A compact industrial computer host structure
By combining heat dissipation components, connection components, and control components, the problem of poor heat dissipation in compact industrial computer mainframes is solved, achieving effective heat dissipation and stable installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ADVANTECH CHINA
- Filing Date
- 2026-02-27
- Publication Date
- 2026-06-02
AI Technical Summary
During use, the heat dissipation effect of the split heat sink is affected by the close contact between the split heat sink and the machine body, resulting in poor heat dissipation.
The heat dissipation components, connection components, mounting components and control components work together to assist in the heat dissipation of the compact industrial computer host, and the first bonding plate and the machine body surface are resisted by threaded connection and elastic transmission.
It improves the heat dissipation of the compact industrial computer host, ensuring effective contact between the heat dissipation components and the machine body during installation, and guaranteeing stable operation.
Smart Images

Figure CN122131889A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of compact industrial computer host technology, specifically to a compact industrial computer host structure. Background Technology
[0002] Compact industrial PCs are dedicated computers designed specifically for industrial scenarios. They are small in size, highly integrated, and resistant to harsh environments. Their core features are "small size + industrial-grade reliability". They can operate stably in limited installation space and are suitable for scenarios with strict space constraints, such as industrial automation, edge computing, and vehicle / rail transportation.
[0003] Core Definitions and Key Features 1. Compact size: It usually adopts a miniaturized design, and its size is much smaller than that of traditional desktop industrial PCs (common specifications are around 150mm×100mm×50mm). It supports space-saving installation methods such as DIN rail installation and wall mounting, and can be embedded in the equipment or in a dense control cabinet. 2. High integration: The motherboard, power supply, storage, heat dissipation and other components are highly integrated, eliminating redundant interfaces and expansion slots (or only retaining core expansion functions). Some models adopt a fanless design to further reduce the size. 3. Industrial-grade compatibility: Unlike ordinary mini PCs, it has the characteristics of vibration resistance, shock resistance, wide temperature operation (usually supporting -20℃~60℃ or even wider range), dustproof and moisture-proof. The materials are mostly high-strength aluminum alloy or thin steel plate, which can adapt to the harsh environment of industrial sites. 4. Functional Focus: With stable operation of industrial control software, data acquisition, and edge computing as the core, it is configured with targeted hardware (such as multiple serial ports, industrial Ethernet ports, and support for GPIO interfaces) to meet industrial needs such as production line control, equipment monitoring, and data transmission.
[0004] During use, compact industrial PC hosts rely on separate heat sinks for heat dissipation due to their compact structure. However, the heat sink's tight contact with the contact area during heat dissipation can be ineffective, affecting the overall heat dissipation of the compact industrial PC host. Therefore, we propose a new compact industrial PC host structure. Summary of the Invention
[0005] The purpose of this invention is to provide a compact industrial computer host structure to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a compact industrial computer host structure, including a body, and further comprising: A heat dissipation component is disposed on the outside of the body to assist in heat dissipation of the body, and the heat dissipation component is provided with a connecting component for assisting in the installation and connection of the body. The mounting component is located between the body and the heat dissipation component to assist in the installation and connection of the heat dissipation component; In addition, a control component is installed between the heat dissipation assembly and the body for controlling the heat dissipation status.
[0007] Preferably, the heat dissipation assembly includes a first bonding plate for abutting against the upper side of the body, a plurality of first heat dissipation fins are arranged and fixed on the first bonding plate, and second bonding plates for abutting against the sides of the body are fixed on both sides of the first bonding plate, a plurality of second heat dissipation fins are arranged and fixed on the second bonding plates.
[0008] Preferably, the mounting assembly includes multiple sets of threaded holes on both sides of the machine body and on two sets of second bonding plates. The threaded holes on the machine body correspond one-to-one with the threaded holes on the second bonding plates and are installed by bolt connection.
[0009] Preferably, the connecting assembly includes a connecting plate fixed to the bottom of the second bonding plate, and the connecting plate has multiple sets of perforations.
[0010] Preferably, the control component includes a U-shaped plate disposed above the first bonding plate, with telescopic components for assisting telescopic connection between the two ends of the U-shaped plate and the connecting plate, and a transmission component for assisting transmission between the U-shaped plate and the connecting plate. A strip plate is connected to the U-shaped plate by an elastic component, and multiple sets of support pins for supporting the first bonding plate are arranged and fixed on the strip plate.
