Embedded all-in-one machine
By designing protective components, including rubber pads and multi-layer protective frames, into the embedded all-in-one machine, the problem of damage caused by vibration and impact in industrial environments is solved, thereby improving the stability and shock resistance of the equipment and extending its service life.
Patent Information
- Application Number
- CN202423263852.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Existing embedded all-in-one machines lack effective shock and protection measures in industrial environments, making the equipment susceptible to external vibrations and impacts, which may lead to damage to display effects, internal circuit failures, or equipment shutdowns, affecting production stability and efficiency.
An embedded all-in-one machine is designed, including a screen assembly and a housing. The screen assembly has a display on one side and is connected to an internal component on the other side. The housing and the screen assembly form an accommodating cavity. The protective component consists of a rubber pad and a protective frame. The rubber pad is evenly distributed on the four sides of the screen assembly. The protective frame is fixedly installed on both sides of the housing. The frame has a multi-layer structure and honeycomb through holes. The rubber pad is made of silicone. The housing is made of aluminum alloy.
It effectively mitigates the impact of external vibrations and shocks on the all-in-one machine, enhances equipment stability and seismic resistance, avoids damage to internal components, ensures stable installation of the equipment in the cabinet, and improves the service life and performance of the equipment.
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Figure CN223552057U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of industrial computer technology, specifically an embedded all-in-one machine. Background Technology
[0002] With the rapid development of industrial automation and informatization, embedded all-in-one machines are widely used in various industrial equipment, especially in the fields of control systems, monitoring equipment, and data acquisition.
[0003] Existing embedded all-in-one computers typically employ fixed installation methods, directly mounting the main unit into a cabinet or other equipment. In industrial environments, the impact of external vibrations and shocks on the internal components is often not adequately considered, especially during cabinet installation where effective shock protection measures are lacking. These factors can damage the display, cause internal circuit malfunctions, or degrade other performance characteristics, and in severe cases, may even render the equipment unusable or cause downtime, thus affecting the stability and efficiency of industrial production.
[0004] Therefore, there is a need for an embedded all-in-one machine with effective shockproof and protective functions. Summary of the Invention
[0005] The purpose of this invention is to solve the technical problem of the lack of effective shock protection when all-in-one machines are installed in cabinets, and to provide an embedded all-in-one machine.
[0006] To solve the above problems, this utility model is implemented according to the following technical solution:
[0007] An embedded all-in-one machine includes:
[0008] The all-in-one machine body includes a screen assembly and a housing. One side of the screen assembly is provided with a display for displaying information, and the other side is connected to the internal components of the touch display. The housing is connected to the screen assembly to form a receiving cavity, and the internal components are disposed inside the receiving cavity.
[0009] A protective assembly, comprising rubber pads and a protective frame; the rubber pads are evenly distributed and installed on the four sides of the screen assembly; the protective frame is fixedly installed on opposite sides of the housing.
[0010] Preferably, the housing has groove structures on opposite sides, and the protective frame is embedded in the grooves;
[0011] The thickness of the protective frame is greater than the depth of the groove.
[0012] Preferably, the housing has mounting structures on both sides for fixing the main body of the integrated machine, and the protective frame has an opening, the shape of which is adapted to the shape of the mounting structure.
[0013] Preferably, the protective frame has a multi-layer structure, with the outer layer of the protective frame covered with soft polyurethane and the inner layer of the protective frame having a hollow buffer cavity filled with foamed rubber.
[0014] Preferably, the protective frame has a plurality of through holes evenly distributed on it, and the through holes are arranged in a honeycomb pattern.
[0015] Preferably, the rubber pad is made of silicone material and has a hardness of 60 Shore A.
[0016] Preferably, the housing is made of aluminum alloy.
[0017] Compared with the prior art, the beneficial effects of this utility model are:
[0018] The present invention discloses an embedded all-in-one machine, comprising an all-in-one machine body and a protective component. The all-in-one machine body includes a screen assembly and a housing. One side of the screen assembly is provided with a display for displaying information, and the other side is connected to an internal component of a touch display. The housing is connected to the screen assembly to form a receiving cavity, and the internal component is disposed inside the receiving cavity. The protective component includes rubber pads and a protective frame. The rubber pads are evenly distributed and installed on the four sides of the screen assembly. The protective frame is fixedly installed on opposite sides of the housing.
