Energy switching device for low-carbon standard maintenance of precast beam
By designing an energy switching device for low-carbon standard maintenance of prefabricated beams, the problems of damage to the contact insert of the energy switching device in the intermediate frequency heat treatment equipment are solved, and the problem of damage to the contact insert of the energy switching device in the medium frequency heat treatment equipment is realized, effective storage and conversion of solar energy, real-time monitoring and analysis of temperature, and disconnecting the power supply to protect the circuit in abnormal situations, improving the safety and reliability of the equipment.
Patent Information
- Application Number
- CN202421451498.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-24
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-06-24
AI Technical Summary
The energy switching devices in existing intermediate frequency heat treatment equipment are prone to generate arcs and heat when linked, resulting in damage to the contact insert, and lack effective temperature detection and data analysis capabilities, making it impossible to safely disconnect the power supply and protect the circuit.
Design an energy switching device for low-carbon standard maintenance of prefabricated beams, including insulating base plate, protective cavity and regulatory conversion components. The control and conversion components have built-in storage batteries, power converters, data analyzers, temperature sensors and safety switches. Through these components, the storage and conversion of solar energy, temperature detection and data analysis are realized, and the power supply is disconnected in abnormal situations to protect the circuit.
The device realizes effective storage and conversion of solar energy through battery storage and power converters. The temperature detector and data analyzer can monitor and analyze temperature data in real time. The safety switch disconnects the power supply in abnormal situations, improving the safety and reliability of the equipment and extending the service life of the contact plug-in board.
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Figure CN222884519U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy equipment, in particular to an energy switching device for low-carbon standard curing of prefabricated beams. Background Art
[0002] In medium frequency heat treatment equipment, the energy switching device plays the on-off function of voltage and current transmission of a certain frequency, realizing the energy transfer function of the equipment. At present, the linkage mode of the energy switching device is a plug-in structure, which requires a maximum current of 5000 amperes to pass under working conditions, and has high requirements for contacts and heat dissipation. When the energy switching device is linked, its contact plug-in plate repeatedly inserts and lifts, so arcs and heat are generated at the contact position, which leads to surface burns and serious damage to the contact plug-in plate; and the contact plug-in plate is a disposable spare part, which cannot be used after being damaged, resulting in the energy switching device being unable to be used normally.
[0003] A medium frequency machine energy switching device is proposed in the patent with publication number CN215933401 U, which includes an insulating shell, an insulating partition, an insulating bottom plate, an insulating top plate, an electrode connecting plate, a cooling channel, a contact plate, an L-shaped buckle portion, a lifting drive source, a multi-segment contact, a conductive contact, an arc-shaped contact surface, and an insulating connecting plate. The insulating shell 10 includes an insulating bottom plate 12 and an insulating top plate 13 arranged opposite to each other up and down, and two insulating side plates 14 fixed between the insulating bottom plate 12 and the insulating top plate 13. The two insulating side plates 14 are respectively distributed on the two electrode connecting plates. The left and right sides of the connecting plate 20, the insulating bottom plate 12, the insulating side plate 14 and the insulating top plate 13 are fixedly connected by a number of mounting screws 70 extending up and down, the insulating partition 11 and the electrode connecting plate 20 are fixed on the upper end surface of the insulating bottom plate 12, the lifting drive source 40 is fixed on the upper end surface of the insulating top plate 13, and the outer contour size of the insulating housing 10 is consistent with the outer contour size of the original spare part, so that the medium frequency machine energy switching device can be directly modularly installed without changing any part. The insulating bottom plate 12, the insulating top plate 13, the insulating The material of the edge plate 14 and the insulating partition 11 are both G10, which is a glass fiber and resin rolled composite material with outstanding insulation, thereby improving the overall insulation of the insulating shell 10. The threaded connection hole at the installation screw 70 adopts a spring thread plus anaerobic adhesive anti-loosening design, so that the fixed position of each component of the insulating shell 10 is not easy to be damaged, and the overall structural strength of the insulating shell 10 is improved. The material of the installation screw 70 is white steel, which can prevent eddy current heat increase in the working state of the medium frequency machine energy switching device, and also withstand the impact of the cylinder-driven multi-stage contact 50 pressing down nearly 2400 times a day. The conductive contact 51 and the insulating connecting plate 60, the contact plate 30 and the electrode connecting plate 20, and the electrode connecting plate 20 and the insulating bottom plate 12 are all detachably connected by screws. When some parts of the medium frequency machine energy switching device are damaged, only the damaged conductive contact 51, or the contact plate 30, or the electrode connecting plate 20 needs to be replaced, and the maintenance is more convenient and quick, and the maintenance efficiency is improved. However, there are still the following problems in this patent:
[0004] The existing prefabricated beam maintenance does not have a good temperature detection device. The detected temperature cannot be analyzed by the detector in a hurry, the power supply cannot be safely disconnected, the circuit is protected, and the solar energy cannot be stored and reused.