[0011] Preferably, multiple sets of elastic components are evenly distributed between the four corners of the U-shaped plate and the strip plate. The telescopic component includes a first sleeve fixed to the strip plate, a first sliding rod slidably connected to the first sleeve, one end of the first sliding rod being fixed to the inner side of the U-shaped plate, and a first spring sleeved on the outer side of the first sleeve, with both ends of the first spring being connected to the strip plate and the U-shaped plate respectively.
[0012] Preferably, the telescopic assembly includes a side plate fixed to the end of the U-shaped plate, and multiple sets of second sleeves are fixed on the connecting plate. A second slide rod is slidably connected to the second sleeve, and one end of the second slide rod is fixed to the side plate.
[0013] Preferably, the transmission assembly includes a mounting shaft rotatably connected to one side of the machine body, a gear fixed on the mounting shaft, a push plate connected to the connecting plate via a push assembly, a first rack fixed on the push plate, and a second rack fixed on the inner side of the U-shaped plate. The first rack and the second rack are located on both sides of the gear and mesh with each other.
[0014] Preferably, the pushing assembly includes multiple sets of push rods slidably connected to the connecting plate, one end of each set of push rods is fixed to the push plate, and a second spring is sleeved on the outside of each push rod, with the two ends of the second spring connected to the push plate and the connecting plate respectively.
[0015] Compared with the prior art, the beneficial effects of the present invention are: During use, the compact industrial computer host of this invention utilizes the cooperation of heat dissipation components, connection components, installation components, and control components to assist in heat dissipation. Furthermore, during the installation and fixing of the compact industrial computer host, the first bonding plate is ensured to abut against the surface of the machine body, further guaranteeing the heat dissipation of the compact industrial computer host in subsequent use. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall external structure of the present invention; Figure 2 This is a schematic diagram of the bottom structure of the body of the present invention; Figure 3 This is a schematic diagram of the control component structure of the present invention; Figure 4 This is a schematic diagram of the telescopic component structure of the present invention; Figure 5 This is a schematic diagram of the elastic component structure of the present invention; Figure 6 This is a schematic diagram of the transmission component structure of the present invention; Figure 7 This is a schematic diagram of the pushing component structure of the present invention.
[0017] In the diagram: 1-body; 201-first bonding plate; 202-first heat sink; 203-second bonding plate; 204-second heat sink; 301-connecting plate; 302-through hole; 401-threaded hole; 402-bolt; 501-U-shaped plate; 502-strip plate; 503-support pin; 601-first sleeve; 602-first slide rod; 603-first spring; 701-side plate; 702-second sleeve; 703-second slide rod; 801-mounting shaft; 802-gear; 803-push plate; 804-first rack; 805-second rack; 901-push rod; 902-second spring. Detailed Implementation
[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0019] Example 1: Please see Figures 1-7 The diagram shows a compact industrial computer host structure, including a body 1, and also including: A heat dissipation component is provided on the outside of the body 1 to assist in heat dissipation of the body 1. The heat dissipation component is provided with a connecting component to assist in the installation and connection of the body 1. The mounting component is located between the main body 1 and the heat dissipation component to assist in the installation and connection of the heat dissipation component. And a control component disposed between the heat dissipation assembly and the body 1 for controlling the heat dissipation status; It should be noted that during the use of the compact industrial computer host, the heat dissipation components, connection components, installation components and control components work together to assist in the heat dissipation of the compact industrial computer host. In addition, during the installation and fixing of the compact industrial computer host, the first bonding plate 201 is ensured to abut against the surface of the body 1, which further ensures the heat dissipation of the compact industrial computer host in the future.
