Energy-saving LED lamp and lamp
By incorporating lenses, heat dissipation, multiple light distribution, and temporary protection mechanisms into LED luminaires, the problems of light waste and short lifespan at high temperatures are solved, providing safe escape lighting and protection to safeguard the health of laboratory personnel.
Patent Information
- Application Number
- CN202510610766.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2045-05-13
AI Technical Summary
Existing LED lights have poor light transmission, resulting in wasted light in the air. High temperatures shorten their lifespan, and leaks of hazardous gases in laboratories pose a serious health hazard to personnel.
The light is distributed downwards using a lens, combined with a heat dissipation mechanism, a multi-light distribution mechanism, and a temporary protection mechanism, including an automatic telescopic tube, a vacuum pump unit, a liquid cooling plate, and a multi-axis rotation mechanism, to achieve downward focusing of light, heat dissipation, gas adsorption, and temporary protection.
Reduce light waste, extend lamp life, provide safe escape lighting and protective spaces, and protect people's health.
Smart Images

Figure CN120274238B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of lighting lamps, and particularly relates to an energy-saving LED lamp and a lamp. BACKGROUND
[0002] The LED energy-saving lamp is a new generation of solid-state cold light source using a high-brightness white light-emitting diode light source, and has high light efficiency, low power consumption, long service life, easy control, maintenance-free, safety and environmental protection. However, the light transmittance of the lampshade of the current lamp is poor, and the light of the bulb cannot reach the ground, which is mostly wasted in the air. When the mobile lighting lamp used in the laboratory is used for lighting, because many high-temperature experiments are performed during the experiment, the lamp is easily damaged and the service life of the lamp is shortened when the lamp is used for close-range lighting because of the high heat of the lamp.
[0003] Secondly, when the research experiment is performed, the reagent bottle storing the chemical reagent may leak dangerous gas due to operation errors or accidents, which causes serious harm to the body of the personnel.
[0004] Therefore, in view of the above technical problems, it is necessary to provide an energy-saving LED lamp and a lamp.
[0005] The information disclosed in this BACKGROUND section is only intended to increase an understanding of the general context in which the present application can be practiced. It will be apparent that those skilled in the art may practice the application without these details. Therefore, the contents of this BACKGROUND section are not to be considered in determining the scope of the application. SUMMARY
[0006] The present application aims to provide an energy-saving LED lamp and a lamp which can solve the above problems.
[0007] In order to achieve the above-mentioned purpose, the technical scheme provided by an embodiment of the present application is as follows:
[0008] The utility model provides an energy saving type LED lamp, including base, universal wheel, security mechanism, heat dissipation mechanism, temporary protection mechanism and multiple light distribution mechanism, security mechanism includes first exhaust treatment mechanism, first exhaust treatment mechanism includes automatic telescopic pipe and air suction head, automatic telescopic pipe connects vacuum pump unit, the upper side end surface of base is installed with first multiaxial rotation mechanism, one side end surface of first multiaaxial rotation mechanism is installed with second LED lamp, heat dissipation mechanism includes liquid cooling plate and cooling mechanism, cooling mechanism includes a plurality of heat dissipation spray heads, a plurality of heat dissipation spray heads are located the peripheral end surface of second LED lamp, heat dissipation spray head connects gas storage box, gas storage box stores cooling gas, gas storage box transports cooling gas to heat dissipation spray head and sprays and heats the multiple end surfaces of second LED lamp, temporary protection mechanism includes air hole and vacuum pump unit, a plurality of air holes are seted up in the multiple end surfaces of base, the end surface of base close to air hole is connected with gas delivery plate, gas delivery plate is connected with gas delivery pipe, and gas delivery pipe is connected with vacuum pump unit, the upper side end surface of base is provided with multiple light distribution mechanism, and multiple light distribution mechanism includes automatic lifting mechanism, automatic turntable, emitter and emission port, the emitter stores a plurality of light source rescue discs, and the light source rescue disc includes main power supply system, auxiliary illuminating lamp and air bag layer.
[0009] In one or more embodiments of the present application, the upper side end surface of the base is fixedly connected with a first LED lamp, one side end surface of the first multiaxial rotation mechanism is provided with an outer shell, the outer shell is installed with a second LED lamp, the heat dissipation spray heads are arranged on the multiple end surfaces of the outer shell, a first heat conduction rod is arranged between the outer shell and the second LED lamp, and the bottom end surface of the base is connected with a heat dissipation rod.
