Connector housing and connector based on heat dissipation integrated component
Through the design of the air guide mechanism and the partition adjustment mechanism, the problem that the existing connector housing heat dissipation mechanism cannot be targeted for heat dissipation is solved, the designated guidance and maximum utilization of the heat dissipation air are realized, and the heat dissipation effect and practicality of the connector housing are improved.
Patent Information
- Application Number
- CN202510693612.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2045-05-27
AI Technical Summary
The heat dissipation mechanism of the existing connector housing cannot perform targeted heat dissipation for the plug areas at different connection positions, resulting in idle cooling fins, reducing the practicality of the heat dissipation function.
The connector housing design based on the heat dissipation integration assembly is adopted, including the air guide mechanism, the partition adjustment mechanism and the fin mechanism. By adjusting the air outlet area and the inclination angle, the designated guidance and maximum utilization of the heat dissipation air are achieved.
It improves the heat dissipation effect and practicality of the connector housing, ensures the maximum utilization of the wind power of the cooling fan, and enhances the convenience and thermal conductivity of the connector housing.
Smart Images

Figure CN120222073B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a connector, and more particularly to a connector housing based on a heat dissipation integrated component and a connector thereof. Background Art
[0002] A connector is a device used to connect two or more components, systems, subsystems, etc., and plays a vital role in many fields. Connectors are devices that enable electrical connections and allow current to be transmitted between different components or systems, and are widely used in various electronic and electrical devices. High-power connectors for electrical conduction typically require heat dissipation mechanisms to prevent overheating of the conductive area of the connector, which would reduce its service life.
[0003] However, the current existing technology still has the following problems: although the connector housing is equipped with a heat dissipation mechanism, the current heat dissipation mechanism has a single function. For connectors with multiple power plugs, the heat dissipation mechanism with a single heat dissipation effect cannot provide targeted heat dissipation to the plug areas at different connection positions, resulting in the heat dissipation fins distributed in other positions being easily idle, resulting in the inability to fully utilize the heat dissipation fins, and reducing the practicality of the heat dissipation function of the connector housing. Summary of the Invention
[0004] An object of the present invention is to provide a new technical solution for a connector housing and a connector thereof based on a heat dissipation integrated assembly.
[0005] According to a first aspect of the present invention, a connector housing based on a heat dissipation integrated assembly is provided, comprising a connector upper shell, a connector lower shell, a heat dissipation fan, and a plurality of heat conducting plates, wherein the heat dissipation fan is arranged on the connector upper shell, and the connector upper shell is arranged on the upper surface of the connector lower shell, and further comprising:
[0006] An air guide mechanism is provided at the bottom of the cooling fan, so that the cooling fan's blowing surface forms a plurality of air outlet areas through the air guide mechanism;
[0007] A partition adjustment mechanism, wherein the partition adjustment mechanism is provided in multiple groups, and the fin mechanism is transmission-connected to the partition adjustment mechanism;
[0008] The fin mechanism is provided with multiple groups, and the fin mechanism includes multiple groups of lower fins and upper fins. The lower fins are welded to the heat conduction plate, and the upper fins are movably mounted on the upper surface of the lower fins through a partition adjustment mechanism.
[0009] Optionally, the air-guiding mechanism includes a conical shell, a rotating ring is rotatably connected between the conical shell and the cooling fan, and a diverter shell is provided at the bottom center of the conical shell, a through hole is opened in the middle of the diverter shell, and a hollow connecting shell is fixedly installed in the middle of the diverter shell and the bottom center of the cooling fan, and multiple groups of air outlet ducts are connected around the outer side of the diverter shell, so that the air outlet area is formed by the air outlet ducts.
[0010] Optionally, the air guide mechanism also includes multiple groups of sealing plates and sealing components, and the multiple groups of sealing plates are slidably installed inside the diversion shell, and the multiple groups of sealing plates are fixedly installed with connecting rods on the same side. The connecting rods are bent, and the bending part of the connecting rods is slidably installed inside the diversion shell, and the multiple groups of sealing plates are detachably connected to the conical shell through the sealing components.
[0011] Optionally, the blocking component includes an adjustment seat, and a plurality of through holes are provided around the middle of the upper shell of the connector. The adjustment seat is slidably installed inside the through hole. A threaded knob is threadedly connected to the adjustment seat, and a clamping rod is rotatably connected to the bottom of the threaded knob. A plurality of sliding seats are slidably installed around the outer side of the rotating ring, and a plurality of docking seats are fixedly installed around the outer side of the rotating ring. The sliding seat is slidably sleeved on the outer side of the clamping rod, and a clamping groove that engages with the clamping rod is provided on the upper surface of the docking seat, and the connecting rod is fixedly connected to the sliding seat.
