CN202928220U - Deep low temperature heat regenerator adopting carbon nanometer heat regeneration filling materials and pulse pipe refrigerating machine of deep low temperature heat regenerator - Google Patents

Deep low temperature heat regenerator adopting carbon nanometer heat regeneration filling materials and pulse pipe refrigerating machine of deep low temperature heat regenerator Download PDF

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Publication number
CN202928220U
CN202928220U CN 201220647436 CN201220647436U CN202928220U CN 202928220 U CN202928220 U CN 202928220U CN 201220647436 CN201220647436 CN 201220647436 CN 201220647436 U CN201220647436 U CN 201220647436U CN 202928220 U CN202928220 U CN 202928220U
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order
regenerator
heat exchanger
precooling
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甘智华
王博
王龙一
刘东立
张小斌
张学军
汪伟伟
吴镁
刘雨梦
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Zhejiang University ZJU
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Zhejiang University ZJU
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Abstract

The utility model discloses a deep low temperature heat regenerator adopting carbon nanometer heat regeneration filling materials. The deep low temperature heat regenerator comprises a stainless steel pipe and heat regeneration filling materials placed in the stainless steel pipe, wherein at least one section of the stainless steel filling materials is a carbon nanometer material section. Carbon nanometer materials consisting of one kind or several kinds of materials from carbon nanometer pipes, carbon nanometer fiber bundles, carbon nanometer balls and carbon nanometer metal cages are filled into the stainless steel pipe for forming an efficient low-temperature heat regenerator, wherein the diameter of each material is smaller than 1 micrometer. Helium has higher volumetric specific heat capacity in a liquid helium temperature region, so the carbon nanometer materials adsorbing the helium also have higher volumetric specific heat capacity in a wider temperature range being lower than 10K, meanwhile, better stability is realized, and the filling materials are excellent deep low temperature region heat regeneration filling materials. Compared with the deep low temperature heat regenerator adopting the traditional heat regeneration filling materials, the heat regenerator adopting the carbon nanometer materials can obtain higher efficiency, so the performance of a liquid helium temperature region pulse pipe regenerating machine is improved.

Description

Adopt profound hypothermia regenerator and the vascular refrigerator thereof of carbon nanometer backheat filler
Technical field
The utility model relates to a kind of regenerating type low-temperature refrigerator, especially relates to a kind of profound hypothermia regenerator and vascular refrigerator thereof of carbon nanometer backheat filler.
Background technology
The liquid helium warm area has indispensable important function in fields such as national defense and military, energy medical treatment, Aero-Space, low-temperature physics.Since Dutch physicist Kamerlingh.Onnes realized the liquefaction of helium first in 1908, liquid helium warm area (4K) is the Focal point and difficult point of cryogenic engineering area research always.Simultaneously, particularly, since the eighties in 20th century, the mankind have had higher technology and performance requirement to the profound hypothermia Refrigeration Technique, and to efficiency, reliability, the volume and weight of Cryo Refrigerator, and vibration etc. has proposed more and more harsher requirement.
Vascular refrigerator is proposed in 1964 by Gifford and Longsworth, there is not moving component in it at cold junction, have high reliability and long-life potential advantages, through the development of nearly half a century, vascular refrigerator has been widely used in the fields such as Aero-Space, low-temperature superconducting at present.According to the difference of drive source, vascular refrigerator mainly is divided into G-M vascular refrigerator (also claiming the low frequency vascular refrigerator) and Stirling vascular refrigerator (also claiming high-frequency vascular refrigerator); The G-M vascular refrigerator is by the driven compressor of G-M refrigeration machine, and its operating frequency is generally 1~2Hz, and the Stirling vascular refrigerator is driven by Linearkompressor, and its operating frequency is generally at 30Hz.
