Composite material heating and pressurizing repairing equipment with three heating modes

By designing a composite material heating and pressurization repair device with three heating modes, the problem of the single heating mode of existing equipment has been solved, enabling the use of the same device in different application scenarios, reducing equipment costs and improving repair efficiency.

CN223644327UActive Publication Date: 2025-12-09AIR FORCE ENG UNIV OF PLA AIRCRAFT MAINTENACE MANAGEMENT SERGEANT SCHOOL +1
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Patent Information

Application Number
CN202423097955.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-16
Publication Date
2025-12-09
Estimated Expiration
2034-12-16

AI Technical Summary

Technical Problem

Existing composite material heating and pressurization repair equipment uses a single heating mode, which requires different equipment for different application scenarios, increasing equipment costs and efficiency.

Method used

Design a composite material heating and pressurization device with three heating modes, including: a housing, a control component, and a heating terminal, supporting electric blanket, heating lamp, and microwave heating modes, and realizing the switching and adjustment of multiple heating modes through the control component.

Benefits of technology

This enables the use of the same equipment in different application scenarios, reducing equipment costs, improving repair efficiency, and adapting to the application scenarios of composite materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses composite material heating and pressurizing repairing equipment with three heating modes. The composite material heating and pressurizing repairing equipment comprises a box shell, a control assembly and a heating terminal. The box shell is provided with a cavity, a first area interface, a second area interface and a microwave heating interface, the control assembly is arranged in the cavity and comprises a controller, a microwave generating device and at least two voltage regulators, the voltage regulators and the microwave generating device are electrically connected for the controller, and the first area interface and the second area interface are electrically connected to the corresponding voltage regulators respectively. The microwave generating device is electrically connected to a voltage regulator, the microwave generating device is electrically connected to the microwave heating interface, the heating terminal comprises a baking lamp terminal, an electric blanket terminal and a microwave heating terminal, the baking lamp terminal and the electric blanket terminal can be electrically connected to the first area interface or the second area interface, and the microwave heating terminal can be electrically connected to the microwave heating interface. The composite material heating and pressurizing repairing equipment provided by the embodiment of the utility model can have three heating modes to meet different requirements.
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Description

TECHNICAL FIELD

[0001] The embodiment of the present disclosure relates to the technical field of composite material repair, in particular to a composite material heating and pressing repair device with three heating modes. BACKGROUND

[0002] Composite materials have strong designability, light weight, high specific strength, corrosion resistance and excellent electromagnetic penetration performance, and are widely used in various high-tech industrial fields such as aerospace, automobile industry, sports equipment, medical equipment and electronic products. During use and maintenance, composite materials may be subjected to various structural damages such as impact damage caused by tool falling, runway debris, hail and bird strikes, which are prone to cause damages such as cracks, notches, delamination and broken holes, which will significantly reduce the static and dynamic load performance of the composite materials, and in severe cases, will directly threaten the safety of the composite material parts.

[0003] At present, composite material repair is mostly performed by using a composite material heating and pressing repair device. In the prior art, the heating mode of the composite material heating and pressing repair device is single. Some composite material heating and pressing repair devices only have an electric blanket heating mode, some only have an oven lamp heating mode, and some only have a microwave heating mode. In different application scenarios, different heating modes are usually suitable, and different composite material heating and pressing repair devices need to be equipped respectively, which increases the cost of the device. CONTENT OF THE UTILITY MODEL

[0004] In order to solve the above problems in the prior art, the embodiment of the present disclosure provides a composite material heating and pressing repair device with three heating modes.

[0005] The embodiment of the present disclosure provides a composite material heating and pressing repair device with three heating modes, which comprises:

[0006] A box shell having a cavity, a first area interface, a second area interface and a microwave heating interface;

[0007] A control assembly arranged in the cavity, the control assembly comprising a controller, a microwave generating device and at least two voltage regulators, each voltage regulator and the microwave generating device being electrically connected to the controller, the first area interface and the second area interface being electrically connected to the corresponding voltage regulator, the microwave generating device being electrically connected to one of the voltage regulators, and the microwave generating device being electrically connected to the microwave heating interface;

[0008] A heating terminal comprising an oven lamp terminal, an electric blanket terminal and a microwave heating terminal, the oven lamp terminal and the heating blanket terminal being electrically connectable to the first area interface or the second area interface, and the microwave heating terminal being electrically connectable to the microwave heating interface.