[0010] In one or more embodiments of the present application, the first exhaust treatment mechanism further includes an exhaust gas storage box, the automatic telescopic pipe is connected with a first exhaust gas delivery pipe, the first exhaust gas delivery pipe is connected with a second vacuum pump, and the second vacuum pump is installed on the inner wall end surface of the exhaust gas storage box.
[0011] In one or more embodiments of the present application, the automatic lifting mechanism is fixedly connected to the inner wall end surface of the base, the automatic lifting mechanism is fixedly connected to the automatic turntable, the top end surface of the automatic turntable is connected to the emitter, and one side end surface of the emitter is provided with the emission port.
[0012] In one or more embodiments of the present application, the upper side of the main power supply system is provided with a plurality of auxiliary lighting lamps, the outer side of the main power supply system is wrapped with a first silica gel pad, the upper side of the main power supply system is provided with a reinforced lighting layer, the top of the reinforced lighting layer is fixedly connected with a reinforced pipe, a plurality of reinforced nozzles are connected to the top of the reinforced lighting layer, and the inside of the reinforced lighting layer is filled with nano fluorescent particles or carbon nano suspension.
[0013] In one or more embodiments of the present application, the bottom of the main power supply system is bonded with an air bag layer, the air bag layer is filled with oxygen, and the bottom of the air bag layer is installed with a piercing assembly.
[0014] In one or more embodiments of the present application, the piercing assembly comprises a button and a fixed seat, the bottom of the main power supply system is fixedly connected with the fixed seat, the inside of the fixed seat is fixedly connected with a limiting frame, the limiting frame is slidably connected with a sliding bottom plate, one side of the sliding bottom plate is fixedly connected with a button, the other side of the sliding bottom plate is fixedly connected with a spring, the top of the sliding column is fixedly connected with a plurality of needles, and a sliding hole matched with the sliding column is formed in the fixed seat.
[0015] In one or more embodiments of the present application, the temporary protection mechanism further comprises a waste dust recovery mechanism, the waste dust recovery mechanism comprises a second multi-axis rotating mechanism and a waste dust recovery intelligent box, one side of the second multi-axis rotating mechanism is fixedly connected with the waste dust recovery intelligent box, a plurality of recovery holes are formed in the waste dust recovery intelligent box, the inside of the waste dust recovery intelligent box is provided with a first recovery groove and a second recovery groove, the inside of the waste dust recovery intelligent box is connected with a first air guide pipe, the first air guide pipe is connected with a waste gas storage box, a plurality of adsorption holes are formed in the first air guide pipe, the inside of the first recovery groove and the second recovery groove is provided with a heat pipe, and the heat pipe is connected with a first heat rod.
[0016] In one or more embodiments of the present application, the security mechanism further comprises a second waste gas treatment mechanism, the second waste gas treatment mechanism comprises an automatic telescopic plate, a pair of opposite ends of the waste dust recovery intelligent box are fixedly connected with the automatic telescopic plate, the automatic telescopic plate comprises a first telescopic plate, a plurality of first air suction holes are formed in the first telescopic plate, the automatic telescopic plate is connected with a second waste gas conveying pipe, the second waste gas conveying pipe is connected with a second vacuum pump, the bottom of the waste dust recovery intelligent box is fixedly connected with a heat conduction nozzle, the upper side of the heat conduction nozzle is connected with a fan, the heat storage tank is connected with the fan, and the heat pipe is connected with the heat storage tank.
[0017] An energy-saving LED lamp, the outer side of the lamp is fixedly installed with a lens.
[0018] Compared with the prior art, the energy-saving LED lamp and the lamp of the present invention have the following benefits:
[0019] Use lens to achieve downward light distribution, focus the light downward and reduce light source waste;
[0020] The heat dissipation mechanism can be used to dissipate heat from the lamp, thus extending the service life of the lamp. The multi-light distribution mechanism can be used to enhance the lighting when white fog that affects vision appears in the environment, helping escaping personnel to find the escape route in time and escape quickly.
