Installation component and laying system
Through the combination of the locking part and the support part, the state changes of the elastic wings can be used to quickly install and adjust the wire trough or wire box, solving the problem that the existing installation methods require auxiliary tools and are inconvenient to adjust, and achieving a fast and safe installation effect.
Patent Information
- Application Number
- CN202111470954.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-03
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2041-12-03
AI Technical Summary
The installation method of existing wire troughs or wire boxes requires auxiliary tools and is inconvenient to adjust, which cannot meet the needs of rapid installation.
The locking part composed of the main body and the elastic wing is combined with the support part, and the state of the elastic wing is changed to achieve rapid locking and unlocking, replacing the traditional thread adjustment method.
It realizes fast and efficient installation adjustment and automatic locking, simple operation, safe and reliable.
Smart Images

Figure CN114336433B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electrical pipeline installation, and in particular to an installation component and a laying system. Background Art
[0002] In recent years, driven by national economic development, large-scale construction projects have become increasingly common, including subway construction, airport construction and expansion, convention and exhibition centers, museums, and large-scale intelligent buildings. These projects involve complex high-voltage and low-voltage systems, necessitating the installation of extensive power cables and creating a significant demand for cable ducts and boxes.
[0003] During the process of laying the pipeline system, the installation speed of the wire box and the wire duct is crucial. The existing installation method mainly uses screws or bolts to install the wire box or the wire duct. During the installation process, the installation height position of the wire box or the wire duct is mainly adjusted by using a screwdriver to tighten the screws or using a wrench to tighten the bolts or nuts. This installation and adjustment method not only requires auxiliary tools such as wrenches, but also takes a long time to adjust. It is inconvenient to operate and cannot meet the needs of fast installation.
[0004] Therefore, providing an installation assembly that is easy to operate and use has become an urgent problem to be solved in the field. Summary of the Invention
[0005] The object of the present invention is to provide a quick installation assembly to solve the problems of the existing installation method of using screws or bolts to install cable troughs or cable boxes, which requires auxiliary tools and is inconvenient to adjust.
[0006] In order to achieve the above object, the present invention provides a mounting assembly, comprising: a supporting portion extending along its length direction; a locking portion sleeved on the supporting portion and capable of being connected to the mounting component, wherein:
[0007] The locking part includes a main body and elastic wings connected to each other, and both the main body and the elastic wings are provided with through holes. The locking part is sleeved on the supporting part through the through holes. In the first state, the through holes on the elastic wings can abut against the supporting part, and the locking part is locked on the supporting part. In the second state, the elastic wings can release the supporting part, and the locking part can move along the length direction on the supporting part.
[0008] According to another specific embodiment of the present invention, the elastic wing has a connecting end and an extending end located at one end and the other end respectively, the connecting end is connected to the main body, and the through hole on the elastic wing is located between the connecting end and the extending end.
[0009] According to another specific embodiment of the present invention, in the first state, the elastic wings are kept in contact with the support portion by elastic force.
[0010] According to another specific embodiment of the present invention, the direction of the elastic wing from the connecting end to the extending end is the extending direction of the elastic wing, the angle between the extending direction of the elastic wing and the first direction is the first angle, the first direction is the direction from the connecting end to the extending end and perpendicular to the length direction, and the state of the locking portion when it is not mounted on the supporting portion and is not deformed is a natural state, wherein, in the natural state and the first state, the first angle is an acute angle, and the first angle in the first state is smaller than that in the natural state.
[0011] According to another specific embodiment of the present invention, in the second state, the first angle is an acute angle or 0 degrees, and the first angle in the second state is smaller than that in the first state.
[0012] According to another specific embodiment of the present invention, when the locking portion moves from the first state to the second state, the extending end rotates in a direction close to the first direction; when the locking portion moves from the second state to the first state, the extending end rotates in a direction away from the first direction due to elastic force, and is stabilized in the first state by abutting against the support portion through the through hole on the elastic wing.
[0013] According to another specific embodiment of the present invention, in the natural state, the first angle is 5-35 degrees.
[0014] According to another specific embodiment of the present invention, in the first state, the first angle is 5-30 degrees.
[0015] According to another specific embodiment of the present invention, in the second state, the first angle is 0-25 degrees.
[0016] According to another specific embodiment of the present invention, the through hole of the elastic wing abuts against the outer wall of the support portion, and there are at least two abutting points.
[0017] According to another specific embodiment of the present invention, the elastic wing is a sheet-like structure, and the elastic wing is arranged at an acute angle to the main body.
[0018] According to another specific embodiment of the present invention, there are two elastic wings, namely a first elastic wing and a second elastic wing arranged opposite to each other along the length direction. Along the length direction, the main body is located between the first elastic wing and the second elastic wing.