[0012] Optionally, a heat conducting plate is rotatably connected to the bottom of the upper fin, a sliding groove is provided in the middle of the upper surface of the lower fin, and multiple groups of ventilation holes communicating with the sliding groove are provided on the outer side of the lower fin, and a sliding heat conducting mechanism is provided inside the ventilation hole, so that the heat conducting plate is slidably installed inside the sliding groove through the sliding heat conducting mechanism.
[0013] Optionally, the sliding heat-conducting mechanism includes a ball copper sleeve and a first ball, the ball copper sleeve is fixedly connected to the heat-conducting plate, the ball copper sleeve is arranged on the outside of the first ball, and contact holes are opened on both sides of the ball copper sleeve, and heat-conducting grooves are opened on both sides of the ventilation hole, and the first ball contacts the inside of the heat-conducting groove.
[0014] Optionally, the partition adjustment mechanism includes a bearing seat and a rotation adjustment component, the bearing seat is fixedly connected to the lower shell of the connector, and the rotation adjustment component is transmission-connected to the bearing seat, and the rotation adjustment component is transmission-connected to the upper fin, so that the upper fin is set by the lifting and rotating motion of the rotation adjustment component.
[0015] Optionally, the rotation adjustment component includes two groups of tooth plates and a rotating rod, and multiple groups of avoidance holes are opened on one side of the upper shell of the connector. The rotating rod passes through the avoidance holes and is fixedly connected to the upper fin. A gear is fixedly sleeved on one end of the outer side of the rotating rod, and the tooth plate is meshed with the gear. Both groups of tooth plates are slidably installed inside the bearing seat.
[0016] Optionally, a screw mechanism is provided on the upper surface of the supporting seat, and the two groups of tooth plates are threadedly connected to the screw mechanism. A paddle is slidably installed on one side of the supporting seat, and blocks are slidably installed on both ends of the paddle. Both ends of one side of the supporting seat are fixedly installed with a base engaged with the block, and the rotating rod is rotatably connected to the paddle.
[0017] A connector, using the above connector housing, comprising:
[0018] The connector body is composed of a connector upper shell, a connector lower shell and multiple groups of conductive joints. The multiple groups of conductive joints are all arranged in the connector lower shell, and the heat conducting plate is arranged between the connector lower shell and the conductive joints.
[0019] According to one embodiment of the present disclosure, the specialized fin structure formed by the upper and lower fins can change its own inclination state according to the conductive joint at any position on the connector, thereby effectively directing the heat dissipation air generated by the cooling fan, maximizing the use of the heat dissipation air for heat dissipation. Therefore, the practicality and heat dissipation effect of the connector housing based on the heat dissipation integrated component can be further improved.
[0020] At the same time, through the design of multi-group zone adjustment mechanism, the inclination state of the fins in different areas can be quickly changed, allowing staff to quickly adjust the fin state, thereby further improving the convenience of the heat dissipation function of the connector housing;
[0021] Secondly, through the design of the air guide mechanism, the upper fins and the lower fins can be used to blow most of the heat dissipation air to the heat dissipation position where heat dissipation is required. Therefore, the fins and the air guide mechanism that can be changed in shape can be used in conjunction with each other to further improve the practicality and heat dissipation performance of the connector housing with heat dissipation function;
[0022] At the same time, through the specific design of the sliding heat-conducting mechanism, the second ball and the heat-conducting slide plate, the upper fin and the lower fin can improve their own thermal conductivity while having the function of sliding relative to each other, thereby further improving the heat dissipation effect of the connector housing.