[0021] When an accidental gas leak occurs, the temporary protective mechanism can adsorb the gas and form a protective space to temporarily protect personnel, thereby protecting their health and improving safety performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments recorded in the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0023] Figure 1 This is a schematic structural diagram of an energy-saving LED lamp in Example 1 of the present invention;
[0024] Figure 2 Schematic diagram of the structure of the lens in Example 1 of the present invention;
[0025] Figure 3 This is a schematic structural diagram of a lamp in Embodiment 1 of the present invention;
[0026] Figure 4 This is a cross-sectional view of an energy-saving LED lamp in Example 1 of the present invention;
[0027] Figure 5 Schematic diagram of the structure of the heat dissipation mechanism in embodiment 1 of the present invention
[0028] Figure 6 This is a schematic diagram of the structure of an energy-saving LED lamp in Example 2 of the present invention. Figure 1 ;
[0029] Figure 7 This is a schematic diagram of the structure of an energy-saving LED lamp in Example 2 of the present invention. Figure 2 ;
[0030] Figure 8 for Figure 7 Schematic diagram of the structure at A;
[0031] Figure 9 A practical state diagram of one energy-saving LED lamp in embodiment two of the present application;
[0032] Figure 10 A partial cross-sectional view of the waste dust recovery mechanism 7 in embodiment two of the present application;
[0033] Figure 11 Structure diagram of the light source rescue disc in embodiment two of the present application Figure 1 ;
[0034] Figure 12 Structure diagram of the light source rescue disc in embodiment two of the present application Figure 2 ;
[0035] Figure 13 Partial cross-sectional view of the light source rescue disc in embodiment two of the present application;
[0036] Main figure mark explanation:
[0037] 1-base, 101-gas storage box, 102-vacuum pump unit, 103-waste gas storage box, 104-automatic lifting mechanism, 105-vent hole, 2-first LED lamp, 3-lens, 4-castor, 5-lamp, 6-heat dissipation mechanism, 601-first multi-axis rotating mechanism, 602-liquid cooling plate, 603-outer shell, 604-second LED lamp, 605-heat dissipation nozzle, 606-first heat conduction rod, 7-waste dust recovery mechanism, 701-second multi-axis rotating mechanism, 702-waste dust recovery intelligent box, 703-recovery hole, 704-heat conduction nozzle, 705-automatic expansion plate, 706-first expansion plate, 707-first air suction hole, 708-first recovery groove, 709-first air guide pipe, 710-heat conduction pipe, 711-second recovery groove, 8-first waste gas treatment mechanism, 801-automatic expansion pipe, 802-air suction head, 9-light source rescue disc, 901-first silica gel pad, 902-main power supply system, 903-assistant illuminating lamp, 904-enhanced nozzle, 905-button, 906-fixing seat, 907-air bag layer, 908-limiting frame, 909-sliding bottom plate, 910-sliding column, 911-thorn needle, 912-spring, 10-multi-light distribution mechanism, 1001-automatic rotating table, 1002-emitter, 1003-emitting port. DETAILED DESCRIPTION
[0038] In order to enable those skilled in the art to better understand the technical solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of the present invention.
[0039] Example 1 Figures 1-3 As shown, an energy-saving LED lamp and lamp fixture according to one embodiment of the present invention includes a first LED lamp 2, a lamp fixture 5, and a lens 3 fixedly mounted on the outer end surface of the lamp fixture 5. During use, the lens 3 is mounted on the outer end surface of the lamp fixture of the first LED lamp 2. When the LED emits light, light enters the lens 3. A portion of the reflected light is directly directed obliquely toward the ground, while another portion is illuminated by the focusing wall of the lens 3 and, when emitted from the focusing wall, also illuminates the ground. This can guide more light from a high position to the ground, reduce the light that is emitted into the air, reduce light loss, and mitigate the negative effects of light pollution.
[0040] like Figure 2 As shown, the focusing wall is the convex end face of the lens 3, which can focus the light scattered in the air and reflect it to the ground for lighting, effectively improving the lighting efficiency.
[0041] The energy-saving LED lamp includes a security mechanism, a heat dissipation mechanism 6 and a temporary protection mechanism. It can focus the light downward to reduce light source waste, dissipate heat for the lamp, extend its service life, and absorb dangerous gases when leaking to reduce gas hazards.
[0042] like Figures 1-5 As shown, an energy-saving LED lamp includes a base 1 and a universal wheel 4. A power supply system is provided inside the base 1 for controlling lighting. The bottom end face of the base 1 is fixedly connected to the universal wheel 4, and the base 1 is driven to move by the universal wheel 4. A driving power supply is provided inside the universal wheel 4. The top end face of the base 1 is fixedly connected to the first LED lamp 2. The first LED lamp 2 is higher than the second LED lamp 604, so that it can be fixed at a high place and provide lighting at a high place. It is suitable for when the high-altitude lighting lamp in the laboratory is damaged or some experiments require enhanced lighting at a high place. The first LED lamp 2 can be started for lighting.