[0019] This invention utilizes protective components, including rubber pads evenly distributed on the four sides of the screen assembly and protective frames fixedly installed on both sides of the housing, to effectively mitigate the impact of external vibrations and shocks on the all-in-one machine. Especially when the all-in-one machine is installed in an industrial equipment cabinet, the interference fit between the rubber pads and the inner wall of the cabinet opening further enhances the stability and shock resistance of the equipment, preventing damage or performance degradation of internal components due to vibration. Attached Figure Description
[0020] The specific embodiments of the present invention will be further described in detail below with reference to the accompanying drawings, wherein:
[0021] Figure 1 This is a three-dimensional view of an embedded all-in-one machine according to this utility model;
[0022] Figure 2 This is a three-dimensional view of a protective frame in an embedded all-in-one machine according to this utility model;
[0023] Figure 3This is a three-dimensional view of the main body of an embedded all-in-one machine with a disassembled protective frame.
[0024] Figure 4 This is a cross-sectional view of an embedded all-in-one machine protective frame according to this utility model;
[0025] Figure 5 This is a cross-sectional view of an embedded all-in-one machine according to this utility model;
[0026] Figure 6 This is a front view of an embedded all-in-one machine according to this utility model;
[0027] In the diagram: 10-All-in-one main body, 20-Protective components; 11-Screen assembly, 12-Housing shell, 13-Display, 14-Accommodation cavity, 15-Groove structure, 16-Mounting structure; 21-Gum pad, 22-Protective frame, 23-Opening, 24-Outer layer, 25-Inner layer, 26-Buffer cavity, 27-Through hole. Detailed Implementation
[0028] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0029] like Figures 1-6 As shown, the embedded all-in-one machine of this utility model includes...
[0030] The all-in-one machine body 10 includes a screen assembly 11 and a housing 12. One side of the screen assembly 11 is provided with a display 13 for displaying information, and the other side is connected to the internal components of the all-in-one machine body 10. The housing 12 is connected to the screen assembly 11 to form a receiving cavity 14, and the internal components 15 are disposed inside the receiving cavity 14.
[0031] The protective assembly 20 includes a rubber pad 21 and a protective frame 22; the rubber pad 21 is installed on the four sides of the screen assembly 11; the protective frame 22 is fixedly installed on the opposite sides of the housing 12.
[0032] In this embodiment, the all-in-one machine body 10 consists of a screen assembly 11 and a housing 12. A display 13 for showing information is mounted on one side of the screen assembly 11, and the other side is connected to the internal components of the all-in-one machine body 10. The housing 12 is connected to the screen assembly 11, forming a receiving cavity 14, within which the internal components 15 are housed. Through this structural design, the screen assembly 11 of the all-in-one machine body 10 can provide a clear display, while the internal components 15 are effectively protected and supported.
[0033] To enhance protection, this embodiment also includes a protective component 20, which comprises rubber pads 21 and a protective frame 22. The rubber pads 21 are installed on the four sides of the screen assembly 11, providing cushioning between the screen assembly 11 and the external environment, reducing damage to the screen assembly from vibration or external forces. The protective frame 22 is fixedly installed on opposite sides of the housing 12, forming a robust external protection, further improving the safety of the screen assembly 11.
[0034] In practical use, when the all-in-one unit 10 is installed in the cabinet of an industrial equipment, the rubber pad 21 forms an interference fit with the inner wall of the cabinet opening. Through this interference fit, the rubber pad 21 can seal the gap between the cabinet and the all-in-one unit 10, preventing dust or liquid from entering the equipment. It also provides additional support to ensure that the all-in-one unit is fixed in the cabinet, avoiding loosening or damage to the equipment due to vibration or external force.
[0035] Implementation, for example Figure 2 As shown, preferably, the shell 12 has groove structures 15 on opposite sides, and the protective frame 22 is embedded in the groove structure 15.
[0036] The thickness of the protective frame 22 is greater than the depth of the groove structure 15.
[0037] The thickness of the protective frame 22 is greater than the depth of the recessed structure 15. This design ensures that the protective frame 22 is securely embedded in the recessed structure 15, while the excess portion provides additional protection against direct external impacts on the housing 12, thereby further improving the device's shock resistance and durability. Furthermore, the thickness of the protective frame 22 effectively disperses external forces, preventing damage to the housing.
[0038] Further, such as Figure 2 As shown, the housing 12 has mounting structures 16 on both sides for fixing the main body of the integrated machine, and the protective frame 22 has an opening 23, the shape of which is adapted to the shape of the mounting structure 16.
