing the cooperation of the first locking screw 103, the first limiting through hole 104, and the first locking nut. This connection method not only effectively prevents the first step plate 102 from shaking or accidentally falling off during use due to uneven force or impact, significantly improving the overall stability and safety of the device, but also, due to the use of a threaded fastening structure, allows users to conveniently and quickly install, disassemble, and adjust the position of the first step plate 102 as needed, greatly improving the flexibility and multifunctionality of the device, facilitating personalized combinations or daily storage, thus effectively resolving the contradiction between the stability and detachability of the first step plate 102 connection.
[0041] In some embodiments of the present invention described above, the first step plate 102 of the ladder 1 is fixed to the side panel 101 by a first locking screw 103 and a first locking nut. However, in actual use, relying solely on the clamping force of the screw and nut, the first step plate 102 may experience slight swaying or displacement when subjected to vertical or lateral loads, affecting the overall stability and safety of the device.
[0042] like Figures 1 to 5 As shown, the present invention further proposes that the front and rear sides of the first step plate 102 are provided with first limiting blocks 105, and the first limiting blocks 105 are located between the two first locking screws 103. The side panel 101 is provided with a first limiting groove 106 that cooperates with the first limiting block 105.
[0043] Specifically, the first limiting block 105 is a protruding structure, which can be rectangular, circular, or trapezoidal in shape. It is typically integrally formed with the first step plate 102 or fixed to its side via a reliable connection to ensure sufficient strength. The first limiting block 105 is located on the front and rear sides of the first step plate 102 and between the two first locking screws 103, designed to provide additional positioning support for the screw connection. The first limiting groove 106, which mates with the first limiting block 105, is a recessed structure formed on the side panel 101. Its shape and size precisely match the first limiting block 105 and can be formed through milling, molding, or other processes to achieve a tight fit. The depth and width of the first limiting groove 106 are precisely designed to ensure that the first limiting block 105 can be inserted without gaps, thereby eliminating the relative gap between the first step plate 102 and the side panel 101.
[0044] Through the above technical solution, when the first limiting block 105 is precisely inserted into the first limiting groove 106 on the side panel 101, a stable mechanical interlocking structure is formed. This interlocking mechanism effectively restricts the relative movement of the first step plate 102 in the vertical, horizontal, and rotational directions, greatly enhancing the connection rigidity and stability between the first step plate 102 and the side panel 101. Even under long-term use or dynamic load impact, it can effectively prevent the first step plate 102 from shaking, shifting, or loosening, thereby significantly improving the overall structural strength and safety of the ladder 1 and ensuring the reliable operation of the device.
[0045] In some of the embodiments of the present invention described above, the climbing slide component 2 is provided between two side panels 101. However, in the process of its implementation, the connection between the climbing slide component 2 and the side panels 101 may not be stable enough, or it may be inconvenient to operate when disassembling and assembling, affecting the overall stability and safety of the device.
[0046] In this regard, such as Figures 1 to 5 As shown, the present invention further proposes that a connecting component is provided on the climbing slide component 2 near the edge panel 101; The climbing slide component 2 is connected to the side panel 101 via a connecting component.
[0047] Specifically, the connecting assembly is a collection of mechanisms or components used to mechanically connect the climbing slide component 2 to the side panel 101. Its main function is to provide a stable connection while also ensuring ease of disassembly and assembly. The connecting assembly can take various forms, such as bolt connections, snap-fit connections, pin connections, slide rail connections, or hinge connections. The connecting assembly is located on the side of the climbing slide component 2, adjacent to the side panel 101, to ensure the directness and effectiveness of the connection. Through the connecting assembly, the climbing slide component 2 and the side panel 101 can achieve mechanical coupling. The connecting assembly can be designed to allow for quick disassembly and reassembly to accommodate the disassembled and combinable characteristics of the device. For example, tool-free or tool-required connection methods can be used, such as spring pins, quick-release fasteners, etc., or bolt-nut connections can be used to provide stronger connection strength. During connection, one end of the connecting assembly is typically fixed to the climbing slide component 2, while the other end mates with a corresponding structure on the side panel 101, thereby firmly securing the two together.
