Temperature-adjustable composite material heating and pressurizing repairing equipment
By introducing a heating device and a temperature control system into the composite material repair equipment, the problem of the equipment being unable to work in low-temperature environments has been solved, enabling the equipment to operate normally and the repair work to proceed smoothly at low temperatures.
Patent Information
- Application Number
- CN202423098984.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2034-12-16
AI Technical Summary
Existing composite material repair equipment cannot function properly in low-temperature environments, making repair work difficult to carry out.
A temperature-adjustable composite material heating and pressurization repair device was designed, comprising a heating device, control components, and a vacuum pump. It can heat the control components at low temperatures to ensure normal operation of the device, and regulate the temperature through a temperature sensor and a fan. At the same time, the device is equipped with a vacuum pump and a barometer to support multi-area repair operations.
This enabled the equipment to operate normally in low-temperature environments, improving repair efficiency and accuracy, and ensuring the smooth progress of repair work.
Smart Images

Figure CN223631072U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to composite material repair technical field especially relates to a temperature adjustable composite material heating and pressurizing repair equipment. BACKGROUND
[0002] Composite material is widely used in aerospace, automobile industry, sports equipment, medical equipment, electronic products and other high-end industrial fields because of its strong designability, light weight, high specific strength, corrosion resistance and excellent electromagnetic penetration performance. During use and maintenance, composite material may suffer various structural damages such as impact damage caused by tool falling, runway gravel, hail and bird strike, which easily produces damages such as cracks, notches, delamination and broken holes, which will significantly reduce the static and dynamic load performance of composite material, and seriously threaten the use safety of composite material parts.
[0003] At present, composite material repair mostly uses hot repair instrument, and the existing hot repair instrument does not have heating function. In some high-cold areas, the electronic components in the control assembly cannot or are difficult to work normally at low temperature, so that the hot repair instrument cannot run smoothly, and the repair operation cannot proceed smoothly. UTILITY MODEL CONTENT
[0004] The utility model provides a temperature adjustable composite material heating and pressurizing repair equipment.
[0005] The utility model adopts the following technical scheme:
[0006] The utility model discloses a temperature adjustable composite material heating and pressurizing repair equipment, which comprises:
[0007] A box shell;
[0008] A control assembly is arranged in the box shell, and the control assembly comprises a controller, a pressure regulator and a vacuum pump.
[0009] A heating device is arranged in the box shell, and the heating device is electrically connected to the controller.
[0010] Optionally, the box shell comprises a first box shell and a second box shell.
[0011] The control assembly comprises a partition plate, the partition plate is connected to the first box shell, the partition plate covers the opening of the first box shell, and an installation cavity is formed between the partition plate and the first box shell.
[0012] Each control assembly is arranged on the installation cavity and the partition plate, and the heating device is located in the installation cavity.
[0013] The second box shell is hinged to the first box shell for opening or closing the first box shell.
[0014] Optionally, the controller is connected to the partition plate.
[0015] The controller comprises a housing and a touch screen arranged on the housing.
[0016] The touch screen is exposed to the outer surface of the partition plate.
[0017] The housing is at least partially exposed to the installation cavity.
[0018] The heating device is located in the installation cavity and connected to the housing.
[0019] Optionally, the housing has a bottom shell arranged opposite to the touch screen.
[0020] The heating device is mounted on the bottom shell.
[0021] Optionally, the heating device comprises a heat-conducting shell, a heating module and an insulating member.
[0022] The heat-conducting shell is connected to the bottom shell, the heat-conducting shell has a heating cavity, the heating module is arranged in the heating cavity, the insulating member is located in the heating cavity, and the insulating member is located between the heat-conducting shell and the heating module.
[0023] The heating module is electrically connected to the controller.
[0024] Optionally, the heat-conducting shell comprises a main shell and connecting edges arranged on both sides of the main shell, and the connecting edges are connected to the bottom shell.
[0025] The main shell has the heating cavity.
[0026] Optionally, the temperature-adjustable composite material heating and pressing repair device comprises a socket and at least two heating devices, and each heating device is arranged on the bottom shell.