[0043] The security mechanism comprises a first waste gas treatment mechanism 8, the first waste gas treatment mechanism 8 comprises an automatic telescopic pipe 801 and a suction head 802, the automatic telescopic pipe 801 is connected with a vacuum pump set 102, the automatic telescopic pipe 801 is fixedly connected to the lower side end face of the side wall of the base 1, the first waste gas treatment mechanism 8 further comprises a waste gas storage box 103, the automatic telescopic pipe 801 is connected with a first waste gas conveying pipe, the first waste gas conveying pipe is connected with a second vacuum pump, the second vacuum pump is installed on the inner wall end face of the waste gas storage box 103, so that the negative pressure output by the second vacuum pump enters the suction head 802 through the first waste gas conveying pipe, and the negative pressure is output outward, when dangerous gas is leaked in the laboratory due to unexpected circumstances, the dangerous gas can be adsorbed into the waste gas storage box 103 through the suction head 802 and stored.
[0044] The automatic telescopic pipe 801 is an automatic telescopic rod, the middle part of the automatic telescopic rod is a hollow structure, the third waste gas conveying pipe is arranged in the hollow structure, the third waste gas conveying pipe is connected with the first waste gas conveying pipe, and the automatic telescopic pipe 801 is communicated with the suction head 802 to convey the negative pressure. The telescopic automatic telescopic pipe 801 can adsorb dangerous gas at different distances.
[0045] The upper side end face of the base 1 is provided with a first multi-shaft rotating mechanism 601, one side end face of the first multi-shaft rotating mechanism 601 is provided with a second LED lamp 604, the heat dissipation mechanism 6 comprises a liquid cooling plate 602 and a cooling mechanism, the liquid cooling plate 602 is fixedly connected to the bottom end face of the outer shell 603, and the liquid cooling plate 602 is tightly attached to the outer shell 603, so that the outer shell 603 is preliminarily cooled through the liquid cooling plate 602.
[0046] The cooling mechanism comprises a plurality of heat dissipation nozzles 605, the plurality of heat dissipation nozzles 605 are located on the peripheral end face of the second LED lamp 604, the heat dissipation nozzles 605 are connected with the gas storage box 101, the gas storage box 101 stores cooling gas, the gas storage box 101 conveys the cooling gas to the heat dissipation nozzles 605 to spray and cool the plurality of end faces of the second LED lamp 604, so that the second LED lamp 604 is quickly cooled and normally operated.
[0047] The cooling gas is nitrogen.
[0048] The upper side end face of the base 1 is fixedly connected with the first LED lamp 2, the upper side end face of the base 1 is provided with the first multi-shaft rotating mechanism 601, one side end face of the first multi-shaft rotating mechanism 601 is provided with the outer shell 603, the second LED lamp 604 is installed in the outer shell 603, the heat dissipation nozzles 605 are arranged on the plurality of end faces of the outer shell 603, and the heat dissipation nozzles 605 contact the second LED lamp 604 to cool the high temperature generated when the second LED lamp 604 operates.
[0049] Preferably, the first multi-axis rotating mechanism 601 is a metal shaped hose, which has a shaping function and can also move the second LED lamp 604 to any position for use. Of course, the first multi-axis rotating mechanism 601 can also be a mechanical arm adjusting support, which is composed of multiple rotating shafts and mechanical arms. The support arm moves through the rotating shafts to adjust the angle. Its working principle and structural composition are the same as the mechanical arm adjusting support structure commonly used in the prior art, which is placed behind the battery screen.
[0050] A first heat-conducting rod 606 is arranged between the outer shell 603 and the second LED lamp 604. The bottom end surface of the base 1 is connected with a heat dissipation rod, and the first heat-conducting rod 606 is connected with the heat dissipation rod. The heat generated by the second LED lamp 604 during operation is absorbed by the first heat-conducting rod 606 and then dissipated through the heat dissipation rod.
[0051] The temporary protection mechanism includes air vents 105 and a vacuum pump set 102. Multiple air vents 105 are arranged on the end surfaces of the base 1. The end surface of the base 1 near the air vents 105 is connected with a gas delivery plate. The gas delivery plate is connected with a gas delivery pipe, which is connected with the vacuum pump set 102. The vacuum pump set 102 delivers gas flow to the gas delivery plate through the gas delivery pipe and then outputs through the multiple air vents 105. When dangerous gas leaks in the laboratory, the gas flow output by the multiple air vents 105 forms a gas wall, which isolates the dangerous gas on the outside of the end surface of the gas wall, forming a relatively safe temporary protection space. Laboratory personnel can hide in the temporary protection space to protect themselves from harm. After the external environment is safe, they can start to escape, reducing the harm of the external environment to them.