[0009] Optionally, the microwave generator includes a magnetron and a first wave converter;

[0010] The magnetron and the first wave converter are both disposed in the cavity. The magnetron is electrically connected to a voltage regulator. The first wave converter is electrically connected to the voltage regulator and the microwave heating interface, respectively.

[0011] The microwave heating terminal has a microwave power terminal and a second wave converter.

[0012] The microwave power terminal is detachably connected to the microwave heating interface, and the second wave converter is electrically connected to the microwave power terminal.

[0013] Optionally, the microwave heating terminal has a protective cover and a silicone sheet. The protective cover has a narrow opening and a wide opening. The second wave converter is connected to the protective cover and covers the narrow opening. The silicone sheet is used to fit the repair area and can cover the wide opening.

[0014] Optionally, an infrared sensor is provided on the protective cover, with the sensing end of the infrared sensor facing the inside of the protective cover;

[0015] An infrared sensing interface is provided on the housing, and the infrared sensing interface is electrically connected to the controller. The infrared sensor can be electrically connected to the infrared sensing interface.

[0016] Optionally, the control component includes a plurality of first-zone thermocouple interfaces and a plurality of second-zone thermocouple interfaces.

[0017] Optionally, the enclosure includes a first enclosure and a second enclosure;

[0018] The control components are disposed inside the first housing.

[0019] The second housing is rotatably connected to the first housing to close or open the first housing.

[0020] Optionally, the first housing is provided with a power interface, a first zone interface, a second zone interface, and a microwave heating interface.

[0021] Optionally, the first housing has a peripheral sidewall, which includes a plurality of sidewalls arranged sequentially, and a first hinge seat is provided on one of the sidewalls;

[0022] A second hinge seat is provided on the second housing, and the second hinge seat is hinged to the first hinge seat;

[0023] The power interface, the first zone interface, the second zone interface, and the microwave heating interface are provided on the side wall where the first hinge seat is located.

[0024] Optionally, the controller includes a touch screen.

[0025] Optionally, the housing has rollers and a pull rod.

[0026] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description

[0027] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but do not constitute an undue limitation of the present invention. Obviously, the drawings described below are merely some embodiments; those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings:

[0028] Figure 1 This paper shows a schematic diagram of the external structure of the composite material heating and pressurizing repair equipment provided in an embodiment of this application;

[0029] Figure 2 This illustration shows a schematic diagram of the second housing of the composite material heating and pressurizing repair device provided in this application embodiment, with the housing in an open state.

[0030] Figure 3 This illustration shows another perspective view of the composite material heating and pressurizing repair device provided in this application embodiment with the second housing in an open state;

[0031] Figure 4 This diagram shows the state where the second housing and partition of the composite material heating and pressurizing repair device provided in this application embodiment are opened;

[0032] Figure 5 The diagram shows the assembly structure of the exhaust pipe, gas seat, and first pipe body of the composite material heating and pressurizing repair device provided in the embodiments of this application.

[0033] In the diagram: 1. Housing; 11. First housing; 111. First zone interface; 112. Second zone interface; 113. Microwave heating interface; 114. Vacuum interface; 115. Infrared sensor interface; 12. Second housing; 2. Voltage regulator; 5. First zone thermocouple interface; 6. Second zone thermocouple interface; 7. Controller; 71. Touch screen; 72. Outer shell; 8. Vacuum pump; 9. Heating device; 10. Partition; 20. Fan; 30. Airflow seat; 301. Airflow channel; 40. First pipe; 50. Suction pipe; 501. Second pipe; 502. Third pipe; 503. Communicating device; 504. One-way valve; 60. Barometer.

[0034] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.