[0020] Preferably, the heat dissipation assembly includes a first bonding plate 201 for abutting against the upper side of the body 1, a plurality of first heat sinks 202 are arranged and fixed on the first bonding plate 201, and a second bonding plate 203 for abutting against the sides of the body 1 is fixed on both sides of the first bonding plate 201, a plurality of second heat sinks 204 are arranged and fixed on the second bonding plate 203; the mounting assembly includes a plurality of threaded holes 401 opened on both sides of the body 1 and on the two sets of second bonding plates 203, the threaded holes 401 on the body 1 and the threaded holes 401 on the second bonding plates 203 are arranged one-to-one and connected and installed by bolts 402; It should be noted that: when the first bonding plate 201 is bonded to the body 1, during the bonding process, the two sets of second bonding plates 203 abut against the two sides of the body 1 respectively. After abutting, the second bonding plates 203 and the corresponding threaded holes 401 on the body 1 are threaded together by bolts 402 to complete the installation connection of the first bonding plate 201 and the second bonding plate 203. The installation connection of the first bonding plate 201 and the second bonding plate 203, together with the multiple sets of first heat sinks 202 and second heat sinks 204 provided on the first bonding plate 201 and the second bonding plate 203, assists in the heat dissipation of the compact industrial control computer host during use.
[0021] Preferably, the connecting component includes a connecting plate 301 fixed to the bottom of the second bonding plate 203, and the connecting plate 301 has a plurality of perforations 302. It should be noted here that after the first bonding plate 201 and the second bonding plate 203 on the compact industrial computer host are installed and connected, the compact industrial computer host is installed in the designated position according to the usage requirements. During the installation process, the machine body 1 is pushed toward the designated position and the connecting plate 301 is brought into contact with the surface of the designated position. After contact, the front end of the external fixing screw is passed through the through hole 302 and threaded to the installation position. During the connection process, the other end of the screw is pressed against the connecting plate 301 to install and fix the machine body 1 after it has been pushed and placed. By installing and fixing the machine body 1, it is easier to assist in the stable use of the compact industrial computer host.
[0022] Preferably, the control component includes a U-shaped plate 501 disposed above the first bonding plate 201, telescopic components for auxiliary telescopic connection are disposed between the two ends of the U-shaped plate 501 and the connecting plate 301, a transmission component for auxiliary transmission is disposed between the U-shaped plate 501 and the connecting plate 301, and a strip plate 502 is connected to the U-shaped plate 501 by an elastic component, and a plurality of support pins 503 for supporting the first bonding plate 201 are arranged and fixed on the strip plate 502; It should be noted here that the bonding effect between the first bonding plate 201 and the body 1 is controlled by the control component.
[0023] Preferably, multiple sets of elastic components are evenly distributed between the four corners of the U-shaped plate 501 and the strip plate 502. The telescopic component includes a first sleeve 601 fixed to the strip plate 502, a first slide rod 602 slidably connected to the first sleeve 601, one end of the first slide rod 602 being fixed to the inner side of the U-shaped plate 501, and a first spring 603 sleeved on the outer side of the first sleeve 601. The two ends of the first spring 603 are respectively connected to the strip plate 502 and the U-shaped plate 501. It should be noted here that: through transmission, the U-shaped plate 501, after being subjected to force, moves towards the body 1. During the movement of the U-shaped plate 501, the first spring 603 on the elastic assembly drives the strip plate 502 to move until one end of each set of support pins 503 on the strip plate 502 abuts against the first bonding plate 201 at the upper end of the body 1. Through the limiting effect of the abutment between the support pins 503 and the first bonding plate 201, and the continued movement of the U-shaped plate 501, the U-shaped plate 501 retracts towards the first bonding plate 201. During the contraction motion, the first slide rods 602 are pushed to slide on the first sleeves 601. During the sliding process, the first springs 603 are deformed and generate elastic force. Through the elastic force of the first springs 603, the support pins 503 on the strip plate 502 are pushed to abut against the upper end of the first bonding plate 201 with greater force. Through the abutment and compression, the abutment effect between the first bonding plate 201 and the surface of the machine body 1 is ensured, further ensuring the heat dissipation of the subsequent compact industrial control computer host.
[0024] Preferably, the telescopic assembly includes a side plate 701 fixed to the end of the U-shaped plate 501, a plurality of second sleeves 702 fixed on the connecting plate 301, a second slide rod 703 slidably connected on the second sleeve 702, and one end of the second slide rod 703 fixed to the side plate 701. It should be noted here that the multiple sets of second sleeves 702 and second slide rods 703 between the side plate 701 and the connecting plate 301 facilitate the movement guidance of the U-shaped plate 501 after it is subjected to force.