[0048] Through the above technical solution, a connecting component is installed on the climbing slide component 2 near the side panel 101, connecting the climbing slide component 2 to the side panel 101. This provides a stable and reliable installation method for the climbing slide component 2. This effectively solves the problem of shaking or falling off the climbing slide component 2 during use, significantly improving the overall stability and safety of the device. At the same time, the design of the connecting component facilitates quick disassembly and assembly by users, thereby improving the device's versatility and portability, making it more convenient to switch and store the device in different scenarios.
[0049] In some embodiments of the present invention described above, a detachable and combinable multifunctional climbing slide device is proposed, comprising a climbing ladder 1 and a climbing slide component 2, wherein the climbing slide component 2 is connected to the side panel 101 of the climbing ladder 1 via a connecting component. However, in practical applications, the climbing slide component 2 can be the main load-bearing component for users to slide on, and its structural strength and stability are directly related to the safety of users and the durability of the device. If the structural design of the climbing slide component 2 fails to fully consider its load-bearing and impact resistance requirements, it may deform or be damaged during use, thereby affecting the user experience and safety.
[0050] In this regard, such as Figures 1 to 6 As shown, the present invention further proposes that the climbing slide component 2 has a slide-type structure, and the bottom of the climbing slide component 2 is provided with a number of reinforcing blocks 201.
[0051] The elevated slide component 2 is designed as a slide-type structure, meaning its overall form and function are optimized for providing a sliding experience. Specifically, this structure typically features a curved or arc-shaped surface with a certain slope, its surface smoothed to reduce friction, and may have slightly upturned edges on both sides to guide users safely and prevent accidental falls. This slide-type structure is the core of the device's slide function, and its design must comprehensively consider ergonomics, sliding speed, and safety.
[0052] Furthermore, several reinforcing blocks 201 are provided at the bottom of the climbing slide component 2. These reinforcing blocks 201 are auxiliary structures used to enhance the structural rigidity and load-bearing capacity of the climbing slide component 2. The reinforcing blocks 201 can be implemented in various forms, for example, they can be reinforcing ribs arranged at intervals along the length or width of the climbing slide component 2, or they can be support structures distributed in a grid or honeycomb pattern. These reinforcing blocks 201 are usually integrated with the bottom of the climbing slide component 2 by integral molding or strong connection. Their main function is to disperse the pressure and impact force acting on the climbing slide component 2, effectively resist bending and deformation, thereby improving the structural stability of the entire slide component.
[0053] Through the above technical solution, the elevated slide component 2 is designed as a slide-type structure, enabling the device to provide a sliding passage that meets the needs of children's play, enhancing the functionality and fun of the device. Simultaneously, several reinforcing blocks 201 are installed at the bottom of the elevated slide component 2. These reinforcing blocks 201 significantly improve the bending and impact resistance of the elevated slide component 2, effectively dispersing the pressure exerted on the slide surface by the user during sliding, thereby enhancing the overall structural strength and stability of the elevated slide component 2. This not only effectively prevents deformation or damage to the elevated slide component 2 during use, ensuring the long-term safety and durability of the device, but also provides users with a more stable and safer sliding experience.
[0054] In some embodiments of the present invention described above, the climbing slide component 2 is connected to the side panel 101 via a connecting assembly, and the climbing slide component 2 has a slide-type structure with a reinforcing block 201 at the bottom. However, in actual use, the climbing slide component 2, as a component supporting children's sliding, needs to withstand certain impact and lateral forces. If the structural design of the connecting assembly is not stable enough or the positioning is not accurate enough, the climbing slide component 2 may shake, shift, or even fall off during use, thereby affecting the safety and stability of use.
[0055] In this regard, such as Figures 1 to 6 As shown, the present invention further proposes that the connecting component includes a second limiting block 202 and a third limiting block 203; The side panel 101 is provided with a second limiting groove 107 and a third limiting groove 108, which are respectively matched with the second limiting block 202 and the third limiting block 203.
[0056] Specifically, the connecting assembly, as a whole, functions to achieve a detachable connection between the climbing slide component 2 and the side panel 101. The second limiting block 202 and the third limiting block 203 are specific components of the connecting assembly; they are typically protruding structures used to engage with corresponding limiting grooves. Given that the side panel 101 has a second limiting groove 107 and a third limiting groove 108, and these grooves are typically located on the inner surface of the side panel 101, i.e., on the surface adjacent to the climbing slide component 2.
