Mobile phone support
By designing a mobile phone holder structure that can be flipped and adjusted angle and an aluminum alloy integrated fixture, the existing mobile phone holder is solved, and it is easy to use and portability is achieved.
Patent Information
- Application Number
- CN202422546335.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-10-22
AI Technical Summary
The existing mobile phone holder is large in size and is not convenient to carry.
A mobile phone bracket including a bracket bottom shell and a bracket upper shell is designed. It is connected to the shaft rod of the round movable bracket through the fixing frame to form a rotating shaft structure. The angle can be flipped and adjusted between the bracket upper shell and the bottom shell, and can be folded and closed when not in use. The inner fixing member of the aluminum alloy film is integrated with the bracket upper shell to enhance stability and portability.
It realizes the convenience of angle adjustment of the bracket when in use and the volume reduction when not in use, making it easy to carry and improves the stability and durability of the bracket.
Smart Images

Figure CN223297622U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of mobile phone accessories, and particularly relates to a mobile phone bracket. Background Art
[0002] In modern life, mobile phone holders have become an important auxiliary tool to enhance the user experience. When using a mobile phone holder, the user can place the mobile phone on the holder and adjust the tilt angle of the holder to adjust the angle of the mobile phone screen to a suitable angle. Although existing mobile phone holders have many functions, they are large in size and inconvenient to carry. Utility Model Content
[0003] The purpose of the present invention is to provide a mobile phone holder to solve the problems raised in the above background technology.
[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solution: a mobile phone holder, comprising a holder bottom shell and a holder upper shell, the holder bottom shell being provided with an assembly port, a fixing frame being fixedly installed on the assembly port, a rolled movable holder being fixedly installed on the holder upper shell, the fixing frame being movably connected to the rolled movable holder via an axis rod, and the fixing frame being provided with a first rivet column.
[0005] Preferably, the assembly opening is provided with a first through hole, and the first rivet column passes through the first through hole to be fixedly connected to the riveted fixing plate.
[0006] Preferably, an inner-membrane fixing part is fixedly installed on the upper shell of the bracket, and the inner-membrane fixing part is provided with a second rivet column, and the rolled movable bracket is fixedly connected to the second rivet column through a second through hole.
[0007] Preferably, the inner membrane fixing piece is made of aluminum alloy, and the upper shell of the bracket is integrally formed with the inner membrane fixing piece through an injection molding process.
[0008] Preferably, the assembly opening is provided with an arc groove.
[0009] Preferably, the upper shell of the bracket is provided with a structural groove.
[0010] Compared with the prior art, the beneficial effects of the present invention are:
[0011] The utility model is connected to the rolled movable bracket through the shaft of the fixing frame to form a rotating shaft structure. The bottom shell of the bracket is provided with an assembly opening, and the assembly opening is riveted and fixed to the fixing frame with a riveted fixing piece. The upper shell of the bracket is fixedly connected to the rolled movable bracket through the inner membrane fixing piece, so that the upper shell of the bracket and the bottom shell of the bracket are flipped around the rotating shaft. When in use, the upper shell of the bracket is flipped and adjusted to a suitable angle. The mobile phone is placed against the upper shell of the bracket to complete the use operation. When it needs to be carried, the upper shell of the bracket and the bottom shell of the bracket are covered together, so that the volume of the utility model becomes smaller and it is easy to carry. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 This is a structural view of the bracket of the utility model in the closed state.
[0013] Figure 2 This is the first perspective structural view of the present bracket in the open state.
[0014] Figure 3 This is a second perspective structural view of the utility model when the bracket is in the open state.
[0015] Figure 4 This is an exploded structural view of the utility model.
[0016] Figure 5 This is a structural view of the upper shell of the bracket of the utility model.
[0017] Figure 6 This is a structural view of the bottom shell of the bracket of the utility model.
[0018] Figure 7 It is a structural view of the rotating shaft of this utility model.
[0019] Markings in the figure: bracket bottom shell 1, bracket upper shell 2, assembly port 3, fixing frame 4, rolled movable bracket 6, shaft 7, first rivet column 8, first through hole 9, riveted fixing plate 10, membrane internal fixing part 11, second rivet column 12, second through hole 13, arc groove 14, structural groove 15. DETAILED DESCRIPTION
[0020] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection.