[0019] According to another specific embodiment of the present invention, the elastic wing has a connecting end, which is an arc-shaped transition section, and the elastic wing is connected to the one side edge of the main body through the arc-shaped transition section.
[0020] According to another specific embodiment of the present invention, the pressing portion of the elastic wing is provided with anti-slip convex grooves.
[0021] According to another specific embodiment of the present invention, the main body is provided with a cavity, and the mounting component is provided with a mounting end, and the mounting end can extend into the cavity and be connected with the main body.
[0022] According to another specific embodiment of the present invention, the through hole passes through the cavity, and a connecting hole is provided on the mounting end. The supporting portion can sequentially pass through the through hole on the elastic wing, the through hole on the main body and the connecting hole on the mounting end located in the cavity, so that the mounting component is locked on the supporting portion in the length direction of the supporting portion by the locking portion in the first state.
[0023] According to another specific embodiment of the present invention, the shapes of the through hole and the connecting hole match the shape of the support portion, and the cross-sectional shape of the support portion is any one of circular, elliptical and polygonal.
[0024] According to another specific embodiment of the present invention, an extension portion is provided on the side surface of the main body opposite to the elastic wing, and an anti-trampling portion is provided on the supporting portion.
[0025] The present invention also provides a laying system, comprising the above-mentioned installation assembly and installation components, wherein the installation assembly is used to install and fix the installation components.
[0026] According to another specific embodiment of the present invention, the installation component includes a wire box and / or a wire trough.
[0027] As mentioned above, the installation assembly provided by the present invention combines a locking part composed of a main body and an elastic wing with a support part to quickly and efficiently adjust the position of the installation part connected to the locking part in the length direction of the support part, replacing the traditional thread adjustment method. The adjustment and installation can be completed with a fast adjustment speed, and automatic locking can be achieved, which is safe and reliable.
[0028] In order to make the above contents of the present invention more clearly understood, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The accompanying drawings, which constitute part of this application, are intended to provide a further understanding of the present invention. The exemplary embodiments of the present invention and their descriptions are intended to explain the present invention and do not constitute an undue limitation of the present invention. In the accompanying drawings:
[0030] Figure 1 A schematic diagram of the three-dimensional structure of a mounting assembly of the present invention is shown;
[0031] Figure 2 Schematically shows a three-dimensional structural diagram of a locking portion in a mounting assembly of the present invention;
[0032] Figure 3 The figure schematically shows a three-dimensional structural diagram of the double elastic wings of the locking part in a mounting assembly of the present invention;
[0033] Figure 4 A schematic diagram of the structural disassembly of an installation component of the present invention is shown;
[0034] Figure 5 Schematically shows a front view of a mounting assembly of the present invention;
[0035] Figure 6 The figure schematically shows a front view of a locking portion of the present invention in a natural state. DETAILED DESCRIPTION
[0036] The following specific embodiments illustrate the embodiments of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the contents disclosed in this specification. Although the description of the present invention will be introduced in conjunction with the preferred embodiment, this does not mean that the features of this invention are limited to this embodiment. On the contrary, the purpose of introducing the invention in conjunction with the embodiment is to cover other options or modifications that may be extended based on the claims of the present invention. In order to provide a deep understanding of the present invention, the following description will include many specific details. The present invention can also be implemented without using these details. In addition, in order to avoid confusion or blurring the focus of the present invention, some specific details will be omitted in the description.
[0037] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0038] During the process of laying the pipeline system, the installation speed of the wire box and the wire duct is crucial. The existing installation method mainly uses screws or bolts to install the wire box or the wire duct. During the installation process, the installation height position of the wire box or the wire duct is mainly adjusted by using a screwdriver to tighten the screws or using a wrench to tighten the bolts or nuts. This installation and adjustment method not only requires auxiliary tools such as wrenches, but also takes a long time to adjust. It is inconvenient to operate and cannot meet the needs of fast installation.
[0039] In order to solve the above problems and realize the quick and convenient installation of pipelines or cable ducts, see Figures 1 to 6 As shown, an embodiment of the present invention provides a mounting assembly 00, comprising: a support portion 2, extending along its length direction (such as Figures 1 to 4 The locking portion 1 is sleeved on the supporting portion 2 and can be connected to the mounting component 3.
[0040] Specifically, in the present invention, the locking portion 1 includes a main body 10 and an elastic wing 11. The elastic wing 11 is provided on the outside of the main body 10, and one end of the elastic wing 11 is connected to the main body 10. A through hole 12 is provided on each of the main body 10 and the elastic wing 11. The locking portion 1 is sleeved on the support portion 2 through the through hole 12. In the first state (such as Figure 1 As shown), the through hole on the elastic wing 11 can abut against the support portion 2, and the locking portion 1 is locked on the support portion 2. In the second state (as shown), the through hole on the elastic wing 11 can abut against the support portion 2, and the locking portion 1 is locked on the support portion 2. Figures 2 to 4 As shown), the elastic wing 11 can loosen the supporting portion 2, and the locking portion 1 can move along the length direction on the supporting portion 2.