[0057] The second limiting block 202 and the third limiting block 203 can be rectangular protrusions, circular protrusions, or irregular protrusions. They can be integrally molded with the climbing slide component 2, or fixed by screwing, welding, or other methods. Their function is to provide structural support and positioning, preventing accidental movement of the climbing slide component 2 in the vertical or horizontal direction. The second limiting groove 107 and the third limiting groove 108 are recessed structures on the side panel 101 near the climbing slide component 2, and their shape and size match those of the second limiting block 202 and the third limiting block 203. Their function is to receive and accommodate the corresponding limiting blocks, thereby achieving precise installation and fixation of the climbing slide component 2. For example, they can be rectangular grooves, circular holes, or irregular grooves, with depth and width ensuring a tight fit between the limiting blocks and minimizing gaps. The second limiting groove 107 cooperates with the second limiting block 202, and the third limiting groove 108 cooperates with the third limiting block 203. This cooperation constitutes the main connection method between the climbing slide component 2 and the side panel 101. By inserting the limiting blocks into the limiting grooves, the climbing slide component 2 can be quickly positioned and initially fixed, effectively restricting its degrees of freedom in multiple directions, providing a basis for subsequent fastening operations, and enhancing the overall structure's resistance to torsion and shear.
[0058] Through the above technical solution, the connecting components include a second limiting block 202 and a third limiting block 203, and the side panel 101 has a second limiting groove 107 and a third limiting groove 108 that respectively cooperate with them, realizing multi-point and precise limiting and connection between the climbing slide component 2 and the side panel 101. This combination of double limiting blocks and double limiting grooves can effectively limit the lateral and longitudinal movement of the climbing slide component 2 after installation, preventing it from shaking or shifting during use, and significantly improving the overall stability and safety of the climbing slide device. Compared with single connection or imprecise connection methods, the connection structure provided by this solution is more robust and reliable, ensuring the safety of children when sliding, and also facilitating the quick installation and disassembly of the climbing slide component 2, improving the practicality of the device and the user experience.
[0059] In some embodiments of the present invention described above, the connection between the climbing slide component 2 and the side panel 101 is achieved by cooperating with the second limiting block 202 and the third limiting block 203 in the connecting assembly and the second limiting groove 107 and the third limiting groove 108 on the side panel 101. However, this connection method, which relies solely on the cooperation of the limiting blocks and limiting grooves, may pose a risk of insufficient connection, loosening, or detachment when the device is subjected to external impacts, vibrations, or long-term use, thereby affecting the overall stability and safety of the device.
[0060] In this regard, such as Figures 1 to 6 As shown, the present invention further proposes that a second locking screw 204 is provided on the third limiting block 203; The third limiting groove 108 is also provided with a second limiting through hole 109, and a second locking nut is provided at one end of the second locking screw 204 that passes through the second limiting through hole 109.
[0061] Specifically, the second locking screw 204 is a fastener used to provide additional fixing and locking force. It is typically a threaded rod-like structure that mates with a nut, generating axial force through rotation to tightly secure the two components together. The second locking screw 204 can be pre-fixed to the third limiting block 203, for example, through welding, press-fitting, integral molding, or threaded connection. Its material is typically a high-strength metal or plastic, such as stainless steel or alloy steel, to ensure sufficient mechanical strength and corrosion resistance. The length and diameter of the screw should be rationally designed according to the actual structural dimensions and the required locking force.
[0062] Meanwhile, the second limiting through hole 109 is a through hole located inside the third limiting groove 108. The main function of this through hole is to provide a passage for the second locking screw 204 and to assist in guiding the screw's precise alignment. The diameter of the second limiting through hole 109 should be slightly larger than the diameter of the second locking screw 204 to ensure smooth passage. The position of the through hole must be precisely aligned with the installation position of the second locking screw 204 on the third limiting block 203 to ensure smoothness and accuracy of the connection process. To facilitate screw insertion, the edges of the through hole can be appropriately chamfered.