[0023] Further features and advantages of the present invention will become apparent from the following detailed description of exemplary embodiments of the present invention with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
[0025] Figure 1 Schematic diagram of the overall structure of a connector housing and its connector based on a heat dissipation integrated component in one embodiment;
[0026] Figure 2 Schematic diagram of a connector housing based on a heat dissipation integrated component and a conductive joint structure of its connector in one embodiment;
[0027] Figure 3 Schematic diagram of a connector housing based on a heat dissipation integrated component and a connector upper shell structure of a connector thereof in one embodiment;
[0028] Figure 4 Schematic diagram of a heat dissipation fan structure of a connector housing and its connector based on a heat dissipation integrated component in one embodiment;
[0029] Figure 5 A connector housing and a connector thereof based on a heat dissipation integrated component in one embodiment Figure 4 A schematic diagram of the enlarged structure at point A;
[0030] Figure 6 Schematic diagram of a connector housing based on a heat dissipation integrated component and a hollow connection shell structure of its connector in one embodiment;
[0031] Figure 7 Schematic diagram of a connector housing based on a heat dissipation integrated component and a lower fin structure of the connector thereof in one embodiment;
[0032] Figure 8 Schematic diagram of a connector housing based on a heat dissipation integrated component and an upper fin structure of the connector in one embodiment;
[0033] Figure 9 Schematic diagram of a connector housing based on a heat dissipation integrated component and a ventilation hole structure of its connector in one embodiment;
[0034] Figure 10 Schematic diagram of the structure of a connector housing based on a heat dissipation integrated component and a sliding heat conduction mechanism of its connector in one embodiment;
[0035] Figure 11 Schematic diagram of a connector housing based on a heat dissipation integrated component and a heat conducting plate structure of the connector in one embodiment;
[0036] Figure 12 Schematic diagram of a connector housing based on a heat dissipation integrated component and a paddle structure of the connector thereof in one embodiment;
[0037] Figure 13 Schematic diagram of the structure of a connector housing based on a heat dissipation integrated assembly and a rotation adjustment component of its connector in one embodiment;
[0038] Figure 14Schematic diagram of a top view of a connector housing based on a heat dissipation integrated component and a diverter housing of the connector thereof in one embodiment;
[0039] Figure 15 A connector housing and a connector thereof based on a heat dissipation integrated component in one embodiment Figure 9 Schematic diagram of the enlarged structure at point B.
[0040] The following are marked in the figure: 1. Connector upper shell; 2. Conductive joint; 3. Cooling fan; 4. Connector lower shell; 5. Partition adjustment mechanism; 6. Ventilation hole; 7. Heat conduction slide; 8. Heat conduction groove; 9. Fin mechanism; 10. Air guide mechanism; 11. Heat conduction plate; 12. Hollow connecting shell; 101. Blocking component; 1011. Threaded knob; 1012. Clamping rod; 1013. Adjustment seat; 1014. Docking seat; 1015. Sliding seat; 102. Conical shell; 103. Connecting rod; 104. Diverter shell; 105. Air outlet pipe; 1 06. Sealing plate; 107. Rotating ring; 501. Support seat; 502. Pick; 503. Screw mechanism; 504. Clamping seat; 505. Rotating adjustment component; 5051. Rotating rod; 5052. Tooth plate; 5053. Gear; 506. Block; 901. Lower fin; 902. Upper fin; 9021. Inverted trapezoidal fin; 9022. Rotating fin; 903. Sliding heat conduction mechanism; 9031. Ball copper sleeve; 9032. First ball; 904. Heat conducting plate; 905. Second ball; 906. Heat conducting slide. DETAILED DESCRIPTION
[0041] Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that unless otherwise specifically stated, the relative arrangement of components and steps, numerical expressions and numerical values set forth in these embodiments do not limit the scope of the present invention.
[0042] The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the invention, its application, or uses.
[0043] Technologies, methods, and equipment known to ordinary technicians in the relevant art may not be discussed in detail, but where appropriate, the technologies, methods, and equipment should be considered part of the specification.
[0044] In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not limiting. Therefore, other examples of the exemplary embodiments may have different values.
[0045] like Figure 1-15As shown, a connector housing based on a heat dissipation integrated component includes a connector upper shell 1, a connector lower shell 4, a heat dissipation fan 3 and multiple sets of heat conducting plates 11, the heat dissipation fan 3 is arranged on the connector upper shell 1, and the connector upper shell 1 is arranged on the upper surface of the connector lower shell 4, and further includes:
[0046] The air guide mechanism 10 is provided at the bottom of the cooling fan 3, so that the blowing surface of the cooling fan 3 forms multiple groups of air outlet areas through the air guide mechanism 10;
[0047] like Figures 1 to 13 As shown, since the blowing surface of the cooling fan 3 is designed to form multiple groups of air outlet areas through the air guide mechanism 10, the multiple groups of air outlet areas correspond to multiple groups of heat conducting plates 11. Therefore, when only one group of heat conducting plates 11 is working, the blocking of the air outlet area can be adjusted to achieve that the wind force generated by the cooling fan 3 only acts on the heat conducting plates 11 in the working position, so that the cooling air of the cooling fan 3 can be reasonably utilized, thereby effectively improving the practicality of the heat dissipation function of the connecting shell.