[0041] That is to say, the installation component 00 is mainly composed of a locking part 1 and a supporting part 2, wherein the locking part 1 includes a main body 10 and an elastic wing 11, and both the main body 10 and the elastic wing 11 are provided with a through hole 12, and the supporting part 2 can be inserted into the through holes 12 on the elastic wing 11 and the main body 10 in turn, that is, the locking part 1 can be mounted on the supporting part 2 through the through hole 12.
[0042] Furthermore, the locking portion 1 and the supporting portion 2 have two states, and the locking portion 1 and the supporting portion 2 can be switched between the first state and the second state by operating the elastic wing 11. Specifically, in the first state, the elastic wing 11 is not pressed. At this time, the elastic wing 11 can, under the action of its own elastic force, make the inner wall of the through hole 12 on the elastic wing 11 abut against the supporting portion 2, specifically, abut against the outside of the supporting portion 2. Through this abutment, the elastic wing 11 and the supporting portion 2 abut and squeeze, thereby generating friction, which can lock the locking portion 1 on the supporting portion 2 (such as Figure 1 shown).
[0043] In the second state, i.e., the pressed state, the elastic wings 11 are in a compressed state. Under the action of the pressing pressure, the inner wall of the through hole 12 on the elastic wings 11 can be separated from the support portion 2. The inner wall of the elastic wings 11 no longer abuts against the outer wall of the support portion 2, and the support portion 2 is released. At this time, the locking portion 1 can move along the length direction on the support portion 2. After the locking portion 1 moves to the appropriate position on the support portion 2, the elastic wings 11 are released, and the elastic wings 11 can lock the locking portion 1 on the support portion 2, entering the first state.
[0044] By adopting the above technical solution, by combining the locking part and the support part composed of the main body and the elastic wings, the position of the installation part connected to the locking part in the length direction of the support part can be adjusted quickly and efficiently, replacing the traditional thread adjustment method. The adjustment and installation can be completed with a fast adjustment speed, and automatic locking can be achieved, which is safe and reliable.
[0045] It should be noted that the present invention does not limit the specific structure of the elastic wing, and it can be reasonably set and selected according to actual needs, as long as the elastic wing can be changed between the first state and the second state.
[0046] Specifically, refer to Figures 1 to 6 The elastic wing 11 has one end and the other end in its extension direction, wherein one end is a connecting end 111 and the other end is an extending end 114. The connecting end 111 is connected to the main body 10, and the through hole 12 on the elastic wing 11 is located between the connecting end 111 and the extending end 114. The connecting end 111 is fixed, and the extending end 114 is suspended in the air. Because the extending end 114 is a free end, when it is pressed, the extending end 114 can rotate relative to the connecting end 111.
[0047] Furthermore, when the locking portion 1 is in the first state, the elastic wings 11 maintain contact with the support portion 2 due to elastic force. In the first state, the elastic wings 11 are deformed relative to the main body 10, and thus have elastic force, thereby ensuring reliable contact with the support portion 2, generating stable compression, and ensuring that the locking portion 1 can be locked on the support portion 2.
[0048] In the above embodiments, the direction of the elastic wing 11 from the connecting end 111 to the extending end 114 is defined as the elastic wing extending direction, for example Figure 5 The angle between the elastic wing extension direction and the first direction is the first angle θ, and the first direction is the direction from the connecting end 111 to the extending end 114 and perpendicular to the length direction (Z direction), that is, Figure 5 The locking portion 1 is in a natural state when it is not mounted on the supporting portion 2 and is not deformed. Figure 6The figure shows the natural state of the locking part 1 when it is separated from the support part 2. When the locking part 1 is in the natural state, the first angle θ is an acute angle. When the locking part 1 is mounted on the support part 2 and locked, that is, in the first state, the first angle θ is an acute angle, and the first angle θ is smaller in the first state than in the natural state. In other words, when the locking part 1 is installed on the support part 2, the locking part 1 will tend to return to the natural state due to deformation. However, since it is mounted on the support part 2, the support part 2 is rod-shaped, and the through hole 12 on the elastic wing 11 will abut and squeeze the outer wall of the support part 2 during the recovery process of the elastic wing 11. Due to the obstruction of the support part 2, the through hole 12 is finally stuck on the support part 2. At this time, the elastic wing 11 has not completely returned to the natural state, and can therefore still produce elastic force.