The minimum temperature that the G-M vascular refrigerator can obtain at present is 1.3K, has realized the commercial applications of liquid helium and above warm area, but its efficiency at the liquid helium warm area very low (need to input the electric work of 6~10kW in the refrigerating capacity of 4.2K acquisition 1W); And compare with the G-M vascular refrigerator, the Stirling vascular refrigerator has a series of advantages such as compact conformation, efficiency be high, lightweight, and it is relatively ripe in the technology of 35K and above warm area, be widely used in the Aero-Space task of above-mentioned warm area at present, but the Stirling vascular refrigerator is still extremely low in the efficiency of profound hypothermia (<10K), one of them main cause is that the volumetric specific heat capacity of helium sharply increases at the following warm area of 15K, the specific heat capacity of backheat filler (as materials such as lead shot, stainless steels) commonly used significantly descends, although magnetic backheat filler (Er 3ni etc.) there is higher volumetric specific heat capacity peak value, but this peak value also only exists in its phase transition temperature zone, thereby the efficiency that causes the profound hypothermia regenerator sharply reduces (as shown in Figure 4), and then cause liquid helium warm area Stirling pulse tube refrigeration engine efficiency extremely low, so searching (<10K) under profound hypothermia has the backheat filler of high specific heat capacity, be a key that solves current liquid helium warm area vascular refrigerator inefficiency.The patent documentation that application number is CN200910100286.X discloses a kind of high-frequency heat regenerator and refrigeration machine thereof that adopts stainless steel fibre regenerative material, the high-frequency heat regenerator that adopts stainless steel fibre regenerative material is to be filled with the stainless steel fibre that string diameter is 2mm-15mm to form high-frequency heat regenerator in stainless steel tube, operating frequency at the 300-80K warm area is 150HZ-1000HZ, in the operating frequency of 80K-35K warm area, is 100HZ-1000HZ.This novel high-frequency heat regenerator not only can be applied to 80K warm area single-stage pulse tube refrigerator, also can be applied in the coupling of 35K warm area Multi-stage heat or gas coupling vascular refrigerator.Stainless steel fibre has the string diameter less than traditional stainless steel cloth, can form less fluid passage, can so that regenerator at the 300K-80K warm area, under the high frequency operating mode of 150-1000HZ, perhaps at the 80K-35K warm area, under the high frequency operating mode of 100-1000HZ, efficient operation.But as mentioned above,, under profound hypothermia, the specific heat capacity of (<10K) this regenerative material can significantly descend, and has greatly affected the refrigerating efficiency of regenerator and vascular refrigerator.
The utility model content
The utility model provides a kind of profound hypothermia regenerator that adopts carbon nanometer backheat filler, this regenerator adopts and fill the CNT that is less than 1 micron by diameter in stainless steel tube, the carbon nano-fiber bundle, the carbon nanomaterial that any one in Nano carbon balls and carbon nano metal cage or multiple material form, operation temperature area is at 10K and when following, carbon nanomaterial has extraordinary adsorption capacity, because helium is higher at the volumetric specific heat capacity of liquid helium warm area, so the carbon nanomaterial that has adsorbed helium also has higher volumetric specific heat capacity in wider temperature range below 10K, there is stability preferably simultaneously, it is a kind of backheat filler with higher volumes specific heat capacity, use the regenerator of carbon nanomaterial to there is higher effectiveness of regenerator at the following warm area of 10K.
A kind of profound hypothermia regenerator that adopts carbon nanometer backheat filler, comprise stainless steel tube and be placed in the backheat filler in stainless steel tube, it is characterized in that at least one section carbon nanomaterial section for being formed by the carbon nanomaterial filling in described backheat filler.
The diameter of described carbon nanomaterial is several to tens nanometers, and the length of carbon nanomaterial is micron order.For example, as preferably, any one in CNT, carbon nano-fiber bundle, Nano carbon balls and carbon nano metal cage that described carbon nanomaterial can be less than 1 micron by diameter or multiple the composition.Described carbon nanomaterial section is near described regenerator cold junction.The height of carbon nanomaterial section need to determine that according to the temperature in regenerator real work district it is the following part of 10K that the carbon nanomaterial section need to be in the regenerator operation temperature area.During actual the filling, need at first to determine according to analog computation, according to analog computation, determine the Temperature Distribution that this regenerator is axial, then according to Temperature Distribution, fill carbon nanomaterial.
Carbon nanomaterial is a kind of new material that over nearly 20 years, new development is got up, its diameter is several to tens nanometers, and length is in micron level, and it has very large specific area, so there is extremely strong adsorption capacity, obtained paying close attention to widely and studying in fields such as hydrogen energy storages at present.Fig. 5 is the schematic diagram of carbon nanometer bundle adsorbed gas, as can be seen from the figure not only section's (1 point) adsorbed gas within it of CNT, can also the tube bank between (2 point) and the tube bank outside (3 and 4 points) adsorb a certain amount of gas, if fill carbon nanomaterial in stainless steel tube, high-pressure helium is annotated in punching simultaneously, carbon nanomaterial will adsorb a large amount of helium so, and adsorbance raises along with the reduction of temperature, so, these carbon nanomaterials that adsorbed a large amount of helium will have the volumetric specific heat capacity close to helium at uniform pressure and temperature, as shown in Figure 4, the volumetric specific heat capacity that has adsorbed the carbon nanomaterial of helium is greater than profound hypothermia backheat filler commonly used in very wide profound hypothermia warm area (below 10K), it is a kind of new backheat filler with high volumetric specific heat capacity, the profound hypothermia vascular refrigerator of the regenerator that employing is comprised of carbon nanomaterial will have higher efficiency and better performance, carbon nanomaterial is easy to prepare simultaneously, easily obtain and low price.
On profound hypothermia regenerator based on above-mentioned employing carbon nanometer backheat filler and the basis of existing vascular refrigerator, the utility model provides several vascular refrigerators, the refrigerating efficiency of following several vascular refrigerators is all higher, all can efficiently reach 10K and lower operation temperature area.