[0005] In view of the above problems, it is necessary to design an energy switching device for low-carbon standard maintenance of prefabricated beams to overcome the above problems. Utility Model Content
[0006] The main purpose of the utility model is to provide an energy switching device for low-carbon standard maintenance of prefabricated beams, which can effectively solve the problems in the background technology.
[0007] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0008] An energy switching device for low-carbon standard maintenance of prefabricated beams, comprising an insulating bottom plate and a protective cavity, wherein the top of the insulating bottom plate is provided with a protective cavity, and a regulating and converting component is arranged inside the protective cavity;
[0009] The control conversion component includes a storage battery arranged at the rear end of the protection cavity, a conductive tube is arranged on the top of the storage battery, an electric energy converter is arranged on the right side of the storage battery, a data analyzer is arranged in the middle of the protection cavity, a data import block is arranged on the left side of the data analyzer, a temperature sensor is arranged on the left side of the data import block, a conduit is arranged at one end of the temperature sensor, and the other end of the conduit away from the temperature sensor is connected to a conductive block, a temperature detector is arranged on the left side of the conductive block, a detection probe is arranged at the left end of the top of the temperature detector, and a safety switch is arranged on the right side of the data analyzer;
[0010] A supporting bottom plate is arranged on the inner wall of the insulating bottom plate, a mounting seat is arranged in the middle of the top of the protective cavity, a power storage block is installed on the top of the mounting seat, a solar photovoltaic panel is arranged on the top of the power storage block, and a data display screen is arranged on the front of the protective cavity.
[0011] As a preferred solution of the utility model, the protective cavity and the mounting seat are detachably connected, the power storage block is electrically connected to the storage battery through a conductive tube, and the storage battery is electrically connected to the power converter.
[0012] As a preferred solution of the utility model, the insulating bottom plate is detachably connected to the protective cavity, the insulating bottom plate is detachably connected to the supporting bottom plate, and the protective cavity is detachably connected to the data display screen.
[0013] As a preferred solution of the utility model, the temperature detector is electrically connected to the detection probe, and the temperature detector is electrically connected to the temperature sensor through the temperature detector and the catheter.
[0014] As a preferred solution of the utility model, the temperature sensor is electrically connected to the data import block, and the data import block is electrically connected to the data analyzer.
[0015] As a preferred solution of the utility model, the safety switch is electrically connected to the temperature detector, and the data analyzer is electrically connected to the power converter via external wires.
[0016] Beneficial Effects
[0017] Compared with the prior art, the utility model has the following beneficial effects:
[0018] 1. The energy switching device for low-carbon standard maintenance of prefabricated beams can store solar energy through the storage battery, which is convenient and energy-saving. The temperature detector uses the detection probe on the top to detect the temperature in the prefabricated beam maintenance shed. The conductive block is electrically connected to the conduit, and the temperature is imported into the data analyzer through the data import block to detect the temperature data. When an abnormality is detected, the alarm set on the top right end of the temperature detector sounds an alarm, and its safety switch disconnects the power supply to protect the circuit and improve safety. A data display screen can display the temperature detection data, and the safety switch switches the power supply when an abnormality is detected. The storage battery and the power converter can convert solar energy into electrical energy to facilitate energy switching and improve safety. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0020] Figure 2 It is a schematic diagram of the structure of the power storage block of the utility model;
[0021] Figure 3 It is a schematic diagram of the structure of the control conversion component of the utility model.
