Illuminable Mobile Power Supply with Heat Dissipation Device
By introducing static and dynamic heat dissipation mechanisms into the mobile power supply, the overheating problem caused by heat accumulation in the mobile power supply is solved, and effective heat dissipation effect is achieved to avoid equipment damage.
Patent Information
- Application Number
- CN201911409073.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Priority Date
- 2019-10-08
- Filing Date
- 2019-12-31
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2039-12-31
AI Technical Summary
During use, the mobile power supply is large due to the heat generation of the inverter board, DC board, battery and lighting light source, which leads to heat accumulation, which easily leads to overheating and damage to the equipment.
A illuminable mobile power supply with a heat dissipation device is designed, including a battery and a lighting light source in the case. The heat dissipation process is performed through a static heat dissipation mechanism and a dynamic heat dissipation mechanism. The static heat dissipation mechanism transfers heat to the outside world through a heat dissipation grille and a heat dissipation through a heat dissipation fan.
It effectively avoids heat accumulation in the shell, ensures that the equipment is not damaged by overheating, and improves the equipment's heat dissipation efficiency and use safety.
Smart Images

Figure CN111092473B_ABST
Abstract
Description
Technical field
[0001] The present invention relates to the field of power supplies, and in particular to a mobile power supply capable of illumination and having a heat dissipation device. [Background Technology]
[0002] With the development of society and the advancement of science, the use of electronic devices has become more and more frequent, accelerating the consumption of electronic devices' power. To replenish the power of electronic devices, especially those used outdoors, mobile power supplies have emerged. Currently, some mobile power supplies are equipped with lighting sources, inverter boards, and DC boards. During operation, the inverter boards, DC boards, and batteries generate a lot of heat. In addition, the lighting source also generates heat, which increases the heat generation of the mobile power supply. The mobile power supply generates a lot of heat during use. The heat accumulation of the mobile power supply can easily cause the mobile power supply to overheat and even cause damage. [Summary of the invention]
[0003] The present invention solves the technical problem that a mobile power supply is difficult to dissipate heat. The present invention provides a mobile power supply with lighting and a heat dissipation device having a simple structure and a reasonable design.
[0004] The present invention is achieved through the following technical solutions:
[0005] A mobile power source with illumination and a heat dissipation device includes a housing, a battery disposed within the housing, a lighting source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the lighting source, wherein the heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world.
[0006] In the mobile power supply with illumination having a heat dissipation device as described above, the heat dissipation mechanism includes a static heat dissipation mechanism that is in close contact with the battery and the lighting source and transfers heat generated by the battery and the lighting source to the outside of the housing for heat dissipation.
[0007] As described above, the illuminating mobile power supply with a heat dissipation device, the shell includes a rear panel, the static heat dissipation mechanism includes a heat dissipation grille arranged on the rear panel, and the heat dissipation grille is provided with a heat dissipation through-hole that passes through the rear panel and connects the interior of the shell with the outside.
[0008] As described above, the mobile power supply with illumination and heat dissipation device comprises an LED light panel arranged outside the heat dissipation grille and dissipating heat through the heat dissipation grille, and a projection lamp arranged on the heat dissipation through-hole and dissipating heat through the heat dissipation grille.
[0009] As described above, the illuminating mobile power supply with a heat dissipation device is provided on the shell with a wireless charging device electrically connected to the battery. The wireless charging device includes a wireless charging panel and a wireless charging PCB board arranged in sequence from the outside to the inside of the shell, and a wireless charging button arranged between the wireless charging panel and the wireless charging PCB board and operable on the wireless charging panel.
[0010] As described above, the illuminating mobile power supply with a heat dissipation device is provided on the shell, and a speaker electrically connected to the battery is provided. The speaker includes a speaker cover provided on the shell, and a speaker provided in the shell and corresponding to the position of the speaker cover. The speaker cover, the speaker and the battery are arranged in sequence from the outside to the inside of the shell.
[0011] As described above, the illuminating mobile power supply with a heat dissipation device has an automobile ignition device electrically connected to the battery provided in the housing. The automobile ignition device includes an automobile ignition interface provided on the housing on the same side as the heat dissipation mechanism, and an automobile ignition plug cooperating with the automobile ignition interface.
[0012] As described above, the illuminable mobile power supply with a heat dissipation device has an inflation device electrically connected to the battery provided in the shell, the inflation device includes an inflation pump provided in the shell, and an inflation nozzle detachably connected to the inflation pump, the inflation nozzle passes through the shell and is connected to the air outlet of the inflation pump.