[0049] Furthermore, in the second state, the locking portion 1 is unlocked, the first angle θ is an acute angle or 0 degrees, and the first angle θ is smaller in the second state than in the first state. The locking portion 1 will deform compared to its natural state in the first state, and will further deform in the second state, so that the angle between the extension direction of the elastic wing and the first direction is further reduced. In this way, the elastic wing 11 will be closer to the first direction, so that the projected area of the through hole 12 on the surface perpendicular to the length direction of the elastic wing 11 increases, and a gap is generated between the through hole 12 and the outer wall of the support portion 2. The locking portion 1 can be released from the support portion until the extension end moves to the second state.
[0050] In the first state, the elastic wing 11 is kept in contact with the support portion 2 by elastic force, specifically the through hole 12 on the elastic wing 11 is in contact with the outer wall of the support portion 2. There are at least two contact positions between the through hole 12 and the outer wall of the support portion 2, for example Figure 5 In the second state, the elastic wing 11 can be pressed so that the through hole 12 no longer abuts against the outer wall of the support portion 2. Specifically, when the extension end 114 is pressed, the extension end 114 rotates relative to the connection end 111, and rotates in a direction close to the first direction, for example Figure 5 The figure shows that the extension end 114 rotates in the direction indicated by the arrow R, so that the locking part 1 moves from the first state to the second state. In this way, the support part 2 passes through the through hole 12, and there is no interaction between the two, and the locking part 1 can move freely along the length direction of the support part 2. When installing the locking part, the elastic wing is pressed so that the first angle θ between the extension direction of the elastic wing and the first direction is in a compressed state, allowing the support part to smoothly pass through the elastic wing and the main body of the locking part. After that, the pressure on the elastic wing is released, and the extension end tends to recover its deformation due to the elastic force and rotates in a direction away from the first direction, for example Figure 5The locking portion is rotated in a direction opposite to that indicated by arrow R until the through-hole on the elastic wing abuts against the outer wall of the support portion and is thus locked by the support portion, thereby switching the locking portion from the second state to the first state. Since the elastic wing has not fully recovered in the first state, there is still elastic force resisting the support portion, which allows the through-hole to maintain compression with the support portion, ensuring that friction maintains the locking portion locked to the support portion. The through-hole and the support portion are in abutment and stabilized in the first state.
[0051] In the above embodiments, when the locking portion 1 is in its natural state, the first angle θ formed between the extension direction of the elastic wing and the first direction is 5-35 degrees. When the elastic wing 11 is attached to the support portion 2, in the first state, it undergoes moderate deformation, at which point the first angle θ is 5-30 degrees. In the second state, the elastic wing 11 further deforms, bringing the first angle θ to 0-25 degrees.
[0052] Because the locking portion is typically made of metal, the first angle θ is compressed by 3-5 degrees in the first state compared to the natural state. This ensures that the elastic wings maintain elasticity in the first state while also ensuring an appropriate degree of compression in the locked state, reducing metal fatigue in the locking portion. Similarly, the first angle θ is compressed by 3-5 degrees in the second state compared to the first state, ensuring that the locking portion can be unlocked while reducing metal fatigue.
[0053] refer to Figure 5 Similarly, it can be understood that the smaller the first angle θ, the farther the elastic wing is from the support portion, and the larger the angle α between the elastic wing and the support portion; the larger the first angle θ, the closer the elastic wing is to the support portion, and the smaller the angle α between the elastic wing and the support portion. In this embodiment, the angle between the elastic wing and the support portion is a complementary angle to the first angle θ.
[0054] See also Figures 1 to 4 As shown, in the present invention, the main body 10 extends from one side to the other side along the main body extension direction, and the main body extension direction is, for example, Figure 2The x-direction in the figure. The elastic wing 11 is provided on one side edge of the main body 10 and extends at least partially toward the other side edge opposite to the main body 10 along the extension direction of the main body. That is, the elastic wing 11 is provided on the outside of the main body 10, one end of which is connected to one side edge of the main body 10, and the other end extends along the extension direction of the main body toward the other side edge opposite to the main body 10, so that the through hole 12 on the elastic wing 11 can correspond to the through hole 12 on the main body 10, and it can be ensured that the support part 2 passes through the elastic wing 11 and then through the main body 10, so that the elastic wing 11 can be locked with the support part 2. Specifically, the through hole 12 on the elastic wing 11 and the through hole 12 on the main body 10 are arranged relative to each other along the length direction of the sleeved support part 2. In this embodiment, the extension direction of the main body forms an angle with the length direction of the support part 2, so that the support part 2 passes through the extension surface of the main body 10 and the extension surface of the elastic wing 11.
