Instrument anti-crystallization device
By using a combination of damping frame plate, L-shaped porous heat storage ceramic and electric heating tube in the anti-crystal device of the instrument, the problems of waste of power and insufficient limits caused by the reduction of external temperature in the traditional device are solved, and a more efficient anti-crystal and buffering and shock absorption effect is achieved.
Patent Information
- Application Number
- CN202421349514.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-14
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-06-14
AI Technical Summary
Due to the continuous decrease in the external temperature of traditional instruments and instruments, the anti-crystallation devices require electric heating to be heated, wasting a lot of power and energy. At the same time, the existing buffer devices cannot be effectively limited, causing the instruments and instruments to shake during transportation and cause damage.
An anti-crystal device including a damping frame plate, an L-shaped porous heat storage ceramic and an electric heating tube is designed. The limit is achieved through the combination of the damping frame plate and the L-shaped porous heat storage ceramic, and the heating pipe is heated from different positions to improve the anti-crystallation effect, and the heat is absorbed and dissipated through the L-shaped porous heat storage ceramic, reducing the frequency of use of the electric heat pipe.
It effectively avoids the shaking of instruments and meters during transportation, improves the anti-crystallation effect, reduces the frequency of electric heating, saves power and solves the problems of waste of electricity and insufficient limits of traditional devices.
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Figure CN222839840U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of crystallization prevention, in particular to an instrument and meter crystallization prevention device. Background Art
[0002] After the hot saturated solution is cooled, the solute precipitates in the form of crystals. This process is called crystallization. Crystallization is first of all a geophysical concept. The value of natural gold, natural silver and natural copper formed by crystallization is much higher than the value of gold, silver and copper obtained by smelting. Crystallization refers to the process of solid solute precipitation from saturated solution. Due to the particularity and precision of instruments and meters, they need to be well protected from shock during transportation to prevent them from being damaged during transportation. At present, the shockproof devices used in transportation are mostly soft foam pads under the instruments to shockproof the instruments and meters. In addition, during transportation, due to the low weather temperature, serious crystallization will occur, making it impossible to install and use the instruments and meters normally.
[0003] According to the published patent 202022176567.8, an anti-crystallization device for instruments and meters comprises a box body, a fixed plate is provided at the bottom of the box body, a shock-absorbing mechanism is symmetrically provided at the bottom of the fixed plate, an anti-slip pad is provided under the shock-absorbing mechanism, an electric heating chamber is provided inside the box body, an electric heating wire is provided in the electric heating chamber, a composite silicate layer is provided inside the motor heat chamber, a glass wool layer is provided inside the composite silicate layer, a placement cavity is provided inside the glass wool layer, a shock-absorbing pad is provided between the placement cavity and the bottom of the glass wool layer, instruments and meters are placed above the shock-absorbing pad, a display screen and a control button are provided at the front of the instruments and meters, so that the device has a dual thermal insulation effect, avoids heating the box body all the time, and will not cause crystallization of the instruments and meters while reducing energy consumption, and shock-absorbing devices are provided inside and outside the box body to prevent the instruments and meters from being bumped during transportation and reducing the accuracy of the instruments and meters. In the process of realizing the utility model, the inventor found that at least The following problems have not been solved. Although the temperature is raised to above the crystallization point by using the relationship between the crystallization point and the temperature of the material and using electric heating, the crystals on site are melted. A composite silicate layer is arranged inside the electric heating chamber, and a glass wool layer is arranged inside the composite silicate layer, which can make the inside of the box have thermal conductivity and good insulation effect. The function solves the problem that during transportation, due to the low weather temperature, serious crystallization will occur, making the instrumentation unable to be installed and used normally. During use, the traditional instrumentation anti-crystallization device needs to use electric heating to heat the instrumentation due to the continuous decrease in the external weather temperature, which will waste a lot of electric energy. Moreover, although the existing buffer device can buffer the instrumentation, it cannot effectively limit the position of the instrumentation during the buffering process, resulting in shaking of the instrumentation during transportation, causing damage to the instrumentation. For this reason, it is necessary to design a new technical solution to solve it. Utility Model Content
[0004] The purpose of the utility model is to overcome the deficiencies of the prior art, meet actual needs, and provide an instrument anti-crystallization device to solve the problem that the current traditional instrument anti-crystallization device needs to use electric heating to heat the instrument due to the continuous decrease in external weather temperature, which wastes a lot of electric energy. Moreover, although the existing buffer device can buffer the instrument, it cannot effectively limit the instrument during the buffering process, resulting in the shaking of the instrument during transportation, causing the technical problem of damage to the instrument.
[0005] In order to achieve the purpose of the utility model, the technical solution adopted by the utility model is: designing an instrument anti-crystallization device, including a device box, and also including:
[0006] A damping frame plate is fixed inside the device box;
[0007] The anti-crystallization mechanism is fixed to the upper and lower ends of both sides of the inner wall of the damping frame plate, and the anti-crystallization mechanism includes a plurality of L-shaped porous heat storage ceramics;
[0008] Electric heating tubes are fixed between the plurality of L-shaped porous heat storage ceramics.
[0009] Preferably, an instrument body is clamped between the plurality of L-shaped porous thermal storage ceramics.
[0010] Preferably, a plurality of rubber airbags are fixed to the inner walls of the plurality of L-shaped porous thermal storage ceramics.
[0011] Preferably, threaded grooves are provided at four corners of the top of the device box, and fixing bolts are threadedly connected inside the threaded grooves, and the tops of the fixing bolts pass through the top cover of the box.
[0012] Preferably, one end of a hinge is rotatably connected to one side of the front end of the device box, a box baffle is fixed to the other end of the hinge, a handle is fixed to one side of the front end of the box baffle, a temperature controller is installed in the middle of the front end of the box baffle, and the temperature controller is electrically connected to the electric heating tube.
[0013] Preferably, support bases are fixed at the four corners of the bottom of the device box.
[0014] Compared with the prior art, the beneficial effects of the utility model are:
[0015] 1. The utility model combines the damping frame plate, the L-shaped porous thermal storage ceramics and the electric heating tube, which can not only use the damping frame plate and the L-shaped porous thermal storage ceramics for limiting, thereby preventing the shaking of the instrument during transportation, but also, because the electric heating tube is arranged between the multiple L-shaped porous thermal storage ceramics, the electric heating tube can be used to heat the instrument from different positions to prevent crystallization, thereby improving the anti-crystallization effect. Moreover, because the multiple L-shaped porous thermal storage ceramics are arranged, the L-shaped porous thermal storage ceramics can be used to absorb the heat generated by the electric heating tube, and after the electric heating tube is closed, the temperature in the box After the temperature drops, the heat is continuously dissipated, thereby avoiding the crystallization of the instrument, reducing the frequency of using the electric heating tube, saving electric energy, and solving the problem of the traditional anti-crystallization device of the instrument. As the external weather temperature continues to drop, it is necessary to use electric heating to heat the instrument, which wastes a lot of electric energy. Moreover, although the existing buffer device can buffer the instrument, it cannot effectively limit the instrument during the buffering process, resulting in the shaking of the instrument during transportation, causing the technical problem of damage to the instrument.
[0016] 2. The utility model combines L-shaped porous thermal storage ceramics and rubber airbags, and multiple rubber airbags can be arranged on the inner wall of the L-shaped porous thermal storage ceramics. When multiple L-shaped porous thermal storage ceramics are engaged with instruments, they can fit with the instruments through the multiple rubber airbags, thereby buffering and shock-absorbing the instruments through the multiple rubber airbags, thereby improving the buffering and shock-absorbing effect on the instruments. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the internal structure of the device box of the utility model;
[0018] Figure 2 It is a schematic diagram of the overall structure of the utility model;
[0019] Figure 3 This is a schematic diagram of the L-shaped porous thermal storage ceramic structure of the utility model.
[0020] In the figure: 1. device box; 101. threaded groove; 102. fixing bolt; 103. hinge; 104. box baffle; 105. handle; 106. temperature controller; 107. support base; 108. box top cover; 2. damping frame plate; 201. L-shaped porous thermal storage ceramic; 202. electric heating tube; 203. instrument body; 204. rubber airbag. DETAILED DESCRIPTION
[0021] The utility model is further described below in conjunction with the accompanying drawings and embodiments:
[0022] Example 1: An instrumentation anti-crystallization device, see Figures 1 to 3, including a device box 1, and also including: a damping frame plate 2, fixed inside the device box 1; an anti-crystallization mechanism, fixed at the upper and lower ends of the inner wall of the damping frame plate 2, the anti-crystallization mechanism including a plurality of L-shaped porous heat storage ceramics 201; electric heating tubes 202 are fixed between the plurality of L-shaped porous heat storage ceramics 201, first insert the instrument body 203 from the front of the device box 1 into the plurality of L-shaped porous heat storage ceramics 201, and use the damping frame plate 2 and the L-shaped porous heat storage ceramics 201 for limiting, so as to avoid the shaking of the instrument during transportation, and because the electric heating tubes 202 are arranged between the plurality of L-shaped porous heat storage ceramics 201, the plurality of electric heating tubes 202 can be opened to heat the instrument from different positions to prevent crystallization, thereby improving the anti-crystallization effect. Not only that, due to the arrangement There are multiple L-shaped porous heat storage ceramics 201, which can utilize the L-shaped porous heat storage ceramics 201 to absorb the heat generated by the electric heating tube 202, and after the electric heating tube 202 is turned off and the temperature in the box drops, the heat is continuously dissipated, thereby avoiding crystallization of instruments and meters. The frequency of use of the electric heating tube 202 can be reduced, saving electric energy, and solving the problem of traditional anti-crystallization devices for instruments and meters. Due to the continuous decrease in external weather temperature, it is necessary to use electric heating to heat the instruments and meters, resulting in a large amount of electric energy being wasted. Moreover, although the existing buffer device can buffer the instruments and meters, it cannot effectively limit the position of the instruments and meters during the buffering process, resulting in the instruments and meters shaking during transportation, causing technical problems such as damage to the instruments and meters.
[0023] For details, see Figure 1 An instrument body 203 is clamped between the multiple L-shaped porous thermal storage ceramics 201.
[0024] For further information, see Figure 3 A plurality of rubber airbags 204 are fixed to the inner walls of the plurality of L-shaped porous thermal storage ceramics 201. When the plurality of L-shaped porous thermal storage ceramics 201 are engaged with instruments, the plurality of rubber airbags 204 can fit with the instruments, thereby buffering and shock absorbing the instruments through the plurality of rubber airbags 204, thereby improving the buffering and shock absorbing effect on the instruments.
[0025] It is worth noting that see Figure 1 , thread grooves 101 are provided at four corners of the top of the device box 1, and fixing bolts 102 are connected to the inner threads of the thread grooves 101, and the tops of the fixing bolts 102 pass through the box top cover 108.
[0026] It is worth noting that see Figure 2One end of a hinge 103 is rotatably connected to one side of the front end of the device box 1, and a box baffle 104 is fixed to the other end of the hinge 103. A handle 105 is fixed to one side of the front end of the box baffle 104. A temperature controller 106 is installed in the middle of the front end of the box baffle 104, and the temperature controller 106 is electrically connected to the electric heating tube 202.
[0027] It is worth mentioning that see Figure 2 A support base 107 is fixed at the four corners of the bottom of the device box 1.
[0028] When using an instrument and meter anti-crystallization device, first insert the instrument and meter main body 203 from the front of the device box 1 into the multiple L-shaped porous thermal storage ceramics 201, and use the damping frame plate 2 and the L-shaped porous thermal storage ceramics 201 to limit the position, so as to prevent the instrument and meter from shaking during transportation. Moreover, since electric heating tubes 202 are arranged between the multiple L-shaped porous thermal storage ceramics 201, the multiple electric heating tubes 202 can be opened to heat the instrument and meter from different positions to prevent crystallization, thereby improving the anti-crystallization effect. Moreover, since the multiple L-shaped porous thermal storage ceramics 201 are arranged, the L The L-shaped porous thermal storage ceramic 201 absorbs the heat generated by the electric heating tube 202, and after the electric heating tube 202 is turned off and the temperature in the box drops, the heat is continuously dissipated, thereby avoiding crystallization of instruments and meters, reducing the frequency of use of the electric heating tube 202, and saving electric energy. A plurality of rubber airbags 204 are arranged on the inner wall of the L-shaped porous thermal storage ceramic 201, so that when a plurality of L-shaped porous thermal storage ceramics 201 are engaged with instruments and meters, they can fit with the instruments and meters through the plurality of rubber airbags 204, thereby buffering and shock-absorbing the instruments and meters through the plurality of rubber airbags 204, thereby improving the buffering and shock-absorbing effect on the instruments and meters.
[0029] In addition, the components designed in the present invention are all universal standard parts or components known to technical personnel in the field. Their structures and principles can be known to technical personnel through technical manuals or through conventional experimental methods. They can be fully implemented by technical personnel in the field, and there is no need to elaborate. The content protected by the present invention does not involve improvements to internal structures and methods.
[0030] The embodiments of the present invention disclose preferred embodiments, but are not limited thereto. A person skilled in the art can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. However, as long as they do not deviate from the spirit of the present invention, they are all within the protection scope of the present invention.
Claims
1. An anti-crystallization device for instruments and meters, comprising a device housing (1), characterized in that: Also includes: A damping frame plate (2) is fixed inside the device box (1); An anti-crystallization mechanism is fixed to the upper and lower ends of both sides of the inner wall of the damping frame plate (2), the anti-crystallization mechanism comprising a plurality of L-shaped porous heat storage ceramics (201); An electric heating tube (202) is fixed between the plurality of L-shaped porous heat storage ceramics (201).
2. The anti-crystallization device for instruments and meters according to claim 1, characterized in that: An instrument body (203) is clamped between the plurality of L-shaped porous heat storage ceramics (201).
3. The anti-crystallization device for instruments and meters according to claim 1, characterized in that: A plurality of rubber air bags (204) are fixed to the inner walls of the plurality of L-shaped porous heat storage ceramics (201).
4. The anti-crystallization device for instruments and meters according to claim 1, characterized in that: The top four corners of the device box (1) are provided with threaded grooves (101), the threaded interior of the threaded grooves (101) is threadedly connected with fixing bolts (102), and the tops of the fixing bolts (102) pass through the box top cover (108).
5. The anti-crystallization device for instruments and meters according to claim 1, characterized in that: One end of a hinge (103) is rotatably connected to one side of the front end of the device housing (1); a housing baffle (104) is fixed to the other end of the hinge (103); a handle (105) is fixed to one side of the front end of the housing baffle (104); a temperature controller (106) is installed in the middle of the front end of the housing baffle (104); and the temperature controller (106) is electrically connected to the electric heating pipe (202).
6. The anti-crystallization device for instruments and meters according to claim 1, characterized in that: Support bases (107) are fixed at four corners of the bottom of the device box (1).
Citation Information
Patent Citations
Instrument anti-crystallization device
CN214609207U