[0048] The partition adjustment mechanism 5 is provided with multiple groups, and the fin mechanism 9 is transmission-connected to the partition adjustment mechanism 5;
[0049] The fin mechanism 9 is provided with multiple groups. The fin mechanism 9 includes multiple groups of lower fins 901 and upper fins 902. The lower fins 901 are welded to the heat conducting plate 11. The upper fins 902 are movably mounted on the upper surface of the lower fins 901 through the partition adjustment mechanism 5.
[0050] like Figures 1 to 13 As shown, due to the design that the upper fin 902 is movably mounted on the upper surface of the lower fin 901, the upper fin 902 can not only be lifted and slid, but also rotated. If the heat conducting plate 11 located on the right is working, the partition adjustment mechanism 5 can be used to control the upper fin 902 to rise and rotate counterclockwise, so that the upper fin 902 and the lower fin 901 have an overall tilt angle, so that the wind force generated by the cooling fan 3 can be directed to the right, so that the flow direction of the cooling wind can be further adjusted, so that the cooling effect of the designated area can be further improved, thereby further improving the practicality of the connecting shell with cooling function.
[0051] Furthermore, the air guide mechanism 10 includes a conical shell 102, a rotating ring 107 is rotatably connected between the conical shell 102 and the cooling fan 3, and a diverter shell 104 is provided at the bottom center of the conical shell 102. A through hole is opened in the middle of the diverter shell 104, and a hollow connecting shell 12 is fixedly installed in the middle of the diverter shell 104 and the bottom center of the cooling fan 3. Multiple groups of air outlet pipes 105 are connected to the outer periphery of the diverter shell 104, so that the air outlet area is formed by the air outlet pipes 105.
[0052] like Figures 1 to 13As shown, through the design of the hollow connecting shell 12, when the cooling fan 3 generates wind, the hollow connecting shell 12 can divert a part of the wind, so that the diverted part of the wind can flow to the heat conducting plate 11 at the middle position, so that the wind can not only act on the heat conducting plate 11 at the targeted position to dissipate heat, but also can dissipate part of the wind from the heat conducting plates 11 at other positions before acting on the heat conducting plates 11 when working, thereby making full use of the heat dissipation effect of the cooling fan 3.
[0053] Specifically, such as Figure 6 As shown, an air outlet is opened at the bottom of the diversion shell 104, and the air outlet is designed to be conical, so that the diffusion area of the heat dissipation air can be expanded.
[0054] It should be noted that if one of the conductive connectors 2 is connected for conductive work, the heat at the position of the normally working conductive connector 2 on the connector housing will be higher, and the temperature will be higher the closer to the conductive connector 2. Therefore, the design of the hollow connecting shell 12 can fully utilize the wind force of the cooling fan 3 to dissipate the temperature of the entire connector housing, thereby further improving the practicality and heat dissipation effect of the connector housing with heat dissipation function.
[0055] Furthermore, the air guide mechanism 10 also includes multiple groups of blocking plates 106 and blocking components 101. The multiple groups of blocking plates 106 are all slidably installed inside the diverter shell 104, and the multiple groups of blocking plates 106 are fixedly installed with connecting rods 103 on the same side. The connecting rods 103 are bent, and the bending part of the connecting rods 103 is slidably installed inside the diverter shell 104. The multiple groups of blocking plates 106 are detachably connected to the conical shell 102 through the blocking components 101; the blocking component 101 includes an adjustment seat 1013, and a plurality of through holes are opened around the middle of the connector upper shell 1 for adjusting The seat 1013 is slidably installed inside the through hole, and a threaded knob 1011 is threadedly connected to the adjusting seat 1013. The bottom of the threaded knob 1011 is rotatably connected to the clamping rod 1012. Multiple sets of sliding seats 1015 are slidably installed around the outer side of the rotating ring 107, and multiple sets of docking seats 1014 are fixedly installed around the outer side of the rotating ring 107. The sliding seat 1015 is slidably sleeved on the outer side of the clamping rod 1012, and the upper surface of the docking seat 1014 is provided with a clamping groove that engages with the clamping rod 1012. The connecting rod 103 is fixedly connected to the sliding seat 1015;
[0056] like Figures 1 to 13As shown, through the design of the blocking component 101, multiple groups of blocking plates 106 can be rotated by the threaded knob 1011, and the clamping rod 1012 can be controlled to engage with the docking seat 1014 to fix the blocking plate 106 and the rotating ring 107, so that the corresponding blocking plate 106 can be fixed to the rotating ring 107 according to the corresponding air outlet pipe 105, and one of the groups of threaded knobs 1011 can be manually pushed at the same time to make multiple groups of blocking plates 106 rotate at the same time and block the connection between the air outlet pipe 105 and the diversion shell 104, so that the wind generated by the cooling fan 3 can only be discharged from the air outlet pipe 105 that is not blocked.