[0021] Example 1:
[0022] like Figure 1-Figure 7As shown, the present invention provides a mobile phone holder, including a holder bottom shell 1 and a holder upper shell 2. The holder bottom shell 1 is provided with an assembly port 3, a fixing frame 4 is fixedly installed on the assembly port 3, and a rolled movable bracket 6 is fixedly installed on the holder upper shell 2. The fixing frame 4 is movably connected to the rolled movable bracket 6 through an axle rod 7, and the fixing frame 4 is provided with a first rivet column 8. The assembly port 3 is provided with a first through hole 9, and the first rivet column 8 is fixedly connected to the riveted fixing plate 10 through the first through hole 9. The holder upper shell 2 is fixedly provided with an intra-membrane fixing part 11, and the intra-membrane fixing part 11 is provided with a second rivet column 12. The rolled movable bracket 6 is fixedly connected to the second rivet column 12 through a second through hole 13. The intra-membrane fixing part 11 is made of aluminum alloy, and the holder upper shell 2 is integrally formed with the intra-membrane fixing part 11 through an injection molding process. The assembly port 3 is provided with an arc groove 14. The holder upper shell 2 is provided with a structural groove 15.
[0023] Through the above technical solution, the utility model is movably connected to the rolled movable bracket 6 through the fixed frame 4 through the shaft 7 to form a rotating shaft structure. The bracket bottom shell 1 is provided with an assembly port 3, and the assembly port 3 is riveted and fixed to the fixed frame 4 with a riveted fixing plate 10. The bracket upper shell 2 is fixedly connected to the rolled movable bracket 6 through the membrane fixing part 11, so that the bracket upper shell 2 and the bracket bottom shell 1 are flipped around the rotating shaft. When in use, the bracket upper shell 2 is flipped and adjusted to a suitable angle. The mobile phone is placed against the bracket upper shell 2 to complete the use operation. When it needs to be carried, the bracket upper shell 2 and the bracket bottom shell 1 are covered together to make the volume of the utility model smaller and easier to carry.
[0024] Example 2:
[0025] like Figure 1-Figure 7As shown, the utility model consists of two parts: a bracket bottom shell 1 and a bracket upper shell 2, wherein the bracket bottom shell 1 is provided with an assembly opening 3, and a fixing frame 4 is fixedly installed inside the assembly opening 3, and a rolled movable bracket 6 is fixedly installed on the bracket upper shell 2. The fixing frame 4 is movably connected to the rolled movable bracket 6 through an axis rod 7, and a first rivet column 8 is also provided on the fixing frame 4. The fixing frame 4 and the rolled movable bracket 6 are movably connected through the axis rod 7 to form a rotating shaft structure, so that the bracket bottom shell 1 and the bracket upper shell 2 can be flipped and folded, thereby improving their portability. Specifically, the bracket bottom shell 1 serves as the basic part of the mobile phone bracket, and its main function is to support and stabilize the entire bracket structure. An assembly opening 3 is provided on the bottom shell, and this assembly opening 3 enables the bracket bottom shell 1 to be firmly connected to other accessories. The fixing frame 4 is installed in the assembly opening 3. By arranging the first rivet column 8 on the fixing frame 4, the entire structure can be made more stable, thereby improving the durability and stability of the bracket. The upper housing 2 of the stand is fixedly mounted with a curved movable bracket 6, which is flexibly connected to the fixed frame 4 via a shaft 7, forming a pivot structure. The design of the curved movable bracket 6 allows the stand to rotate freely. This design allows users to adjust the viewing angle of the phone screen according to their needs, ensuring the best user experience. By fixing the curved movable bracket 6 to the upper housing 2, the stand remains stable during use. The fixed frame 4 is flexibly connected to the curved movable bracket 6 via the shaft 7. The use of the shaft 7 enables the stand to be adjusted within a certain range of angles and folded. When the user needs to adjust the angle of the phone screen, they simply flip the bottom housing 1 or the upper housing 2. This structural design not only simplifies the operation of the stand, but also reduces its complexity and improves user convenience. Furthermore, the flexible connection of the shaft 7 allows the stand to be folded when not in use, greatly enhancing its portability. Furthermore, the provision of the first rivet stud 8 also plays a significant role. The first rivet stud 8 not only strengthens the connection between the fixed frame 4 and the bottom housing 1, but also makes the overall structure of the stand more compact. During the use of the bracket, the first rivet column 8 can effectively prevent the bracket from loosening or shifting when subjected to external forces, thereby ensuring that the bracket can stably support the mobile phone for a long time. The design of the present utility model structurally meets the portability, stability and functionality of the bracket. The combined design of the bracket bottom shell 1 and the bracket upper shell 2 not only enables the mobile phone bracket to have good supporting capabilities, but also enables flexible adjustment of the angle by adjusting the rolled movable bracket 6. The movable connection of the shaft rod 7 between the fixed frame 4 and the rolled movable bracket 6 further improves the convenience and portability of the bracket. In addition, the provision of the first rivet column 8 also provides a guarantee for the stability of the bracket.