[0036] In the description of this utility model, it should be noted that the terms "upper", "lower", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0037] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0038] Example 1

[0039] See Figures 1 to 4As shown, this disclosure provides a composite material heating and pressurization repair device with three heating modes, including: a housing 1, a control component, and a heating terminal. The housing 1 has a cavity, a first zone interface 111, a second zone interface 112, and a microwave heating interface 113. The control component is disposed within the cavity and includes a controller 7, a microwave generator, and at least two voltage regulators 2. Each voltage regulator 2 and the microwave generator are electrically connected to the controller 7. The first zone interface 111 and the second zone interface 112 are respectively electrically connected to the corresponding voltage regulator 2. The microwave generator is electrically connected to one of the voltage regulators and is also electrically connected to the microwave heating interface 113. The heating terminal includes a heating lamp terminal, an electric blanket terminal, and a microwave heating terminal. The heating lamp terminal and the electric blanket terminal can both be electrically connected to the first zone interface 111 or the second zone interface 112, and the microwave heating terminal can be electrically connected to the microwave heating interface 113. The composite material heating and pressurization repair device provided in this application has three heating modes, which can meet different application scenarios. The first zone interface 111 and the second zone interface 112 are independent heating channels, both of which can be selectively connected to the heating lamp terminal and the electric blanket terminal, significantly improving the repair efficiency.

[0040] In some possible implementations, the microwave generator includes a magnetron and a first wave-to-conversion converter, both disposed within the cavity. The magnetron is electrically connected to a voltage regulator 2. The first wave-to-conversion converter is electrically connected to both the voltage regulator 2 and the microwave heating interface 113. The microwave heating terminal has a microwave power terminal and a second wave-to-conversion converter. The microwave power terminal is detachably connected to the microwave heating interface 113, and the second wave-to-conversion converter is electrically connected to the microwave power terminal.

[0041] The composite material heating and pressurization repair equipment provided in this embodiment has a magnetron and a first wave converter, supports microwave heating, and expands the application scope of composite material heating and pressurization repair equipment.

[0042] In some possible implementations, the microwave heating terminal has a protective cover and a silicone sheet, the protective cover having a narrow opening and a wide opening, a second wave-to-wave converter connected to the protective cover and covering the narrow opening, the silicone sheet being used to fit the repair area, and the silicone sheet covering the wide opening.

[0043] In this embodiment, a silicone sheet is placed between the second wave converter and the repair component. The silicone sheet has good adhesion and good thermal conductivity, which can heat the curved surface of the repair component evenly and achieve uniform heating of the curved surface.

[0044] In some possible implementations, an infrared sensor is provided on the protective cover, with the sensing end of the infrared sensor facing the inside of the protective cover. An infrared sensing interface 115 is provided on the housing 1, and the infrared sensing interface 115 is electrically connected to the controller 7. The infrared sensor can be electrically connected to the infrared sensing interface 115.

[0045] By setting up an infrared sensor, the temperature of the workpiece repair area can be easily detected, which can help to achieve automated temperature control.

[0046] In some possible implementations, the control components include multiple first-zone thermocouple interfaces 5 and multiple second-zone thermocouple interfaces 6.

[0047] Thermocouple interfaces can be used to connect thermocouples, which can be placed at different locations in the area to be repaired. This allows for the detection of the temperature at different locations within the repair area, thus providing an approximate temperature profile of the repair area. The thermocouple connected to thermocouple interface 5 in the first zone can be placed in the repair area corresponding to interface 111 in the first zone, and the thermocouple connected to thermocouple interface 6 in the second zone can be placed in the repair area corresponding to interface 112 in the second zone.

[0048] In some possible implementations, the enclosure includes a first enclosure 11 and a second enclosure 121. The control components are disposed within the first enclosure 11, and the second enclosure 121 is rotatably connected to the first enclosure 11 to close or open the first enclosure 11. The first enclosure 11 and the second enclosure 121 are interlocked, which serves to protect the internal control components.

[0049] In some possible implementations, the first housing 11 is provided with a power interface, a first zone interface 111, a second zone interface 112 and a microwave heating interface 113.