A kind of vascular refrigerator, comprise first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit, in first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit, all adopts the low frequency compressor bank; The regenerator of described second level low temperature pulse tubes refrigerator unit comprises second level precooling zone regenerator, second level precooling zone regenerator cool end heat exchanger and the second level low-temperature zone regenerator be communicated with successively; First order cool end heat exchanger by being connected to first order precooling pulse refrigerator unit between described first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit and the heat bridge between the precooling zone regenerator cool end heat exchanger of the second level carry out thermal coupling; The profound hypothermia regenerator that described second level low-temperature zone regenerator is the described employing carbon of above-mentioned arbitrary technical scheme nanometer backheat filler.The low frequency compressor bank consist of prior art, generally comprise compressor, level aftercooler, low-pressure control valve and high pressure control valve etc.
Described first order precooling pulse refrigerator unit comprises first order low frequency compressor bank, first order regenerator, first order cool end heat exchanger, first order vascular, first order vascular hot-side heat exchanger and the first order phase modulating mechanism connected successively, described first order phase modulating mechanism comprises: first order air reservoir, by being communicated with of pipeline and described first order vascular hot-side heat exchanger; The little ports valve of the first order, be located on the pipeline between described first order air reservoir and described first order vascular hot-side heat exchanger; First order bidirection air intake valve, the pipeline connection between an end and described first order low frequency compressor bank and first order regenerator, the pipeline connection between the little ports valve of the other end and the first order and described first order vascular hot-side heat exchanger.
Described second level low temperature pulse tubes refrigerator unit comprises second level low frequency compressor bank, second level precooling zone regenerator, second level precooling zone regenerator cool end heat exchanger, second level low-temperature zone regenerator, second level cool end heat exchanger, second level vascular, second level vascular hot-side heat exchanger and the second level phase modulating mechanism connected successively, described second level phase modulating mechanism comprises: second level air reservoir, by being communicated with of pipeline and described second level vascular hot-side heat exchanger; The little ports valve in the second level, be located on the pipeline between described second level air reservoir and described second level vascular hot-side heat exchanger; Second level bidirection air intake valve, the pipeline connection between an end and described second level low frequency compressor bank and second level precooling zone regenerator, the pipeline connection between the little ports valve in the other end and the second level and described second level vascular hot-side heat exchanger.
First order phase modulating mechanism and second level phase modulating mechanism also can adopt other phase modulating mechanisms with identical phase modulation function, for the adjustment of the mass flow in corresponding regenerator and pressure wave phase place, guarantee the stable and high effective operation of system.
When adopting the low frequency compressor bank, generally adopt two-layer configuration can reach 10K and the following operation temperature area of 10K.When adopting the high frequency compressor bank, for example, when adopting Linearkompressor, under present condition, two-layer configuration is difficult to reach 10K and the following operation temperature area of 10K, so in order to guarantee the more effective work of regenerator of the present utility model, as preferably, a kind of vascular refrigerator, comprise first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit; Described second level precooling pulse refrigerator unit comprises second level precooling zone regenerator, second level precooling zone regenerator cool end heat exchanger, the second level low-temperature zone regenerator be communicated with successively; Regenerator in described third level low temperature pulse tubes refrigerator unit comprises the third level the first precooling zone regenerator, the third level the first precooling zone regenerator cool end heat exchanger, the third level the second precooling zone regenerator, the third level the second precooling zone regenerator cool end heat exchanger, the third level low-temperature zone regenerator be communicated with successively; Described first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit carry out a thermal coupling by the first order heat bridge between the first order cool end heat exchanger, second level precooling zone regenerator cool end heat exchanger and the third level the first precooling zone regenerator cool end heat exchanger that are connected to first order precooling pulse refrigerator unit, and the second level heat bridge of the second level cool end heat exchanger by being connected to the third level the second precooling zone regenerator cool end heat exchanger and second level precooling pulse refrigerator unit carries out the second heat coupling; The profound hypothermia regenerator that described third level low-temperature zone regenerator is the described employing carbon of arbitrary technical scheme nanometer backheat filler in technique scheme.
Described first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit include a phase modulating mechanism, this phase modulating mechanism by an air reservoir and be located at this air reservoir and corresponding vascular hot-side heat exchanger between inertia tube form.
For further reducing the operation temperature area of third level low temperature pulse tubes refrigerator unit low-temperature zone, as preferably, the vascular hot-side heat exchanger in described third level low temperature pulse tubes refrigerator unit and phase modulating mechanism are communicated with second level heat bridge simultaneously.