[0026] The assembly opening 3 of the present invention is provided with a first through-hole 9, through which the first rivet stud 8 passes to securely connect to the riveted fixing plate 10, further improving the stability of the connection between the fixing frame 4 and the bracket bottom shell 1. Specifically, by optimizing the structure of the assembly opening 3 and the riveted fixing plate 10, the overall stability and durability of the bracket are enhanced. The assembly opening 3 is a crucial design feature of the bracket bottom shell 1. It not only provides the physical connection between the bracket bottom shell 1 and the fixing frame 4, but also plays a key role in the overall structure. The first rivet stud 8 can pass through the first through-hole 9 and then securely connect to the riveted fixing plate 10 by riveting, further strengthening the connection between the fixing frame 4 and the bracket bottom shell 1. This design effectively transfers the force of the fixing frame 4 to the bracket bottom shell 1, thereby enhancing the overall structural stability of the bracket. In this design, the first rivet stud 8 is a key component connecting the fixing frame 4 to the bracket bottom shell 1. The rivet stud serves to firmly secure the fixing frame 4 within the assembly opening 3 of the bracket bottom shell 1. By passing through the first through-hole 9, the rivet stud forms a strong connection between the bracket bottom shell 1 and the bracket bottom shell 1. The first rivet stud 8 is secured by a riveted fixing plate 10. This riveting method not only enhances the strength of the connection but also effectively prevents relative displacement between the fixing frame 4 and the bracket bottom shell 1. The fixing plate 10 is provided with a corresponding riveting hole, into which the first rivet stud 8 is inserted, securing the two together through riveting technology, ensuring the stability and durability of the structure of the utility model. By providing a first through-hole 9 in the assembly opening 3, the first rivet stud 8 and the riveted fixing plate 10 are riveted together, reducing loosening or displacement caused by external forces on the bracket. This structural design effectively disperses external forces applied to the bracket, ensuring that the entire bracket maintains high stability when subjected to gravity or other external impacts. This not only improves the service life of the bracket, but also enhances the user experience. Overall, the design of providing the first through-hole 9 in the assembly opening 3 and allowing the first rivet stud 8 to pass through the first through-hole 9 to securely connect to the riveted fixing plate 10 not only further enhances the stability of the connection between the fixing frame 4 and the bracket bottom shell 1, but also improves the overall durability and service life of the bracket. This design optimizes the structure of the bracket, enabling the bracket to maintain good stability under various conditions of use. It also simplifies the production process and improves production efficiency and product quality.
[0027] The upper shell 2 of the bracket of the present invention is fixedly installed with an internal membrane fixing part 11, and a second rivet stud 12 is provided on the internal membrane fixing part 11. The rolled movable bracket 6 is fixedly connected to the second rivet stud 12 through the second through hole 13. The configuration of the internal membrane fixing part 11 and the second rivet stud 12 in this technical solution can improve the overall stability and structural strength of the bracket, especially when the upper shell 2 of the bracket is made of plastic. Since the upper shell 2 of the bracket is mainly made of plastic, in order to ensure the functionality and stability of the bracket, a stronger metal material structure is required to provide a reliable connection during the riveting operation, namely the internal membrane fixing part 11. The main function of the internal membrane fixing part 11 is to provide a stable metal connection point for the upper shell 2 of the bracket. By providing the internal membrane fixing part 11 with the second rivet stud 12, the upper shell 2 of the bracket can achieve an improvement in strength and stability during the riveting process. As a part of the upper shell 2 of the bracket, the internal membrane fixing part 11 is embedded in the upper shell 2 of the bracket, and plays the role of bridging the plastic material and the metal second rivet stud 12 in the upper shell 2 of the bracket. The provision of the in-membrane fixing member 11 effectively prevents deformation or cracking of the plastic material when subjected to external forces, thereby ensuring that the overall structure of the bracket is not affected by material limitations and its functionality. The second rivet stud 12 is an extension of the in-membrane fixing member 11, which provides a solid connection between the bracket upper shell 2 and the curved movable bracket 6. The second rivet stud 12 of the in-membrane fixing member 11 forms a stable connection point between the bracket upper shell 2 and the curved movable bracket 6. The second rivet stud 12 provides sufficient strength and support to cope with various mechanical forces that the bracket may be subjected to during use. The second rivet stud 12 is fixedly connected to the curved movable bracket 6 through the second through-hole 13, ensuring the stability of the curved movable bracket 6 on the bracket upper shell 2. This design not only addresses the shortcomings of plastic materials in terms of high-strength connections, but also achieves an effective structural combination of plastic and metal. During the riveting process, the metal second rivet stud 12 has greater hardness and stability, providing stronger support than plastic materials. The provision of the in-membrane fixing member 11 also simplifies the production process. During the manufacturing process, by integrally mounting the membrane fixing member 11 with the stent upper shell 2, a secure connection of the metal rivet stud can be achieved on the plastic material. This design not only improves the overall strength of the stent, but also reduces the complex connection process, making the production process more efficient and economical.