[0052] In use, the LED lamp can be placed at a high position for illumination through the first LED lamp 2 or for close-range illumination when the laboratory needs to contact the experimental position. The first multi-axis rotating mechanism 601 can be adjusted to drive the second LED lamp 604 to the appropriate position for illumination work.
[0053] When dangerous gas leaks occur during the experiment, the temporary protection mechanism is started. The vacuum pump set 102 delivers gas flow to the multiple air vents 105 through the vacuum pump set 102, forming a relatively safe temporary protection space for the experimental personnel to use temporarily.
[0054] The upper end surface of the base 1 is provided with a multi-light distribution mechanism. The multi-light distribution mechanism 10 includes an automatic lifting mechanism 104, an automatic turntable 1001, an emitter 1002, and an emission port 1003. The automatic lifting mechanism 104 is fixedly connected to the inner wall end surface of the base 1. The automatic lifting mechanism 104 is fixedly connected to the automatic turntable 1001. The automatic lifting mechanism 104 can drive the automatic turntable 1001 to move up and down, and in turn drive the emitter 1002 to move up and down to multiple areas to spray the light source rescue disc 9.
[0055] The automatic rotating table 1001 includes a base and a rotating table, the top end surface of the base is connected with the rotating table, the bottom end surface of the automatic rotating table 1001 is fixedly connected with the top end surface of the automatic lifting mechanism 104, the automatic lifting mechanism 104 penetrates through the top end surface of the base 1 to drive the automatic rotating table 1001 to move, meanwhile, the automatic rotating table 1001 can drive the emitter 1002 to rotate 360 degrees to search for an escape route, and the light source rescue disc 9 is used for auxiliary lighting. In the night or in the experimental process, some gases will generate a large amount of smoke (for example, white smoke will be generated when ammonia gas combines with hydrogen chloride), or smoke will be generated when a fire occurs, so that the surrounding environment cannot be seen clearly, and the gas is dangerous, so it is necessary to escape in time. The light source rescue disc 9 helps the personnel to quickly see the route under the assistance of the light to escape.
[0056] The side end surface of the emitting port 1003 is provided with an infrared laser lamp, the escape route is opposite to the direction of the room exit, and the personnel can quickly escape from the room exit. The room exit is preset in advance, when an emergency occurs, the infrared laser lamp will irradiate to the exit direction to indicate the escape route for the personnel, and when the light source rescue disc 9 is emitted, a plurality of light source rescue discs 9 will be distributed on the ground in the direction of the irradiation of the infrared rays to help the personnel to quickly identify the route and escape.
[0057] The top end surface of the automatic rotating table 1001 is connected with the emitter 1002, the side end surface of the emitter 1002 is provided with an emitting port 1003, and a plurality of light source rescue discs 9 are stored in the emitter 1002. When a large amount of smoke that affects the line of sight fills the room, the emitter 1002 can be started to emit a plurality of light source rescue discs 9 to help the personnel to light the escape route.
[0058] Further, the light source rescue disc 9 includes a main power supply system 902, and a plurality of auxiliary lighting lamps 903 are arranged on the upper side end surface of the main power supply system 902. When the light source rescue disc 9 falls to the ground, the auxiliary lighting lamps 903 are turned on to form an illumination route, helping the personnel to quickly confirm the illumination route and escape.
[0059] The outer side end surface of the main power supply system 902 is wrapped with a first silica gel pad 901. The outer side end surface of the main power supply system 902 is wrapped and protected by the first silica gel pad 901, and the first silica gel pad 901 has a thickness of 3-5 cm. The shell is relatively soft, which plays a role in shock absorption and protection of the main power supply system 902. When the emitter 1002 emits the light source rescue disc 9, it will voice prompt the surrounding personnel to pay attention and start to emit the light source rescue disc 9, and pay attention to avoid. When the personnel do not avoid, the light source rescue disc 9 hits the body of the personnel, and the flexible material of the outer surface causes less harm to the body of the personnel.
[0060] The upper side end face of the main power supply system 902 is provided with a reinforced lighting layer, the internal end face of the reinforced lighting layer is filled with nano fluorescent particles or carbon nanometer suspension, the top end face of the reinforced lighting layer is fixedly connected with a reinforced pipe, and the top end face of the main power supply system 902 is connected with a plurality of reinforced nozzles 904. The spraying of nano fluorescent particles or carbon nanometer suspension through the reinforced nozzles 904 can reduce the influence of heavy fog on the light source, improve the lighting brightness of the light source, help personnel quickly see the light source, and determine the direction.