[0050] The power interface is used to connect to an external power source. It also connects to the control components, providing power to the various structures within the control components. Multiple interfaces are integrated on the first housing 11 for convenient operation.

[0051] In some possible implementations, the first housing 11 has a peripheral sidewall, which includes a plurality of sidewalls arranged sequentially. A first hinge seat is provided on one of the sidewalls, and a second hinge seat is provided on the second housing 121. The second hinge seat is hinged to the first hinge seat. The power interface, the first zone interface 111, the second zone interface 112, and the microwave heating interface 113 are provided on the sidewall on which the first hinge seat is located.

[0052] The controller 7 includes a touch screen 71, which eliminates the need for a keyboard and mouse, making it convenient for outdoor or restricted area operation.

[0053] The case 1 has wheels and a pull rod, and its structure is similar to that of a suitcase, which facilitates transportation.

[0054] It should be noted that in the embodiments of this application, the number of microwave generating devices is not limited to one, and the number of microwave heating interfaces is not limited to one.

[0055] Example 2

[0056] See Figures 1 to 4 As shown in the figure, the composite material heating and pressurizing repair equipment provided in this embodiment has a temperature regulation function, and includes: a housing 1, a control component, and a heating device 9. The control component is disposed inside the housing 1, and includes a controller 7, a pressure regulator 2, and a vacuum pump 8. The vacuum pump 8 and the pressure regulator 2 are both electrically connected to the controller 7. The heating device 9 is disposed inside the housing 1 and is electrically connected to the controller 7. The heating device 9 in the composite material heating and pressurizing repair equipment of this application can heat the control component when the composite material heating and pressurizing repair equipment is in a low temperature state, so that the electrical components of the control component are at a suitable temperature, ensuring that the composite material heating and pressurizing repair equipment works effectively.

[0057] In some possible implementations, the housing 1 includes a first housing 11 and a second housing 121. The control components include a partition 10 connected to the first housing 11 and covering the opening of the first housing 11. A mounting cavity is formed between the partition 10 and the first housing 11. Each control component is disposed on the mounting cavity and the partition 10. The heating device 9 is located within the mounting cavity. The second housing 121 is hinged to the first housing 11 and is used to open or close the first housing 11. The mounting cavity formed between the partition 10 and the first housing 11, with each control component and the heating device 9 disposed within the cavity, allows the heating device 9 to directly raise the temperature of the entire mounting cavity, ensuring that all electrical components are at a suitable temperature.

[0058] In some possible implementations, a controller 7 is connected to the partition 10. The controller 7 includes a housing 72 and a touch screen 71 disposed on the housing 72. The touch screen 71 is exposed on the outer surface of the partition 10. The housing 72 is at least partially exposed in the mounting cavity. The heating device 9 is located in the mounting cavity and is connected to the housing 72. The controller 7 can be a computer or a PLC controller 7. When the second housing 121 is rotated away from the first housing 11, the touch screen 71 is exposed, making it easily visible to the operator and facilitating operation. The housing 72 is partially located directly within the cavity, and the heating device 9 is connected to one side of the cavity, which facilitates the heating device 9 in heating the housing 72, ensuring that the electrical components inside the housing 72 are within a suitable temperature environment. Heat flows from bottom to top, and the location of the heating device 9 at the bottom of the housing 72 allows for rapid and effective heat transfer to the controller 7.

[0059] In some possible implementations, the housing 72 has a bottom shell disposed opposite to the touch screen 71, and the heating device 9 is fitted onto the bottom shell.

[0060] The touch screen 71 is located on the top of the housing 72, and the bottom housing is located at the bottom of the housing 72 and inside the mounting cavity, which facilitates the connection and assembly of the heating device 9.

[0061] In some possible implementations, the heating device 9 includes a heat-conducting shell, a heating module, and an insulating component. The heat-conducting shell is connected to the bottom shell and has a heating cavity. The heating module is disposed within the heating cavity, and the insulating component is located in the heating cavity and between the heat-conducting shell and the heating module. The heating module is electrically connected to the controller 7.

[0062] The heat-conducting shell can be a metal shell, which has good structural strength and thermal conductivity, and can effectively conduct heat to the outer shell 72. The insulating component can be in sheet form.