[0027] The socket is connected to the bottom shell, an input end of the socket is connected to the controller, the socket has at least two output ends, and each output end is electrically connected to a corresponding heating device.
[0028] Optionally, the temperature-adjustable composite material heating and pressing repair device comprises two fans.
[0029] Two air vents are arranged on the partition plate, and the air vents are communicated with the installation cavity.
[0030] The two fans are arranged on the partition plate, and each fan covers a corresponding air vent.
[0031] The two fans are electrically connected to the controller.
[0032] Optionally, the two air vents are arranged on opposite sides of the controller.
[0033] Optionally, the temperature-adjustable composite material heating and pressurizing repair device comprises a temperature sensor arranged in the box shell, and the temperature sensor is electrically connected to the controller.
[0034] The specific implementation of the present application will be further described in detail below with reference to the accompanying drawings. BRIEF DESCRIPTION OF DRAWINGS
[0035] The accompanying drawings, which are part of the present application, serve to provide a further understanding of the present application, and the illustrative embodiments of the present application and the description thereof serve to explain the present application, but do not constitute an improper limitation on the present application. Obviously, the drawings described below are only some embodiments, and other drawings can be obtained by those skilled in the art without creative labor on the basis of these drawings. In the drawings:
[0036] Figure 1 An appearance structure schematic diagram of the composite material heating and pressurizing repair device provided by the embodiment of the present application is shown;
[0037] Figure 2 A structure schematic diagram of the second box shell of the composite material heating and pressurizing repair device provided by the embodiment of the present application in an open state is shown;
[0038] Figure 3 Another view of the second box shell of the composite material heating and pressurizing repair device provided by the embodiment of the present application in an open state is shown;
[0039] Figure 4 A state diagram of the second box shell and the partition plate of the composite material heating and pressurizing repair device provided by the embodiment of the present application being turned over is shown;
[0040] Figure 5 A cooperation structure schematic diagram of the air extraction pipeline, the gas seat and the first pipe body of the composite material heating and pressurizing repair device provided by the embodiment of the present application is shown.
[0041] In the figure: 1, box shell; 11, first box shell; 111, first area interface; 112, second area interface; 113, microwave heating interface; 114, vacuum interface; 115, infrared sensing interface; 12, second box shell; 2, pressure regulator; 5, first area thermocouple interface; 6, second area thermocouple interface; 7, controller; 71, touch screen; 72, shell; 8, vacuum pump; 9, heating device; 10, partition; 20, fan; 30, air flow seat; 301, air flow channel; 40, first pipe body; 50, air extraction pipeline; 501, second pipeline; 502, third pipeline; 503, communication device; 504, one-way valve; 60, air pressure gauge.
[0042] It should be noted that the drawings and the written description are not intended to limit the scope of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme in the embodiments will be described clearly and completely below with reference to the drawings of the embodiments of the present application. The following embodiments are used to illustrate the present application, but not to limit the scope of the present application.
[0044] In the description of the present application, it should be noted that the terms "upper", "lower", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or components referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.
[0045] In the description of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms "mounting", "connection" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0046] Embodiment one
[0047] Reference Figures 1 to 4As shown, the temperature-adjustable composite material heating and pressurizing repair device provided by the embodiments of the present disclosure comprises a box shell 1, a control assembly and a heating device 9. The control assembly is arranged in the box shell 1, and the control assembly comprises a controller 7, a pressure regulator 2 and a vacuum pump 8, wherein the vacuum pump 8 and the pressure regulator 2 are electrically connected to the controller 7. The heating device 9 is arranged in the box shell 1, and the heating device 9 is electrically connected to the controller 7. The heating device 9 is arranged in the composite material heating and pressurizing repair device, so that the control assembly can be heated when the composite material heating and pressurizing repair device is in a low-temperature state, and each electrical component of the control assembly is in a suitable temperature, thereby ensuring that the composite material heating and pressurizing repair device works effectively.