[0061] It is worth noting that the nano fluorescent particles can be attached to the surface of the fog droplets to enhance the directional propagation of light in the fog. The carbon nanometer suspension reduces scattering by adjusting the refractive index matching, and the light transmittance is significantly enhanced.
[0062] As shown in Figures 11-13 The bottom end face of the main power supply system 902 is bonded with an air bag layer 907, the air bag layer 907 is filled with oxygen, and the bottom end face of the air bag layer 907 is installed with a piercing assembly. When personnel are escaping, some dangerous gases will affect the respiratory health of personnel, and in severe cases, personnel cannot walk. At this time, if personnel breathe oxygen, the symptoms of personnel can be alleviated, the harm caused by dangerous gases can be relieved, and after relief, escape can be performed. Therefore, personnel can take the light source rescue disc 9 in the vicinity during escape, use the piercing assembly to pierce the air bag layer 907, release oxygen to help personnel quickly relieve, and after relief, put the light source rescue disc 9 back to the original position and continue to escape.
[0063] The piercing assembly comprises a button 905 and a fixed seat 906, the bottom end face of the main power supply system 902 is fixedly connected with the fixed seat 906, the internal end face of the fixed seat 906 is fixedly connected with a limiting frame 908, the limiting frame 908 is slidably connected with a sliding bottom plate 909, one side end face of the sliding bottom plate 909 is fixedly connected with the button 905, and the sliding bottom plate 909 is slid in the limiting frame 908 to drive the sliding column 910 to move.
[0064] The other side end face of the sliding bottom plate 909 is fixedly connected with a spring 912, the other side end face of the spring 912 is fixedly connected with the sliding column 910, the top end face of the sliding column 910 is fixedly connected with a plurality of piercing needles 911, and the fixed seat 906 is provided with a sliding hole matched with the sliding column 910. When the button 905 drives the sliding bottom plate 909 to move, the sliding column 910 is driven to slide, the sliding of the sliding bottom plate 909 in the limiting frame 908 is controlled under the limitation of the spring 912, the sliding of the piercing needle 911 out of the sliding hole to pierce the air bag layer 907 to release oxygen can be controlled.
[0065] As shown in Figures 7-10As shown, the waste dust recovery mechanism 7 includes a second multi-axis rotating mechanism 701 and a waste dust recovery intelligent box 702. The second multi-axis rotating mechanism 701 has the same structure as the first multi-axis rotating mechanism 601. The second multi-axis rotating mechanism 701 drives the waste dust recovery intelligent box 702 to adjust to any position to adapt to the lighting requirements of the experiment.
[0066] The side end surface of the second multi-axis rotating mechanism 701 is fixedly connected with the waste dust recovery intelligent box 702. A plurality of recovery holes 703 are formed in the waste dust recovery intelligent box 702. The inner end surface of the waste dust recovery intelligent box 702 is provided with a first recovery groove 708 and a second recovery groove 711. The inner end surface of the waste dust recovery intelligent box 702 is connected with a first air guide pipe 709. The first air guide pipe 709 is connected with a waste gas storage box 103. A plurality of adsorption holes are formed in the first air guide pipe 709. The second vacuum pump outputs negative pressure through the plurality of adsorption holes in the first air guide pipe 709 to enter the recovery holes 703 to spray. The smoke generated during the experiment is adsorbed to help the experimental personnel reduce the impact of the smoke.
[0067] The inner end surface of the first recovery groove 708 and the second recovery groove 711 is provided with a heat pipe 710 connected with the first heat rod 606. The bottom end surface of the waste dust recovery intelligent box 702 is fixedly connected with a heat spray head 704. The upper side end surface of the heat spray head 704 is connected with a fan. The heat storage box is connected with the fan. The fan and the heat storage box are located on the inner wall end surface of the waste dust recovery intelligent box 702. The heat pipe 710 is connected with the heat storage box to convey heat to the heat storage box.
[0068] When preheating is needed, the first heat rod 606 guides the heat absorbed by the second LED lamp 604 during work to the heat pipe 710 to convey heat. The heat is conveyed to the heat storage box for storage. The fan absorbs and conveys the heat to the heat spray head 704 for spraying. When heating is needed, the items to be heated are preheated to reduce the heating time and recycle the heat to save energy.