[0063] In addition, a second locking nut is provided at one end of the second locking screw 204 that passes through the second limiting through hole 109. The second locking nut is a fastener used in conjunction with the second locking screw 204. By tightening the second locking nut, a preload is applied to the second locking screw 204, thereby tightly fixing the third limiting block 203 and the third limiting groove 108 (as well as the ladder component 2 and the side panel 101 in which they are located) together, effectively preventing loosening of the connection. The second locking nut is usually an internal thread structure, and its thread specification should match the external thread of the second locking screw 204. The type of nut can be selected according to actual needs, such as a common hexagonal nut, a self-locking nut with anti-loosening function (such as a nut with a nylon ring), or a wing nut, to meet different requirements for anti-loosening performance and ease of operation. The material of the nut should also match the screw to avoid potential electrochemical corrosion. During installation, tools such as wrenches can be used to tighten the nut to ensure sufficient locking force.
[0064] Through the above technical solution, based on the connection between the climbing slide component 2 and the side panel 101 via the limiting block and limiting groove in the connecting assembly, a second locking screw 204 is further provided on the third limiting block 203, passing through the second limiting through hole 109 in the third limiting groove 108, and then tightened by the second locking nut. This design achieves secondary mechanical locking of the connection between the climbing slide component 2 and the side panel 101, significantly enhancing the firmness and stability of the connection. This locking mechanism can effectively prevent the climbing slide component 2 from loosening or falling off due to the fit gap during external impact, vibration, or long-term use, thereby greatly improving the structural integrity and safety of the entire multi-functional climbing slide device, ensuring that the connection is more stable and reliable when children use the slide function, and avoiding safety hazards caused by loose connections.
[0065] In some embodiments of the present invention described above, a multifunctional climbing slide device that can be disassembled and assembled is proposed. The climbing ladder 1 includes a first step 102 for users to climb. However, in actual use, especially when children are playing, the surface of the first step 102 may be wet or have insufficient friction, causing users to slip and fall, posing a certain safety hazard.
[0066] In this regard, such as Figure 1 As shown, the present invention further proposes that the top surface of the first step plate 102 is provided with a plurality of cartoon anti-slip grooves 100.
[0067] The cartoon anti-slip grooves 100 refer to a series of grooves or raised structures with specific shapes formed on the top surface of the first step plate 102. These structures are designed to prevent users from slipping while climbing by increasing surface roughness and the coefficient of friction. Specifically, the cartoon anti-slip grooves 100 can be designed in various cartoon characters that children like, such as animals, plants, or geometric shapes, such as footprints, to enhance the product's fun and appeal to children. These anti-slip grooves can be recessed grooves or raised textures. In terms of implementation, the cartoon anti-slip grooves 100 can be integrally formed on the material of the first step plate 102 through processes such as molding, engraving, or injection molding, or they can be achieved by attaching an anti-slip mat with cartoon patterns and anti-slip textures to the top surface of the first step plate 102. Several cartoon anti-slip grooves 100 can be evenly distributed across the entire top surface of the first step plate 102, or concentrated in areas frequently contacted by the user's feet, and their number and density should be sufficient to provide an effective anti-slip effect. The depth of the groove or the height of the protrusion should be designed appropriately to ensure that it provides sufficient friction without affecting the comfort of use or causing water accumulation.
[0068] Through the above technical solution, several cartoon anti-slip grooves 100 are set on the top surface of the first step plate 102, which significantly increases the friction coefficient of the surface of the first step plate 102. When users, especially children, climb the climbing ladder 1, the cartoon anti-slip grooves 100 can provide sufficient grip, effectively preventing accidental slips caused by wet feet or insufficient friction, thereby greatly improving the safety of the device. In addition, the cartoon design also makes the climbing ladder 1 more fun and attractive, encouraging children to actively participate in play, while subtly ensuring their safety.
[0069] In some of the embodiments of the present invention described above, the first step plate 102 of the climbing ladder 1, as a load-bearing component, may have insufficient structural strength and rigidity when used for a long time or subjected to large loads, and is prone to deformation or damage, thereby affecting the stability and service life of the device.
[0070] In this regard, such as Figure 7 As shown, the present invention further proposes that a reinforcing groove 200 is provided on the bottom surface of the first step plate 102, and a plurality of reinforcing ribs 300 are provided in the reinforcing groove 200.