[0048] In some possible embodiments, the box shell 1 comprises a first box shell 11 and a second box shell 121, the control assembly comprises a partition plate 10, the partition plate 10 is connected to the first box shell 11, and the partition plate 10 covers an opening of the first box shell 11, an installation cavity is formed between the partition plate 10 and the first box shell 11, each control assembly is arranged on the installation cavity and the partition plate 10, the heating device 9 is located in the installation cavity, and the second box shell 121 is hinged to the first box shell 11 and used for opening or closing the first box shell 11. The installation cavity is formed between the partition plate 10 and the first box shell 11, each control assembly and the heating device 9 are arranged in the cavity, and the heating of the heating device 9 can directly increase the temperature of the entire installation cavity, so that each electrical component can be in a suitable temperature.
[0049] In some possible embodiments, the controller 7 is connected to the partition plate 10, the controller 7 comprises a shell 72 and a touch screen 71 arranged on the shell 72, the touch screen 71 is exposed to an outer surface of the partition plate 10, the shell 72 is at least partially exposed to the installation cavity, the heating device 9 is located in the installation cavity, and the heating device 9 is connected to the shell 72. The controller 7 can be a computer or a PLC controller 7. When the second box shell 121 is rotated away from the first box shell 11, the touch screen 71 is exposed and can be easily seen and operated by an operator. The shell 72 is partially located in the cavity, and the shell 72 is connected to the heating device 9 at one side of the cavity, so that the heating device 9 can smoothly heat the shell 72, and the electrical components in the shell 72 are in a suitable temperature environment. Heat flows from bottom to top, and the heating device 9 is located at the bottom of the shell 72, so that heat can be effectively transmitted to the inside of the controller 7 as soon as possible.
[0050] In some possible embodiments, the shell 72 has a bottom shell arranged opposite to the touch screen 71, and the heating device 9 is attached to the bottom shell.
[0051] The touch screen 71 is located on the top of the shell 72, the bottom shell is located on the bottom of the shell 72 and in the installation cavity, facilitating the connection and assembly of the heating device 9.
[0052] In some possible embodiments, the heating device 9 comprises a heat-conducting shell, a heating module and an insulating piece, the heat-conducting shell is connected to the bottom shell, the heat-conducting shell has a heating cavity, the heating module is arranged in the heating cavity, the insulating piece is located in the heating cavity and between the heat-conducting shell and the heating module, and the heating module is electrically connected to the controller 7.
[0053] The heat-conducting shell can be a metal shell, which has good structural strength and good heat conduction, and can smoothly conduct heat to the shell 72. The insulating piece can be in the form of a sheet.
[0054] In some possible embodiments, the heat-conducting shell comprises a main shell and connecting edges arranged on both sides of the main shell, the connecting edges are attached to the bottom shell, and the main shell has the heating cavity. The cross section of the heat-conducting shell can be substantially "U" shaped, the connecting edges on both sides can be attached to the bottom shell, and the connecting piece and the bottom shell can be fixed by adhesive bonding or fasteners.
[0055] The temperature-adjustable composite material heating and pressurizing repair equipment comprises a socket and at least two heating devices 9, each of the heating devices 9 is arranged in the bottom shell, the socket is connected to the bottom shell, the input end of the socket is connected to the controller 7, the socket has at least two output ends, and each of the output ends is electrically connected to a corresponding heating device 9.
[0056] In some possible embodiments, the temperature-adjustable composite material heating and pressurizing repair equipment comprises two fans 20, two air vents are arranged on the partition plate 10, the air vents are communicated with the installation cavity, the two fans 20 are arranged on the partition plate 10, the two fans 20 cover the corresponding air vents respectively, and the two fans 20 are electrically connected to the controller 7.
[0057] The controller 7 can control the rotation of the two fans 20 respectively, the stillness of the two fans 20 respectively or the rotation direction of the two fans 20 respectively, so as to achieve auxiliary adjustment of the temperature in the installation cavity. For example, when the heating device 9 in the installation cavity is heated, the fan 20 can be controlled to rotate, so that the air in the installation cavity flows, so that the heat generated by the heating device 9 can be uniformly distributed in the installation cavity, and the electrical components at different positions can be heated.
[0058] In some possible embodiments, the two air vents are arranged on opposite sides of the controller 7.