[0022] In the figure: 1. Insulating base plate; 2. Protective cavity; 3. Control and conversion component; 4. Support base plate; 5. Mounting base; 6. Storage block; 7. Solar photovoltaic panel; 8. Data display screen; 301. Storage battery; 302. Conductive tube; 303. Power converter; 304. Data analyzer; 305. Data import block; 306. Temperature sensor; 307. Conduit; 308. Conductive block; 309. Temperature detector; 310. Detection probe; 311. Safety switch. DETAILED DESCRIPTION
[0023] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further described below in conjunction with specific implementation methods.
[0024] like Figure 1-3 As shown, an energy switching device for low-carbon standard curing of prefabricated beams comprises an insulating base plate 1 and a protective cavity 2. The protective cavity 2 is installed on the top of the insulating base plate 1, and a regulating and converting component 3 is arranged inside the protective cavity 2;
[0025] The control conversion assembly 3 includes a storage battery 301 arranged at the rear end of the protection cavity 2, a conductive tube 302 is arranged on the top of the storage battery 301, an electric energy converter 303 is arranged on the right side of the storage battery 301, a data analyzer 304 is arranged in the middle of the protection cavity 2, a data import block 305 is arranged on the left side of the data analyzer 304, a temperature sensor 306 is arranged on the left side of the data import block 305, a conduit 307 is arranged at one end of the temperature sensor 306, and the other end of the conduit 307 away from the temperature sensor 306 is connected to a conductive block 308, a temperature detector 309 is arranged on the left side of the conductive block 308, a detection probe 310 is arranged at the left end of the top of the temperature detector 309, and a safety switch 311 is arranged on the right side of the data analyzer 304;
[0026] The inner wall of the insulating bottom plate 1 is provided with a supporting bottom plate 4, a mounting seat 5 is provided in the middle of the top of the protective cavity 2, a power storage block 6 is installed on the top of the mounting seat 5, a solar photovoltaic panel 7 is provided on the top of the power storage block 6, and a data display screen 8 is provided on the front of the protective cavity 2;
[0027] The protective cavity 2 is detachably connected to the mounting seat 5, the power storage block 6 is electrically connected to the storage battery 301 through the conductive tube 302, and the storage battery 301 is electrically connected to the power converter 303; the insulating bottom plate 1 is detachably connected to the protective cavity 2, the insulating bottom plate 1 is detachably connected to the supporting bottom plate 4, and the protective cavity 2 is detachably connected to the data display screen 8; the temperature detector 309 is electrically connected to the detection probe 310, and the temperature detector 309 is electrically connected to the temperature sensor 306 through the temperature detector 309 and the conduit 307; the temperature sensor 306 is electrically connected to the data import block 305, and the data import block 305 is electrically connected to the data analyzer 304; the safety switch 311 is electrically connected to the temperature detector 309, and the data analyzer 304 is electrically connected to the power converter 303 through external wires;
[0028] Among them, the solar energy can be stored by the set storage battery 301, which is convenient for energy-saving use. The set temperature detector 309 uses the detection probe 310 on the top to detect the temperature in the prefabricated beam maintenance shed. The conductive block 308 is electrically connected to the conduit 307, and the temperature is imported into the data analyzer 304 through the data import block 305 through the temperature sensor 306. The temperature data is detected. When an abnormality is detected, the alarm set at the top right end of the temperature detector 309 sounds an alarm, and its safety switch 311 disconnects the power supply to protect the circuit and improve safety. The data display screen 8 is set to display the temperature detection data. The safety switch 311 switches the power supply when an abnormality is detected. The storage battery 301 and the power converter 303 can convert solar energy into electrical energy to facilitate energy switching and improve safety.