[0071] Specifically, the reinforcing groove 200 is a structural feature located at the bottom of the first step plate 102. Its main function is to provide space for the subsequent reinforcing ribs 300 and to form a reinforced structure together with the reinforcing ribs 300. By providing a groove on the bottom surface of the first step plate 102, a foundation for structural reinforcement can be provided without significantly increasing the overall thickness or weight of the first step plate 102. The reinforcing groove 200 can be formed by integral molding, milling, or other methods to ensure a good bond with the first step plate 102. The reinforcing rib 300 is a protruding structure located inside the reinforcing groove 200. Its main function is to improve the bending and torsional resistance of the first step plate 102. By increasing the moment of inertia of the material, the reinforcing rib 300 effectively disperses and bears the forces acting on the first step plate 102, thereby enhancing its overall rigidity and load-bearing capacity. The reinforcing rib 300 can be integrally molded with the first step plate 102, for example, through injection molding or compression molding, or it can be fixed in the reinforcing groove 200 by welding, bonding, or other methods. Several reinforcing ribs 300 can be staggered, meaning the reinforcing ribs 300 are arranged perpendicularly or obliquely to each other, forming a grid-like or intersecting structure. This layout provides multi-directional support and reinforcement, effectively resisting stress from different directions and avoiding weak points in a single direction. For example, a set of reinforcing ribs parallel to the length direction of the first step plate 102 and another set parallel to the width direction can be provided to form a "well"-shaped structure; or diagonally intersecting reinforcing ribs can be provided. This staggered layout significantly improves the deformation resistance and overall stability of the first step plate 102 in all directions.
[0072] Through the above technical solution, a reinforcing groove 200 is provided on the bottom surface of the first step plate 102, and crisscrossing reinforcing ribs 300 are arranged therein, effectively increasing the structural rigidity and strength of the first step plate 102. The reinforcing groove 200 provides integrated space for the reinforcing ribs 300, enabling the reinforcing ribs 300 to distribute and bear forces in a multi-directional support manner, significantly improving the bending and torsional resistance of the first step plate 102. This not only avoids deformation or damage that may occur to the first step plate 102 under long-term use or under large loads, extending its service life, but also ensures the overall stability and safety of the elevated slide device, improving the user experience.
[0073] In addition, in another embodiment of the present invention, a support member is provided on the ladder 1. The support member has a plate-like structure and is used to support the ladder 1.
[0074] The support components provide additional support to the ladder, distributing some of the pressure it bears during use. Especially when the ladder needs to support heavy loads or is used frequently, the support components effectively enhance its stability, reducing swaying or tilting caused by uneven stress. Furthermore, the plate-like structure of the support components is simple in design, easy to install and disassemble, and facilitates the assembly and disassembly of the ladder system, further enhancing its practicality and flexibility.
[0075] Specifically, a support component is provided to enhance the stability of the ladder 1 when it is used alone, when the ladder slide 2 is removed from the ladder 1.
[0076] The support component is detachably connected to the ladder 1, and the connection method can be common and stable, such as bolt connection or snap-fit connection. Taking bolt connection as an example, threaded holes are provided at corresponding positions on the support component and the ladder 1. The bolt passes through the threaded holes and the nut is tightened to achieve a tight connection between the two. This connection method is not only strong and reliable, but also simple and convenient to operate; simply loosen the nut and remove the bolt when disassembly is needed. Snap-fit connection utilizes the snap-fit structure on the support component and the ladder 1 to interlock the two, achieving quick connection and disassembly. Snap-fit connection has the advantages of rapid installation and no need for additional tools, which can further improve the efficiency of disassembly and assembly of the device. The support component can be made of high-strength, wear-resistant materials, such as aluminum alloy or engineering plastics. Aluminum alloy is lightweight and high-strength, which can effectively reduce the overall weight of the device while ensuring sufficient support strength; engineering plastics have the advantages of low cost and corrosion resistance, and are suitable for some occasions where weight requirements are not high and the operating environment is relatively mild. The dimensions of the support components should be rationally designed according to the specifications and usage requirements of the climbing ladder 1 to ensure that it can provide sufficient support area and support force to guarantee the stability of the climbing ladder 1 when used alone. By setting up such detachable support components, after the climbing slide component 2 is removed, the climbing ladder 1 can rely on the support components to obtain stable support, meet the needs of independent use, and further expand the application scenarios and practicality of this multi-functional climbing slide device.
[0077] In some embodiments of the present invention described above, the climbing slide component 2 is typically designed as a slide-type structure to provide a sliding function. However, in certain application scenarios, it may be necessary for the climbing slide component 2 to provide a flatter, more stable platform or passage, such as as an auxiliary climbing surface or to expand the activity area. Traditional slide-type structures are difficult to meet this requirement, and their end supports may not be stable enough.