[0059] In some possible embodiments, the temperature-adjustable composite material heating and pressing repair device comprises a temperature sensor arranged in the box shell 1, which is electrically connected to the controller 7.
[0060] The temperature sensor is used to detect the temperature in the mounting cavity, and when the temperature in the mounting cavity reaches a set value, the controller 7 can control the heating device 9 to stop heating by being powered off. When the temperature sensor detects that the temperature in the mounting cavity is lower than the set value, the heating device 9 can be controlled to be powered on to heat the mounting cavity.
[0061] Embodiment two
[0062] Referring to Figures 1 to 5 As shown in the figure, the embodiment of the present application provides a composite material heating and pressing repair device with simple pressure measuring structure, which comprises a box shell 1 and a control assembly. The box shell 1 has a cavity, two vacuum interfaces 114 are arranged on the box shell 1, and the control assembly is arranged in the cavity. The control assembly comprises a controller 7, a vacuum pump 8, an airflow seat 30, two air gauges 60 and two first pipe bodies 40. The vacuum pump 8 is electrically connected to the controller 7. The airflow seat 30 has two airflow channels 301. The two air gauges 60 are arranged in the airflow seat 30. The two air gauges 60 are respectively used to detect the air pressure in the two airflow channels 301. One end of each of the two first pipe bodies 40 is connected to the airflow seat 30, and the two first pipe bodies 40 are respectively connected to one airflow channel 301. The other end of each of the two first pipe bodies 40 is connected to one vacuum interface 114. The vacuum pump 8 is connected to the airflow seat 30 through a suction pipe 50, and the vacuum pump 8 can selectively communicate with any airflow channel 301 through the suction pipe 50.
[0063] The vacuum interface 114 can be connected to a suction pipe, and the suction pipe is connected to a vacuum film covering the repair area, so that the vacuum film maintains a negative pressure state and sufficient pressure is applied to the repair area.
[0064] The vacuum pump 8 of the composite material heating and pressing repair device provided by the embodiment of the present application can selectively communicate with any airflow channel 301, which supports simultaneous repair operation of two parts. The two air gauges 60 can directly detect the air pressure without the need to arrange a special air pressure detection pipe, thereby simplifying the structure.
[0065] In the embodiments of the present application, the air exhaust pipeline 50 includes two second pipelines 501, and the two second pipelines 501 are respectively connected to the two airflow channels 301. The air exhaust pipeline 50 can selectively connect any one of the second pipelines 501 to the vacuum pump 8, while cutting off the other second pipeline 501 and the vacuum pump 8. When the composite material heating and pressurizing repair device is used to repair two regions at the same time, the vacuum pump 8 can be controlled by the air exhaust pipeline 50 to be connected to the two second pipelines 501 in a cyclic and alternating manner, so that the two second pipelines 501 are kept spatially isolated from each other, and the two second pipelines 501 can be alternately exhausted. Thus, the vacuum membranes covering the two repair regions can both be kept in a vacuum state.
[0066] In some possible embodiments, the air exhaust pipeline 50 has a third pipeline 502 connected to the vacuum pump 8 and a communication device 503 having a first interface and two second interfaces. The third pipeline 502 is connected to the first interface, and the two second pipelines 501 are respectively connected to the corresponding second interfaces. The communication device 503 can selectively connect the first interface to any one of the second interfaces.
[0067] The communication device 503 can be a three-way valve structure, which can realize that the first interface alternately connects the two second interfaces, so that the two second pipelines 501 alternately perform the air exhaust task.
[0068] In some possible embodiments, the two second pipelines 501 are respectively provided with a one-way valve 504, which only allows the airflow to flow from the airflow seat 30 to the communication device 503. The one-way valve 504 prevents external gas from entering the two second pipelines 501 at the communication device 503, so that the two second pipelines 501 can keep a stable negative pressure state.
[0069] In some possible embodiments, the communication device 503 is electrically connected to the controller 7, and the controller 7 is configured to control the communication device 503 to alternately and cyclically connect the first interface to the two second interfaces, respectively. The communication device 503 can be an electromagnetic valve, which can quickly switch states under the control of the controller 7.