[0055] For more details, see Figures 1 to 4 As shown, in this embodiment, the elastic wing 11 is a sheet-like structure, and the elastic wing 11 is set at an angle with the main body 10, specifically, at an acute angle. Specifically, the elastic wing 11 is connected to one side edge of the main body 10, and the angle between the elastic wing extension direction and the main body extension direction is an acute angle. Setting the elastic wing 11 as a sheet-like structure is convenient for processing and operation. The acute angle between the elastic wing 11 and the main body 10 can ensure that the support part 2 passes through the elastic wing 11 and then passes through the main body 10, so that the elastic wing 11 can be locked with the support part 2. In other embodiments, the angle between the elastic wing and the main body can also be other angles. The present invention is not limited to this, and can be reasonably set according to actual needs, as long as it is ensured that the locking part can be changed between the first state and the second state by operating the elastic wing.
[0056] Furthermore, in each of the above-mentioned embodiments, the support portion 2 is installed in a vertical direction. Accordingly, in the unlocked state, i.e., the second state, the locking portion 1 can move up and down in the vertical direction. Thus, the first direction is horizontal, and the plane perpendicular to the length direction of the support portion 2 is a horizontal plane. Thus, when the locking portion 1 of this embodiment is in the installed orientation, the angle between the elastic wing 11 and the horizontal plane in its natural state is a first angle θ. When it is mounted on the support portion 2 and in the first state, the first angle θ is compressed. When the locking portion 1 is unlocked, so that the locking portion 1 is in the second state, the first angle θ is further compressed. Furthermore, in this embodiment, the main body 10 extends in the same direction as the first direction, and the main body extension direction is also horizontal. The support portion 2 can pass through the main body 10 in a direction perpendicular to the through hole 12 on the main body 10. Thus, the first angle formed by the elastic wing extension direction and the first direction is also the angle formed between the elastic wing extension direction and the main body.
[0057] refer to Figure 2-Figure 4In the above embodiments, the elastic wings are arched structures, that is, the elastic wings extend from one side edge of the main body to the other opposite side edge of the main body, and the middle portion of the elastic wings is raised outward. By setting the elastic wings in an arched structure, not only is it easier to operate, but the arched structure can also improve the stress situation and increase the strength of the elastic wings. In this embodiment, the elastic wings 11 and the main body 10 are in a locked state on the support portion 2 as a whole, and the two extended ends are in an open state relative to the main body 10. At this time, the through holes on the elastic wings are inclined holes relative to the longitudinal direction of the support portion and abut against the outer wall of the support portion, so that the elastic wings 11 can be locked with the support portion 2. When the elastic wings are pressed, the elastic wings 11 approach the main body 10 along the longitudinal direction of the support portion 2, that is, the extended ends of the elastic wings 11 and the extended ends of the main body 10 are brought closer along the longitudinal direction. At this time, the support portion 2 is located in the through holes of the main body 10 and the elastic wings 11 and does not contact the through holes, and the locking portion 1 can move along the longitudinal direction of the support portion 2.
[0058] Furthermore, in order to better improve the stress condition of the elastic wing and enhance the strength and operability of the elastic wing, see Figures 1 to 4 As shown, in the present invention, the connecting end 111 of the elastic wing 11 is set as an arc-shaped transition section, and the elastic wing 11 is connected to the edge of the main body 10 via the arc-shaped transition section. The transition section between the elastic wing 11 and the main body 10 is set as an arc-shaped transition section, and the force between the two is improved by the arc-shaped structure, which can increase the strength and elasticity of the elastic wing 11, make it easier for the operator to press the elastic wing 11, and also facilitate the processing of the locking part 1, thereby improving the locking force of the elastic wing 11. The connection between the arc-shaped transition section and the elastic wing and the main body can be a fixed connection, or the arc-shaped transition section, the elastic wing and the main body can be integrally formed. In other embodiments, the elastic wing can also include elastic components such as springs, and the elastic components are provided between the elastic wing and the main body so that the locking part has the ability to elastically deform.
[0059] In addition, to avoid slipping when operating the elastic wings, see Figures 1 to 4 As shown, in this embodiment, the pressing area 112 of the elastic wing 11 is provided with anti-slip ridges 110. The pressing area 112 is the portion for the operator to press or operate the elastic wing 11. By operating the pressing area 112, the operator can change the locking portion 1 between the first state and the second state. However, since the elastic wing 11 is an elastic component, it is prone to slipping during operation. Therefore, by providing the anti-slip ridges 110 on the pressing area 112 of the elastic wing 11, the friction force of the pressing area 112 can be increased, preventing slipping during operation, increasing the reliability and safety of operating the elastic wing 11, and facilitating use.