Compared with prior art, the beneficial effects of the utility model are embodied in:
Profound hypothermia regenerator of the present utility model, employing is filled and is less than the CNT of 1 micron by diameter in stainless steel tube, the carbon nano-fiber bundle, the carbon nanomaterial that any one in Nano carbon balls and carbon nano metal cage or multiple material form, carbon nanomaterial has extraordinary adsorption capacity under low temperature and high pressure, operation temperature area is at 10K and 10K when following, there is extraordinary adsorption capacity, because helium is higher at the volumetric specific heat capacity of liquid helium warm area, also there is higher volumetric specific heat capacity so adsorbed the carbon nanomaterial of helium in wider temperature range, there is stability preferably simultaneously, it is a kind of very excellent profound hypothermia warm area backheat filler, with the profound hypothermia regenerator that uses traditional backheat filler (as terres rares magnetic regenerative material etc.), compare, adopt carbon nanomaterial can obtain and there is higher efficiency as the regenerator of backheat filler, thereby improved the performance of profound hypothermia vascular refrigerator.
The accompanying drawing explanation
The structural representation of a kind of embodiment of the vascular refrigerator of the profound hypothermia regenerator that Fig. 1 is employing carbon nanometer backheat filler of the present utility model.
The structural representation of the another kind of embodiment of the vascular refrigerator of the profound hypothermia regenerator that Fig. 2 is employing carbon nanometer backheat filler of the present utility model.
The structural representation of the third embodiment of the vascular refrigerator of the profound hypothermia regenerator that Fig. 3 is employing carbon nanometer backheat filler of the present utility model.
The volumetric specific heat capacity that Fig. 4 is many kinds of substance and the relation between temperature.
The schematic diagram that Fig. 5 is the adsorbed gas of carbon nanometer bundle.
The specific embodiment
Embodiment 1
As shown in Figure 1: a kind of two-stage low frequency vascular refrigerator of the profound hypothermia regenerator of carbon nanometer backheat filler that adopts comprises: by first order compressor C1, first order level aftercooler AC1, first order compressor low-pressure control valve LV1, first order compressor high pressure control valve HV1, first order regenerator RG1, first order cool end heat exchanger HX2, first order vascular PT1, first order vascular hot-side heat exchanger HX3, first order bidirection air intake valve DO1, first order aperture valve O1, the first order precooling pulse refrigerator unit that first order air reservoir R1 forms, heat bridge TB, and by high stage compressor C2, second level level aftercooler AC2, high stage compressor low-pressure control valve LV2, high stage compressor high pressure control valve HV2, second level precooling zone regenerator RG21, second level precooling zone regenerator cool end heat exchanger HX5, second level low-temperature zone regenerator RG22, second level cool end heat exchanger HX6, second level vascular PT2, second level vascular hot-side heat exchanger HX7, second level bidirection air intake valve DO2, the second level low temperature pulse tubes refrigerator unit that second level aperture valve O2 and second level air reservoir R2 form.
Second level low-temperature zone regenerator RG22 is filled with the carbon nano adsorption material near the bottom of cold junction, operation temperature area is 10K and below 10K, this section is carbon nanomaterial section RG23, the carbon nanomaterial diameter is several to tens nanometers, its material structure can in CNT, carbon nano-fiber bundle, Nano carbon balls and carbon nano metal cage any one or multiple.The height of carbon nanomaterial section RG23 need to be definite according to the realistic simulation experiment, and in second level low-temperature zone regenerator RG22, operation temperature area is the carbon nanomaterial section at 10K and the carbon nanomaterial that is partially filled below 10K.Concrete assembly method is: uniform filling carbon nanomaterial in stainless steel tube, two ends seal the formation regenerator with fine and close hard silk screen.
The annexation of above-mentioned each parts is as follows: first order compressor C1, first order level aftercooler AC1, first order compressor high pressure control valve HV1 and first order compressor low-pressure control valve LV1 contact successively and form the closed circuit of first order low frequency compressor bank; Pipeline connection between the entrance of first order regenerator RG1 and first order compressor high pressure control valve HV1 and first order compressor low-pressure control valve LV1; The outlet of first order regenerator RG1 is communicated with first order cool end heat exchanger HX2, first order vascular PT1, first order vascular hot-side heat exchanger HX3, first order aperture valve O1 and first order air reservoir R1 import by pipeline successively; Pipeline connection between first order bidirection air intake valve DO1 mono-end and first order regenerator RG1 and first order low frequency compressor bank, the pipeline connection between the first order bidirection air intake valve DO1 other end and first order aperture valve O1 and first order vascular hot-side heat exchanger HX3.High stage compressor C2, second level level aftercooler AC2, high stage compressor high pressure control valve HV2 and high stage compressor low-pressure control valve LV2 are communicated with formation second level low frequency compressor bank successively; Second level precooling zone regenerator RG21 is communicated with second level precooling zone regenerator cool end heat exchanger HX5, second level low-temperature zone regenerator RG22, second level cool end heat exchanger HX6, second level vascular PT2, second level vascular hot-side heat exchanger HX7, second level aperture valve O2 and second level air reservoir R2 successively by pipeline; Pipeline connection between second level bidirection air intake valve DO2 mono-end and second level low frequency compressor bank and second level precooling zone regenerator RG21, the pipeline connection between the other end of second level bidirection air intake valve DO2 and second level aperture valve O2 and second level vascular hot-side heat exchanger HX7.Carry out thermal coupling by the heat bridge TB that is connected to first order cool end heat exchanger HX2, second level precooling zone regenerator cool end heat exchanger HX5 between one-level precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit, realize the precooling of first order cool end heat exchanger HX2 to second level precooling zone regenerator cool end heat exchanger HX5.