[0013] The mobile power source with lighting and heat dissipation device as described above, wherein the heat dissipation mechanism further comprises a dynamic heat dissipation mechanism disposed between the static heat dissipation mechanism and the battery, and configured to discharge the heated air in the housing out of the housing through a heat dissipation channel;
[0014] The dynamic heat dissipation mechanism includes the heat dissipation fan arranged corresponding to the heat dissipation through hole, and the heat dissipation grille, the heat dissipation fan and the battery are arranged in sequence from the outside to the inside of the shell.
[0015] The mobile power supply with illumination having a heat dissipation device as described above includes a mobile power supply with illumination system having a heat dissipation device, and the mobile power supply with illumination system includes:
[0016] Main control module;
[0017] A BMS module connected to the main control module;
[0018] A wireless charging module, connected to the main control module, for wirelessly charging external electronic products;
[0019] A car starting module, connected to the main control module;
[0020] A Bluetooth audio module connected to the main control module;
[0021] a lighting module connected to the main control module;
[0022] an air pump module connected to the main control module;
[0023] A DC output module, connected to the main control module, for supplying power to electronic products;
[0024] A DC-AC inverter module, which is connected to the main control module and is used to power electronic products;
[0025] A charging module is connected to the main control module.
[0026] Compared with the prior art, the present invention has the following advantages:
[0027] 1. The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0028] 2. Dynamic heat dissipation is carried out through the cooling fan, which can extract the hot air in the shell, thereby dissipating the heat of components in the shell that generate a lot of heat, such as inverter board, DC board, battery, LED light board, etc.
Brief Description of the Drawings
[0029] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0030] Figure 1 This is a schematic diagram of the structure of embodiment 1 of the present invention Figure 1 ;
[0031] Figure 2 This is a schematic diagram of the structure of embodiment 1 of the present invention Figure 2 ;
[0032] Figure 3 It is a schematic diagram of the structural decomposition of embodiment 1 of the present invention;
[0033] Figure 4 yes Figure 3 A magnified view of point A;
[0034] Figure 5 This is a schematic diagram of the structural decomposition of the second embodiment;
[0035] Figure 6 This is a schematic diagram of the structural decomposition of the third embodiment;.
[0036] Figure 7 This is a schematic diagram of the structural decomposition of the fourth embodiment;
[0037] Figure 8 This is a schematic diagram of the structural decomposition of the fifth embodiment;
[0038] Figure 9 This is a schematic diagram of the structure of embodiment 1 of the present invention Figure 3 ;
[0039] Figure 10 It is a framework diagram of the mobile power supply system with illumination and heat dissipation device of the present invention. [Specific implementation method]
[0040] In order to make the technical problems, technical solutions and beneficial effects solved by the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0041] When ordinal numbers such as "first" and "second" are mentioned in the embodiments of the present invention, unless they actually express the meaning of order according to the context, they should be understood as being merely for the purpose of distinction.
[0042] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed, detachable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0043] Example 1: Figures 1 to 4 As shown, a mobile power supply with lighting and a heat dissipation device includes a shell 1, a battery 2 arranged in the shell 1, a lighting light source 3 electrically connected to the battery 2, and a heat dissipation mechanism 4 for dissipating heat from the battery 2 and the lighting light source 3, wherein the heat dissipation mechanism 4 forms a heat dissipation channel connecting the interior of the shell 1 with the outside world.
[0044] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0045] Furthermore, as a preferred embodiment of the present invention but not a limitation, the heat dissipation mechanism 4 includes a static heat dissipation mechanism 41 that is in close contact with the battery 2 and the lighting source 3 and transfers the heat generated by the battery 2 and the lighting source 3 to the outside of the shell 1 for heat dissipation. The heat dissipation mechanism includes a static heat dissipation mechanism that is in close contact with the battery and the lighting source and transfers the heat generated by the battery and the lighting source to the outside of the shell for heat dissipation. The heat dissipation mechanism can transfer the heat in the shell to the outside through heat transfer, thereby dissipating the heat generated by the battery, the lighting source and the mainboard 21. When the outside temperature is lower than the temperature inside the shell, the advantage of the static heat dissipation mechanism is that it can transfer the heat of the shell to the outside of the shell anytime and anywhere to dissipate heat. When heat is dissipated, there is no need to provide energy for the heat dissipation mechanism, thereby avoiding battery loss.