[0060] Furthermore, there can be two elastic wings. In this embodiment, the elastic wing 11 includes a first elastic wing 115 and a second elastic wing 116. The first elastic wing 115 and the second elastic wing 116 are arranged opposite to each other along the length direction of the support portion 2, and the main body 10 is located between the first elastic wing 115 and the second elastic wing 116 in the length direction. Accordingly, the first elastic wing 115 and the second elastic wing 116 both have a through hole 12. When the locking portion is sleeved, the support portion passes through the elastic wing, the main body and the elastic wing in sequence. The first elastic wing 115 and the second elastic wing 116 respectively form a first angle θ with their respective first directions. In this embodiment, the first elastic wing 115 and the second elastic wing 116 have the same structure, so the first angle θ formed by their respective elastic wing extension directions and their respective first directions is the same.
[0061] Correspondingly, when the elastic wing includes a first elastic wing and a second elastic wing, in the first state, the first elastic wing 115 contacts the support portion 2 at points P and Q, and the second elastic wing 116 contacts the support portion 2 at points P' and Q'.
[0062] Further in the above embodiments, see Figures 1 to 4 As shown, in the present invention, in the length direction of the support portion 2, the elastic wing 11 is located on one side of the main body 10, or, in the length direction of the support portion 2, the elastic wing 11 is located on one side and the other side of the main body 10 respectively. Specifically, as one embodiment of the present invention, the elastic wing 11 includes a first elastic wing 115 and a second elastic wing 116, which are arranged opposite to each other along the length direction of the support portion 2, specifically, are located on the upper side and the lower side of the main body 10 respectively. That is to say, the elastic wing 11 can be set on one side of the main body 10 (such as Figure 1 、 Figure 2 and Figure 4 As shown), two elastic wings may be respectively arranged on the upper and lower sides of the main body 10 (as shown Figure 3 As shown). In this embodiment, the elastic wing 11 is arranged on the upper side of the main body 10. Such an arrangement is not only conducive to processing, but also convenient for the operator to operate the elastic wing 11. In this case, the elastic wing 11 can abut against the support part 2 from the upper side of the main body 10. After the installation of the mounting component 3 is completed, the position where the elastic wing 11 abuts against the support part 2 can provide an upward locking force at the upper part of the main body, so that the locking part 1 and the mounting component 3 remain in a fixed position, preventing the mounting component 3 from being stepped on and moved downward. When the elastic wing 11 is arranged on the lower side of the main body 10, the elastic wing 11 can abut against the support part 2 from the lower side of the main body 10. After the installation of the mounting component 3 is completed, the position where the elastic wing 11 abuts against the support part 2 can provide a downward locking force at the lower part of the main body, so that the locking part 1 and the mounting component 3 remain in a fixed position, preventing the mounting component 3 from being lifted up or lifted up.
[0063] To increase the stability and operability of the locking part, see Figure 1 、 Figure 2 and Figure 4 As shown, in the present invention, along the length direction of the support portion 2, an extension portion 13 is provided on the side of the main body 10 opposite to the elastic wing 11. The extension portion 13 extends from the lower edge of the main body 10 and extends along the above-mentioned main body extension direction. In this embodiment, the extension portion 13 and the elastic wing 11 are arranged relative to each other in the length direction of the support portion 2. When the operator operates the elastic wing 11, for example, when unlocking the locking portion 1, the operator can press the extension portion 13 upward from the bottom side and press the elastic wing 11 from the top side, which is more convenient for the operator to operate. At the same time, the extension portion 13 increases the lower side area of the locking portion 1. When installing pipelines or wire boxes, the lower side of the locking portion 1 can be placed more stably on the ground, ensuring that the entire installation assembly can be more stable. In addition, in order to increase the strength of the extension portion 13, a rib plate 130 is provided between the extension portion 13 and the main body 10.
[0064] In another embodiment of the present invention, elastic wings 11 are provided on both the upper and lower sides of the main body 10 (e.g. Figure 3 As shown), namely, the first elastic wing 115 and the second elastic wing 116. By providing the elastic wings 11 on both the upper and lower sides of the main body 10, after the elastic wings 1 and the mounting component 3 are installed, the elastic wings 11 and the support portion 2 at the upper and lower abutment points can respectively provide an upward locking force and a downward locking force, so that the elastic wings 11 can lock the support portion 2 at the upper and lower points simultaneously, preventing the mounting component 3 from moving when stepped on or lifted, so that the locking portion 1 and the mounting component 3 connected to the locking portion 1 can be more stably and reliably locked at the appropriate height position on the support portion 2 (that is, the appropriate position in the longitudinal direction of the support portion during installation).
[0065] For example, refer to Figure 3 When the elastic wings 11 are provided on the upper side of the support portion 2, the upper elastic wings 11 can provide an upward locking force when stepping on the extension portion 13. When the elastic wings are provided on the lower side of the support portion, the lower elastic wings can provide a downward locking force when lifting the extension portion on the main body.