[0069] As shown in the figure, Figure 9 The security mechanism further includes a second waste gas treatment mechanism. The second waste gas treatment mechanism includes an automatic telescopic plate 705. A pair of opposite end surfaces of the waste dust recovery intelligent box 702 are fixedly connected with the automatic telescopic plate 705. The automatic telescopic plate 705 includes a first telescopic plate 706. The inner wall end surfaces of the automatic telescopic plate 705 and the first telescopic plate 706 are provided with a limiting groove. The limiting groove is connected with a fifth waste gas conveying pipe.
[0070] The automatic telescopic plate 705 is an automatic telescopic mechanism that can drive the first telescopic plate 706 to extend to a certain distance to adsorb the dangerous gas at a long distance into the waste gas storage box 103 for storage.
[0071] The first telescopic plate 706 is provided with a plurality of first air suction holes 707, and the bottom end face of the automatic telescopic plate 705 is connected with a second waste gas conveying pipe, the second waste gas conveying pipe is connected with a fifth waste gas conveying pipe, and the second waste gas conveying pipe is connected with a second vacuum pump. The second vacuum pump conveys negative pressure to the fifth waste gas conveying pipe and the second waste gas conveying pipe, and then the plurality of first air suction holes 707 are sprayed to adsorb the dangerous gas.
[0072] It should be noted that the difference between example 1 and example 2 is that example 1 does not use a multi-light distribution mechanism and a waste dust recovery mechanism 7, and example 1 is only suitable for laboratory use for simple experiments, while example 2 is suitable for larger laboratories and laboratory use with high risk factors.
[0073] In use, as shown in Figure 6 When a large amount of fog appears due to operation errors or accidents between gases, or a fire occurs, and the room is full of smoke, first start the multi-light distribution mechanism 10, the automatic lifting mechanism 104 drives the emitter 1002 to move upward to the position matched with the outlet, the control automatic turntable 1001 drives the emitter 1002 to rotate to the position opposite to the outlet, the infrared laser lamp starts to irradiate to the outlet direction, at the same time, the voice prompt starts to emit the light source rescue disc 9, other personnel avoid, the light source rescue disc 9 lands on the optimal route of the outlet, forms a guiding route, the auxiliary illuminating lamp 903 provides illumination, and the jet head 904 sprays nanometer fluorescent particles or carbon nanometer suspension to reduce the influence of the large fog on the light source, improve the illumination brightness of the light source, help personnel to quickly see the light source, judge the direction, and quickly escape.
[0074] As shown in Figure 9 When indoor dangerous gas leaks, first start the temporary protection mechanism to form a relatively safe temporary protection space for the experimental personnel to use for temporary avoidance, and then start the waste dust recovery mechanism 7, the automatic telescopic plate 705 controls the first telescopic plate 706 to move forward to a certain distance, the automatic telescopic plate 705 and the air hole 105 are in opposite directions and do not affect each other, and the automatic telescopic plate 705 starts to adsorb the dangerous gas to the waste gas storage box 103 for storage through the first telescopic plate 706.
[0075] It is obvious to those skilled in the art that the present application is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be regarded as exemplary and non-limiting, and the scope of the present application is defined by the appended claims rather than the above description, and therefore all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present application. Any reference signs in the claims should not be regarded as limiting the claims involved.
[0076] Furthermore, it should be understood that although the description is made according to the embodiments, not every embodiment contains only one independent technical solution, and the description of the specification is only for the sake of clarity, and the skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be combined appropriately to form other embodiments that can be understood by the skilled in the art.
Claims
1. An energy-saving LED lamp comprising a base and a universal wheel, characterized in that, The utility model relates to a security mechanism, including first exhaust treatment mechanism, first exhaust treatment mechanism includes automatic telescopic pipe and air suction head, automatic telescopic pipe connects vacuum pump unit, The heat dissipation mechanism includes a liquid cooling plate and a cooling mechanism, the cooling mechanism includes a plurality of heat dissipation nozzles, the plurality of heat dissipation nozzles are located at the peripheral end surface of the second LED lamp, the heat dissipation nozzles are connected to a gas storage box, the gas storage box stores cooling gas, and the gas storage box delivers the cooling gas to the heat dissipation nozzles to spray and cool the plurality of end surfaces of the second LED lamp, The temporary protection mechanism includes air holes and a vacuum pump unit, a plurality of air holes are formed in the plurality of end surfaces of the base, a gas delivery plate is connected to the end surface of the base close to the air holes, the gas delivery plate is connected to a gas delivery pipe, and the gas delivery pipe is connected to the vacuum pump unit, The plurality of light distribution mechanisms are arranged on the upper end surface of the base, the light distribution mechanism includes an automatic lifting mechanism, an automatic turntable, an emitter and an emission port, the emitter stores a plurality of light source rescue discs, and the light source rescue disc includes a main power supply system, an auxiliary illuminating lamp and an air bag layer. The first LED lamp is fixedly connected to the upper end surface of the base, the outer shell is installed on one side end surface of the first multi-axis rotating mechanism, the second LED lamp is installed in the outer shell, the heat dissipation nozzles are arranged on the plurality of end surfaces of the outer shell, the first heat conduction rod is arranged between the outer shell and the second LED lamp, and the heat dissipation rod is connected to the first heat conduction rod.