[0078] In this regard, such as Figure 8As shown, in another embodiment of the present invention, the climbing slide component 2 has a plate-like structure, and a connector 205 is provided at one end of the climbing slide component 2 away from the side panel 101. The end of the connector 205 away from the climbing slide component 2 is connected to the side panel 101.
[0079] The climbing slide component 2 can also serve as a plate-like support structure to stably support the climbing ladder 1. When the two are combined, they can form a complete climbing ladder or climbing stool structure, enhancing the practicality and functionality of the device.
[0080] Specifically, the climbing slide component 2 has a plate-like structure, meaning its overall shape is a relatively flat plate. Its surface can be a flat plane or a plane with slight undulations, rather than a traditional curved or wavy slide. This plate-like structure can be made of various materials, such as wood, engineering plastics, metal sheets, or composite materials. Its thickness, width, and length can be designed according to the overall dimensions and load-bearing requirements of the device. The plate-like structure provides a stable support surface for the climbing ladder 1, allowing it to be used independently and thus expanding the functionality of the device.
[0081] A connector 205 is provided at one end of the elevated slide component 2 away from the edge panel 101. This "end away from the edge panel 101" typically refers to the lower or farthest end of the elevated slide component 2, i.e., the side that connects to the elevated ladder 1. The connector 205 is a component used to fix or support this end of the elevated slide component 2. The connector 205 can take various forms, such as hinges, pins, bolt connections, snap-fit structures, or telescopic support rods. Its purpose is to provide additional support and fixation to the far end of the elevated slide component 2 when it has a plate-like structure, ensuring its stability and safety during use.
[0082] One end of the connector 205, away from the climbing slide component 2, is connected to the side panel 101. This means that the other end of the connector 205 is connected to the side panel 101 of the climbing slide 1. This connection can be detachable, for example, by bolts, pins, or snap-fit mechanisms, to facilitate the disassembly and assembly of the device. It can also be a semi-permanent fixation, such as by welding or riveting. The purpose of connecting to the side panel 101 is to form a closed support structure, allowing the plate-shaped climbing slide component 2 to be stably mounted between the two side panels 101 and to bear the load when the user moves on it.
[0083] Through the above technical solution, the climbing slide component 2 is designed as a plate-like structure, and its end furthest from the side panel 101 is connected to the side panel 101 via a connector 205. This invention provides a more stable and versatile climbing ladder device. The plate-like structure allows the climbing slide component 2 to function not only as a slide but also as a flat climbing surface or activity platform, greatly expanding the device's application scenarios and functions. Simultaneously, the connector 205 provides additional support and fixation at the far end of the climbing slide component 2, working together with the connecting components near the side panel 101 to form a closed and robust support system. This effectively enhances the overall stability and safety of the climbing slide component 2 under load, preventing potential swaying or sinking of the plate-like structure during use, thus providing users with a safer and more reliable experience.
[0084] In the aforementioned detachable and combinable multi-functional climbing slide device, the climbing slide component 2 is designed as a plate-like structure and is connected to the side panel 101 via connecting components, thereby achieving the device's multi-functionality. However, when the climbing slide component 2 is used as a climbing path, its plate-like structure may not provide sufficient footholds or a comfortable climbing experience, especially for child users, as directly climbing smooth or simple plate-like surfaces presents certain limitations.
[0085] In this regard, such as Figure 8 As shown, the present invention further proposes that a second step plate 206 is provided at one end of the climbing slide component 2 near the side panel 101; The second step plate 206 is located between the two side panels 101.
[0086] The second step 206 is an auxiliary climbing structure installed on the climbing slide component 2. Its main function is to provide users with additional, clearly defined footholds to enhance stability and comfort during climbing. The second step 206 can be implemented in various forms. For example, it can be integrally molded with the climbing slide component 2, forming a raised, stepped structure through injection molding or pressing; alternatively, the second step 206 can be a separate plate-like component, securely fixed to the surface of the climbing slide component 2 by bolts, rivets, welding, or clips. To further enhance safety, the surface of the second step 206 can be designed with anti-slip textures, grooves, or covered with anti-slip material to increase friction and prevent users from slipping during climbing. The size and spacing of the second step 206 should be rationally designed according to the height and stride of the target user group to ensure ergonomic principles and facilitate easy climbing.