[0070] In some possible embodiments, the box shell 1 is provided with a first region interface 111 and a second region interface 112, and the control assembly includes two pressure regulators 2. The two pressure regulators 2 are respectively electrically connected to the controller 7, and the first region interface 111 and the second region interface 112 are respectively electrically connected to the corresponding pressure regulators 2. The first region interface 111 and the second region interface 112 are respectively electrically connected to the terminal of the baking lamp or the terminal of the electric blanket.
[0071] Optionally, a microwave heating interface 113 is arranged on the box shell 1, and the control assembly further comprises a magnetron and a first wave-same converter, the magnetron is electrically connected to the voltage regulator 2, the first wave-same converter is connected to the magnetron, and the output end of the first wave-same converter is connected to the microwave heating interface 113, and the microwave heating interface 113 is used for electrically connecting a microwave heating terminal.
[0072] The control method of the composite material heating and pressurizing repair device provided in the application comprises the following steps: the controller 7 controls the exhaust pipeline 50 to cyclically and alternately communicate with two air flow channels 301, so that the vacuum pump 8 performs vacuumizing processing on vacuum components connected to two vacuum interfaces 114.
[0073] The vacuum component can be a vacuum film used for covering a region to be repaired, and a patch can be pressed and laid on the repaired region under the condition that the vacuum film is in a vacuum state. The patch is pressed by the vacuum film, so that air holes and some other defects can be eliminated. The heating terminal is used for heating the repaired region, so as to accelerate the solidification of glue between the patch and the repaired region.
[0074] In some possible embodiments, during the operation of the vacuum pump 8, the two air gauges 60 acquire air pressure values in real time and send the air pressure values to the controller 7, and the controller 7 controls the actions of the exhaust pipeline 50 and the vacuum pump 8 according to the air pressure values detected by the air gauges 60, so that the air pressure values of the two vacuum components reach the set values.
[0075] The controller 7 first controls the two second pipelines 501 of the exhaust pipeline 50 to frequently and alternately communicate with the vacuum pump 8 respectively, and performs air exhaust processing on the vacuum films of the two repaired regions respectively, when the air pressure in a certain vacuum film reaches a required value, the communication time of the second pipeline 501 corresponding to the vacuum film whose air pressure value does not reach the set value and the vacuum pump 8 can be prolonged, and the communication time of the second pipeline 501 corresponding to the other vacuum film and the vacuum pump 8 can be shortened, so that the air pressures of the two vacuum films reach the required values as soon as possible.
[0076] In some possible embodiments, the apparatus has a heating terminal, and the heating terminal can be any one or a combination of a baking lamp terminal, an electric heating blanket terminal and a microwave heating terminal. The heating terminal can be electrically connected to the controller 7, and the controller 7 first controls the communication device 503 on the vacuum pump 8 and the exhaust pipeline 50 to operate to adjust the air pressure of the vacuum component to the set value, and then controls the heating terminal to be turned on.
[0077] The vacuum pump 8 and the exhaust pipeline 50 of the composite material heating and pressurizing repair device provided in the application can be independently operated from the heating terminal. The application can first perform vacuumizing processing on the vacuum film and reach the required value, and then control the heating terminal to heat the repaired region, so that the insufficient vacuum degree in the early stage is avoided when the heating and the vacuumizing are simultaneously performed, the whole process curve is affected, and the process precision is improved.
[0078] Embodiment three
[0079] Referring to Figures 1 to 4 As shown in the drawings, the composite material heating and pressing repair device provided by the embodiment of the present disclosure comprises a box shell 1, a control assembly and a heating terminal. The box shell 1 has a cavity, a first area interface 111, a second area interface 112 and a microwave heating interface 113. The control assembly is arranged in the cavity. The control assembly comprises a controller 7, a microwave generating device and at least two voltage regulators 2. Each voltage regulator 2 and the microwave generating device are electrically connected to the controller 7. The first area interface 111 and the second area interface 112 are respectively electrically connected to the corresponding voltage regulator 2. The microwave generating device is electrically connected to one of the voltage regulators 2. The microwave generating device is electrically connected to the microwave heating interface 113. The heating terminal comprises a baking lamp terminal, an electric heating blanket terminal and a microwave heating terminal. The baking lamp terminal and the electric heating blanket terminal can be electrically connected to the first area interface 111 or the second area interface 112. The microwave heating terminal can be electrically connected to the microwave heating interface 113. The composite material heating and pressing repair device provided by the embodiment of the present disclosure has three heating modes, which can meet different application scenarios. The first area interface 111 and the second area interface 112 are independent heating channels. The baking lamp terminal and the electric heating blanket terminal can be selectively connected to the first area interface 111 and the second area interface 112, which significantly improves the repair efficiency.
