Coolant supply / discharge mechanism for superconducting rotating electric machine and superconducting rotating electric machine

The cooling medium supply and discharge mechanism for superconducting rotating electric machines addresses the issue of magnetic fluid freezing by incorporating a cooling medium retention space, which prevents excessive cooling and maintains efficient cooling medium reuse.

JP7675668B2Active Publication Date: 2025-05-13KK TOSHIBA
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Patent Information

Application Number
JP2022014273
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-01
Publication Date
2025-05-13
Estimated Expiration
2042-02-01

AI Technical Summary

Technical Problem

Conventional cooling medium supply and drainage mechanisms for superconducting rotating electric machines face issues with magnetic fluid freezing due to cooling medium temperature changes, leading to leakage and inefficient cooling medium reuse.

Method used

A cooling medium supply and discharge mechanism with a double cylindrical structure, featuring a cooling medium retention space between the second rotary pipe and the second fixed pipe, which prevents direct cooling of the seal portion and reduces heat transfer, thereby maintaining the magnetic fluid in a non-frozen state.

Benefits of technology

This solution effectively suppresses the temperature rise of the cooling medium and prevents excessive cooling of the seal portion, allowing for efficient reuse of the cooling medium and reducing the burden on the refrigerator.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a simple structure so as to inhibit a temperature increase of a cooling medium, and inhibit a seal part from being excessively cooled.SOLUTION: A cooling medium supplying / discharging mechanism for a superconducting rotary electric machine according to an embodiment includes: a casing including a first fixed pipe that is used to supply a cooling medium, and a second fixed pipe that is used to discharge the cooling medium and that is disposed so as to surround at least a portion of the first fixed pipe; a rotor including a first rotary pipe that feeds the cooling medium supplied from the first fixed pipe to a certain space in a rotor coil, and a second rotary pipe that is disposed so as to surround at least a portion of the first rotary pipe and that feeds the cooling medium having passed through the rotor coil, to the second fixed pipe; and a seal part that prevents the cooling medium from leaking from an area between the second rotary pipe and an end of the second fixed pipe. The second fixed pipe is disposed so as to surround a portion of the second rotary pipe, and a cooling medium residence space where the cooling medium stays is formed between the surrounded portion of the second rotary pipe and the portion of the second fixed pipe.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] An embodiment of the present invention relates to a coolant supply / discharge mechanism for a superconducting rotating electric machine and a superconducting rotating electric machine. [Background technology]

[0002] In a superconducting rotating machine that uses high-temperature superconducting wires in the rotor coil, the rotor coil needs to be kept at an extremely low temperature of about 30 K in order to maintain the superconducting state. For this reason, a cooling medium such as helium gas, liquid helium, or liquid hydrogen is supplied to the inside of the rotor where the rotor coil is located, and a cooling medium supply and discharge mechanism is provided in the superconducting rotating machine to discharge the cooling medium from inside the rotor after the cooling medium has cooled the rotor coil, etc.

[0003] An example of a superconducting rotating electric machine including a conventional coolant supply and discharge mechanism is shown in Figures 3 and 4. Figure 3 shows an example of the external shape of the main part of a typical superconducting rotating electric machine, and Figure 4 shows an example of the cross-sectional shape of a region including the coolant supply and discharge mechanism in the same superconducting rotating electric machine. Note that the gray hatched parts in Figure 4 indicate that these parts are vacuum.

[0004] As shown in Fig. 3, the superconducting rotating electric machine includes a stator 100, a rotor 101, a vacuum casing 5, a magnetic fluid seal unit 9, and the like. The rotor 101 is supported by bearings 102-1 and 102-2. Meanwhile, the vacuum casing 5 includes a joint (e.g., a bayonet joint) 103-1 forming a cooling medium discharge line and a joint (e.g., a bayonet joint) 103-2 forming a cooling medium supply line. The magnetic fluid seal unit 9 (hereinafter abbreviated as seal unit 9) seals using a magnetic fluid, and is joined to a flange portion 5a of the piping on the vacuum casing 5 side and is provided so as to be in contact with the outer circumferential surface of the piping on the rotor 101 side via the magnetic fluid.

[0005] As shown in Fig. 4, the casing 5 includes a first fixed pipe 3 and a second fixed pipe 4 that form a double cylindrical structure. Meanwhile, the rotor 101 includes a first rotating pipe 1 and a second rotating pipe 2 that form a double cylindrical structure. The seal portion 9 is joined to the flange portion 5a of the second fixed pipe 4 and is provided so as to be in contact with the outer circumferential surface of the second rotating pipe 2 via a magnetic fluid. This seal portion 9 prevents the cooling medium from leaking to the outside from between the outer circumferential surface of the second rotating pipe 2 and the end or flange portion 5a of the second fixed pipe 4 (seals the gap to prevent leakage).