[0046] Furthermore, as a preferred embodiment of this solution, but not limiting, the housing 1 includes a rear panel 11, and the static heat dissipation mechanism 41 includes a heat dissipation grille 411 disposed on the rear panel 11. The heat dissipation grille 411 is provided with heat dissipation holes 412 that penetrate the rear panel 11 and connect the interior of the housing 1 with the outside world. The heat dissipation grille is disposed on the rear panel and contacts the lighting source and the battery to transfer heat, allowing heat generated by the lighting source and the battery to be dissipated through the heat dissipation grille. The heat dissipation holes in the heat dissipation grille connect the interior of the housing with the outside world, allowing heat within the housing to be dissipated to the outside through the heat dissipation holes, thereby preventing heat accumulation within the housing.
[0047] Furthermore, as a preferred embodiment of this solution, but not limiting, the rear panel 11 is provided with a rear panel cavity 111 for accommodating the heat dissipation grille 411. The inner sidewall of the heat dissipation grille 411 is provided with a plurality of spaced-apart heat dissipation fins 4111. In this embodiment, the heat dissipation grille is disposed within the rear panel cavity, so that the heat dissipation grille is recessed into the housing and does not protrude from the rear panel, thereby saving space. The multiple heat dissipation fins increase the area in contact with air, further facilitating heat dissipation. Furthermore, the spaced-apart arrangement of the heat dissipation fins prevents heat from accumulating between the fins. In this embodiment, the heat dissipation fins are spaced uniformly, facilitating uniform heat dissipation from the heat dissipation grille.
[0048] Furthermore, as a preferred embodiment of the present invention but not a limitation, the lighting source 3 includes an LED light board 31 arranged on the outside of the heat dissipation grille 411 and dissipating heat through the heat dissipation grille 411, and a projection lamp 32 arranged on the heat dissipation through-hole 412 and dissipating heat through the heat dissipation grille 411. The LED light board is arranged on the outside of the heat dissipation grille, and the heat generated by the LED light board is dissipated by heat transfer to the heat dissipation grille. In this embodiment, the heat dissipation through-hole is located in the middle of the heat dissipation grille, and the heat generated by the projection lamp is dissipated by heat transfer to the heat dissipation grille. The heat generated by the LED light board is transferred to the heat dissipation grille and then dissipated through the heat dissipation fins on the inside of the heat dissipation grille. In this embodiment, the LED light board is arranged around the heat dissipation grille, making full use of the space outside the heat dissipation grille. The LED light board is arranged around the heat dissipation grille, so that the LED light board is in full contact with the heat dissipation grille to achieve a good heat transfer effect.
[0049] Furthermore, as a preferred embodiment of this solution but not a limitation, Figure 3 As shown, the housing 1 is provided with a mainboard 21, and the housing 1 includes a front panel 12. The front panel 12 is provided with an air inlet 121. Air enters the housing 1 through the air inlet 121 under the action of the dynamic heat dissipation mechanism 42, passes through the mainboard 21, and is then discharged from the heat dissipation mechanism 4. The air enters the housing through the air inlet, then passes through the mainboard, removing heat from the mainboard. The hot air is then drawn out of the housing by the cooling fan. During the process of being drawn out of the housing, the hot air passes through the projection lamp, removing heat from the projection lamp, and then passes through the heat dissipation grille, removing heat transferred to the heat dissipation grille from the LED light panel.
[0050] Furthermore, as a preferred embodiment of this solution but not a limitation, the housing 1 is made of a metal material and is provided with a handle 13. The metal material includes aluminum. Using aluminum for the housing reduces weight, and aluminum has the characteristic of rapid heat dissipation, thereby improving the heat dissipation effect. The heat dissipation grille is made of plastic. The heat dissipation grille on the rear panel is integrally formed with the rear panel, which facilitates heat transfer between the heat dissipation grille and the rear panel, thereby expanding the heat dissipation area and achieving a good heat dissipation effect. The handle is used to improve the portability of the mobile power supply with lighting and heat dissipation device.
[0051] like Figure 3 、 Figure 4 As shown, the heat dissipation mechanism 4 also includes a dynamic heat dissipation mechanism 42 disposed between the static heat dissipation mechanism 41 and the battery 2, which draws the heated air from the housing 1 through a heat dissipation channel and out of the housing 1. The dynamic heat dissipation mechanism draws the heated air from the housing, which is then further dissipated by the static heat dissipation mechanism, achieving a better heat dissipation effect.