The running of the two-stage low frequency vascular refrigerator of the employing carbon nanometer backheat filler regenerator of present embodiment is:
Starting stage, first order compressor low pressure modulating valve LV1, first order compressor septum valve HV1 is all in closed condition, gas becomes high temperature and high pressure gas after first order compressor C1 compression, high temperature and high pressure gas is flowed through after first order level aftercooler AC1 and is cooled to room temperature, when gas pressure higher than when setting value, first order compressor septum valve HV1 opens, the high pressure room temperature air flows out and is divided into two strands from first order compressor high pressure valve HV1, one is by first order regenerator RG1 and carry out heat-exchange temperature with filler wherein and reduce and enter in follow-up associated components, another strand enters in follow-up associated components by first order bidirection air intake valve DO1, make whole system all in high pressure conditions, then first order compressor septum valve HV1 closes, first order compressor low pressure modulating valve LV1 opens, gas is divided into two strands from first order air reservoir R1 through first order aperture valve O1, one gets back to first order compressor C1 from first order bidirection air intake valve DO1 by first order compressor low pressure modulating valve LV1, another stock-traders' know-how is crossed first order vascular PT1, first order regenerator RG1 finally gets back to first order compressor C1 by first order compressor low pressure modulating valve LV1, complete thus a circulation, in cyclic process, there is the temperature difference in the gas of turnover first order cool end heat exchanger HX2, produce thus refrigeration effect, first order cold takes out the gas that enters second level low-temperature zone regenerator in order to precooling from first order cool end heat exchanger HX2 by heat bridge TB.
Starting stage, high stage compressor low pressure modulating valve LV2, high stage compressor septum valve HV2 is all in closed condition, gas becomes high temperature and high pressure gas after high stage compressor C2 compression, high temperature and high pressure gas is flowed through after the level aftercooler AC2 of the second level and is cooled to room temperature, when gas pressure higher than when setting value, high stage compressor septum valve HV2 opens, the high pressure room temperature air flows out and is divided into two strands from high stage compressor high pressure valve HV2, one is cooled to the cryogenic temperature of the first order by second level precooling zone regenerator RG21 the second level precooling zone regenerator cool end heat exchanger HX5 that is connected with heat bridge TB at its cold junction, then enter in follow-up associated components, another strand enters in follow-up associated components by second level bidirection air intake valve DO2, make whole system all in high pressure conditions, then high stage compressor septum valve HV2 closes, high stage compressor low pressure modulating valve LV2 opens, gas is divided into two strands from second level air reservoir R2 through second level aperture valve O2, one gets back to high stage compressor C2 from second level bidirection air intake valve DO2 by high stage compressor low pressure modulating valve LV2, another stock-traders' know-how is crossed second level vascular PT2, second level low-temperature zone regenerator RG22, second level precooling zone regenerator RG21 finally gets back to high stage compressor C2 by high stage compressor low pressure modulating valve LV2, complete thus a circulation, in cyclic process, there is the temperature difference in the gas of turnover second level cool end heat exchanger HX6, produce thus refrigeration effect.
Embodiment 2
As shown in Figure 2, a kind of high-frequency vascular refrigerator of the profound hypothermia regenerator of carbon nanometer backheat filler that adopts comprises by first order compressor C1, first order regenerator hot end heat exchanger HX1, first order regenerator RG1, first order cool end heat exchanger HX2, first order vascular PT1, first order vascular hot-side heat exchanger HX3, first order inertia tube I1, the first order precooling pulse refrigerator unit that first order air reservoir R1 forms, first order heat bridge TB1, by high stage compressor C2, second level regenerator hot end heat exchanger HX4, second level precooling zone regenerator RG21, second level precooling zone regenerator cool end heat exchanger HX5, second level low-temperature zone regenerator RG22, second level cool end heat exchanger HX6, second level vascular PT2, second level vascular hot-side heat exchanger HX7, second level inertia tube I2, the second level precooling pulse refrigerator unit that second level air reservoir R2 forms, second level heat bridge TB2, and by third level compressor C3, third level regenerator hot end heat exchanger HX8, the third level the first precooling zone regenerator RG31, the third level the first precooling zone regenerator cool end heat exchanger HX9, the third level the second precooling zone regenerator RG32, the third level the second precooling zone regenerator cool end heat exchanger HX10, third level low-temperature zone regenerator RG33, third level cool end heat exchanger HX11, third level vascular PT3, third level vascular hot-side heat exchanger HX12, third level inertia tube I3, the third level low temperature pulse tubes refrigerator unit that third level air reservoir R3 forms.Operation temperature area is at 10K and be partially filled carbon nanomaterial below 10K in third level low-temperature zone regenerator RG33, and the specification of carbon nanomaterial is with embodiment 1.
