CN210894393U - Thermal protection structure of acceleration sensor - Google Patents

Thermal protection structure of acceleration sensor Download PDF

Info

Publication number
CN210894393U
CN210894393U CN201922308158.6U CN201922308158U CN210894393U CN 210894393 U CN210894393 U CN 210894393U CN 201922308158 U CN201922308158 U CN 201922308158U CN 210894393 U CN210894393 U CN 210894393U
Authority
CN
China
Prior art keywords
base
acceleration sensor
protection structure
sensor
thermal protection
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201922308158.6U
Other languages
Chinese (zh)
Inventor
苏秀红
李翀
胡宇鹏
王泽�
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
General Engineering Research Institute China Academy of Engineering Physics
Original Assignee
General Engineering Research Institute China Academy of Engineering Physics
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by General Engineering Research Institute China Academy of Engineering Physics filed Critical General Engineering Research Institute China Academy of Engineering Physics
Priority to CN201922308158.6U priority Critical patent/CN210894393U/en
Application granted granted Critical
Publication of CN210894393U publication Critical patent/CN210894393U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Cooling Or The Like Of Electrical Apparatus (AREA)

Abstract

The utility model discloses a thermal protection structure of an acceleration sensor, which comprises a heat insulation shell and a base; the base is connected with the test product, and a first gap is formed between the base and the test product; the heat insulation shell is arranged on the base and forms a closed inner space, and the sensor is arranged on the base in the inner space; a water cooling structure used for heat dissipation of the base is arranged in the base; filling the internal space with a phase change material; a second gap is provided between the phase change material and the outer wall of the sensor. The phase-change material is filled between the heat insulation shell and the sensor, so that the heat insulation effect on the sensor is enhanced; by means of the distributed installation between the base and the test product, direct contact of the product with the heat insulation base is avoided, and heat transfer is greatly reduced.