[0052] Furthermore, as a preferred embodiment of this solution, but not a limitation, the dynamic heat dissipation mechanism 42 includes a cooling fan 421 positioned corresponding to the heat dissipation holes 412. The heat dissipation grille 411, the cooling fan 421, and the battery 2 are sequentially positioned from the exterior of the housing 1 toward the interior. A DC output device and a DC-AC inverter are located within the housing. Heat generated by the DC output device, the DC-AC inverter, and other components is extracted by the cooling fan through the heat dissipation holes and discharged to the exterior of the housing. Another cooling fan extracts heated air surrounding the battery and then discharges it out of the housing through the cooling grille. The cooling grille then dissipates the exhausted air again. Heat is transferred to the cooling fins of the cooling grille, concentrating the heat at the center of the grille, i.e., at the heat dissipation holes. The cooling fan then discharges the hot air through the heat dissipation holes, achieving excellent heat dissipation.
[0053] Furthermore, as a preferred embodiment of this solution, but not a limitation, the projector lamp 32 can also be positioned between the cooling fan 421 and the heat dissipation hole 412. When the projector lamp is operating, the cooling fan is simultaneously activated. In this embodiment, the cooling fan operates at half the full load speed. The cooling fan blows the extracted hot air toward the projector lamp, thereby dissipating the heat. The hot air, having absorbed the heat from the projector lamp, then enters the heat dissipation grille for further heat dissipation. In this embodiment, the projector lamp includes a projector lens 321.
[0054] Example 2: Figure 5 As shown, the embodiment of the present invention provides a mobile power supply with lighting and a heat dissipation device, which is different from the first embodiment in that:
[0055] The housing 1 is provided with a wireless charging device 5 electrically connected to the battery 2. The wireless charging device 5 includes a wireless charging panel 51 and a wireless charging PCB 52, which are arranged sequentially from the outside to the inside of the housing 1, and a wireless charging button 53 arranged between the wireless charging panel 51 and the wireless charging PCB 52 and operable on the wireless charging panel 51. In this embodiment, the wireless charging panel is snapped into place with the housing, and the wireless charging PCB is arranged in the housing and corresponds to the position of the wireless charging panel. The wireless button is arranged on the wireless charging PCB. The wireless charging device can be used to charge devices capable of wireless charging, such as mobile phones.
[0056] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0057] Example 3: Figure 6 As shown, the embodiment of the present invention provides a mobile power supply with lighting and a heat dissipation device, which differs from the first and second embodiments in that:
[0058] The housing 1 is provided with a speaker 6 electrically connected to the battery 2. The speaker 6 includes a speaker cover 61 provided on the housing 1 and a speaker 62 provided within the housing 1 and corresponding to the position of the speaker cover 61. The speaker cover 61, the speaker 62, and the battery 2 are arranged in sequence from the outside to the inside of the housing 1. The mobile power bank with a heat dissipation device and the speaker can be used as a mobile speaker, adding the functionality of the mobile power bank with a heat dissipation device.
[0059] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0060] Example 4: Figure 7 As shown, the embodiment of the present invention provides a mobile power supply with lighting and a heat dissipation device, which is different from the first, second and third embodiments in that:
[0061] The housing 1 is provided with an automobile ignition device 7 electrically connected to the battery 2 . The automobile ignition device 7 includes an automobile ignition interface 71 provided on the housing 1 on the same side as the heat dissipation mechanism 4 , and an automobile ignition rubber plug 72 matched with the automobile ignition interface 71 .
[0062] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0063] Example 5: Figure 8 As shown, the embodiment of the present invention provides a mobile power supply with lighting and a heat dissipation device, which is different from the first, second, third and fourth embodiments in that:
[0064] The housing 1 is provided with an inflation device 8 electrically connected to the battery 2. The inflation device 8 includes an inflation pump 81 disposed within the housing 1 and an inflation nozzle 82 detachably connected to the inflation pump 81. The inflation nozzle 82 passes through the housing 1 and is connected to the air outlet of the inflation pump 81. The inflation pump is used to inflate automobile tires, etc.
[0065] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0066] The present invention also includes an illuminating mobile power supply system with a heat dissipation device, and the illuminating mobile power supply system with a heat dissipation device includes:
[0067] Main control module 9: The main control module is a motherboard 21 with an IC specification of SH88F6161S. The main control module also includes a display module and a key module. The display module is a display screen 901, and the key module is a key 902. The main control module is mainly used to control the following modules:
[0068] BMS module 91 is connected to the main control module 9. BMS stands for Battery Management System (BMS). It is designed to improve battery utilization and prevent overcharging and over-discharging. The IC specification is BM3452. The BMS module provides overcharge protection, over-discharge protection, overtemperature protection, automatic overtemperature power-off protection, and short-circuit protection.