[0063] In some possible implementations, the heat-conducting shell includes a main shell and connecting edges disposed on both sides of the main shell, the connecting edges being fitted to the bottom shell, and the main shell having the heating cavity. The cross-section of the heat-conducting shell can be approximately U-shaped, the connecting edges on both sides can be fitted to the bottom shell, and the connecting pieces and the bottom shell can be fixed by adhesive bonding or by fasteners.

[0064] The composite material heating and pressurizing repair equipment includes a socket and at least two heating devices 9, each heating device 9 being spaced apart from the bottom shell. The socket is connected to the bottom shell, the input end of the socket is connected to the controller 7, and the socket has at least two output ends, each of which is electrically connected to a corresponding heating device 9.

[0065] In some possible implementations, the composite material heating and pressurizing repair equipment includes two fans 20, two vents are provided on the partition 10, the vents are connected to the mounting cavity, both fans 20 are provided on the partition 10, the two fans 20 respectively cover the corresponding vents, and both fans 20 are electrically connected to the controller 7.

[0066] The controller 7 can control the two fans 20 to rotate, remain stationary, or control the direction of rotation of the two fans 20 to assist in regulating the temperature inside the mounting cavity. For example, when the heating device 9 inside the mounting cavity is heating, the fan 20 can be controlled to rotate, causing air to flow inside the mounting cavity, so that the heat generated by the heating device 9 can be evenly distributed inside the mounting cavity, allowing electrical components in different parts to be heated.

[0067] In some possible implementations, the two vents are located on opposite sides of the controller 7.

[0068] In some possible implementations, the composite material heating and pressurizing repair equipment includes a temperature sensor disposed inside the housing 1 and electrically connected to the controller 7.

[0069] The temperature sensor is used to detect the temperature inside the mounting cavity. When the temperature inside the mounting cavity reaches the set value, the controller 7 can control the heating device 9 to cut off the power and stop heating. When the temperature sensor detects that the temperature inside the mounting cavity is lower than the set value, it can control the heating device 9 to turn on the power and heat the mounting cavity.

[0070] It should be noted that the contents disclosed in the various embodiments of this application can be combined to form different specific product solutions.

[0071] Example 3

[0072] See Figures 1 to 5As shown in the embodiment of this application, a composite material heating and pressurizing repair device with a simple pressure measurement structure is provided, including: a housing 1 and a control component. The housing 1 has a cavity, and two vacuum interfaces 114 are provided on the housing 1. The control component is disposed in the cavity. The control component includes a controller 7, a vacuum pump 8, an airflow seat 30, two barometers 60, and two first tubes 40. The vacuum pump 8 is electrically connected to the controller 7. The airflow seat 30 has two airflow channels 301. Both barometers 60 are disposed in the airflow seat 30 and are used to detect the air pressure in the two airflow channels 301 respectively. One end of each of the two first tubes 40 is connected to the airflow seat 30, and each of the two first tubes 40 is connected to one of the airflow channels 301. The other end of each of the two first tubes 40 is connected to one of the vacuum interfaces 114 respectively. The vacuum pump 8 is connected to the airflow seat 30 through a suction pipe 50, and the vacuum pump 8 can selectively connect to any of the airflow channels 301 through the suction pipe 50.

[0073] Vacuum interface 114 can be connected to a vacuum tube, which is connected to a vacuum membrane covering the repair area, so that the vacuum membrane is kept under negative pressure and sufficient pressure is applied to the repair area.

[0074] The vacuum pump 8 of the composite material heating and pressurizing repair equipment provided in this application embodiment can be selectively connected to either airflow channel 301, supporting simultaneous repair operations on two parts. Two barometers 60 can directly detect air pressure, eliminating the need for a dedicated air pressure detection pipe and simplifying the structure.