[0025] Preferably, the transmission assembly includes a mounting shaft 801 rotatably connected to one side of the machine body 1, a gear 802 fixed on the mounting shaft 801, a push plate 803 connected to the connecting plate 301 via a push assembly, a first rack 804 fixed on the push plate 803, and a second rack 805 fixed on the inner side of the U-shaped plate 501. The first rack 804 and the second rack 805 are located on both sides of the gear 802 and mesh with each other. It should be noted here that: through transmission, the push plate 803 is driven to move. During the movement of the push plate 803, the first rack 804 is driven to rotate. During the movement of the first rack 804, through the mutual meshing transmission between the first rack 804 and the gear 802, the gear 802 and the mounting shaft 801 are driven to rotate. During the rotation of the gear 802, through the mutual meshing transmission between the gear 802 and the second rack 805, the second rack 805 and the U-shaped plate 501 are subjected to force and move. During the movement of the U-shaped plate 501, through the sliding guidance of multiple sets of second sleeves 702 and multiple sets of second slide rods 703 between the side plate 701 and the connecting plate 301, the U-shaped plate 501 under force moves towards the machine body 1.
[0026] Preferably, the pushing assembly includes multiple sets of push rods 901 slidably connected to the connecting plate 301. One end of each set of push rods 901 is fixed to the push plate 803. A second spring 902 is sleeved on the outside of the push rod 901. The two ends of the second spring 902 are respectively connected to the push plate 803 and the connecting plate 301. It should be noted here that during the installation and connection of the compact industrial computer host at the designated location, the push of the machine body 1 causes one end of each set of push rods 901 to abut against the surface of the installation location. During the abutment process, the push rods 901 are pushed to slide on the connecting plate 301. During the sliding of the push rods 901, the push plate 803 is driven to move. During the movement of the second spring 902, the second spring 902 is deformed by force to generate elastic force. Through the elastic force of the second spring 902, it is convenient to assist the subsequent reset of the push rod 901.
[0027] This solution describes a compact industrial computer host structure, comprising the following steps: During use, the first bonding plate 201 is bonded to the body 1. During bonding, two sets of second bonding plates 203 abut against the two sides of the body 1 respectively. After abutting, the second bonding plates 203 and the corresponding threaded holes 401 on the body 1 are threaded together by bolts 402 to complete the installation connection of the first bonding plate 201 and the second bonding plate 203. The installation connection of the first bonding plate 201 and the second bonding plate 203, together with the multiple sets of first heat sinks 202 and second heat sinks 204 provided on the first bonding plate 201 and the second bonding plate 203, assists in the heat dissipation of the compact industrial computer host during use. After the first bonding plate 201 and the second bonding plate 203 on the compact industrial computer host are installed and connected, the compact industrial computer host is installed in the designated position according to the usage requirements. During the installation process, the machine body 1 is pushed toward the designated position and the connecting plate 301 is pressed against the surface of the designated position. After the pressing is made, the front end of the external fixing screw passes through the through hole 302 and is threaded to the installation position. During the connection process, the other end of the screw is pressed against the connecting plate 301 to install and fix the machine body 1 after it is pushed and placed. By installing and fixing the machine body 1, it is easier to assist in the stable use of the compact industrial computer host. During the installation and connection of the compact industrial computer host at the designated location, the push of the machine body 1 causes one end of each push rod 901 to abut against the surface of the installation position. During this abutment, the push rod 901 slides on the connecting plate 301. As the push rod 901 slides, it drives the push plate 803 to move. During the movement of the push plate 803, it drives the first rack 804 to rotate. During the movement of the first rack 804, through the meshing transmission between the first rack 804 and the gear 802, it drives the gear 802 and the mounting shaft 801 to rotate. During the rotation of the gear 802, through the meshing transmission between the gear 802 and the second rack 805, the second rack 805 and the U-shaped plate 501 are subjected to force and move. During the movement of the U-shaped plate 501, through the sliding guidance of multiple sets of second sleeves 702 and multiple sets of second sliding rods 703 between the side plate 701 and the connecting plate 301, the force-bearing U-shaped plate 501 is directed towards... As the body 1 moves, during the movement of the U-shaped plate 501, the first spring 603 on the elastic assembly drives the strip plate 502 to move until one end of each set of support pins 503 on the strip plate 502 abuts against the first bonding plate 201 at the upper end of the body 1. Through the limiting action of the support pins 503 against the first bonding plate 201 and the continued movement of the U-shaped plate 501, the U-shaped plate 501 retracts towards the first bonding plate 201. During this retraction movement... The first sliding rods 602 of each group are pushed to slide on the first sleeves 601 of each group. During the sliding process, the first spring 603 is deformed by the force to generate elastic force. Through the elastic force of the first spring 603, the support pins 503 on the strip plate 502 are pushed to abut against the upper end of the first bonding plate 201 with greater force. Through the abutment and compression, the abutment effect between the first bonding plate 201 and the surface of the machine body 1 is ensured, which further ensures the heat dissipation of the subsequent compact industrial control computer host.
[0028] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0029] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A compact industrial computer host structure, comprising: Body (1); Its characteristic is that it further includes: A heat dissipation component is provided on the outside of the body (1) to assist in heat dissipation of the body (1). The heat dissipation component is provided with a connecting component for assisting in the installation and connection of the body (1). The mounting component is located between the body (1) and the heat dissipation component to assist in the installation and connection of the heat dissipation component; In addition, a control component is provided between the heat dissipation component and the body (1) for controlling the heat dissipation status.
2. The compact industrial computer host structure according to claim 1, characterized in that: The heat dissipation assembly includes a first bonding plate (201) for abutting against the upper side of the body (1), a plurality of first heat sinks (202) are arranged and fixed on the first bonding plate (201), and a second bonding plate (203) for abutting against the sides of the body (1) is fixed on both sides of the first bonding plate (201), and a plurality of second heat sinks (204) are arranged and fixed on the second bonding plate (203).
3. The compact industrial computer host structure according to claim 2, characterized in that: The installation assembly includes multiple sets of threaded holes (401) on both sides of the body (1) and on two sets of second bonding plates (203). The threaded holes (401) on the body (1) and the threaded holes (401) on the second bonding plates (203) are set in a one-to-one correspondence and are connected and installed by bolts (402).
4. The compact industrial computer host structure according to claim 2, characterized in that: The connecting assembly includes a connecting plate (301) fixed to the bottom of the second bonding plate (203), and the connecting plate (301) has multiple sets of perforations (302).
5. The compact industrial computer host structure according to claim 4, characterized in that: The control component includes a U-shaped plate (501) disposed above the first bonding plate (201). The two ends of the U-shaped plate (501) are provided with telescopic components for auxiliary telescopic connection between the connecting plate (301). A transmission component for auxiliary transmission is provided between the U-shaped plate (501) and the connecting plate (301). A strip plate (502) is connected to the U-shaped plate (501) by an elastic component. A plurality of support pins (503) for supporting the first bonding plate (201) are arranged and fixed on the strip plate (502).
6. The compact industrial computer host structure according to claim 5, characterized in that: Multiple sets of elastic components are evenly distributed between the four corners of the U-shaped plate (501) and the strip plate (502). The telescopic component includes a first sleeve (601) fixed on the strip plate (502). A first slide rod (602) is slidably connected to the first sleeve (601). One end of the first slide rod (602) is fixed to the inner side of the U-shaped plate (501). A first spring (603) is sleeved on the outer side of the first sleeve (601). The two ends of the first spring (603) are respectively connected to the strip plate (502) and the U-shaped plate (501).
7. The compact industrial computer host structure according to claim 5, characterized in that: The telescopic assembly includes a side plate (701) fixed to the end of the U-shaped plate (501), and multiple sets of second sleeves (702) are fixed on the connecting plate (301). A second slide rod (703) is slidably connected to the second sleeve (702), and one end of the second slide rod (703) is fixed to the side plate (701).
8. The compact industrial computer host structure according to claim 5, characterized in that: The transmission assembly includes a mounting shaft (801) rotatably connected to one side of the body (1), a gear (802) fixed on the mounting shaft (801), a push plate (803) connected to the connecting plate (301) via a push assembly, a first rack (804) fixed on the push plate (803), and a second rack (805) fixed on the inner side of the U-shaped plate (501). The first rack (804) and the second rack (805) are located on both sides of the gear (802) and mesh with each other.
9. The compact industrial computer host structure according to claim 8, characterized in that: The pushing assembly includes multiple sets of push rods (901) slidably connected to the connecting plate (301). One end of each set of push rods (901) is fixed to the push plate (803). A second spring (902) is sleeved on the outside of each push rod (901). The two ends of the second spring (902) are respectively connected to the push plate (803) and the connecting plate (301).