[0039] In this embodiment, the mounting structure 16 is designed to ensure that the all-in-one machine body 10 can be fixed within the cabinet or other supporting structure, preventing loosening or displacement during use. The shape and size of the mounting structure 16 can be adapted to a specific installation position. For integration with the protective frame 22, the protective frame 22 is provided with an opening 23. The shape of the opening 23 is adapted to the shape of the mounting structure 16. When the protective frame 22 is installed onto the housing 12, the opening 23 can mate with the mounting structure 16, ensuring that the installation position of the protective frame 22 and the all-in-one machine body 10 remains consistent.
[0040] Implementation, for example Figure 3As shown in the preferred embodiment, the protective frame 22 has a multi-layer structure. The outer layer 24 of the protective frame 22 is covered with soft polyurethane, and the inner layer 25 of the protective frame 22 is provided with a hollow buffer cavity 26, which is filled with foamed rubber.
[0041] In this embodiment, the protective frame 22 adopts a multi-layer structure design to improve its protective effect and impact resistance. The outer layer 24 of the protective frame 22 is covered with soft polyurethane, a material with good elasticity and wear resistance, which can effectively absorb external impact forces and provide a certain degree of protection. The soft polyurethane coating layer can also prevent hard objects from scratching the surface of the equipment and extend the service life of the equipment.
[0042] Flexible polyurethane is a material with high elasticity, abrasion resistance, and good impact resistance, typically used in applications requiring shock absorption or cushioning. It is a type of polyurethane material with relatively low hardness and high flexibility, commonly used in the production of cushioning pads, buffer layers, and seals.
[0043] Flexible polyurethane has the following advantages:
[0044] Elasticity: It has good elasticity and can effectively absorb external impacts and vibrations.
[0045] Abrasion resistance: The surface is tough and can withstand friction or contact for a long time.
[0046] Oil and corrosion resistance: It has a certain degree of resistance to oils and solvents.
[0047] Processability: It is easy to process and shape, and can be manufactured into parts of various shapes and sizes through different processing methods.
[0048] The inner layer 25 of the protective frame 22 is provided with a hollow buffer cavity 26. The design of the hollow buffer cavity 26 can further enhance the buffering performance of the protective frame 22 and reduce the impact of external impacts on the equipment. The buffer cavity 27 is filled with foamed rubber, which has good cushioning and shock absorption properties. It can effectively disperse pressure when subjected to external impact, reduce the transmission of vibration to the integrated machine body 10, and protect the internal components from damage.
[0049] Foamed rubber is a type of rubber material with a bubble structure, typically characterized by its light weight and good cushioning, shock absorption, and sound insulation properties. The structure of foamed rubber consists of tiny bubbles that effectively absorb external forces, disperse impacts, and reduce vibration transmission.
[0050] Foamed rubber has the following advantages:
[0051] Excellent cushioning performance: Due to its porous structure, foamed rubber can effectively absorb and mitigate external impact forces.
[0052] Lightweight: The bubbly structure of foamed rubber makes it less dense and lighter.
[0053] Elasticity and resilience: Foamed rubber has good elasticity and can quickly return to its original shape after being compressed, maintaining its cushioning performance for a long time.
[0054] Aging resistance: With proper treatment, foamed rubber can have good weather resistance and aging resistance.
[0055] Through this multi-layered structural design, the protective frame 22 can protect the safety of the main body 10 and internal components 15 of the integrated machine by buffering and shock absorption when subjected to external impact or vibration of the machine body itself.
[0056] Implementation, for example Figure 2 As shown, more specifically, the protective frame 22 has a number of through holes 27 evenly distributed on it, and the through holes 27 are arranged in a honeycomb pattern.
[0057] The honeycomb-shaped arrangement of the through-holes 27 has the following advantages:
[0058] Uniformly distributed buffering effect: The honeycomb arrangement of the through holes 27 allows the external impact force to be evenly distributed to all parts of the protective frame 22, improving the overall shock absorption performance of the protective frame.
[0059] Weight reduction: The honeycomb perforated design reduces material usage while maintaining the frame's strength, making the protective frame 22 lighter and easier to install and maintain.
[0060] Optimized ventilation and heat dissipation: Through holes 27 enable the protective frame 22 to improve ventilation and heat dissipation while protecting the equipment, thus avoiding the impact of overheating on the equipment.
[0061] Preferably, the pad 21 is made of silicone material and has a hardness of 60 Shore A.