2. The energy-saving LED lamp according to claim 1, characterized in that, The first exhaust treatment mechanism further includes an exhaust gas storage box, the automatic telescopic pipe is connected to a first exhaust gas delivery pipe, the first exhaust gas delivery pipe is connected to a second vacuum pump, and the second vacuum pump is installed on the inner wall end surface of the exhaust gas storage box.
3. The energy saving LED lamp according to claim 2, wherein, The automatic lifting mechanism is fixedly connected to the inner wall end surface of the base, the automatic lifting mechanism is fixedly connected to the automatic turntable, the top end surface of the automatic turntable is connected to the emitter, and the emitter is provided with the emission port on one side end surface.
4. The energy saving LED lamp of claim 1, wherein, The plurality of auxiliary illuminating lamps are arranged on the upper end surface of the main power supply system, the first silica gel pad is wrapped on the outer side end surface of the main power supply system, the main power supply system is provided with a reinforced illumination layer on the upper end surface, the reinforced pipe is fixedly connected to the top end surface of the reinforced illumination layer, a plurality of reinforced nozzles are connected to the top end surface of the reinforced illumination layer, and the inner end surface of the reinforced illumination layer is filled with nano fluorescent particles or carbon nano suspension.
5. The energy saving LED lamp of claim 4, wherein, The air bag layer is bonded to the bottom end surface of the main power supply system, the air bag layer is filled with oxygen, and the puncture assembly is installed on the bottom end surface of the air bag layer.
6. The energy saving LED lamp of claim 5, wherein, 7. The energy saving LED lamp of claim 6, wherein, The puncture assembly includes a button and a fixed seat, the bottom end surface of the main power supply system is fixedly connected with the fixed seat, the inner end surface of the fixed seat is fixedly connected with a limiting box, a sliding bottom plate is slidably connected in the limiting box, the side end surface of the sliding bottom plate is fixedly connected with the button, the other side end surface of the sliding bottom plate is fixedly connected with a spring, the top end surface of the sliding column is fixedly connected with a plurality of puncture needles, and a sliding hole matched with the sliding column is formed in the fixed seat.
8. The energy-saving LED lamp according to claim 1 or 7, characterized in that, The temporary protection mechanism further comprises a waste dust recovery mechanism, the waste dust recovery mechanism comprises a second multi-shaft rotating mechanism and a waste dust recovery intelligent box, one side end surface of the second multi-shaft rotating mechanism is fixedly connected with the waste dust recovery intelligent box, a plurality of recovery holes are formed in the waste dust recovery intelligent box, a first recovery groove and a second recovery groove are arranged in the inner end surface of the waste dust recovery intelligent box, first air guide pipes are connected to the inner side end surfaces of the first recovery groove and the second recovery groove, the first air guide pipes are connected with a waste gas storage box, a plurality of adsorption holes are formed in the first air guide pipes, heat conducting pipes are arranged in the inner end surfaces of the first recovery groove and the second recovery groove, and the heat conducting pipes are connected with first heat conducting rods.
9. The energy saving LED lamp of claim 8, wherein, The security mechanism further comprises a second waste gas treatment mechanism, the second waste gas treatment mechanism comprises an automatic telescopic plate, a pair of opposite end surfaces of the waste dust recovery intelligent box are fixedly connected with the automatic telescopic plate, the automatic telescopic plate comprises a first telescopic plate, a plurality of first air suction holes are formed in the first telescopic plate, the automatic telescopic plate is connected with a second waste gas conveying pipe, the second waste gas conveying pipe is connected with a second vacuum pump, a heat conducting spray head is fixedly connected to the bottom end surface of the waste dust recovery intelligent box, a fan is connected to the upper side end surface of the heat conducting spray head, a heat storage box is connected with the fan, and the heat conducting pipes are connected with the heat storage box.
10. An energy saving LED luminaire, characterized by, The energy-saving LED lamp is applied to the energy-saving LED lamp in claims 1-9, and a lens is fixedly installed on the outer side end surface of the lamp.
Citation Information
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