[0006] The cooling medium sent from the refrigerator is supplied from the cooling medium supply line 7 in the joint 103-2 through the first fixed pipe 3 to the first rotating pipe 1, and then supplied to the rotor core by the first rotating pipe 1, passing through a spiral groove in the rotor core while cooling the rotor coil 101a, and passing through the gap between the outer circumferential surface of the first rotating pipe 1 and the inner circumferential surface of the second rotating pipe 2. The cooling medium that passed through this gap exits from the cooling medium discharge port 2a of the second rotating pipe 2 and enters the second fixed pipe 4, and is discharged from the discharge port 4a of the second fixed pipe 4 through the cooling medium discharge line 6 in the joint 103-1. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] JP 2007-089314 A [Patent Document 2] Japanese Patent Application Publication No. 03-040750 Summary of the Invention [Problem to be solved by the invention]

[0008] In the cooling medium supply and discharge mechanism of a conventional superconducting rotating motor, when the cooling medium exits the cooling medium outlet 2a of the second rotating pipe 2 and enters the second fixed pipe 4, the sealing portion 9 is cooled and the magnetic fluid freezes, which can cause the sealing function of the sealing portion 9 to be lost, resulting in a cooling medium leak.

[0009] To solve this problem, it is possible to provide a structure that heats the cooling medium before discharging it (Measure 1), or to provide a heating mechanism such as a heater or hot water pipe around the seal portion 9 (Measure 2).

[0010] However, in the structure in which the cooling medium is heated before being discharged as in Measure 1, the amount of heat exchanged when the cooling medium is re-cooled and reused increases, so the refrigerator needs to be made larger in size. In addition, when liquid helium or the like is used as the cooling refrigerant, it becomes difficult to reuse the cooling medium. In the case where a heating mechanism is provided around the seal portion 9 as in Measure 2, the mechanism around the seal portion 9 becomes complicated, and heat is transferred from the heated seal portion 9 to the cooling medium, which ultimately causes the cooling medium to heat up, resulting in the same problem as in Measure 1.

[0011] The problem that the present invention aims to solve is to provide a cooling medium supply and discharge mechanism for a superconducting rotating electric machine and a superconducting rotating electric machine that, with a simple configuration, makes it possible to suppress the temperature rise of the cooling medium while suppressing excessive cooling of the sealing portion. [Means for solving the problem]

[0012] A cooling medium supply and discharge mechanism for a superconducting rotating electric machine according to an embodiment includes a casing including a first fixed pipe used to supply a cooling medium and a second fixed pipe used to discharge the cooling medium and arranged to contain at least a part of the first fixed pipe, a rotor including a first rotating pipe that sends the cooling medium supplied from the first fixed pipe to a space where a rotor coil is located, and a second rotating pipe that is arranged to contain at least a part of the first rotating pipe and sends the cooling medium that has passed through the rotor coil to the second fixed pipe, and a casing that prevents the cooling medium from leaking to the outside from between the second rotating pipe and an end of the second fixed pipe. magnetic fluid The second fixed pipe is disposed so as to contain a part of the second rotating pipe, and the part of the second fixed pipe and the part of the second rotating pipe that are contained therein are sealed. The area surrounded by the magnetic fluid seal portion To without the presence of anything other than a cooling mediumcooling medium only A cooling medium retention space is formed where the an end portion of the second rotating pipe on the cooling medium discharge port side is located farther from the magnetic fluid seal portion than an end portion of the first rotating pipe on the cooling medium discharge port side. . Effect of the Invention

[0013] According to the present invention, it is possible to suppress an increase in the temperature of the cooling medium while suppressing excessive cooling of the seal portion, with a simple configuration. [Brief description of the drawings]

[0014] [Figure 1] 2 is a diagram showing an example of a cross-sectional shape of a region including a coolant supply / discharge mechanism in the superconducting rotating electric machine according to the first embodiment; [Diagram 2] 13 is a diagram showing an example of a cross-sectional shape of a region including a coolant supply / discharge mechanism in a superconducting rotating electric machine according to a second embodiment. FIG. [Diagram 3] FIG. 1 is a diagram showing an example of the external shape of a main part of a typical superconducting rotating electric machine. [Figure 4] 1 is a diagram showing an example of a cross-sectional shape of a region including a coolant supply / discharge mechanism in a typical superconducting rotating electric machine; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0015] Hereinafter, embodiments will be described with reference to the drawings.

[0016] (First embodiment) First, the first embodiment will be described with reference to FIG. 1 as well as to FIG. 3 and FIG. 4 described above.

[0017] The external shape of the main parts of the superconducting rotating electric machine according to the first embodiment is the same as that shown in FIG.

[0018] That is, as shown in Fig. 3, the superconducting rotating electric machine according to this embodiment includes a stator 100, a rotor 101, a vacuum casing 5, a magnetic fluid seal unit 9, and the like. The rotor 101 is supported by bearings 102-1 and 102-2. Meanwhile, the vacuum casing 5 includes a joint (e.g., a bayonet joint) 103-1 forming a cooling medium discharge line and a joint (e.g., a bayonet joint) 103-2 forming a cooling medium supply line. The magnetic fluid seal unit 9 (hereinafter, abbreviated as seal unit 9) seals using a magnetic fluid, and is joined to a flange portion 5a of the piping on the vacuum casing 5 side and is provided so as to be in contact with the outer circumferential surface of the piping on the rotor 101 side via the magnetic fluid.

[0019] Fig. 1 is a diagram showing an example of a cross-sectional shape of a region including a coolant supply / discharge mechanism in a superconducting rotating electric machine according to a first embodiment. Note that gray hatched areas in Fig. 1 indicate that the areas are vacuum. In Fig. 1, elements common to Fig. 4 described above are denoted by the same reference numerals.

[0020] 1, the casing 5 includes a first fixed pipe 3 and a second fixed pipe 4 that form a double cylindrical structure. Specifically, the outer diameter of the first fixed pipe 3 is smaller than the inner diameter of the second fixed pipe 4, and the first fixed pipe 3 and the second fixed pipe 4 are concentrically arranged.

[0021] The first fixed piping 3 is used to supply the cooling medium to the rotor 101. The cooling medium is supplied from a refrigerator (not shown) to the first fixed piping 3 through a cooling medium supply line 7 in a joint 103-2.

[0022] The second fixed pipe 4 is used to discharge the cooling medium from the vacuum casing 5. This second fixed pipe 4 is disposed so as to enclose at least a part of the first fixed pipe 3. The cooling medium in the second fixed pipe 4 is sent to the refrigerator through the cooling medium discharge line 6 in the joint 103-1.

[0023] On the other hand, the rotor 101 includes a first rotating pipe 1 and a second rotating pipe 2 that form a double cylindrical structure. Specifically, the outer diameter of the first rotating pipe 1 is smaller than the inner diameter of the second rotating pipe 2, and the first rotating pipe 1 and the second rotating pipe 2 are arranged concentrically. The first rotating pipe 1 and the second rotating pipe 2 each have a vacuum insulation layer on the inside.

[0024] The first rotating pipe 1 is disposed so as to communicate with the first fixed pipe 3, and a seal (not shown) is provided between the first rotating pipe 1 and the first fixed pipe 3. The first rotating pipe 1 sends the cooling medium supplied from the first fixed pipe 3 to the space in which the rotor coil (superconducting coil) 101a is located.

[0025] The second rotating pipe 2 is disposed so as to enclose at least a portion of the first rotating pipe 1 therein, and sends the cooling medium that has passed through the rotor coil 101 a to the second fixed pipe 4 .

[0026] In assembling the coolant supply / discharge mechanism, the first fixed pipe 3, which has an outer diameter smaller than the inner diameter of the first rotating pipe 1, is inserted axially into the first rotating pipe 1 so as to fit inside the first rotating pipe 1 with a gap. Also, the second fixed pipe 4, which has an inner diameter larger than the outer diameter of the second rotating pipe 2, is inserted axially into the second rotating pipe 2 so as to fit outside the second rotating pipe 2 with a gap.

[0027] The seal portion 9 is joined to the flange portion 5a of the second fixed pipe 4, and is provided so as to be in contact with the outer circumferential surface of the second rotating pipe 2 via the magnetic fluid. This seal portion 9 prevents the cooling medium from leaking to the outside from between the outer circumferential surface of the second rotating pipe 2 and the end or flange portion 5a of the second fixed pipe 4 (seals the gap to prevent leakage). The outside of the second fixed pipe 4 is covered by the vacuum casing 5, and is configured to be vacuum insulated.

[0028] The cooling medium used in such a cooling medium supply and discharge mechanism may be liquid helium, which is discarded after use, but here a gas such as helium gas that can be reused (recirculated within the aircraft) without being discarded is used.

[0029] The cooling medium sent from the refrigerator is supplied from the cooling medium supply line 7 in the joint 103-2 through the first fixed pipe 3 to the first rotating pipe 1, and then supplied to the rotor core by the first rotating pipe 1, passing through a spiral groove in the rotor core while cooling the rotor coil 101a, and passing through the gap between the outer circumferential surface of the first rotating pipe 1 and the inner circumferential surface of the second rotating pipe 2. The cooling medium that passed through this gap exits from the cooling medium discharge port 2a of the second rotating pipe 2 and enters the second fixed pipe 4, and is discharged from the discharge port 4a of the second fixed pipe 4 through the cooling medium discharge line 6 in the joint 103-1.

[0030] The cooling medium discharged through the cooling medium discharge line 6 enters the refrigerator where it is re-cooled, and is then sent again to the first fixed piping 3 through the cooling medium supply line 7 in the joint 103-2 to be recirculated within the refrigerator.

[0031] The cooling medium supply / discharge mechanism according to the first embodiment differs from conventional cooling medium supply / discharge mechanisms mainly in that the second rotating pipe 2 and the second fixed pipe 4 are configured so that a cooling medium retention space (gap) 8 in which the cooling medium retains is present between the second rotating pipe 2 and the second fixed pipe 4. The radial width of the piping of this cooling medium retention space 8 is narrower than the radial gap between the outer circumferential surface of the first rotating pipe 1 and the inner circumferential surface of the second rotating pipe 2, and is configured to be longer in the axial direction.

[0032] Specifically, the second fixed pipe 4 is disposed so as to enclose a part of the second rotating pipe 2, and a cooling medium retention space 8 in which the cooling medium retains is formed between the part of the second rotating pipe 2 and the part of the second fixed pipe 4. In this case, it is assumed that there is a certain distance or more in the axial direction between the end of the second fixed pipe 4 on the seal portion 9 side and the end of the second rotating pipe 2 on the cooling medium discharge port 2a side. In addition, it is assumed that the cooling medium discharge port 4a of the second fixed pipe 4 is located at a predetermined position in the direction in which the cooling medium is discharged from the cooling medium discharge port 2a of the second rotating pipe 2.

[0033] With this configuration, the cooling medium discharged from the cooling medium discharge port 2a of the second rotating pipe 2 is less likely to flow into the seal portion 9, and is more likely to flow directly into the cooling medium discharge port 4a of the second fixed pipe 4. In order for the cooling medium discharged from the cooling medium discharge port 2a of the second rotating pipe 2 to flow into the seal portion 9, it must change the direction of flow (make a U-turn) and enter the cooling medium retention space 8. Even if the cooling medium enters the cooling medium retention space 8, the flow stagnates, and the cooling medium in the cooling medium retention space 8 (especially the cooling medium around the seal portion 9) stagnates. At this time, a temperature gradient is generated in the cooling medium retention space 8 from the end of the second rotating pipe 2 on the cooling medium discharge port 2a side to the seal portion 9. The temperature of the cooling medium around the seal portion 9 is higher than the temperature of the cooling medium discharged from the cooling medium discharge port 2a of the second rotating pipe 2, and is maintained at a high temperature that does not freeze the magnetic fluid. On the other hand, the temperature of the cooling medium discharged from the cooling medium discharge port 2a of the second rotating pipe 2 is maintained at a low temperature that allows the refrigerator to perform recooling without burdening the refrigerator.

[0034] That is, the cooling medium discharged from the cooling medium outlet 4a of the second fixed pipe 4 does not directly cool the seal portion 9 as in the conventional case, but indirectly cools the seal portion 9 via the cooling medium retention space 8, so that excessive cooling of the seal portion is suppressed. Also, the heat transferred from the seal portion 9 to the cooling medium is not directly transferred as in the conventional case, but indirectly transferred via the cooling medium retention space 8, so that the temperature rise of the cooling medium is suppressed.

[0035] In this way, the temperature rise of the cooling medium is suppressed, so the amount of heat exchanged when re-cooling and reusing the cooling medium is small, the burden on the refrigerator is lightened, and the refrigerator can be made smaller. Therefore, by using a gas such as helium gas as the cooling medium and recirculating it within the machine, efficient operation can be achieved without disposing of the cooling medium.

[0036] Second embodiment Next, a second embodiment will be described with reference to the above-mentioned figures as well as to FIG.

[0037] The external shape of the main parts of the superconducting rotating electric machine according to the second embodiment is the same as that shown in FIG. 3 described above, and therefore a description thereof will be omitted.

[0038] Fig. 2 is a diagram showing an example of a cross-sectional shape of a region including a coolant supply / discharge mechanism in a superconducting rotating electric machine according to a second embodiment. Note that gray hatched parts in Fig. 2 indicate that the parts are vacuum. In Fig. 2, the same reference numerals are used to designate elements common to Fig. 1 described above. The following description will focus on the parts that are different from Fig. 1 described above.

[0039] The cooling medium supply / discharge mechanism of the second embodiment differs from the cooling medium supply / discharge mechanism of the first embodiment mainly in that measures are taken on the second fixed pipe 4 and the second rotating pipe 2 to further suppress overcooling of the seal portion 9.

[0040] For example, at least the inner surface of the second fixed pipe 4 is made of FRP (Fiber Reinforced Plastics) 4' having low thermal conductivity, or is covered with a resin-based heat insulating material 4'. The space between the second fixed pipe 4 and the vacuum casing 5 is sealed using an O-ring 10 made of a resin-based heat insulating material.

[0041] Furthermore, of the outer surface of the second rotating pipe 2, at least the surface in contact with the cooling medium retention space 8 is covered with a resin-based insulating material 12. In the example of Fig. 2, the end of the second rotating pipe 2 on the cooling medium discharge port 2a side is also covered with the insulating material 12, and the end is sealed between the inside (vacuum insulation layer) and the outside of the second rotating pipe 2 using a cap (insulation cap) 11 made of a resin-based insulating material.

[0042] By configuring in this manner, it is possible to suppress heat transfer through the piping and reinforce the above-mentioned temperature gradient, thereby further suppressing overcooling of the seal portion 9 and further suppressing the temperature rise of the cooling medium.

[0043] As described above in detail, according to the embodiment, it is possible to suppress the temperature rise of the cooling medium and to suppress the seal portion from being cooled excessively, with a simple configuration.

[0044] Although some embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included in the scope and spirit of the invention, and are included in the scope of the invention and its equivalents described in the claims. [Explanation of symbols]

[0045] 1...first rotating pipe, 2...second rotating pipe, 2a...cooling medium outlet, 3...first fixed pipe, 4...second fixed pipe, 4a...cooling medium outlet, 4'...FRP or insulation material, 5...vacuum casing, 5a...flange portion, 6...cooling medium outlet line, 7...cooling medium supply line, 8...cooling medium retention space, 9...magnetic fluid seal portion, 10...O-ring, 11...insulating cap, 12...insulating material, 100...stator, 101...rotor, 101a...rotor coil (superconducting coil), 102-1, 102-2...bearings, 103-1, 103-2...joints.

Claims

1. a casing including a first fixed pipe used for supplying a cooling medium and a second fixed pipe used for discharging the cooling medium and disposed so as to enclose at least a portion of the first fixed pipe; a rotor including a first rotating pipe that sends the cooling medium supplied from the first fixed pipe to a space where a rotor coil is located, and a second rotating pipe that is disposed to contain at least a portion of the first rotating pipe and sends the cooling medium that has passed through the rotor coil to the second fixed pipe; a magnetic fluid seal portion that prevents the cooling medium from leaking to the outside from between the second rotating pipe and the end of the second fixed pipe; Equipped with the second fixed pipe is disposed so as to contain a portion of the second rotating pipe, and a cooling medium retention space in which only the cooling medium is retained and nothing other than the cooling medium is present is formed in an area surrounded by the contained portion of the second rotating pipe, the portion of the second fixed pipe, and the magnetic fluid seal portion; an end portion of the second rotating pipe on a cooling medium discharge port side is located farther from the magnetic fluid seal portion than an end portion of the first rotating pipe on a cooling medium discharge port side; Coolant supply and discharge mechanism for a superconducting rotating electric machine.

2. a certain distance or more in an axial direction between an end of the second fixed pipe on the side of the magnetic fluid seal portion and an end of the second rotating pipe on the side of a cooling medium discharge port; 2. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

3. a cooling medium discharge port of the second fixed pipe is located at a predetermined position in a direction in which the cooling medium is discharged from the cooling medium discharge port of the second rotating pipe; 3. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

4. The cooling medium used in the cooling medium supply and discharge mechanism is a gas that can be reused without being disposed of.

4. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

5. At least the inner surface of the second fixed pipe is made of FRP (Fiber Reinforced Plastics).

5. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

6. At least the inner surface of the second fixed pipe is covered with a heat insulating material.

5. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

7. At least a surface of the second rotating pipe that is in contact with the cooling medium retention space is covered with a heat insulating material.

7. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 1.

8. The second rotating pipe has an end portion on a cooling medium discharge port side covered with a heat insulating material.

8. A cooling medium supply / discharge mechanism for a superconducting rotating electric machine according to claim 7.

9. A superconducting rotating electric machine comprising the coolant supply / discharge mechanism according to any one of claims 1 to 8.

Citation Information

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