Description

Thermal protection structure of acceleration sensor
Technical Field
The utility model belongs to the technical field of an acceleration sensor protects, concretely relates to acceleration sensor's hot protective structure.
Background
The temperature and vibration composite test can simulate complex mechanical environments such as vibration, overload and noise in the weapon flight process, and therefore the temperature and vibration composite test has attracted wide attention at home and abroad in recent years. When the acceleration is measured by adopting a contact method in a high-temperature vibration composite test, a high requirement is provided for the temperature resistance of the sensor, if the test temperature exceeds the temperature resistance range of the sensor, the sensitivity of the sensor has large deviation, and the accurate acceleration is difficult to obtain by only depending on the sensitivity correction of a temperature response curve. When the temperature is too high, sensitive elements in the acceleration sensor can be damaged, so that the sensor fails. At present, the highest tolerable temperature of a foreign sensor can reach 650 ℃, but the sensor is large in size, the problems of low-frequency response deterioration and the like can occur in the practical use process, and the high-temperature resistant sensor is actively developed at home, but the tolerable temperature is not high at present.
In order to solve the above problems, the inventor developed a thermal protection structure of an acceleration sensor.
Disclosure of Invention
An object of the present invention is to provide a thermal protection structure for an acceleration sensor to solve the above-mentioned problems.
The utility model discloses a following technical scheme realizes above-mentioned purpose:
a thermal protection structure of an acceleration sensor, comprising:
a thermally insulated housing;
a base; the base is connected with the test product, and a first gap is formed between the base and the test product; the heat insulation shell is arranged on the base and forms a closed inner space, and the sensor is arranged on the base in the inner space; a water cooling structure used for heat dissipation of the base is arranged in the base.
Specifically, the internal space is filled with a phase change material.
Further, a second gap is provided between the phase change material and the outer wall of the sensor.
Specifically, a hole for a sensor lead to pass through is formed in the heat insulation shell, and the hole is plugged by asbestos after the sensor lead passes through the hole.
Specifically, the heat insulation shell is provided with an air extraction hole, the air extraction hole is sealed when the heat insulation shell is not used, and all spaces of the heat insulation shell including the second gap are converted into a vacuum environment through the air extraction hole.
Preferably, the heat insulation shell is made of zirconia fiber board, and the outer wall of the heat insulation shell is plated with a reflecting film.
Further preferably, the wall thickness of the insulating enclosure is 2mm to 6 mm.
Preferably, the heat insulating base is made of zirconia.
Further preferably, the thickness of the heat insulation base is 5mm-10 mm.
Specifically, the water cooling structure comprises a water flow channel which is arranged in the base and communicated with the base, a water inlet and a water outlet are arranged on the base, and the water inlet and the water outlet are respectively connected with two ends of the water flow channel.
The beneficial effects of the utility model reside in that:
1. the phase-change material is filled between the heat insulation shell and the sensor, so that the heat insulation effect on the sensor is enhanced;
2. a distributed installation mode between the base and the test product is provided, direct contact between the product and the heat insulation base is avoided, and heat transfer is greatly reduced.
Drawings
Fig. 1 is a schematic structural diagram of the present application.
In the figure: 1. a thermally insulated housing; 2. a phase change material; 3. an air exhaust hole; 41. a water inlet; 42. a water outlet; 5. a sensor wire; 6. a bolt; 7. a sensor; 8. producing a product; 81. a first gap; 9. a base; 10. a second gap.
Detailed Description
The present invention will be further explained with reference to the accompanying drawings:
as shown in fig. 1, a thermal protection structure of an acceleration sensor includes:
a heat-insulating casing 1;
a base 9; the base 9 is connected with the test product 8, and a first gap 81 is arranged between the base 9 and the test product 8; the heat insulation shell 1 is arranged on a base 9 and forms a closed inner space, and the sensor 7 is arranged on the base 9 in the inner space; a water cooling structure for dissipating heat from the base 9 is provided in the base 9.
In some embodiments, the base 9 is formed in a cuboid-type structure, with the bottom surface of the base 9 being parallel to the surface of the test product 8;
in some embodiments, the base 9 is connected with the test product 8 through at least two bolts 6, screw holes are arranged on the base 9, and screw holes are arranged on the test product 8; the bolts 6 are screwed in from the screw holes in the base 9 and then into the screw holes in the test product 8, but still ensuring a first gap 81 between the base 9 and the test product 8. In the present embodiment, rigid transmission of the vibration response characteristic can be ensured by increasing the rigidity of the fastening bolt 6.
In some embodiments, the first gap 81 is preferably about 4 mm.
In some embodiments, the heat insulation shell 1 and the base 9 and the sensor 7 are bonded by high-temperature glue.
As shown in fig. 1, the internal space is filled with a phase change material 2. Preferably a paraffin phase change material 2, the phase change material 2 being capable of accomplishing heat storage by virtue of the latent heat change of the material upon phase transition.
As shown in fig. 1, a second gap 10 is provided between the phase change material 2 and the outer wall of the sensor 7. The second gap 10 is provided to avoid that the additional mass has an influence on the vibrational response of the sensor 7.
As shown in fig. 1, a hole for passing the sensor lead 5 is formed in the heat insulation casing 1, and the hole is blocked by asbestos after the sensor lead 5 passes through the hole.
As shown in fig. 1, an air exhaust hole 3 is provided on the heat insulating housing 1, the air exhaust hole 3 is blocked when not in use, and all the space of the heat insulating housing 1 including the second gap 10 is converted into a vacuum environment through the air exhaust hole 3. As the zirconia fiber board of the material of the heat insulation shell 1 is provided with a plurality of small holes, the heat insulation effect of the structure can be enhanced after the heat insulation shell is vacuumized.
In some embodiments, the heat insulation housing 1 is made of zirconia fiber board, and a reflective film is plated on the outer wall of the heat insulation housing 1; the wall thickness of the heat insulation shell 1 is 2mm-6 mm.
The zirconia fiberboard material has better heat insulation performance than alumina fiber and alumina silicate fiber, the heat conductivity can be controlled below 0.1W/mK through preparation, the size of the heat insulation shell 1 can be changed according to the size of the sensor 7, and in order to reduce heat conduction, the wall thickness of the shell is considered to be 2-6 mm. The surface of the heat insulation shell 1 is plated with a reflecting film for reflecting heat radiation.
In some embodiments, the thermally insulating base 9 is made of zirconia. The thickness of the heat insulation base 9 is 5mm-10 mm. The base 9 is made of zirconia, the thermal conductivity is 2-4W/mK, and the hardness of the material is enough for the requirement of a vibration test.
As shown in fig. 1, the water cooling structure includes a water flow channel (not shown in the figure) disposed in the base 9 and communicated with the base 9, and a water inlet 41 and a water outlet 42 are disposed on the base 9, and the water inlet 41 and the water outlet 42 are respectively connected to two ends of the water flow channel. The heat insulation base 9 is added with a water cooling structure, and water cooling is circulated in the test process to take away part of heat.
The foregoing illustrates and describes the principles, general features, and advantages of the present invention. It will be understood by those skilled in the art that the present invention is not limited to the above embodiments, and that the foregoing embodiments and descriptions are provided only to illustrate the principles of the present invention without departing from the spirit and scope of the present invention. The scope of the invention is defined by the appended claims and equivalents thereof.