[0057] It should be noted that if Figure 14 As shown, the air outlet pipes 105 located above and below the middle portion correspond to the heat conducting plate 11 in the middle portion, while the two sets of air outlet pipes 105 on the left and right portions correspond to the heat conducting plates 11 used on the left and right portions, so that the heat conducting plates 11 can be used according to the heat conduction characteristics of the heat conduction plate 11. Figure 14 For reference, the blocking plates 106 at different positions are selected to be fixedly connected to the rotating ring 107 .
[0058] It is worth noting that the adjustment seat 1013 mentioned above can slide inside the observation hole in a damping sliding manner, thereby preventing the sealing plate 106 that is not connected to the rotating ring 107 from being driven to rotate by the rotating ring 107.
[0059] Furthermore, a heat conducting sheet 904 is rotatably connected to the bottom of the upper fin 902, a sliding groove is provided in the middle of the upper surface of the lower fin 901, and a plurality of ventilation holes 6 are provided on the outer side of the lower fin 901, which are connected to the sliding groove. A sliding heat conducting mechanism 903 is provided inside the ventilation hole 6, so that the heat conducting sheet 904 is slidably installed inside the sliding groove through the sliding heat conducting mechanism 903;
[0060] Specifically, such as Figures 1 to 14 As shown, the upper surface of the heat conducting plate 904 is provided with multiple sets of ball grooves, and the inside of the ball grooves is movably connected with second balls 905, and the bottom of the upper fin 902 is provided with multiple sets of arc grooves, the second balls 905 are located inside the arc grooves, and the heat conducting plate 904 is rotatably connected to the upper fin 902 through two sets of second balls 905.
[0061] Through the design of the second ball bearing 905, when the heat conducting plate 904 and the upper fin 902 rotate relative to each other, the ball bearing rolls between them, providing support, connection, and reducing friction. The contact between the second ball bearing 905 and the upper fin 902 and the heat conducting plate 904 is point contact, but due to the high thermal conductivity of the ball bearing, heat can be quickly transferred through the ball bearing. At the same time, by providing an arc-shaped groove, the contact area between the second ball bearing 905 and the upper fin 902 and the heat conducting plate 904 can be increased, thereby avoiding the loss of heat conduction effect when the upper fin 902 and the lower fin 901 slide relative to each other. The second ball bearing 905 structure can also increase the contact area, making heat transfer more uniform, thereby enhancing thermal conductivity.
[0062] It should be noted that, by designing the ventilation holes 6, when the wind generated by the cooling fan 3 passes through the upper surface of the connector lower shell 4, the cooling wind can continuously approach the heat conducting plate 11 at the position of the working conductive joint 2 through the ventilation holes 6, so that the cooling wind can be further utilized to dissipate the heat of the heat conducting plate 11.
[0063] Furthermore, the sliding heat-conducting mechanism 903 includes a copper ball sleeve 9031 and a first ball 9032. The copper ball sleeve 9031 is fixedly connected to the heat-conducting plate 904. The copper ball sleeve 9031 is sleeved on the outside of the first ball 9032. Contact holes are formed on both sides of the copper ball sleeve 9031. Heat-conducting grooves 8 are formed on both sides of the ventilation hole 6. The first ball 9032 contacts the inside of the heat-conducting grooves 8.
[0064] For example, the first ball 9032 and the second ball 905 can be made of high thermal conductivity materials, such as ceramic balls (such as alumina or silicon amide ceramics), so that the first ball 9032 and the second ball 905 have high performance thermal conductivity.