[0087] The second step 206 is positioned on the climbing slide 2 near one end of the side panel 101 of the device. This positioning allows the second step 206 to form a continuous or auxiliary climbing path with the first step 102 of the climbing ladder 1, ensuring the continuity and integrity of the entire device in terms of climbing function. Simultaneously, the second step 206 is located between the two side panels 101, further defining its lateral position and ensuring that it is effectively integrated into the main structure of the device, within the width defined by the two side panels 101. This positioning helps maintain the overall structural stability of the device and ensures that the user receives support or guidance from the side panels 101 during climbing, thereby improving climbing safety. The two ends of the second step 206 can be directly connected to the side panels 101, or fixed between the side panels 101 through the structure of the climbing slide 2, making it a stable climbing support point.
[0088] By setting a second step 206 on one end of the climbing slide 2 near the side panel 101 and positioning it between the two side panels 101, this invention effectively solves the problem of insufficient footholds and poor climbing experience when the plate-shaped climbing slide 2 is used as a climbing path. Specifically, the second step 206 provides users with clear and stable footholds, significantly improving safety and comfort during climbing. When users need to climb the climbing slide 2, they can step on the second step 206 instead of directly climbing the smooth plate surface, thereby reducing the risk of slipping and making the climbing process more effortless. In addition, the setting of the second step 206 allows the climbing slide 2 to be used more effectively as a climbing ladder support, greatly enhancing the versatility and practicality of the device and providing users with a richer and safer play experience. This design makes the climbing function of the entire device more complete, forming a more complete and user-friendly climbing system together with the first step 102 of the climbing ladder 1.
[0089] The following example will provide a more detailed explanation of the above technical solution: In a family setting, User A wants to provide their child with a play structure that can both climb and slide, but due to space constraints, they do not want to purchase two separate installations. Furthermore, User A has safety concerns regarding the current unstable connection method where a slide is simply leaned against a ladder.
[0090] This device provides a solution. First, user A can assemble a climbing ladder 1. The climbing ladder 1 includes two oppositely arranged side panels 101, which constitute the main frame. Several first step plates 102 are arranged between the two side panels 101, forming a climbing ladder. To ensure the stability of the first step plates 102, first locking screws 103 are provided on both the front and rear sides of the first step plates 102. First limiting through holes 104 are provided on the side panels 101 corresponding to the positions of the first locking screws 103. A first locking nut is provided at one end of the first locking screw 103 passing through the first limiting through hole 104. By tightening the first locking nut, the first step plate 102 is fixed to the side panel 101. In addition, first limiting blocks 105 are also provided on the front and rear sides of the first step plate 102, and the first limiting blocks 105 are located between the two first locking screws 103. The side panel 101 has a first limiting groove 106 that mates with the first limiting block 105. The combination of the screw and the limiting block ensures the first step plate 102 maintains structural stability under dynamic loads, avoiding the loosening or dislocation problems that may occur with traditional simple clips or screws. To improve safety, the top surface of the first step plate 102 also has several cartoon anti-slip grooves 100, increasing friction. Simultaneously, the bottom surface of the first step plate 102 has a reinforcing groove 200, within which several reinforcing ribs 300 are arranged in a crisscross pattern, enhancing the load-bearing capacity and durability of the step plate.
[0091] After the ladder 1 is assembled, user A can choose to install the ladder slide component 2 according to their needs. When the ladder slide component 2 is a slide-type structure, it is located between the two side panels 101. A connecting component is provided on the ladder slide component 2 near the side panels 101. The connecting component includes a second limiting block 202 and a third limiting block 203. The side panels 101 have a second limiting groove 107 and a third limiting groove 108, which cooperate with the second limiting block 202 and the third limiting block 203 respectively, realizing the positioning and connection between the ladder slide component 2 and the side panels 101. To enhance the connection's firmness, a second locking screw 204 is provided on the third limiting block 203. A second limiting through hole 109 is correspondingly provided in the third limiting groove 108. A second locking nut is provided at one end of the second locking screw 204 that passes through the second limiting through hole 109. By tightening the second locking nut, the climbing slide component 2 is locked onto the climbing ladder 1. This multi-limiting and screw-locking connection method, compared to the simple leaning method of existing slides, improves the overall structural stability of the slide and climbing ladder combination, preventing safety hazards such as sliding, overturning, or dislocation of the slide during use, and ensuring the safety of children during dynamic use. In addition, several reinforcing blocks 201 are provided at the bottom of the climbing slide component 2, enhancing the structural strength and load-bearing capacity of the slide.