[0066] In order to ensure that the locking part can be reliably connected to the mounting component, see Figures 1 to 4 As shown, in this embodiment, the main body 10 is provided with a chamber 100, and the mounting component 3 is provided with a mounting end 30, which can extend into the chamber 100 and connect with the main body 10 (as shown in FIG. Figure 4 By providing the cavity 100 on the main body 10 and being able to insert the mounting end 30 of the mounting component 3 into the cavity 100, the mounting component 3 can be more stably and reliably restrained, so that the locking portion 1 can be reliably connected to the mounting component 3.
[0067] For details, see Figure 4 Combined with Figures 1 to 3 As shown, in this embodiment, the through hole 12 passes through the chamber 100, and a connecting hole 300 is provided on the mounting end 30. The support portion 2 can pass through the through hole 12 on the elastic wing 11, the through hole 12 on the main body 10 and the connecting hole 300 on the mounting end 30 located in the chamber 100 in sequence, so that the mounting component 3 is locked on the support portion 2 in the length direction of the support portion 2 by the locking portion 11 in the first state.
[0068] That is, after the mounting end 30 of the mounting component 3 is inserted into the cavity 100 of the main body 10, the support portion 2 can sequentially pass through the through hole 12 on the elastic wing 11, the through hole 12 on the main body 10, and the connecting hole 300 on the mounting end 30, and pass out from the through hole 12 on the lower side of the main body 10. Afterwards, the elastic wing 11 is relaxed, so that the locking portion 1 enters the first state. At this time, the elastic wing 11 can, under the action of its own elasticity, make the elastic wing 11 abut against the support portion 2. Through this abutment, the locking portion 1 and the mounting component 3 can be locked in the appropriate position on the support portion 2. Through the interpenetrating connection between the through hole 12 and the connecting hole 300 between the support portion 2, the locking portion 1 and the mounting component 3, not only can quick disassembly and assembly be achieved, but the structure is simple, and automatic locking can be achieved, which is safe and reliable.
[0069] It should be noted that the present invention does not limit the specific shapes of the through holes and the connecting holes, and they can be reasonably set and selected according to actual needs, as long as the support portion can pass through and the locking portion can lock the support portion. Specifically, in this embodiment, the shape of the through hole 12 and the shape of the connecting hole 300 match the shape of the support portion 2, and the cross-sectional shape of the support portion 2 can be any one of a circle, an ellipse, and a polygon. Preferably, the cross-sectional shapes of the through hole 12, the connecting hole 300, and the support portion 2 are all rectangular, so that the abutment between the locking portion and the support portion is more stable.
[0070] It should be noted that this document does not specify the specific structure and type of the mounting component; this may be determined based on the actual application scenario and usage needs. For example, the mounting component may be a component such as a wire box or pipeline, or a structure such as a support member used to support and define a wire box or wire trough. Preferably, in this embodiment, the mounting component 3 is a pipeline fastener used to define and support the pipeline, and the mounting end 30 of the mounting component 3 serves as the fastener's lug.
[0071] The present invention also provides a laying system comprising the mounting assembly and mounting components described in each of the above embodiments, wherein the mounting assembly is used to install and secure the mounting components. Furthermore, the laying system of this embodiment can be used for the installation and laying of pipes, ducts, and lines. Furthermore, the mounting components include a cable box or cable duct, or both. For example, the laying system of this embodiment utilizes the mounting assembly to lay power cables.
[0072] In addition, in order to avoid stepping on the support during construction, see Figure 1 and Figure 4 As shown, in this embodiment, the support portion 2 is provided with an anti-trampling portion 20. Specifically, for example, the anti-trampling portion 20 is located at the top of the support portion 2. Specifically, the anti-trampling portion 20 is shaped like a bull's horn, which effectively attracts the attention of workers and allows them to avoid stepping on the support portion 2. Furthermore, the anti-trampling portion 20 can be manipulated to insert and remove the support portion 2, making it easier for the operator to install and remove the support portion 2.
[0073] The materials of the various components in this application can be aluminum alloy materials, hard plastics, and other engineering materials with rust and corrosion resistance. For example, aluminum alloys can not only be buried in buildings for a long time without rusting or decaying, but also have high strength and excellent performance. In other embodiments, the various components of this application can also be made of other types of materials as long as the strength and performance of the components can be guaranteed.
[0074] As described above, the technical solution applied to the present invention provides a quick installation component that can quickly and efficiently adjust the position of the installation component connected to the locking part in the length direction of the support component by combining the locking part and the support part composed of the main body and the elastic wing, replacing the traditional thread adjustment method, and can complete the adjustment and installation with a fast adjustment speed, and can achieve automatic locking, which is safe and reliable.