[0065] like Figures 1 to 13 As shown, through the design of this structure of the heat-conducting groove 8 and through the first ball 9032, the first ball 9032 can increase the stability of the heat-conducting plate 904 when it is lifted and slid. At the same time, the first ball 9032 contacts the inner wall of the heat-conducting groove 8, and the lower fin 901 can transfer heat to the heat-conducting plate 904 through the first ball 9032. Therefore, it can avoid that the heat-conducting plate 904 has the function of sliding on the lower fin 901 and loses its thermal conductivity.
[0066] Specifically, such as Figure 9 and Figure 15 As shown, multiple sets of heat-conducting slides 906 are fixedly installed at the lower ends of both sides of the heat-conducting sheet 904, and heat-conducting slides 7 for sliding the heat-conducting slides 906 are opened on both sides of the sliding groove. An anti-overflow hole is opened on one side of the heat-conducting slide 906, and both ends of the anti-overflow hole are inclined.
[0067] Furthermore, the interior of the heat-conducting chute 7 can be coated with thermal grease containing silver or copper. These lubricants can not only reduce the friction coefficient, but also fill the tiny gaps between the contact surfaces, further reducing the contact thermal resistance and enhancing the thermal conductivity between the heat-conducting sheet 904 and the lower fin 901.
[0068] Secondly, through the design of the anti-overflow hole, when the thermal conductive slide 906 slides up and down inside the thermal conductive slide 7, in order to prevent the applied thermal grease from overflowing from the thermal conductive slide 7 due to the extrusion of the thermal conductive slide 906, the thermal conductive slide 906 slides upward, and the thermal grease above the thermal conductive slide 906 can pass through the anti-overflow hole and flow to the bottom of the thermal conductive slide 906, thereby preventing the thermal grease from overflowing.
[0069] Through the design of the above-mentioned heat-conducting slide plate 906, heat-conducting groove 7 and anti-overflow hole, not only the upper fin 902 has the function of lifting and sliding, but also the thermal conductivity performance can be effectively improved, so as to further improve the practicality and heat dissipation effect of the connector housing based on the heat dissipation integrated component.
[0070] Furthermore, the partition adjustment mechanism 5 includes a bearing seat 501 and a rotation adjustment component 505, the bearing seat 501 is fixedly connected to the connector lower shell 4, and the rotation adjustment component 505 is transmission-connected to the bearing seat 501, and the rotation adjustment component 505 is transmission-connected to the upper fin 902, so that the upper fin 902 is set to move up and down by the rotation adjustment component 505; the rotation adjustment component 505 includes two sets of tooth plates 5052 and a rotating rod 5051, and a plurality of avoidance holes are opened on one side of the connector upper shell 1, and the rotating rod 5051 passes through the avoidance hole and is fixedly connected to the upper fin 902, and the rotating A gear 5053 is fixedly sleeved on one end of the outer side of the rotating rod 5051, and a tooth plate 5052 is meshed with the gear 5053. The two sets of tooth plates 5052 are slidably mounted inside the supporting base 501; a screw mechanism 503 is provided on the upper surface of the supporting base 501, and the two sets of tooth plates 5052 are threadedly connected to the screw mechanism 503. A paddle 502 is slidably mounted on one side of the supporting base 501, and a clamping block 506 is slidably mounted on both ends of the paddle 502. A clamping block 504 that is engaged with the clamping block 506 is fixedly mounted on both ends of one side of the supporting base 501, and the rotating rod 5051 is rotatably connected to the paddle 502;
[0071] like Figures 1 to 13As shown, through the design of the partition adjustment mechanism 5, when the conductive connector 2 on the right is performing wiring work, the user can first control the tooth plate 5052 on the left to engage with the gear 5053 through the screw mechanism 503, and the tooth plate 5052 on the right is away from the gear 5053, while pushing the paddle 502 upward, and the paddle 502 drives the rotating rod 5051 to realize the rolling of the gear 5053 on the tooth plate 5052, and the rotating rod 5051 drives the upper fin 902 to slide upward while rotating counterclockwise, so that the heat dissipation wind generated by the heat dissipation fan 3 can be directed to the right. Therefore, through the design of the partition adjustment mechanism 5, the inclination state of multiple groups of fins in the same area can be quickly adjusted, so that the heat dissipation wind can be quickly used for targeted heat dissipation.
[0072] It should be noted that the two sides above the sliding groove are relatively inclined, and the upper fin 902 is composed of an inverted trapezoidal fin plate 9021 and a rotating fin plate 9022, and the rotating fin plate 9022 is fixedly connected to the rotating rod 5051, and the inverted trapezoidal fin plate 9021 is integrally welded to the upper end of the rotating fin plate 9022.