[0028] The material of the membrane fixing part 11 of the present invention is aluminum alloy, and the upper shell 2 of the bracket is integrally formed with the membrane fixing part 11 through an injection molding process. During the injection molding process of the upper shell 2 of the bracket, the membrane fixing part 11 is placed in the mold, so that the upper shell 2 of the bracket and the membrane fixing part 11 are seamlessly combined, thereby improving the stability and durability of the structure of the present invention. The membrane fixing part 11 is made of aluminum alloy, and this choice has significant advantages. Aluminum alloy is a lightweight and high-strength metal material with excellent mechanical properties and corrosion resistance. Its excellent physical properties make it an ideal material for connecting parts. In this design, the membrane fixing part 11, as a component made of aluminum alloy, can provide stable supporting force during the riveting and fixing process, ensuring that the connection between the fixing frame 4 and the upper shell 2 of the bracket has sufficient strength. This membrane fixing part 11 made of aluminum alloy not only improves the durability of the bracket, but also enhances the overall structural strength of the bracket. The upper shell 2 of the bracket is integrally formed with the membrane fixing part 11 through an injection molding process. The implementation steps of this process include placing the membrane fixing part 11 in the mold of the upper shell 2 of the bracket, and then injecting plastic material into the mold through the injection molding process to wrap and solidify the membrane fixing part 11. During the injection molding process, good adhesion is formed between the plastic material and the membrane fixing part 11, so that the membrane fixing part 11 and the upper shell 2 of the bracket are integrated. Through this one-piece molding method, the problems of seams and looseness that may occur in traditional assembly methods can be effectively avoided, ensuring the overall structural stability of the bracket. The injection molding process is characterized by high efficiency, precision and good consistency. During the production process, the mold design ensures that the membrane fixing part 11 can be accurately positioned and completely wrapped when the plastic material is injected. The high temperature and high pressure during the injection molding process make the plastic material highly fluid, able to penetrate into the fine parts of the membrane fixing part 11, achieving a close combination with the metal parts. This combination method not only improves the connection strength, but also reduces assembly errors, thereby improving the overall quality and stability of the product. By integrally molding the membrane fixing member 11 and the bracket upper shell 2, not only the strength of the connection part is improved, but also the overall durability of the bracket is enhanced. In actual use, this one-piece design can effectively disperse the external force applied to the bracket, preventing loosening or separation that may occur in traditional assembly. The pressure and impact force that the bracket is subjected to during use can be effectively transmitted and dispersed, thereby maintaining the stability and durability of the bracket. In addition, the injection molding process also simplifies the production process. By completing the fixation of the membrane fixing member 11 and the molding of the bracket upper shell 2 in the mold, the subsequent assembly process is reduced and production efficiency is improved. This process can complete mass production in a shorter period of time and ensure the quality consistency of each product, thereby reducing production costs and technical difficulty.