[0080] In some possible embodiments, the microwave generating device comprises a magnetron and a first wave homotransformer. The magnetron and the first wave homotransformer are arranged in the cavity. The magnetron is electrically connected to one of the voltage regulators 2. The first wave homotransformer is respectively electrically connected to the voltage regulator 2 and the microwave heating interface 113. The microwave heating terminal has a microwave connection terminal and a second wave homotransformer. The microwave connection terminal is used for detachably connecting to the microwave heating interface 113. The second wave homotransformer is electrically connected to the microwave connection terminal.
[0081] The composite material heating and pressing repair device provided by the embodiment of the present disclosure has a magnetron and a first wave homotransformer, which supports microwave heating and expands the application range of the composite material heating and pressing repair device.
[0082] In some possible embodiments, the microwave heating terminal has a protective cover and a silica gel sheet. The protective cover has a narrow opening and a wide opening. The second wave homotransformer is connected to the protective cover, and the second wave homotransformer covers the narrow opening. The silica gel sheet is used for adhering to the repair area, and the silica gel sheet can cover the wide opening.
[0083] In the embodiment of the present disclosure, a silica gel sheet is arranged between the second wave homotransformer and the repair member. The silica gel sheet has good adhesion and good thermal conductivity, and can uniformly heat the curved surface part of the repair member, so that balanced heating of the curved surface can be realized.
[0084] In some possible embodiments, an infrared sensor is arranged on the protective cover, with a sensing end of the infrared sensor facing the interior of the protective cover, and an infrared sensor interface 115 is arranged on the box shell 1 and electrically connected to the controller 7, and the infrared sensor can be electrically connected to the infrared sensor interface 115.
[0085] The infrared sensor can be used to conveniently detect the temperature of the repair area of the workpiece, and can assist in achieving automatic temperature adjustment.
[0086] In some possible embodiments, the control assembly includes a plurality of first-zone thermocouple interfaces 5 and a plurality of second-zone thermocouple interfaces 6.
[0087] The thermocouple interfaces can be used to connect thermocouples, and the thermocouples can be arranged at different positions of the repair area, so as to detect the temperature at each different position of the repair area, thereby obtaining the approximate temperature condition of the repair area. The thermocouples connected to the first-zone thermocouple interfaces 5 can be arranged at the repair area corresponding to the first-zone interfaces 111, and the thermocouples connected to the second-zone thermocouple interfaces 6 can be arranged at the repair area corresponding to the second-zone interfaces 112.
[0088] In some possible embodiments, the box shell includes a first box shell 11 and a second box shell 121, the control assembly is arranged in the first box shell 11, and the second box shell 121 is rotatably connected to the first box shell 11 to close or open the first box shell 11. The first box shell 11 and the second box shell 121 are buckled together, which can protect the internal control assembly.
[0089] In some possible embodiments, the first box shell 11 is provided with a power supply interface, the first-zone interfaces 111, the second-zone interfaces 112, and the microwave heating interface 113.
[0090] The power supply interface is used to connect an external power supply, and the power supply interface is also connected to the control assembly to provide electrical energy for each structure of the control assembly. The first box shell 11 integrates a plurality of interfaces, which facilitates operation.
[0091] In some possible embodiments, the first box shell 11 has a circumferential side wall, the circumferential side wall includes a plurality of side walls arranged in sequence, a first hinge seat is arranged on one of the side walls, a second hinge seat is arranged on the second box shell 121, the second hinge seat is hinged to the first hinge seat, and the side wall on which the first hinge seat is arranged is provided with the power supply interface, the first-zone interfaces 111, the second-zone interfaces 112, and the microwave heating interface 113.