[0073] like Figure 7 and Figure 8 As shown, through the design of the inverted trapezoidal fin plate 9021, when the upper fin 902 rotates an angle, the heat dissipation air can be effectively directed at a specified angle by relying on the tilt characteristics of the inverted trapezoid, further improving the effective utilization of the heat dissipation air;
[0074] At the same time, the design of the two sides above the sliding groove being relatively inclined is mainly used to prevent the rotating fin 9022 from touching and squeezing the inner wall of the sliding groove during the upward rotation process, resulting in the rotating fin 9022 being unable to rotate. Therefore, by using the inclined method, the rotation range of the rotating fin 9022 can be increased, thereby further improving the practicality of guiding the heat dissipation air.
[0075] It should be noted that the screw mechanism 503 mentioned above adopts a screw transmission structure, and the use of a screw structure to achieve the simultaneous movement of two sets of tooth plates 5052 in one direction has become an existing mature technology. Those skilled in the art should know how to install the screw mechanism 503 to control the two sets of tooth plates 5052 to slide inside the supporting seat 501. Therefore, the present invention will not be elaborated here.
[0076] A connector, using the above connector housing, comprising:
[0077] The connector body consists of a connector upper shell 1, a connector lower shell 4 and multiple sets of conductive joints 2. The multiple sets of conductive joints 2 are all arranged in the connector lower shell 4, and the heat conducting plate 11 is arranged between the connector lower shell 4 and the conductive joints 2.
[0078] It should be noted that the multiple sets of conductive connectors 2 mentioned above can be used with conductive connectors 2 of different powers, and assembling multiple conductive connectors 2 of different powers on a connector has become an existing mature technology. Those skilled in the art should know how to install the conductive connectors 2. Therefore, the present invention will not go into details here.
[0079] It is worth noting that the connector upper shell 1 mentioned above can be made of polycarbonate material, so that the connector upper shell 1 can have protective performance and high temperature resistance while also being transparent, thereby making it easier for staff to adjust the connection between the sealing plate 106 and the rotating ring 107.
[0080] Although some specific embodiments of the present invention have been described in detail by way of examples, it should be understood by those skilled in the art that the above examples are for illustration only and are not intended to limit the scope of the present invention. It should be understood by those skilled in the art that modifications may be made to the above embodiments without departing from the scope and spirit of the present invention. The scope of the present invention is defined by the appended claims.
Claims
1. A connector housing based on a heat dissipation integrated component, comprising a connector upper housing (1), a connector lower housing (4), a heat dissipation fan (3) and a plurality of heat conducting plates (11), wherein the heat dissipation fan (3) is arranged on the connector upper housing (1), and the connector upper housing (1) is arranged on the upper surface of the connector lower housing (4), characterized in that: Also includes: An air guide mechanism (10), wherein the air guide mechanism (10) is arranged at the bottom of the heat dissipation fan (3), so that the blowing surface of the heat dissipation fan (3) forms a plurality of air outlet areas through the air guide mechanism (10); A partition adjustment mechanism (5), wherein the partition adjustment mechanism (5) is provided with multiple groups, and the fin mechanism (9) is transmission-connected to the partition adjustment mechanism (5); A fin mechanism (9), wherein the fin mechanism (9) is provided with multiple groups, the fin mechanism (9) comprising multiple groups of lower fins (901) and upper fins (902), the lower fins (901) being welded to the heat conducting plate (11), and the upper fins (902) being movably mounted on the upper surface of the lower fins (901) via a partition adjustment mechanism (5); The upper fin (902) is set to move up and down and rotate via a partition adjustment mechanism (5); The air guide mechanism (10) includes a conical shell (102), a rotating ring (107) is rotatably connected between the conical shell (102) and the cooling fan (3), and a diversion shell (104) is provided at the bottom center of the conical shell (102), a through hole is provided in the middle of the diversion shell (104), and a hollow connecting shell (12) is fixedly installed in the middle of the diversion shell (104) and the bottom center of the cooling fan (3), and a plurality of groups of air outlet pipes (105) are connected around the outer side of the diversion shell (104), so that an air outlet area is formed by the air outlet pipes (105); The air guide mechanism (10) further comprises a plurality of groups of blocking plates (106) and a blocking component (101), wherein the plurality of groups of blocking plates (106) are all slidably mounted inside the diverter shell (104), and a connecting rod (103) is fixedly mounted on the same side of the plurality of groups of blocking plates (106), wherein the connecting rod (103) is bent, and the bent portion of the connecting rod (103) is slidably mounted inside the diverter shell (104), and the plurality of groups of blocking plates (106) are all detachably connected to the conical shell (102) via the blocking component (101).