The annexation of above-mentioned each parts is as follows: first order compressor C1 is communicated with first order regenerator hot end heat exchanger HX1, first order regenerator RG1, first order cool end heat exchanger HX2, first order vascular PT1, first order vascular hot-side heat exchanger HX3, first order inertia tube I1 and first order air reservoir R1 successively by pipeline, high stage compressor C2 is communicated with second level regenerator hot end heat exchanger HX4, second level precooling zone regenerator RG21, second level precooling zone regenerator cool end heat exchanger HX5, second level low-temperature zone regenerator RG22, second level cool end heat exchanger HX6, second level vascular PT2, second level vascular hot-side heat exchanger HX7, second level inertia tube I2 and second level air reservoir R2 successively by pipeline, third level compressor C3 by pipeline successively with third level regenerator hot end heat exchanger HX8, the third level the first precooling zone regenerator RG31, the third level the first precooling zone regenerator cool end heat exchanger HX9, the third level the second precooling zone regenerator RG32, the third level the second precooling zone regenerator cool end heat exchanger HX10, third level low-temperature zone regenerator RG33, third level cool end heat exchanger HX11, third level vascular PT3, third level vascular hot-side heat exchanger HX12, third level inertia tube I3 and third level air reservoir R3 are communicated with.First order cool end heat exchanger HX2, second level precooling zone regenerator cool end heat exchanger HX5 and the third level the first precooling zone regenerator cool end heat exchanger HX9 first order heat bridge TB1 respectively connect, and the second level cool end heat exchanger HX6 of the third level the second precooling zone regenerator cool end heat exchanger HX10 and second level precooling pulse refrigerator unit is connected with second level heat bridge TB2 respectively.
The course of work of the high-frequency vascular refrigerator of the employing carbon nanometer backheat filler regenerator of this embodiment is:
At high pressure phase, flow through after first order regenerator hot end heat exchanger HX1 and be cooled to room temperature through the high temperature and high pressure gas of first order compressor C1 compression, then with first order regenerator RG1 in the backheat filler carry out heat exchange, temperature reduces, and the first order cool end heat exchanger HX2 that then flows through successively, first order vascular PT1, first order vascular hot-side heat exchanger HX3, first order inertia tube I1 enter first order air reservoir R1, then enter low pressure cycle, gas passes through first order inertia tube I1 successively from first order air reservoir R1, first order vascular hot-side heat exchanger HX3, first order vascular PT1, first order cool end heat exchanger HX2, first order regenerator RG1 gets back in first order compressor C1 and completes a circulation, in cyclic process, there is the temperature difference in the gas of turnover first order cool end heat exchanger HX2, thereby produce refrigeration effect at first order cool end heat exchanger HX2 place, the refrigerating capacity at this place provides precooling by the second level precooling zone regenerator cool end heat exchanger HX5 that is connected with first order heat bridge TB1 respectively and the third level the first precooling zone regenerator cool end heat exchanger HX9 for second level vascular refrigerator and third level vascular refrigerator.
At high pressure phase, flow through after the regenerator hot end heat exchanger HX4 of the second level and be cooled to room temperature through the high temperature and high pressure gas of high stage compressor C2 compression, then with second level precooling zone regenerator RG21 in the backheat filler carry out heat exchange, temperature reduces, then be cooled to the cold junction temperature of first order vascular refrigerator at precooling zone regenerator cool end heat exchanger HX5 place, the second level, then the cryogenic gas second level low-temperature zone regenerator RG22 that flows through successively, second level cool end heat exchanger HX6, second level vascular PT2, second level vascular hot-side heat exchanger HX7, second level inertia tube I2 enters second level air reservoir R2, then enter low pressure cycle, gas from second level air reservoir R2 successively through second level inertia tube I2, second level vascular hot-side heat exchanger HX7, second level vascular PT2, second level cool end heat exchanger HX6, second level low-temperature zone regenerator RG22, second level precooling zone regenerator RG21 gets back in high stage compressor C2 and completes a circulation, in cyclic process, there is the temperature difference in the gas of turnover second level cool end heat exchanger HX6, thereby produce refrigeration effect at cool end heat exchanger HX6 place, the second level, the refrigerating capacity at this place provides precooling by the third level the second precooling zone regenerator cool end heat exchanger HX10 be connected with second level heat bridge TB2 for third level vascular refrigerator.