[0075] In this embodiment, the extraction pipeline 50 includes two second pipelines 501, which are respectively connected to the two airflow channels 301. The extraction pipeline 50 can selectively connect one of the second pipelines 501 and the vacuum pump 8, while simultaneously cutting off the other second pipeline 501 and the vacuum pump 8. When the composite material heating and pressurizing repair equipment is used to repair two areas simultaneously, the extraction pipeline 50 can cyclically and alternately control the vacuum pump 8 to connect the two second pipelines 501, so that the two second pipelines 501 are spatially isolated. The two second pipelines 501 can extract air alternately, but they will not extract air at the same time, so that the vacuum membrane covering the two repair areas can maintain a vacuum state.

[0076] In some possible implementations, the evacuation line 50 has a third line 502 and a connector 503, the third line 502 being connected to the vacuum pump 8, the connector 503 having a first port and two second ports, the third line 502 being connected to the first port, the two second lines 501 being connected to the corresponding second ports, and the connector 503 being able to selectively connect the first port and either of the second ports.

[0077] The communicating vessel 503 can be a three-way valve structure, which can realize the alternating connection of the first interface to two second interfaces, so that the two second pipelines 501 can alternately perform the air extraction task.

[0078] In some possible implementations, each of the two second pipes 501 is provided with a one-way valve 504, which only allows airflow from the airflow seat 30 to the communicating vessel 503. The one-way valve 504 prevents external gas from entering the two second pipes 501 at the communicating vessel 503, thus maintaining a stable negative pressure state in the two second pipes 501.

[0079] In some possible implementations, the communicating vessel 503 is electrically connected to the controller 7, which controls the communicating vessel 503 such that the first interface alternately and cyclically connects the two second interfaces. The communicating vessel 503 can be a solenoid valve, which can rapidly switch states under the control of the controller 7.

[0080] In some possible implementations, the housing 1 is provided with a first zone interface 111 and a second zone interface 112. The control component includes two voltage regulators 2, both of which are electrically connected to the controller 7. The first zone interface 111 and the second zone interface 112 are respectively electrically connected to the corresponding voltage regulators 2. Both the first zone interface 111 and the second zone interface 112 are used to electrically connect to the heating lamp terminal or the electric blanket terminal.

[0081] Optionally, a microwave heating interface 113 is provided on the housing 1, and the control component further includes a magnetron and a first wave converter. The magnetron is electrically connected to a voltage regulator 2. The input end of the first wave converter is connected to the magnetron, and the output end of the first wave converter is connected to the microwave heating interface 113. The microwave heating interface 113 is used to electrically connect to a microwave heating terminal.

[0082] This application provides a control method for a composite material heating and pressurizing repair device, comprising: a controller 7 controlling the air extraction pipeline 50 to alternately connect the two airflow channels 301 in a cyclic manner, so that the vacuum pump 8 performs vacuuming treatment on the vacuum components connected to the two vacuum interfaces 114 respectively.

[0083] The vacuum component can be a vacuum membrane used to cover the area to be repaired. When the vacuum membrane is in a vacuum state, it can press down on the repair patch applied to the repair area. Applying pressure to the repair patch through the vacuum membrane can eliminate pores and other defects. The heating terminal is used to heat the repair area, accelerating the curing of the adhesive between the repair patch and the repair area.

[0084] In some possible implementations, during the operation of the vacuum pump 8, two barometers 60 acquire air pressure values ​​in real time and send them to the controller 7. The controller 7 controls the operation of the pumping line 50 and the vacuum pump 8 based on the air pressure values ​​detected by the barometers 60, so that the air pressure values ​​of the two vacuum components reach the set values.

[0085] The controller 7 first controls the two second pipes 501 of the evacuation pipe 50 to frequently and alternately connect to the vacuum pump 8, so as to evacuate the vacuum membranes of the two repair areas. When the air pressure in one vacuum membrane reaches the required value, the connection time between the second pipe 501 and the vacuum pump 8 corresponding to the vacuum membrane whose air pressure has not reached the set value can be extended, and the connection time between the second pipe 501 and the vacuum pump 8 corresponding to the other vacuum membrane can be shortened, so that the air pressure of the two vacuum membranes reaches the required value as soon as possible.