[0069] The wireless charging module 92 is connected to the main control module 9 and is used to provide wireless charging. The IC specification is IP6808. The wireless charging module has an overload protection function.
[0070] The vehicle starting module 93 is connected to the main control module 9 and is used to provide the power required for ignition of the vehicle. The vehicle starting module has over-temperature, under-voltage, reverse charge, short circuit, over-current, reverse connection, over-voltage protection, and automatic recovery from over-voltage state.
[0071] The Bluetooth audio module 94 is connected to the main control module 9; the Bluetooth 4.0 module has a chip model of MT8516. The Bluetooth audio module is used to connect to the speaker.
[0072] The lighting module 95 is connected to the main control module 9 and is used to control the lights on the LED light board or the projection light to perform corresponding lighting actions. The lighting actions include displaying white light, warm white light, pure white light, warning light lighting effects, and flashlight lighting effects.
[0073] The air pump module 96 is connected to the main control module 9; the air pump module has an overpressure protection function, and the air pump module includes an air pump that can pump air for automobile tires, etc.
[0074] The DC output module 97 is connected to the main control module 9 and is used to power electronic products. The DC output module includes a TYEP-C-PD60W output module, a USB-QC3.0 module, and a DC12V output module. The DC output module has overload protection, short circuit protection, and overtemperature protection functions.
[0075] The DC-AC inverter module 98 has a control terminal connected to the main control module 9, an input terminal connected to the battery 2, and an output terminal connected to an electronic product for charging. The IC specification is SG3524 or SG3525, and in this embodiment, the inverter PCB board 903 is included. The DC-AC inverter module has overload protection, short-circuit protection, and overtemperature protection functions.
[0076] The charging module 99 is connected to the main control module 9. The charging module can be used to charge the battery through a solar MPPT, a car cigarette lighter, or an adapter. The charging module has overload protection, short circuit protection, and over-temperature protection functions.
[0077] The main control module is electrically connected to temperature sensors used to detect the inverter's pre-stage MOS temperature, transformer temperature, and battery temperature. The main control module turns the cooling fan on or off based on the temperature sensor's detection results. In this embodiment, when the temperature sensor detects that the battery temperature exceeds 40°C, the main control module receives the temperature sensor's signal and supplies power to the cooling fan. When the battery temperature exceeds 60°C, the main control module shuts down the battery output and extends the cooling fan's cooling time. When the temperature sensor detects that the transformer temperature and pre-stage MOS temperature exceed 50°C, the main control module receives the temperature sensor's signal and supplies power to the cooling fan. When the transformer temperature and pre-stage MOS temperature exceed 90°C, the main control module shuts down the battery output and extends the cooling fan's cooling time.
[0078] The working principle of this embodiment is as follows:
[0079] The heat dissipation grille dissipates heat from the LED light panel located outside the grille and the spotlight located in the heat dissipation holes through heat transfer. The heat dissipation grille dissipates heat from the battery, lighting source, and motherboard inside the housing through the heat dissipation fins to the outside of the housing for static heat dissipation. Dynamic heat dissipation can also be achieved through a cooling fan. Air enters the housing through the air inlet, then passes through the motherboard and other components, removing heat from them. The heated air is then drawn out of the housing by the cooling fan. During the process of being drawn out of the housing, the hot air passes through the spotlight, removing heat from it, and then passes through the heat dissipation grille, removing heat transferred from the LED light panel to the heat dissipation grille.
[0080] The present invention provides a mobile power source with illumination and a heat dissipation device, comprising a housing, a battery disposed within the housing, a light source electrically connected to the battery, and a heat dissipation mechanism for dissipating heat from the battery and the light source. The heat dissipation mechanism forms a heat dissipation channel connecting the interior of the housing with the outside world. The heat dissipation mechanism dissipates heat generated by the battery and the light source and dissipates the heat within the housing to the outside of the housing through the heat dissipation channel, thereby preventing heat accumulation within the housing and causing severe overheating.
[0081] The above are implementation methods provided in conjunction with specific content, and the specific implementation of this application is not limited to these descriptions. Any similarity or similarity with the methods, structures, etc. of this application, or any technical deduction or replacement based on the concept of this application, shall be considered within the scope of protection of this application.