Claims (10)

1. A thermal protection structure of an acceleration sensor, comprising:
a thermally insulated housing;
a base; the base is connected with the test product, and a first gap is formed between the base and the test product; the heat insulation shell is arranged on the base and forms a closed inner space, and the sensor is arranged on the base in the inner space; a water cooling structure used for heat dissipation of the base is arranged in the base.
2. The thermal protection structure of an acceleration sensor of claim 1, characterized in that, the inner space is filled with phase change material.
3. The thermal protection structure of an acceleration sensor of claim 2, characterized in, that between the phase change material and the outer wall of the sensor is provided a second gap.
4. The thermal protection structure of an acceleration sensor of claim 1, characterized in that, there is a hole on the heat insulation shell for the sensor wire to pass through, and the hole is sealed by asbestos after the sensor wire passes through the hole.
5. The thermal protection structure for an acceleration sensor according to claim 3, characterized in that, a suction hole is provided on the heat insulation housing, the suction hole is blocked when not in use, and all the spaces of the heat insulation housing including the second gap are converted into a vacuum environment through the suction hole.
6. The thermal protection structure of an acceleration sensor according to claim 1, characterized in that, the thermal insulation casing is made of zirconia fiber board, and the outer wall of the thermal insulation casing is plated with a reflective film.
7. The thermal protection structure of an acceleration sensor according to claim 6, characterized in that the wall thickness of the thermal insulation case is 2mm-6 mm.
8. The thermal protection structure of an acceleration sensor of claim 1, characterized in that, the thermal insulation base is made of zirconia.
9. The thermal protection structure of an acceleration sensor of claim 8, characterized in that, the thickness of the thermal insulation base is 5mm-10 mm.
10. The thermal protection structure of an acceleration sensor of claim 1, characterized in that, the water cooling structure comprises a water channel disposed in the base and connected to the base, and a water inlet and a water outlet are disposed on the base and connected to two ends of the water channel respectively.
CN201922308158.6U 2019-12-20 2019-12-20 Thermal protection structure of acceleration sensor Active CN210894393U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201922308158.6U CN210894393U (en) 2019-12-20 2019-12-20 Thermal protection structure of acceleration sensor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201922308158.6U CN210894393U (en) 2019-12-20 2019-12-20 Thermal protection structure of acceleration sensor

Publications (1)

Publication Number Publication Date
CN210894393U true CN210894393U (en) 2020-06-30

Family

ID=71321302

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201922308158.6U Active CN210894393U (en) 2019-12-20 2019-12-20 Thermal protection structure of acceleration sensor

Country Status (1)

Country Link
CN (1) CN210894393U (en)

Similar Documents

Publication Publication Date Title
CN207099513U (en) A kind of good degree of protection of heat sinking function is up to 65 grades and the electric cabinet of the above
CN106102415B (en) Radiator, battery and electronic equipment
JP2019509461A (en) Magnetocaloric device
CN210894393U (en) Thermal protection structure of acceleration sensor
JP6653118B2 (en) Single-sided heat transfer type temperature equalizer
CN112787465A (en) High-power-density outer rotor permanent magnet motor heat dissipation device based on heat dissipation copper pipe technology
CN110824182A (en) Thermal protection structure of acceleration sensor
CN107579625A (en) Motor temperature regulating device for infrared band test system
CN210579772U (en) Heat insulation structure and liquid cooling plate
CN213748479U (en) Isolated installation box, constant-temperature installation box and fiber-optic gyroscope navigation equipment
CN108633231A (en) A kind of radiator of energy-saving and high efficient electromechanical equipment
CN208141275U (en) Sealed computer cabinet
CN115460335A (en) Video camera
CN211183776U (en) High-temperature isolation power supply module
CN208141314U (en) Combined radiating device
CN108417543A (en) Heat-pipe radiator based on porous conductive material
CN209643244U (en) Optical module radiator structure and optical module
CN208063599U (en) A kind of low temperature resistant idle compensating control
CN208999950U (en) A kind of radiator with dust control and noise absorption function
CN109940452A (en) Electro spindle thermo-electric cooling device
CN107438347B (en) Heat dissipation device
CN206563919U (en) A kind of Flat computer structure
CN217006163U (en) Ultrasonic heat meter with heat radiation structure
CN206332972U (en) A kind of wide warm thermal controls apparatus
CN218023219U (en) Heat preservation device and optical equipment

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant