Liquid nitrogen drip irrigation device
Through the design of the liquid nitrogen drip irrigation device, the problem of waste of liquid nitrogen refrigeration device is solved, the stable drip irrigation of liquid nitrogen and the rapid shaping of material surface patterns are achieved, and the loss of liquid nitrogen is reduced.
Patent Information
- Application Number
- CN202422699540.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-11-06
AI Technical Summary
Existing liquid nitrogen refrigeration devices require a large amount of liquid nitrogen to be lost during use, resulting in waste.
A liquid nitrogen drip irrigation device is designed, including a mounting frame, liquid nitrogen storage box, drip irrigation tube, diversion pipe and cooling cover. Liquid nitrogen is released to the surface of the material through the drip irrigation tube, and the volatile low-temperature nitrogen is introduced into the cooling cover to maintain the low-temperature state of the cooling gap, ensuring that the liquid nitrogen is filled in the surface of the material in liquid form, and at the same time, the drip irrigation amount is controlled through the switch assembly to avoid waste.
The stable drip irrigation and precise control of liquid nitrogen are achieved, which reduces the waste of liquid nitrogen, improves the freezing efficiency and the flower shape setting effect of the material surface.
Smart Images

Figure CN223283289U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of rapid cooling equipment, in particular to a liquid nitrogen drip irrigation device. Background Art
[0002] Liquid nitrogen freezing is a technology that uses the extremely low temperature characteristics of liquid nitrogen to achieve rapid freezing. It achieves rapid cooling through the evaporation and conduction of liquid nitrogen. It is widely used in the field of food processing. Liquid nitrogen can freeze the surface of soft foods and quickly set them into shape.
[0003] Currently, when using liquid nitrogen to freeze materials, the materials are usually placed in liquid nitrogen and frozen by dipping. Alternatively, dedicated liquid nitrogen quick-freezing equipment is used to first set up a liquid nitrogen protection and closed area in a certain area, and then use a large amount of liquid nitrogen to pre-cool and reduce the temperature of this area. After the liquid nitrogen slows down its volatilization, it is sprayed onto the surface of the frozen material by spraying liquid nitrogen. Both methods require a large amount of liquid nitrogen, resulting in waste of liquid nitrogen. Utility Model Content
[0004] The utility model provides a liquid nitrogen drip irrigation device, which is used to solve the problem that a large amount of liquid nitrogen needs to be consumed in a liquid nitrogen freezing device in the prior art, resulting in waste of liquid nitrogen.
[0005] The utility model provides a liquid nitrogen drip irrigation device, comprising: a mounting frame, a liquid nitrogen storage box, a drip irrigation pipe, a flow guide pipe and a cold preservation cover;
[0006] The liquid nitrogen storage tank is installed on the mounting frame, and the drip irrigation pipe is connected to the liquid nitrogen storage tank for releasing liquid nitrogen to the material;
[0007] The cold-keeping cover is sleeved on the drip irrigation pipe, and a cooling gap is formed between the inner wall of the cold-keeping cover and the outer wall of the drip irrigation pipe. One end of the guide pipe is connected to the nitrogen overflow port of the liquid nitrogen storage tank, and the other end of the guide pipe is connected to the cooling gap.
[0008] According to the liquid nitrogen drip irrigation device provided by the present invention, the end of the cold-keeping cover is closer to the surface of the material than the liquid outlet of the drip irrigation pipe.
[0009] According to the liquid nitrogen drip irrigation device provided by the utility model, it also includes a switch component, and the switch component is used to control the opening and closing of the liquid outlet of the drip irrigation pipe.
[0010] According to a liquid nitrogen drip irrigation device provided by the present invention, the switch assembly includes: a moving rod and a driving member; the driving member is installed on the mounting frame and is transmission-connected to the moving rod;
[0011] Under the drive of the driving member, the moving rod can be moved through the liquid nitrogen storage box and the drip irrigation pipe, and the end of the moving rod seals the liquid outlet or is exposed at the liquid outlet.
[0012] According to the liquid nitrogen drip irrigation device provided by the utility model, one end of the moving rod is cone-shaped, and the small end of the moving rod faces the liquid outlet.
[0013] According to the liquid nitrogen drip irrigation device provided by the present invention, the cold-keeping cover is provided with a multi-layer structure, and the multi-layer structure includes an inner layer, an outer layer and a heat-insulating layer sandwiched between the inner layer and the outer layer.
[0014] According to the liquid nitrogen drip irrigation device provided by the present invention, it also includes a compressed air source and a delivery pump. A blowing pipe is installed at one end of the guide pipe close to the liquid nitrogen storage box; the compressed air source is connected to the blowing pipe through the delivery pump.
[0015] According to a liquid nitrogen drip irrigation device provided by the utility model, the liquid nitrogen storage box is connected to the liquid nitrogen storage container through a liquid nitrogen pipeline, and a throttle valve is provided on the liquid nitrogen pipeline.
[0016] According to the liquid nitrogen drip irrigation device provided by the present invention, the liquid nitrogen storage box can be lifted and installed on the mounting frame.
[0017] According to the liquid nitrogen drip irrigation device provided by the present invention, the mounting frame is provided with a liquid nitrogen storage box, a plurality of drip irrigation pipes, a plurality of flow guide pipes and a plurality of cold insulation covers;
[0018] The plurality of drip irrigation pipes are arranged corresponding to the material conveying positions, and the plurality of drip irrigation pipes, the plurality of flow guide pipes and the plurality of cold preservation covers are arranged in a one-to-one correspondence.
[0019] The liquid nitrogen drip irrigation device provided by the utility model drips liquid nitrogen onto the surface of a material by providing a drip irrigation pipe connected to a liquid nitrogen storage tank, so as to quickly freeze the surface of the material so that the surface pattern of the material is quickly fixed. At the same time, a cold preservation cover is provided and sleeved on the drip irrigation pipe, and a nitrogen overflow port of the liquid nitrogen storage tank is connected to the cold preservation cover through a guide pipe, so that low-temperature nitrogen volatilized in the liquid nitrogen storage tank is introduced into the cold preservation cover, ensuring that the cooling gap between the cold preservation cover and the drip irrigation pipe is kept at a continuously low temperature, so that the liquid nitrogen released in the drip irrigation pipe can always be added to the surface of the material in a liquid form, thereby ensuring the stability and reliability of the drip irrigation liquid nitrogen. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0021] Figure 1 It is a schematic cross-sectional structural diagram of the liquid nitrogen drip irrigation device provided by the utility model.
[0022] Figure 2 The utility model provides Figure 1 Enlarged view of the K part.
[0023] Figure 3 It is a schematic diagram of the appearance of the liquid nitrogen drip irrigation device provided by the utility model.
[0024] Reference numerals:
[0025] 1. Liquid nitrogen drip irrigation device;
[0026] 11. Mounting frame; 12. Liquid nitrogen storage tank; 13. Drip irrigation pipe; 14. Diversion pipe; 15. Cold insulation cover; 16. Switch assembly; 17. Blowing pipe; 131. Liquid outlet; 161. Moving rod; 162. Driving part;
[0027] 2. Materials. DETAILED DESCRIPTION
[0028] To make the purpose, technical solutions, and advantages of the present invention more clear, the following will be combined with the accompanying drawings to clearly and completely describe the technical solutions of the present invention. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.
[0029] The following combination Figure 1-Figure 3 , the liquid nitrogen drip irrigation device provided by the embodiment of the utility model is described in detail through specific embodiments and application scenarios.
[0030] like Figure 1 and Figure 2 As shown, this embodiment provides a liquid nitrogen drip irrigation device 1, comprising: a mounting frame 11, a liquid nitrogen storage box 12, a drip irrigation pipe 13, a flow guide pipe 14 and a cold preservation cover 15.
[0031] The liquid nitrogen storage tank 12 is installed on the mounting frame 11 , and the drip irrigation pipe 13 is in communication with the liquid nitrogen storage tank 12 for releasing liquid nitrogen to the material 2 .
[0032] The cold-keeping cover 15 is sleeved on the drip irrigation pipe 13, and a cooling gap is formed between the inner wall of the cold-keeping cover 15 and the outer wall of the drip irrigation pipe 13. One end of the guide pipe 14 is connected to the nitrogen overflow port of the liquid nitrogen storage box 12, and the other end of the guide pipe 14 is connected to the cooling gap.
[0033] The liquid nitrogen drip irrigation device 1 of this embodiment is located at the rear of a flatbed filler. The material being filled by the flatbed filler can be a soft material such as cup ice cream. After being poured and formed, the surface of the material 2 has a complex pattern. If exposed to air for a long time, the pattern will melt, become limp, and sink, deforming the surface of the material 2 and losing its aesthetic appeal. The filled material 2 is transported to the underside of a mounting frame 11 via a conveyor belt. Liquid nitrogen is then dripped onto the surface of the material 2 by a drip irrigation pipe 13, rapidly cooling and shaping it.
[0034] Liquid nitrogen absorbs heat at ultra-low temperatures. When it comes into contact with food, intense heat exchange occurs with a temperature difference of over 200K, resulting in extremely rapid freezing. Because liquid nitrogen freezes food in a short period of time, it forms small, evenly distributed ice crystals within the food, minimizing cell damage and reducing juice loss after thawing, preserving the food's nutrients, texture, and original flavor. Liquid nitrogen rapidly freezes Material 2, freezing its surface to a hard crust. This maintains its surface texture during transport from the flat-plate filler to the freezing tunnel, ensuring its aesthetically pleasing appearance.
[0035] Nitrogen has a boiling point of -196.56°C at normal pressure and easily vaporizes at room temperature. To prevent liquid nitrogen dripping from the drip irrigation pipe 13 from vaporizing before it even contacts the surface of the material 2, a cold shield 15 is provided on the outside of the drip irrigation pipe 13 in this embodiment. Specifically, the cold shield 15 forms a cooling gap outside the drip irrigation pipe 13. This gap is connected to the nitrogen overflow port of the liquid nitrogen storage tank 12 via a flow guide 14. After evaporating at room temperature, the liquid nitrogen is transported from the nitrogen overflow port through the flow guide 14 into the cooling gap. Since the temperature of the newly evaporated nitrogen is close to its boiling point, the temperature inside the cold shield 15 is lowered, thereby lowering the temperature around the drip irrigation pipe 13. This prevents the liquid nitrogen in the drip irrigation pipe 13 from rapidly vaporizing, ensuring that the liquid nitrogen can be added to the surface of the material 2 in liquid form, effectively freezing the material 2.
[0036] The liquid nitrogen drip irrigation device 1 provided by the present invention drips liquid nitrogen onto the surface of the material 2 by providing a drip irrigation pipe 13 connected to the liquid nitrogen storage tank 12, so as to quickly freeze the surface of the material 2 so that the surface pattern of the material 2 is quickly fixed. At the same time, a cold insulation cover 15 is provided to be sleeved on the drip irrigation pipe 13, and the low-temperature nitrogen volatilized in the liquid nitrogen storage tank 12 is introduced into the cold insulation cover 15, ensuring that the cooling gap between the cold insulation cover 15 and the drip irrigation pipe 13 is in a low-temperature state, so that the liquid nitrogen released in the drip irrigation pipe 13 can always be added to the surface of the material 2 in liquid form, thereby ensuring the stability and reliability of the drip irrigation liquid nitrogen of the drip irrigation pipe 13.
[0037] In some embodiments, as Figure 1 and Figure 2 As shown, the end of the cold-keeping cover 15 of this embodiment is closer to the surface of the material 2 than the liquid outlet 131 of the drip irrigation pipe 13 .
[0038] The higher the coverage of the outer wall of the drip irrigation pipe 13 by the cooling gap between the inner wall of the cold-insulating cover 15 and the outer wall of the drip irrigation pipe 13, the better. To this end, the end of the cold-insulating cover 15 of this embodiment is closer to the surface of the material 2 than the liquid outlet 131 of the drip irrigation pipe 13. This allows the cooling space formed by the end of the cold-insulating cover 15 and the surface of the material 2 to completely cover the drip irrigation pipe 13, thereby improving the cooling effect of the drip irrigation pipe 13 and ensuring the stability of the liquid nitrogen in the drip irrigation pipe 13.
[0039] In some embodiments, as Figure 1 As shown, the liquid nitrogen drip irrigation device 1 of this embodiment further includes a switch assembly 16 , which is used to control the opening and closing of the liquid outlet 131 of the drip irrigation pipe 13 .
[0040] In order to control the drip irrigation amount of the liquid nitrogen drip irrigation device 1, the liquid nitrogen drip irrigation device 1 of this embodiment is further provided with a switch assembly 16, which can switch the opening and closing states of the drip irrigation pipe 13. When the material 2 is transported to the lower side of the drip irrigation pipe 13, the switch assembly 16 is turned on to drip irrigate the material 2; when the drip irrigation of the material 2 is completed, the switch assembly 16 is turned off to avoid waste of liquid nitrogen.
[0041] Specifically, the switch assembly 16 can be a baffle provided on the drip irrigation pipe 13, and the switch assembly 16 is controlled by opening and blocking the liquid outlet 131 of the drip irrigation pipe 13. Alternatively, the switch assembly 16 can also be a solenoid valve, and the on-off control of the liquid nitrogen is achieved by controlling the solenoid valve.
[0042] In this embodiment, by providing a switch assembly 16 in the liquid nitrogen drip irrigation device 1, the liquid outlet 131 of the drip irrigation pipe 13 is switched on and off, ensuring that liquid nitrogen is dripped only when the material 2 is located at the lower side of the drip irrigation pipe 13 and the material 2 has not completed liquid nitrogen drip irrigation. The drip irrigation state of the liquid nitrogen is accurately controlled, which ensures the drip irrigation effect of the liquid nitrogen and avoids waste of liquid nitrogen.
[0043] In some embodiments, as Figure 1 As shown, the switch assembly 16 of this embodiment includes: a moving rod 161 and a driving member 162 ; the driving member 162 is installed on the mounting frame 11 and is in transmission connection with the moving rod 161 .
[0044] Driven by the driving member 162 , the moving rod 161 can be moved to penetrate the liquid nitrogen storage tank 12 and the drip irrigation pipe 13 , and the end of the moving rod 161 seals the liquid outlet 131 or is exposed at the liquid outlet 131 .
[0045] When the end of the movable rod 161 seals the liquid outlet 131, the liquid outlet 131 is blocked by the movable rod 161, and the movable rod 161 closes the drip irrigation pipe 13, so that the drip irrigation pipe 13 does not drip liquid nitrogen. When the end of the movable rod 161 is exposed from the liquid outlet 131, the gap between the liquid outlet 131 and the movable rod 161 allows liquid nitrogen to drip, and the liquid outlet 131 of the drip irrigation pipe 13 is opened, so that the drip irrigation pipe 13 drips liquid nitrogen.
[0046] Furthermore, the driving member 162 drives the moving rod 161 to move relative to the liquid nitrogen storage tank 12 and the drip irrigation pipe 13 to switch the position state of the end of the moving rod 161 relative to the liquid outlet 131, thereby controlling the opening and closing of the liquid outlet 131.
[0047] Specifically, the driving member 162 may be a linear motor or a cylinder.
[0048] In this embodiment, a moving rod 161 and a driving member 162 are provided in the switch assembly 16, and the driving member 162 drives the position of the moving rod 161 relative to the liquid outlet 131 to adjust the opening and closing of the liquid outlet 131 of the drip irrigation pipe 13. The structure is simple and the adjustment method is convenient.
[0049] In some embodiments, as Figure 1 and Figure 2 As shown, one end of the moving rod 161 of this embodiment is cone-shaped, and the small end of the moving rod 161 faces the liquid outlet 131.
[0050] One end of the movable rod 161 is conical. As the movable rod 161 moves relative to the drip irrigation pipe 13, the position of the sidewall of the cone changes relative to the liquid outlet 131, causing the size of the annular gap formed between the outer wall of the end of the movable rod 161 and the liquid outlet 131 of the drip irrigation pipe 13 to change, thereby regulating the drip irrigation flow rate of the drip irrigation pipe 13. Because the area difference of the cone is small, the area change of the annular gap formed by the liquid outlet 131 and the cone is also small, allowing the liquid nitrogen drip irrigation flow rate to be precisely controlled by the movement of the movable rod 161.
[0051] In some embodiments, as Figure 1 As shown, the cold-keeping cover 15 of this embodiment has a multi-layer structure, which includes an inner layer, an outer layer, and a heat-insulating layer sandwiched between the inner layer and the outer layer.
[0052] In order to ensure the cooling effect of the cold-keeping cover 15, the cold-keeping cover 15 can be provided with a multi-layer structure. An insulating layer is sandwiched between the inner layer and the outer layer. The insulating layer can reduce the transfer of heat, so that less heat is lost to the environment in the cooling gap, and the effect of maintaining the low temperature in the cooling gap is better.
[0053] Optionally, the inner layer and the outer layer may be made of plastic parts; the thermal insulation layer may be made of foam plastic, vacuum insulation board or aluminosilicate wool board.
[0054] In some embodiments, as Figure 1 As shown, the liquid nitrogen drip irrigation device 1 of this embodiment further includes a compressed air source and a delivery pump. A blowing pipe 17 is installed at one end of the guide pipe 14 close to the liquid nitrogen storage tank 12; the compressed air source is connected to the blowing pipe 17 through the delivery pump.
[0055] Optionally, the blowing pipe 17 is a U-shaped pipe, the inlet end of the blowing pipe 17 is arranged perpendicular to the radial direction of the guide pipe 14, and the outlet end of the blowing pipe 17 is arranged along the axial direction of the guide pipe 14. When compressed air is introduced into the guide pipe 14 through the blowing pipe 17, the blowing pipe 17 blows the compressed air toward the end of the guide pipe 14 that is away from the liquid nitrogen storage tank 12, thereby generating a negative pressure at the nitrogen overflow port, so that the nitrogen at the nitrogen overflow port can flow faster toward the cold preservation cover 15. Therefore, by introducing compressed air into the guide pipe 14, the flow speed of the low-temperature nitrogen in the guide pipe 14 can be accelerated, thereby avoiding excessive loss of liquid nitrogen cooling capacity in the guide pipe 14 and optimizing the cold preservation effect in the cold preservation cover 15.
[0056] If the flow rate of the compressed air in the blowing pipe 17 is too high, the compressed air will quickly carry nitrogen to the cold-keeping cover 15, causing excessive volatilization of liquid nitrogen and resulting in waste. If the flow rate of the compressed air in the blowing pipe 17 is too low, the cold-keeping cover 15 cannot be replenished with low-temperature nitrogen in a timely manner, resulting in poor cold-keeping effect of the cold-keeping cover 15, thereby affecting the drip irrigation of liquid nitrogen. Therefore, it is necessary to control the flow rate of the compressed air in the blowing pipe 17. To this end, the present embodiment provides a regulating valve on the connecting pipeline between the compressed air source and the blowing pipe 17. The flow rate of the compressed air in the connecting pipeline is regulated by the regulating valve so that the compressed air entering the guide pipe 14 is maintained within a suitable flow rate and flow rate range.
[0057] In some embodiments, as Figure 1 As shown, the liquid nitrogen storage box 12 of this embodiment is connected to the liquid nitrogen storage container through a liquid nitrogen pipeline, and a throttle valve is provided on the liquid nitrogen pipeline.
[0058] The liquid nitrogen storage tank 12 only stores a small amount of liquid nitrogen. When the liquid nitrogen level in the liquid nitrogen storage tank 12 is low, the liquid nitrogen in the liquid nitrogen storage container is replenished into the liquid nitrogen storage tank 12 through the liquid nitrogen pipeline. This embodiment provides a throttle valve on the liquid nitrogen pipeline to control the on / off status of the liquid nitrogen pipeline, thereby controlling the liquid level in the liquid nitrogen storage tank 12. The drip irrigation rate of the liquid nitrogen can also be adjusted by varying the pressure within the liquid nitrogen storage tank 12. Therefore, the throttle valve of this embodiment can also adjust the pressure within the liquid nitrogen storage tank 12 and, in turn, the drip irrigation rate of the liquid nitrogen by controlling the flow rate within the liquid nitrogen pipeline.
[0059] In some embodiments, as Figure 1 As shown, the liquid nitrogen storage box 12 of this embodiment can be lifted and lowered on the mounting frame 11 .
[0060] When drip irrigation of liquid nitrogen is performed on the material 2, the lower end of the cold-insulating cover 15 needs to be brought close to the surface of the material 2. Since the types of materials 2 filled by the flat-plate filling machine are different and the volumes of different materials 2 are also different, it is necessary to adjust the height of the liquid nitrogen storage box 12 for different materials 2 to adjust the distance between the liquid outlet 131 of the drip irrigation pipe 13 and the material 2. The liquid nitrogen storage box 12 of this embodiment can be raised and lowered on the mounting frame 11, which facilitates the adjustment of the height of the liquid outlet 131 of the drip irrigation pipe 13 according to the type of material. In addition, during use, if the material 2 is in a conveying state, the liquid nitrogen storage box 12 can be raised to a higher position of the mounting frame 11 to avoid interfering with the conveying of the material 2; if the material 2 is in a liquid nitrogen drip irrigation state, the liquid nitrogen storage box 12 can be lowered to a lower position to facilitate the liquid nitrogen drip irrigation operation on the surface of the material 2.
[0061] Specifically, a track and a linear drive can be provided on the mounting frame 11, and a driving end of the linear drive is connected to the liquid nitrogen storage box 12. The linear drive drives the liquid nitrogen storage box 12 to move up and down on the mounting frame 11 along the track to adjust the height position of the liquid nitrogen storage box 12.
[0062] In this embodiment, the liquid nitrogen storage box 12 is escalably mounted on the mounting frame 11. Therefore, the height position of the liquid outlet 131 of the drip irrigation pipe 13 can be adjusted in time according to different materials 2 and different operating states of the materials 2, which is more conducive to the liquid nitrogen drip irrigation operation of the drip irrigation pipe 13 on the materials 2.
[0063] In some embodiments, as Figure 3 As shown, a liquid nitrogen storage box 12 , a plurality of drip irrigation pipes 13 , a plurality of flow guide pipes 14 and a plurality of cold-keeping covers 15 are provided on the mounting frame 11 of this embodiment.
[0064] The plurality of drip irrigation pipes 13 are arranged in one-to-one correspondence with the delivery positions of the plurality of materials 2 , and the plurality of drip irrigation pipes 13 , the plurality of flow guide pipes 14 and the plurality of cold-keeping covers 15 are arranged in one-to-one correspondence.
[0065] According to the number of delivery positions of the flat-plate filling machine, the number of drip irrigation pipes 13 equal to the number of delivery positions is selected so that the material 2 on each delivery position can be drip-irrigated with liquid nitrogen in a timely manner. Multiple drip irrigation pipes 13 perform liquid nitrogen drip irrigation operations at the same time, thereby improving the efficiency of liquid nitrogen drip irrigation on the surface of the material 2 and avoiding deformation of the pattern of the material 2 caused by untimely drip irrigation.
[0066] For example, the mounting frame 11 is provided with a liquid nitrogen storage tank 12, four drip irrigation pipes 13, four guide pipes 14, and four cold insulation covers 15. The four drip irrigation pipes 13 correspond to the four delivery positions of the material 2, and can simultaneously drip-irrigate the four materials 2 with liquid nitrogen. Of course, two, three, or other numbers of drip irrigation pipes 13 can also be installed on one liquid nitrogen storage tank 12.
[0067] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. A liquid nitrogen drip irrigation device, characterized in that: include: Mounting rack, liquid nitrogen storage tank, drip irrigation pipe, diversion pipe and cold shield; The liquid nitrogen storage tank is installed on the mounting frame, and the drip irrigation pipe is connected to the liquid nitrogen storage tank for releasing liquid nitrogen to the material; The cold-keeping cover is sleeved on the drip irrigation pipe, and a cooling gap is formed between the inner wall of the cold-keeping cover and the outer wall of the drip irrigation pipe. One end of the guide pipe is connected to the nitrogen overflow port of the liquid nitrogen storage tank, and the other end of the guide pipe is connected to the cooling gap.
2. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: The end of the cold-keeping cover is closer to the surface of the material than the liquid outlet of the drip irrigation pipe.
3. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: It also includes a switch component, which is used to control the opening and closing of the liquid outlet of the drip irrigation pipe.
4. The liquid nitrogen drip irrigation device according to claim 3, characterized in that: The switch assembly includes: a moving rod and a driving member; the driving member is installed on the mounting frame and is in transmission connection with the moving rod; Under the drive of the driving member, the moving rod can be moved through the liquid nitrogen storage box and the drip irrigation pipe, and the end of the moving rod seals the liquid outlet or is exposed at the liquid outlet.
5. The liquid nitrogen drip irrigation device according to claim 4, characterized in that: One end of the moving rod is in a cone shape, and the small end of the moving rod faces the liquid outlet.
6. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: The cold-keeping cover is provided with a multi-layer structure, and the multi-layer structure comprises an inner layer, an outer layer and a heat-insulating layer sandwiched between the inner layer and the outer layer.
7. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: It also includes a compressed air source and a delivery pump. A blowing pipe is installed at one end of the guide pipe close to the liquid nitrogen storage box; the compressed air source is connected to the blowing pipe through the delivery pump.
8. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: The liquid nitrogen storage box is connected to the liquid nitrogen storage container through a liquid nitrogen pipeline, and a throttle valve is provided on the liquid nitrogen pipeline.
9. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: The liquid nitrogen storage box can be lifted and installed on the mounting frame.
10. The liquid nitrogen drip irrigation device according to claim 1, characterized in that: The mounting frame is provided with a liquid nitrogen storage box, a plurality of drip irrigation pipes, a plurality of flow guide pipes and a plurality of cold-keeping covers; The plurality of drip irrigation pipes are arranged corresponding to the material conveying positions, and the plurality of drip irrigation pipes, the plurality of flow guide pipes and the plurality of cold preservation covers are arranged in a one-to-one correspondence.