Claims
1. A mobile power source with lighting and a heat dissipation device, characterized in that: The invention comprises a housing (1), a battery (2) arranged in the housing (1), a lighting source (3) electrically connected to the battery (2), and a heat dissipation mechanism (4) for dissipating heat from the battery (2) and the lighting source (3), wherein the heat dissipation mechanism (4) forms a heat dissipation channel connecting the interior of the housing (1) with the outside world; The heat dissipation mechanism (4) comprises a static heat dissipation mechanism (41) which is in close contact with the battery (2) and the lighting light source (3) and transfers heat generated by the battery (2) and the lighting light source (3) to the outside of the housing (1) for heat dissipation; The housing (1) includes a rear panel (11), the static heat dissipation mechanism (41) includes a heat dissipation grid (411) provided on the rear panel (11), and the heat dissipation grid (411) is provided with a heat dissipation through hole (412) penetrating the rear panel (11) and connecting the interior of the housing (1) with the outside; The heat dissipation mechanism (4) further includes a dynamic heat dissipation mechanism (42) disposed between the static heat dissipation mechanism (41) and the battery (2) for discharging the heated air in the housing (1) out of the housing (1) through a heat dissipation channel; The dynamic heat dissipation mechanism (42) includes a heat dissipation fan (421) arranged corresponding to the heat dissipation through hole (412), and the heat dissipation grid (411), the heat dissipation fan (421) and the battery (2) are arranged in sequence from the outside to the inside of the housing (1); The lighting light source (3) comprises an LED light board (31) arranged outside the heat dissipation grid (411) and dissipating heat through the heat dissipation grid (411), and a projection lamp (32) arranged on the heat dissipation through hole (412) and dissipating heat through the heat dissipation grid (411); The rear panel (11) is provided with a rear panel cavity (111) for accommodating the heat dissipation grid (411), and the inner side wall of the heat dissipation grid (411) is provided with a plurality of heat dissipation fins (4111) arranged at intervals.
2. The mobile power source with lighting and heat dissipation device according to claim 1, characterized in that: The housing (1) is provided with a wireless charging device (5) electrically connected to the battery (2), and the wireless charging device (5) comprises a wireless charging panel (51) and a wireless charging PCB (52) arranged in sequence from the outside to the inside of the housing (1), and a wireless charging button (53) arranged between the wireless charging panel (51) and the wireless charging PCB (52) and operable on the wireless charging panel (51).
3. The mobile power source with lighting and heat dissipation device according to claim 1, characterized in that: The housing (1) is provided with a speaker (6) electrically connected to the battery (2). The speaker (6) comprises a speaker cover (61) provided on the housing (1), and a speaker (62) provided in the housing (1) and corresponding to the position of the speaker cover (61). The speaker cover (61), the speaker (62) and the battery (2) are arranged in sequence from the outside to the inside of the housing (1).
4. The mobile power source with lighting and heat dissipation device according to claim 1, characterized in that: An automobile ignition device (7) electrically connected to the battery (2) is provided in the housing (1). The automobile ignition device (7) comprises an automobile ignition interface (71) provided on the housing (1) on the same side as the heat dissipation mechanism (4), and an automobile ignition rubber plug (72) cooperating with the automobile ignition interface (71).
5. The mobile power source with lighting and heat dissipation device according to claim 1, characterized in that: An air charging device (8) electrically connected to the battery (2) is provided in the housing (1), the air charging device (8) comprising an air charging pump (81) provided in the housing (1), and an air charging nozzle (82) detachably connected to the air charging pump (81), the air charging nozzle (82) passing through the housing (1) and connected to an air outlet of the air charging pump (81).
6. The mobile power source with lighting and heat dissipation device according to claim 1, characterized in that: A mobile power supply system with illumination having a heat dissipation device, the mobile power supply system with illumination comprising: Main control module (9); A BMS module (91) connected to the main control module (9); A wireless charging module (92), connected to the main control module (9), for charging external electronic products in a wireless manner; A car starting module (93), connected to the main control module (9); A Bluetooth audio module (94) connected to the main control module (9); A lighting module (95) connected to the main control module (9); An air pump module (96) connected to the main control module (9); A DC output module (97), connected to the main control module (9), for supplying power to electronic products; A DC-AC inverter module (98), connected to the main control module (9), for supplying power to electronic products; A charging module (99) is connected to the main control module (9).
Citation Information
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