[0092] In another configuration of this device, the ascending slide component 2 has a plate-like structure. In this configuration, a connector 205 is provided at the end of the ascending slide component 2 furthest from the side panel 101, and the end of the connector 205 furthest from the ascending slide component 2 is connected to the side panel 101. Simultaneously, a second step 206 is also provided at the end of the ascending slide component 2 closest to the side panel 101, and the second step 206 is located between the two side panels 101. The combination of the plate-like structure and the connector 205 allows the ascending slide component 2 to be used as an extension platform or ramp, increasing the device's functional versatility.
[0093] Through the above design, this device organically integrates the functions of a climbing ladder and a slide into a detachable and combinable structure. Specifically, the climbing slide component 2 can be a slide-type structure and / or a plate-like structure, and it can be freely combined with the climbing ladder 1. User A does not need to purchase two separate devices, saving on purchase costs and space. All connections employ mechanical locking and limit-locking mechanisms, solving the safety hazards of unstable connections, easy sliding, or dislocation in existing combined devices, providing children with a safe, multifunctional, and easily configurable play experience.
[0094] While the present invention has been disclosed above, its scope of protection is not limited thereto. Those skilled in the art can make various changes and modifications without departing from the spirit and scope of the present invention, and all such changes and modifications will fall within the scope of protection of the present invention.
Claims
1. A multi-functional, detachable, combinable, climbing ladder device, characterized in that, Include: The ladder (1), the ladder (1) includes two edge fences (101) and a plurality of first ladder plates (102), two edge fences (101) are oppositely arranged, and a plurality of first ladder plates (102) are located between two edge fences (101); The ladder climbing slide piece (2) is provided between the two edge fences (101).
2. A multi-functional collapsible combination ladder and slide set according to claim 1, wherein, The front side and the rear side of the first ladder plate (102) are provided with two first locking screws (103); The edge fence (101) is provided with a first limiting through hole (104) corresponding to the position of the first locking screw (103), and one end of the first locking screw (103) penetrating through the first limiting through hole (104) is provided with a first locking nut.
3. A multi-functional collapsible combination ladder and slide set according to claim 2, wherein, The front side and the rear side of the first ladder plate (102) are provided with a first limiting block (105), and the first limiting block (105) is arranged between the two first locking screws (103); The edge fence (101) is provided with a first limiting groove (106) matched with the first limiting block (105).
4. A multi-functional collapsible combination ladder and slide set according to claim 1, wherein, The ladder climbing slide piece (2) is provided with a connecting assembly near the position of the edge fence (101); The ladder climbing slide piece (2) and the edge fence (101) are connected through the connecting assembly.
5. A multi-functional collapsible combination ladder and slide set according to claim 4, wherein, The ladder climbing slide piece (2) is a slide type structure, and the bottom of the ladder climbing slide piece (2) is provided with a plurality of reinforcing blocks (201).
6. A multi-functional collapsible combination ladder and slide set according to claim 5, wherein, The connecting assembly includes a second limiting block (202); The ladder (1) is provided with a second limiting groove (107), and the second limiting groove (107) is matched with the second limiting block (202).
7. A multi-functional collapsible combination ladder and slide set according to claim 6, wherein, The ladder climbing slide piece (2) is further provided with a third limiting block (203) near the position of the second limiting block (202); The ladder (1) is provided with a third limiting groove (108), and the third limiting groove (108) is matched with the third limiting block (203).
8. A multi-functional collapsible combination ladder and slide set according to claim 7, wherein, The third limiting block (203) is provided with a second locking screw (204); The third limiting groove (108) is further provided with a second limiting through hole (109), and one end of the second locking screw (204) penetrating through the second limiting through hole (109) is provided with a second locking nut.
9. A multi-functional collapsible combination ladder and slide set according to claim 1, wherein, The ladder (1) is further provided with a support, and the support is a plate structure.
10. The multi-functional collapsible combination ladder and slide set forth in claim 1 wherein, The top surface of the first ladder plate (102) is provided with a plurality of cartoon anti-skid grooves (100).