[0092] The controller 7 includes a touch screen 71, which can omit a keyboard and a mouse, and is convenient for outdoor or restricted area operation.
[0093] The box shell 1 has a roller and a pull rod, similar to a luggage case, facilitating transfer.
[0094] It should be noted that the number of microwave generating devices is not limited to one, and the number of microwave heating interfaces is also not limited to one.
[0095] It should be noted that the content disclosed in each embodiment of the application can be combined to form different specific product schemes.
[0096] The above is only the preferred embodiment of the present application, and is not intended to limit the present application in any form. Although the preferred embodiment of the present application has been disclosed as above, it is not intended to limit the present application. Any person skilled in the art can make some changes or modifications to the above-mentioned technical content without departing from the scope of the technical scheme of the present application, and equivalent embodiments with equivalent changes are equivalent. Any simple modification, equivalent change and modification of the above embodiments according to the technical essence of the present application, which does not depart from the technical scheme of the present application, still belongs to the scope of the present application.
Claims
1. A temperature-adjustable composite material heating and pressurizing repair device, characterized by, The application relates to a vacuum coating machine, which comprises a box shell, a control assembly arranged in the box shell, a heating device arranged in the box shell and electrically connected to the control assembly. The control assembly comprises a controller, a pressure regulator and a vacuum pump, wherein the vacuum pump and the pressure regulator are electrically connected to the controller. The box shell comprises a first box shell and a second box shell. The control assembly comprises a partition plate connected to the first box shell and covering an opening of the first box shell, and a mounting cavity is formed between the partition plate and the first box shell.
2. The temperature-regulated composite thermal and pressure applicator repair device of claim 1, wherein, Each control assembly is arranged on the mounting cavity and the partition plate, and the heating device is arranged in the mounting cavity. The second box shell is hinged to the first box shell for opening or closing the first box shell. The controller is connected to the partition plate. The controller comprises a shell and a touch screen arranged on the shell.
3. The temperature-regulated composite thermal and pressure applicator repair device of claim 2, wherein, The touch screen is exposed to the outer surface of the partition plate. The shell is at least partially exposed to the mounting cavity. The heating device is arranged in the mounting cavity and connected to the shell. The shell has a bottom shell arranged opposite to the touch screen. The heating device is arranged on the bottom shell.
4. The temperature-regulated composite thermal and pressure applicator repair device of claim 3, wherein, The heating device comprises a heat-conducting shell, a heating module and an insulating member. The heat-conducting shell is connected to the bottom shell and has a heating cavity, the heating module is arranged in the heating cavity, and the insulating member is arranged in the heating cavity and between the heat-conducting shell and the heating module.
5. The temperature-regulated composite thermal and pressure applicator repair device of claim 4, wherein, The heating module is electrically connected to the controller. The heat-conducting shell comprises a main shell and connecting edges arranged on both sides of the main shell, and the connecting edges are connected to the bottom shell. The main shell has the heating cavity.
6. The temperature-regulated composite thermal and pressure applicator repair device of claim 5, wherein, The application further relates to a socket and at least two heating devices, wherein each heating device is arranged on the bottom shell. The socket is connected to the bottom shell, the input end of the socket is connected to the controller, and the socket has at least two output ends, each of which is electrically connected to a corresponding heating device.
7. The temperature-regulated composite thermal and pressure applicator repair device of claim 4, wherein, The application further relates to two fans. Two air vents are arranged on the partition plate and communicate with the mounting cavity.
8. The temperature-regulated composite thermal and pressure applicator repair device of claim 3, wherein, The two fans are arranged on the partition plate and cover the corresponding air vents. The two fans are electrically connected to the controller. The two air vents are arranged on opposite sides of the controller. The application further relates to a temperature sensor arranged in the box shell and electrically connected to the controller.
9. The temperature-regulated composite thermal and pressure applicator repair device of claim 8, wherein, 10. The temperature-regulated composite thermal and pressure applicator of any of claims 1-9, wherein,