[0062] In this embodiment, the rubber pad 21 is made of silicone material. Silicone is a material with excellent elasticity, high temperature resistance, and anti-aging properties. Silicone material is not only corrosion-resistant but also effectively absorbs impacts, reducing the effect of vibration on the equipment, thereby protecting the stability and service life of the equipment.
[0063] Specifically, the hardness of rubber pad 21 is 60 Shore A.
[0064] When using rubber gaskets in electronic product protective cases, industrial sealing rings, etc., a Shore hardness of 50 to 70 is required. A 60 Shore hardness rubber gasket 21 can form an interference fit with the inner wall of the cabinet opening during use, ensuring stable installation of the equipment, while effectively reducing friction between the equipment and the external environment, providing cushioning, and preventing damage to the main body 10 of the integrated unit from vibration and external forces. This hardness value of silicone material provides sufficient support without placing excessive pressure on the equipment.
[0065] Preferably, the housing 12 is made of aluminum alloy.
[0066] Understandably, the housing 12 is made of aluminum alloy, which possesses excellent mechanical strength and corrosion resistance, effectively protecting internal components from external environmental influences. Simultaneously, aluminum alloy exhibits good heat dissipation properties, contributing to improved heat dissipation of the all-in-one unit and preventing performance degradation due to overheating. The lightweight nature of aluminum alloy further reduces the overall weight of the device, facilitating installation and maintenance.
[0067] In summary, the cavity formed by the connection between the screen assembly and the housing of the embedded all-in-one machine in this invention provides protection for the internal components. This protective component effectively improves the device's impact resistance, vibration damping performance, and service life. The design of the protective component, through rubber pads and a protective frame, absorbs external impacts and vibrations, reducing damage to the device while providing sealing and support. The multi-layered structure and honeycomb-shaped perforations of the protective frame further enhance the vibration damping effect and optimize ventilation and heat dissipation performance. The selection of rubber pad hardness ensures the device remains stable and safe in various operating environments.
[0068] The working principle of the embedded all-in-one machine described in this utility model is as follows:
[0069] The all-in-one unit consists of a screen assembly and a housing. The display shows information and connects to the internal components. A protective frame protects the screen assembly with rubber pads; the pads are interference-fitted with the cabinet walls to provide cushioning and sealing. The multi-layered structure and honeycomb perforations of the protective frame enhance shock absorption and optimize heat dissipation. The housing is made of aluminum alloy, providing both heat dissipation and durability. The overall structure ensures stable installation, effectively protects internal components, reduces the impact of external shocks, and improves the equipment's shock resistance and lifespan.
[0070] Other structures of the embedded all-in-one machine described in this embodiment are available in the prior art.
[0071] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any way. Therefore, any modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the scope of the present invention.
Claims
1. An embedded all-in-one machine, characterized in that, include: The all-in-one machine body (10) includes a screen assembly (11) and a housing (12). One side of the screen assembly (11) is provided with a display (13) for displaying information, and the other side is connected to the internal components of the all-in-one machine body (10). The housing (12) is connected to the screen assembly (11) to form a receiving cavity (14), and the internal components are located inside the receiving cavity (14). The protective component (20) includes a rubber pad (21) and a protective frame (22); the rubber pad (21) is installed on the four sides of the screen assembly (11); the protective frame (22) is fixedly installed on the opposite sides of the housing (12).
2. An embedded all-in-one machine according to claim 1, characterized in that, The shell (12) has groove structures (15) on opposite sides, and the protective frame (22) is embedded in the groove structure (15); The thickness of the protective frame (22) is greater than the depth of the groove structure (15).
3. An embedded all-in-one machine according to claim 1, characterized in that, The housing (12) has mounting structures (16) on both sides for fixing the main body of the integrated machine. The protective frame (22) has an opening (23) with the shape of the opening (23) matching the shape of the mounting structure (16).
4. An embedded all-in-one machine according to claim 1, characterized in that, The protective frame (22) has a multi-layer structure. The outer layer (24) of the protective frame (22) is covered with soft polyurethane, and the inner layer (25) of the protective frame (22) is provided with a hollow buffer cavity (26), which is filled with foamed rubber.
5. An embedded all-in-one machine according to claim 1, characterized in that, The protective frame (22) has a number of through holes (27) evenly distributed on it, and the through holes (27) are arranged in a honeycomb pattern.
6. An embedded all-in-one machine according to claim 1, characterized in that, The pad (21) is made of silicone material and has a hardness of 60 Shore A.
7. An embedded all-in-one machine according to any one of claims 1-6, characterized in that, The housing (12) is made of aluminum alloy.