At high pressure phase, flow through after third level regenerator hot end heat exchanger HX8 and be cooled to room temperature through the high temperature and high pressure gas of third level compressor C3 compression, then with the third level the first precooling zone regenerator RG31 in the backheat filler carry out heat exchange, temperature reduces, be cooled to the cold junction temperature of first order vascular refrigerator at the third level the first precooling zone regenerator cool end heat exchanger HX9 place, then gas enters the third level the second precooling zone regenerator RG32 and carries out heat exchange with backheat filler wherein, temperature reduces, be cooled to the cold junction temperature of second level vascular refrigerator at the third level the second precooling zone regenerator cool end heat exchanger HX10 place, then the third level low-temperature zone of flowing through successively regenerator RG33, third level cool end heat exchanger HX11, third level vascular PT3, third level vascular hot-side heat exchanger HX12, third level inertia tube I3 enters third level air reservoir R3, then enter low pressure cycle, gas is got back to third level compressor C3 and is completed a circulation through third level inertia tube I3, third level vascular hot-side heat exchanger HX12, third level vascular PT3, third level cool end heat exchanger HX11, third level low-temperature zone regenerator RG33, the third level the second precooling zone regenerator RG32, the third level the first precooling zone regenerator RG31 successively from third level air reservoir R3, in cyclic process, there is the temperature difference in the gas of turnover third level cool end heat exchanger HX11, thereby produces refrigeration effect at third level cool end heat exchanger HX11 place.
Embodiment 3
As shown in Figure 3, a kind of high-frequency vascular refrigerator that adopts the profound hypothermia regenerator of carbon nanometer backheat filler, with the difference of embodiment 2, be: third level air reservoir R3, third level inertia tube I3 are connected with second level heat bridge TB2 with third level vascular hot-side heat exchanger HX12 simultaneously, by the operating temperature phase modulation angle larger with acquisition that reduces third level air reservoir R3 and third level inertia tube I3, final this vascular refrigerator refrigerating efficiency that further improves.

Claims (9)

1. a profound hypothermia regenerator that adopts carbon nanometer backheat filler, comprise stainless steel tube and be placed in the backheat filler in stainless steel tube, it is characterized in that at least one section carbon nanomaterial section for being formed by the carbon nanomaterial filling in described backheat filler.
2. the profound hypothermia regenerator of employing carbon nanometer backheat filler according to claim 1, it is characterized in that, any one in CNT, carbon nano-fiber bundle, Nano carbon balls and carbon nano metal cage that described carbon nanomaterial is less than 1 micron by diameter or multiple material form.
3. the profound hypothermia regenerator of employing carbon nanometer backheat filler according to claim 1, is characterized in that, described carbon nanomaterial section is near described regenerator cold junction.
4. a vascular refrigerator, comprise first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit, in first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit, all adopts the low frequency compressor bank; The regenerator of described second level low temperature pulse tubes refrigerator unit comprises second level precooling zone regenerator (RG21), second level precooling zone regenerator cool end heat exchanger (HX5) and the second level low-temperature zone regenerator (RG22) be communicated with successively; First order cool end heat exchanger (HX2) by being connected to first order precooling pulse refrigerator unit between described first order precooling pulse refrigerator unit and second level low temperature pulse tubes refrigerator unit and the heat bridge (TB) between second level precooling zone regenerator cool end heat exchanger (HX5) carry out thermal coupling; It is characterized in that the profound hypothermia regenerator that described second level low-temperature zone regenerator (RG22) is the described employing carbon of the arbitrary claim of claim 1-3 nanometer backheat filler.
5. vascular refrigerator according to claim 4, it is characterized in that, described first order precooling pulse refrigerator unit comprises first order low frequency compressor bank, first order regenerator (RG1), first order cool end heat exchanger (HX2), first order vascular (PT1), first order vascular hot-side heat exchanger (HX3) and the first order phase modulating mechanism connected successively, and described first order phase modulating mechanism comprises:
First order air reservoir (R1), by being communicated with of pipeline and described first order vascular hot-side heat exchanger (HX3);
The little ports valve of the first order (O1), be located on the pipeline between described first order air reservoir (R1) and described first order vascular hot-side heat exchanger (HX3);
First order bidirection air intake valve (DO1), pipeline connection between one end and described first order low frequency compressor bank and first order regenerator (RG1), the pipeline connection between the little ports valve of the other end and the first order (O1) and described first order vascular hot-side heat exchanger (HX3).
6. vascular refrigerator according to claim 4, it is characterized in that, described second level low temperature pulse tubes refrigerator unit comprises second level low frequency compressor bank, second level precooling zone regenerator (RG21), second level precooling zone regenerator cool end heat exchanger (HX5), second level low-temperature zone regenerator (RG22), second level cool end heat exchanger (HX6), second level vascular (PT2), second level vascular hot-side heat exchanger (HX7) and the second level phase modulating mechanism connected successively, and described second level phase modulating mechanism comprises:
Second level air reservoir (R2), by being communicated with of pipeline and the described second level vascular hot-side heat exchanger (HX7);
The little ports valve in the second level (O2), be located on the pipeline between described second level air reservoir (R2) and described second level vascular hot-side heat exchanger (HX7);
Second level bidirection air intake valve (DO2), pipeline connection between one end and described second level low frequency compressor bank and second level precooling zone regenerator (RG21), the pipeline connection between the little ports valve in the other end and the second level (O2) and described second level vascular hot-side heat exchanger (HX7).