[0075] In summary, the above embodiments provided by the present invention are merely illustrative of the principles and effects of the present invention and are not intended to limit the present invention. Anyone skilled in the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by one of ordinary skill in the art without departing from the spirit and technical concepts disclosed herein shall be encompassed by the claims of the present invention.
Claims
1. A mounting assembly for electrical pipeline installation, characterized in that: include: a supporting portion extending along its length; The locking portion is sleeved on the supporting portion and can be connected to the mounting component, wherein: The locking portion includes a main body and an elastic wing connected to each other, the main body is provided with a cavity, the mounting component is provided with a mounting end, the mounting end can be extended into the cavity and connected to the main body, the main body and the elastic wing are both provided with through holes, the locking portion is sleeved on the supporting portion through the through holes on the elastic wing and the through holes on the main body, the through hole on the main body passes through the cavity, the mounting end is provided with a connecting hole, the supporting portion can pass through the through holes on the elastic wing, the through holes on the main body and the connecting hole on the mounting end located in the cavity, so that the mounting component is locked on the supporting portion in the length direction of the supporting portion by the locking portion in the first state; In the first state, the through hole on the elastic wing can abut against the support portion, and the locking portion is locked on the support portion. In the second state, the elastic wing can release the support portion, and the locking portion can move along the length direction on the support portion. There are two elastic wings, namely a first elastic wing and a second elastic wing which are arranged opposite to each other along the length direction. Along the length direction, the main body is located between the first elastic wing and the second elastic wing.
2. The mounting assembly according to claim 1, wherein: The elastic wing has a connecting end and an extending end located at one end and the other end respectively, the connecting end is connected to the main body, and the through hole on the elastic wing is located between the connecting end and the extending end.
3. The mounting assembly according to claim 2, wherein: In the first state, the elastic wings are kept in contact with the support portion by elastic force.
4. The mounting assembly according to claim 3, wherein: The direction of the elastic wing from the connecting end to the extending end is the extending direction of the elastic wing, the angle between the extending direction of the elastic wing and the first direction is the first angle, the first direction is the direction from the connecting end to the extending end and perpendicular to the length direction, the state of the locking portion when it is not mounted on the supporting portion and is not deformed is the natural state, wherein, in the natural state and the first state, the first angle is an acute angle, and the first angle in the first state is smaller than that in the natural state.
5. The mounting assembly according to claim 4, wherein: In the second state, the first angle is an acute angle or 0 degrees, and the first angle in the second state is smaller than that in the first state.
6. The mounting assembly according to claim 5, wherein: When the locking portion moves from the first state to the second state, the extending end rotates in a direction close to the first direction; when the locking portion moves from the second state to the first state, the extending end rotates in a direction away from the first direction due to elastic force, and is stabilized in the first state by abutting against the supporting portion through the through hole on the elastic wing.
7. The mounting assembly according to claim 5, wherein: In the natural state, the first angle is 5-35 degrees.
8. The mounting assembly according to claim 5, wherein: In the first state, the first angle is 5-30 degrees.
9. The mounting assembly according to claim 5, wherein: In the second state, the first angle is 0-25 degrees.
10. The mounting assembly according to claim 1, wherein: The through holes of the elastic wings abut against the outer wall of the support portion, and there are at least two abutting points.
11. The mounting assembly according to claim 1, wherein: The elastic wing is a sheet-like structure, and is arranged at an acute angle with the main body.
12. The mounting assembly according to any one of claims 1 to 11, wherein: The elastic wing has a connecting end, which is an arc-shaped transition section. The elastic wing is connected to a side edge of the main body through the arc-shaped transition section.
13. The mounting assembly according to any one of claims 1 to 11, wherein: The pressing portion of the elastic wing is provided with anti-slip convex patterns.
14. The mounting assembly according to claim 1, wherein: The shapes of the through holes on the elastic wings, the through holes on the main body, and the connecting holes match the shape of the support portion, and the cross-sectional shape of the support portion is any one of circular, elliptical, and polygonal.
15. The mounting assembly according to any one of claims 1 to 11, wherein: An extension portion is provided on the side surface of the main body opposite to the elastic wing, and an anti-trampling portion is provided on the supporting portion.
16. A laying system for electrical pipeline installation, characterized in that: It comprises the installation assembly and the installation component according to any one of claims 1 to 15, and the installation assembly is used to install and fix the installation component.
17. The laying system according to claim 16, characterized in that The installation components include wire boxes and / or wire troughs.
Citation Information
Patent Citations
Mounting assembly and laying system
CN216720789U
Hanger metal fittings for hanging the outer frame of the ceiling inspection door
JP2914963B1