2. The connector housing based on the heat dissipation integrated assembly according to claim 1, characterized in that: The blocking component (101) includes an adjustment seat (1013), a plurality of through holes are provided around the middle of the connector upper shell (1), the adjustment seat (1013) is slidably mounted inside the through holes, a threaded knob (1011) is threadedly connected to the adjustment seat (1013), and a clamping rod (1012) is rotatably connected to the bottom of the threaded knob (1011), a plurality of sliding seats (1015) are slidably mounted around the outer side of the rotating ring (107), and a plurality of docking seats (1014) are fixedly mounted around the outer side of the rotating ring (107), the sliding seat (1015) is slidably sleeved on the outer side of the clamping rod (1012), and a clamping groove for engaging with the clamping rod (1012) is provided on the upper surface of the docking seat (1014), and the connecting rod (103) is fixedly connected to the sliding seat (1015).
3. The connector housing based on the heat dissipation integrated assembly according to claim 2, characterized in that: The bottom of the upper fin (902) is rotatably connected to a heat conducting plate (904), a sliding groove is provided in the middle of the upper surface of the lower fin (901), and a plurality of ventilation holes (6) communicating with the sliding groove are provided on the outer side of the lower fin (901), and a sliding heat conducting mechanism (903) is provided inside the ventilation hole (6), so that the heat conducting plate (904) is slidably installed inside the sliding groove through the sliding heat conducting mechanism (903).
4. The connector housing based on the heat dissipation integrated assembly according to claim 3, characterized in that: The sliding heat-conducting mechanism (903) comprises a copper ball sleeve (9031) and a first ball (9032), wherein the copper ball sleeve (9031) is fixedly connected to the heat-conducting plate (904), the copper ball sleeve (9031) is sleeved on the outside of the first ball (9032), and contact holes are provided on both sides of the copper ball sleeve (9031), heat-conducting grooves (8) are provided on both sides of the interior of the ventilation hole (6), and the first ball (9032) contacts the interior of the heat-conducting groove (8).
5. The connector housing based on the heat dissipation integrated assembly according to claim 4, characterized in that: The partition adjustment mechanism (5) comprises a bearing seat (501) and a rotation adjustment component (505), wherein the bearing seat (501) is fixedly connected to the connector lower shell (4), and the rotation adjustment component (505) is transmission-connected to the bearing seat (501), and the rotation adjustment component (505) is transmission-connected to the upper fin (902), so that the upper fin (902) is raised and lowered and rotated by the rotation adjustment component (505).
6. The connector housing based on the heat dissipation integrated assembly according to claim 5, characterized in that: The rotation adjustment component (505) includes two groups of tooth plates (5052) and a rotating rod (5051). A plurality of avoidance holes are provided on one side of the connector upper shell (1). The rotating rod (5051) passes through the avoidance holes and is fixedly connected to the upper fin (902). A gear (5053) is fixedly sleeved on one end of the outer side of the rotating rod (5051). The tooth plates (5052) are meshed with the gear (5053). Both groups of tooth plates (5052) are slidably mounted inside the bearing seat (501).
7. The connector housing based on the heat dissipation integrated assembly according to claim 6, characterized in that: A screw mechanism (503) is provided on the upper surface of the supporting seat (501), and the two groups of tooth plates (5052) are both threadedly connected to the screw mechanism (503). A paddle (502) is slidably mounted on one side of the supporting seat (501), and a clamping block (506) is slidably mounted on both ends of the paddle (502). A clamping seat (504) that engages with the clamping block (506) is fixedly mounted on both ends of one side of the supporting seat (501), and the rotating rod (5051) is rotatably connected to the paddle (502).
8. A connector, using the connector housing according to any one of claims 1 to 7, characterized in that: include: A connector body is provided, wherein the connector body is composed of a connector upper shell (1), a connector lower shell (4) and a plurality of groups of conductive joints (2), wherein the plurality of groups of conductive joints (2) are all arranged in the connector lower shell (4), and the heat conducting plate (11) is arranged between the connector lower shell (4) and the conductive joints (2).
Citation Information
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