7. a vascular refrigerator, comprise first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit;
Described second level precooling pulse refrigerator unit comprises second level precooling zone regenerator (RG21), second level precooling zone regenerator cool end heat exchanger (HX5), the second level low-temperature zone regenerator (RG22) be communicated with successively;
Regenerator in described third level low temperature pulse tubes refrigerator unit comprises the third level the first precooling zone regenerator (RG31), the third level the first precooling zone regenerator cool end heat exchanger (HX9), the third level the second precooling zone regenerator (RG32), the third level the second precooling zone regenerator cool end heat exchanger (HX10), the third level low-temperature zone regenerator (RG33) be communicated with successively;
Described first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit are by being connected to the first order cool end heat exchanger (HX2) of first order precooling pulse refrigerator unit, first order heat bridge (TB1) between second level precooling zone regenerator cool end heat exchanger (HX5) and the third level the first precooling zone regenerator cool end heat exchanger (HX9) carries out a thermal coupling, the second level heat bridge (TB2) of the second level cool end heat exchanger (HX6) by being connected to the third level the second precooling zone regenerator cool end heat exchanger (HX10) and second level precooling pulse refrigerator unit carries out the second heat coupling,
It is characterized in that: described third level low-temperature zone regenerator (RG33) is the profound hypothermia regenerator of the described employing carbon of the arbitrary claim of claim 1-3 nanometer backheat filler.
8. vascular refrigerator according to claim 7, it is characterized in that, described first order precooling pulse refrigerator unit, second level precooling pulse refrigerator unit and third level low temperature pulse tubes refrigerator unit include a phase modulating mechanism, this phase modulating mechanism by an air reservoir and be located at this air reservoir and corresponding vascular hot-side heat exchanger between inertia tube form.
9. vascular refrigerator according to claim 8, is characterized in that, the vascular hot-side heat exchanger in described third level low temperature pulse tubes refrigerator unit and phase modulating mechanism are communicated with second level heat bridge (TB2) simultaneously.
CN 201220647436 2012-11-28 2012-11-28 Deep low temperature heat regenerator adopting carbon nanometer heat regeneration filling materials and pulse pipe refrigerating machine of deep low temperature heat regenerator Withdrawn - After Issue CN202928220U (en)

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CN102937351A (en) * 2012-11-28 2013-02-20 浙江大学 Deep hypothermia regenerator employing carbon nano regeneration filler and pulse tube refrigerator of same
CN104197591A (en) * 2014-08-29 2014-12-10 浙江大学 Deep hypothermic heat regenerator adopting helium as heat regeneration medium and pulse tube refrigerator thereof
CN104296411A (en) * 2014-10-08 2015-01-21 南京航空航天大学 4K lower-temperature pulse tube refrigerator with centrifugal spiral heat regenerator and method
US9488389B2 (en) 2014-01-09 2016-11-08 Raytheon Company Cryocooler regenerator containing one or more carbon-based anisotropic thermal layers
CN106091517A (en) * 2016-06-13 2016-11-09 中国科学院理化技术研究所 A kind of regenerator and refrigeration machine
US10421127B2 (en) 2014-09-03 2019-09-24 Raytheon Company Method for forming lanthanide nanoparticles
WO2022042457A1 (en) * 2020-08-25 2022-03-03 同济大学 Efficient liquefaction system of regenerative refrigerator using direct flow

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102937351A (en) * 2012-11-28 2013-02-20 浙江大学 Deep hypothermia regenerator employing carbon nano regeneration filler and pulse tube refrigerator of same
CN102937351B (en) * 2012-11-28 2014-08-20 浙江大学 Deep hypothermia regenerator employing carbon nano regeneration filler and pulse tube refrigerator of same
US9488389B2 (en) 2014-01-09 2016-11-08 Raytheon Company Cryocooler regenerator containing one or more carbon-based anisotropic thermal layers
CN104197591A (en) * 2014-08-29 2014-12-10 浙江大学 Deep hypothermic heat regenerator adopting helium as heat regeneration medium and pulse tube refrigerator thereof
US10421127B2 (en) 2014-09-03 2019-09-24 Raytheon Company Method for forming lanthanide nanoparticles
US11072023B2 (en) 2014-09-03 2021-07-27 Raytheon Company Cryocooler containing additively-manufactured heat exchanger
CN104296411A (en) * 2014-10-08 2015-01-21 南京航空航天大学 4K lower-temperature pulse tube refrigerator with centrifugal spiral heat regenerator and method
CN106091517A (en) * 2016-06-13 2016-11-09 中国科学院理化技术研究所 A kind of regenerator and refrigeration machine
WO2022042457A1 (en) * 2020-08-25 2022-03-03 同济大学 Efficient liquefaction system of regenerative refrigerator using direct flow

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