[0029] It should be noted that the utility model is an energy switching device for low-carbon standard maintenance of prefabricated beams. When in use, the temperature detector 309 is installed in the prefabricated beam maintenance shed to detect its internal temperature using the detection probe 310, and the temperature detection is transmitted to the data analyzer 304 through the temperature sensor 306 and the data import block 305 by the conduit 307 to detect its temperature data. When an abnormal temperature is detected, the alarm at the top right end of the detector 309 sounds an alarm to warn, and its safety switch 311 can disconnect the power supply to protect the normal use of the data analyzer 304. Its solar photovoltaic panel 7 continues to collect solar energy through the storage block 6 for storage, and the conductive tube 302 imports solar energy into the storage battery 301. The power converter 303 can convert solar energy into electrical energy, which is connected by external wires so that the power stored in the storage battery 301 is supplied to the data analyzer 304 for use, and its temperature detection data can be displayed on the data display screen 8 for real-time viewing.
[0030] The above shows and describes the basic principle and main features of the utility model and the advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only for explaining the principle of the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection claimed by the utility model is defined by the attached claims and their equivalents.
Claims
1. An energy switching device for low-carbon standard curing of prefabricated beams, comprising an insulating bottom plate (1) and a protective cavity (2), characterized in that: A protective cavity (2) is installed on the top of the insulating bottom plate (1), and a regulating and converting component (3) is arranged inside the protective cavity (2); The control conversion component (3) comprises a storage battery (301) arranged at the rear end of the protection cavity (2); a conductive tube (302) is arranged on the top of the storage battery (301); an electric energy converter (303) is arranged on the right side of the storage battery (301); a data analyzer (304) is arranged in the middle of the protection cavity (2); a data import block (305) is arranged on the left side of the data analyzer (304); a temperature sensor (306) is arranged on the left side of the data import block (305); a conduit (307) is arranged at one end of the temperature sensor (306); a conductive block (308) is connected to the other end of the conduit (307) away from the temperature sensor (306); a temperature detector (309) is arranged on the left side of the conductive block (308); a detection probe (310) is arranged at the left end of the top of the temperature detector (309); and a safety switch (311) is arranged on the right side of the data analyzer (304); The inner wall of the insulating base plate (1) is provided with a supporting base plate (4), the middle part of the top of the protective cavity (2) is provided with a mounting seat (5), the top of the mounting seat (5) is provided with a power storage block (6), the top of the power storage block (6) is provided with a solar photovoltaic panel (7), and the front of the protective cavity (2) is provided with a data display screen (8).
2. The energy switching device for low-carbon standard curing of prefabricated beams according to claim 1 is characterized in that: The protective cavity (2) and the mounting seat (5) are detachably connected, the power storage block (6) is electrically connected to the storage battery (301) via a conductive tube (302), and the storage battery (301) is electrically connected to the power converter (303).
3. The energy switching device for low-carbon standard curing of prefabricated beams according to claim 1 is characterized in that: The insulating base plate (1) and the protective cavity (2) are detachably connected, the insulating base plate (1) and the supporting base plate (4) are detachably connected, and the protective cavity (2) and the data display screen (8) are detachably connected.
4. The energy switching device for low-carbon standard curing of prefabricated beams according to claim 1 is characterized in that: The temperature detector (309) is electrically connected to the detection probe (310), and the temperature detector (309) is electrically connected to the temperature sensor (306) via the temperature detector (309) and the conduit (307).
5. The energy switching device for low-carbon standard curing of prefabricated beams according to claim 1 is characterized in that: The temperature sensor (306) is electrically connected to the data import block (305), and the data import block (305) is electrically connected to the data analyzer (304).
6. The energy switching device for low-carbon standard curing of prefabricated beams according to claim 1 is characterized in that: The safety switch (311) is electrically connected to the temperature detector (309), and the data analyzer (304) is electrically connected to the power converter (303) via external wires.
Citation Information
Patent Citations
Medium-frequency machine energy switching device
CN215933401U