[0029] The assembly opening 3 of the present invention is provided with an arc groove 14. The connection method between the bracket bottom shell 1 and the bracket upper shell 2 is further optimized. Through the combination of the arc groove 14 and the shaft structure, the bracket can be flexibly flipped and fitted, thereby improving the convenience and stability of the bracket. In this design, the assembly opening 3 of the bracket bottom shell 1 is provided with an arc groove 14, which can accommodate the raised portion of the shaft structure. The arc groove 14 can form a good fit with the raised portion of the shaft structure. The arc groove 14 enables the bracket upper shell 2 and the bracket bottom shell 1 to be accurately docked during relative movement, and can maintain a stable fit when flipping or adjusting the angle. The fixed frame 4 and the rolled movable bracket 6 are connected by a shaft 7 to form a shaft structure. This shaft structure enables rotational movement between the bracket upper shell 2 and the bracket bottom shell 1. The shaft 7, as the core component of the shaft structure, enables the bracket upper shell 2 and the bracket bottom shell 1 to rotate and flip around the shaft 7. Because the rotating shaft structure has a raised structure, this raised structure will affect the flipping and fitting of the bracket upper shell 2 and the bracket bottom shell 1, and even prevent the bracket upper shell 2 and the bracket bottom shell 1 from fitting together seamlessly, affecting the user experience. The cooperation between the arc groove 14 and the raised structure allows the bracket upper shell 2 and the bracket bottom shell 1 to fit together seamlessly, ensuring the flipping and fitting effect of the bracket.
[0030] The upper housing 2 of the present invention is provided with a structural groove 15. The design of the structural groove 15 not only plays a significant role in reducing the weight of the upper housing 2, but also reduces material usage during the production process and improves the structural stability of the upper housing 2. The upper housing 2 is a key component of the mobile phone holder, its primary function being to support and secure the mobile phone, ensuring its stability and security on the holder. Since the upper housing 2 typically needs to withstand a certain amount of weight and external forces, selecting the appropriate material and design structure is crucial to the performance of the holder. The structural groove 15 effectively reduces the weight of the upper housing 2. During the manufacturing process, conventional upper housings 2 typically require a large amount of material to ensure their strength and stability. However, the provision of the structural groove 15 reduces material usage without compromising the overall structural strength. The structural groove 15 typically takes the form of a groove of a specific shape and depth. By providing these grooves on the surface or interior of the upper housing 2, the overall weight of the structure is reduced, while also reducing material requirements. This design not only helps reduce the overall weight of the final product, making the mobile phone holder more portable, but also reduces production costs due to the reduced material usage. The provision of the structural groove 15 also reduces material usage during the production process. In traditional manufacturing methods, in order to ensure the strength of the upper shell 2 of the bracket, thicker materials are usually required, which leads to material waste and increased costs. By designing a structural groove 15 in the upper shell 2 of the bracket, the structural integrity of the bracket can be maintained while reducing material usage. The design of the structural groove 15 optimizes the material distribution so that the material of each part can exert its maximum strength, reducing unnecessary material thickness and thus reducing production costs. This design method not only improves the utilization rate of materials, but also optimizes the production process and improves production efficiency. The structural groove 15 improves the structural stability of the upper shell 2 of the bracket. The structural groove 15 can effectively improve the rigidity and stability of the bracket by forming a groove structure with a certain geometric shape in the upper shell 2 of the bracket.
[0031] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply the existence of any such actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article, or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or device comprising the element.
[0032] The above description is only used to illustrate the technical solution of the present invention and is not intended to limit it. Other modifications or equivalent substitutions made to the technical solution of the present invention by ordinary technicians in this field should be included in the scope of the claims as long as they do not depart from the spirit and scope of the technical solution.
Claims
1. A mobile phone holder, comprising a holder bottom shell and a holder upper shell, characterized in that: The bottom shell of the bracket is provided with an assembly port, a fixing frame is fixedly installed on the assembly port, a rolled movable bracket is fixedly installed on the upper shell of the bracket, the fixing frame is movably connected to the rolled movable bracket through a shaft, and the fixing frame is provided with a first rivet column.
2. A mobile phone holder according to claim 1, characterized in that: The assembly opening is provided with a first through hole, and the first rivet column passes through the first through hole to be fixedly connected to the riveted fixing plate.
3. A mobile phone holder according to claim 1, characterized in that: The upper shell of the bracket is fixedly installed with an inner membrane fixing piece, and the inner membrane fixing piece is provided with a second rivet column. The rolled movable bracket is fixedly connected to the second rivet column through a second through hole.
4. A mobile phone holder according to claim 3, characterized in that: The material of the membrane inner fixing piece is aluminum alloy, and the upper shell of the bracket is integrally formed with the membrane inner fixing piece through an injection molding process.
5. The mobile phone holder according to claim 1, characterized in that: The assembly opening is provided with an arc groove.
6. The mobile phone holder according to claim 1, characterized in that: The upper shell of the bracket is provided with a structural groove.