[0086] In some possible implementations, the device has a heating terminal, which can be any one or more combinations of a heat lamp terminal, an electric blanket terminal, and a microwave heating terminal. The heating terminal is electrically connected to the controller 7, which first controls the operation of the communicating vessel 503 on the vacuum pump 8 and the suction line 50 to adjust the air pressure of the vacuum component to a set value before controlling the heating terminal to turn on.

[0087] The vacuum pump 8 and the extraction pipeline 50 of the composite material heating and pressurizing repair equipment of this application can operate independently of the heating terminal. This application can first perform vacuum treatment on the vacuum membrane to reach the required value, and then control the heating terminal to heat the repair area. This avoids the problem of insufficient vacuum in the early stage when heating and vacuuming are carried out simultaneously, which affects the entire process curve and improves the process accuracy.

[0088] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-described technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.

Claims

1. A composite material heating and pressurization repair device with three heating modes, characterized in that, include: The enclosure has a cavity, a first zone interface, a second zone interface, and a microwave heating interface; A control component is disposed within a cavity. The control component includes a controller, a microwave generator, and at least two voltage regulators. Each voltage regulator and the microwave generator are electrically connected to the controller. The first zone interface and the second zone interface are electrically connected to the corresponding voltage regulators. The microwave generator is electrically connected to one of the voltage regulators and is also electrically connected to the microwave heating interface. The heating terminal includes a heat lamp terminal, an electric blanket terminal, and a microwave heating terminal. The heat lamp terminal and the electric blanket terminal can be electrically connected to the first area interface or the second area interface, and the microwave heating terminal can be electrically connected to the microwave heating interface.

2. The composite material heating and pressurization repair equipment with three heating modes according to claim 1, characterized in that, The microwave generator includes a magnetron and a first wave converter; The magnetron and the first wave converter are both disposed in the cavity. The magnetron is electrically connected to a voltage regulator. The first wave converter is electrically connected to the voltage regulator and the microwave heating interface, respectively. The microwave heating terminal has a microwave power terminal and a second wave converter. The microwave power terminal is detachably connected to the microwave heating interface, and the second wave converter is electrically connected to the microwave power terminal.

3. The composite material heating and pressurization repair equipment with three heating modes according to claim 2, characterized in that, The microwave heating terminal has a protective cover and a silicone sheet. The protective cover has a narrow opening and a wide opening. The second wave converter is connected to the protective cover and covers the narrow opening. The silicone sheet is used to fit the repair area and can cover the wide opening.

4. The composite material heating and pressurization repair equipment with three heating modes according to claim 3, characterized in that, An infrared sensor is installed on the protective cover, with the sensing end of the infrared sensor facing the inside of the protective cover; An infrared sensing interface is provided on the housing, and the infrared sensing interface is electrically connected to the controller. The infrared sensor can be electrically connected to the infrared sensing interface.

5. The composite material heating and pressurization repair equipment with three heating modes according to claim 1, characterized in that, The control component includes multiple first-zone thermocouple interfaces and multiple second-zone thermocouple interfaces.

6. The composite material heating and pressurization repair equipment with three heating modes according to claim 1, characterized in that, The enclosure includes a first enclosure and a second enclosure; The control components are disposed inside the first housing. The second housing is rotatably connected to the first housing to close or open the first housing.

7. The composite material heating and pressurization repair equipment with three heating modes according to claim 6, characterized in that, The first housing is provided with a power interface, a first zone interface, a second zone interface and a microwave heating interface.

8. The composite material heating and pressurization repair equipment with three heating modes according to claim 7, characterized in that, The first housing has a peripheral sidewall, which includes a plurality of sidewalls arranged sequentially, and a first hinge seat is provided on one of the sidewalls; A second hinge seat is provided on the second housing, and the second hinge seat is hinged to the first hinge seat; The power interface, the first zone interface, the second zone interface, and the microwave heating interface are provided on the side wall where the first hinge seat is located.

9. The composite material heating and pressurization repair equipment with three heating modes according to claim 1, characterized in that, The controller includes a touch screen.

10. The composite material heating and pressurization repair device with three heating modes according to claim 1, characterized in that, The enclosure has rollers and a pull rod.