Magnetic resonance imaging apparatus and control method

The integration of a backup power supply and adaptive demagnetization method in MRI systems addresses helium cost and quenching risks, ensuring operational stability and cost-effectiveness by preventing quenching and reducing recovery time.

JP7844595B2Active Publication Date: 2026-04-13CANON MEDICAL SYST CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2026-04-13

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Abstract

To reduce a quench occurrence possibility.SOLUTION: A magnetic resonance imaging device includes: a superconducting magnet for generating a static magnetic field; a cooling part for cooling the superconducting magnet by a cooling method or conductive cooling method with less capacity of a cooling medium; a main power source for supplying power to the cooling part; a sub-power source for supplying power to the cooling part when the main power source is interrupted; an acquisition section for acquiring temperature of the superconducting magnet; and a demagnetization part for starting demagnetization with respect to the superconducting magnet based on the capacity of the sub-power source, the temperature of the superconducting magnet, and an excitation current of the superconducting magnet when the interruption of the main power source is started.SELECTED DRAWING: Figure 2
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Description

Technical Field

[0001] The embodiments disclosed in this specification and the drawings relate to a magnetic resonance imaging apparatus and a control method.

Background Art

[0002] In a superconducting magnetic resonance imaging apparatus, helium is used as a refrigerant. In recent years, the price of helium has soared, squeezing the lifetime cost of the magnetic resonance imaging apparatus. To suppress the lifetime cost, it is effective to minimize the capacity of the refrigerant. However, when the magnet cooling system fails to operate during a power outage due to an accidental event such as a natural disaster or lightning strike, reducing the capacity of the refrigerant shortens the time until a quench occurs due to the temperature rise inside the superconducting magnet.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0004] One of the problems to be solved by the embodiments disclosed in this specification and the drawings is to reduce the possibility of quenching. However, the problems to be solved by the embodiments disclosed in this specification and the drawings are not limited to the above problems. The problems corresponding to the respective effects of each configuration shown in the embodiments described later can also be regarded as other problems.

Means for Solving the Problems

[0005] The magnetic resonance imaging apparatus according to the embodiment includes a superconducting magnet that generates a static magnetic field, a cooling unit that cools the superconducting magnet by a cooling method with a small refrigerant capacity or a conduction cooling method, a main power supply capable of supplying power to the cooling unit, a sub-power supply capable of supplying power to the cooling unit in the event of a power outage of the main power supply, an acquisition unit that acquires the temperature of the superconducting magnet, and a demagnetization unit that, upon the onset of a power outage of the main power supply, initiates demagnetization of the superconducting magnet based on the capacity of the sub-power supply, the temperature of the superconducting magnet, and the excitation current of the superconducting magnet. [Brief explanation of the drawing]

[0006] [Figure 1] Figure 1 shows an example of the configuration of a magnetic resonance imaging apparatus according to this embodiment. [Figure 2] Figure 2 shows an example configuration of a superconducting magnet control device and a superconducting magnet. [Figure 3] Figure 3 shows the time course of the internal temperature of a low-refrigerant superconducting magnet during a power outage. [Figure 4] Figure 4 shows the time course of the internal temperature of a low-refrigerant superconducting magnet during a power outage when using the demagnetization method. [Figure 5] Figure 5 shows the flow of a control process example for a superconducting magnet related to the adaptive demagnetization method using the superconducting magnet control device shown in Figure 2. [Figure 6] Figure 6 shows the time course of the internal temperature of a low-refrigerant superconducting magnet during a power outage when using the adaptive demagnetization method. [Figure 7] Figure 7 shows the equivalent circuit of the excitation / demagnetization unit and the superconducting magnet in normal mode. [Figure 8] Figure 8 shows the equivalent circuit of the excitation / demagnetization unit and the superconducting magnet in demagnetization mode. [Modes for carrying out the invention]

[0007] The following describes in detail embodiments of a magnetic resonance imaging apparatus and a control method for superconducting magnets, with reference to the drawings. Note that superconductivity is synonymous with superconductivity.

[0008] Figure 1 shows an example of the configuration of a magnetic resonance imaging apparatus 1 according to this embodiment. As shown in Figure 1, the magnetic resonance imaging apparatus 1 includes a frame 11, a bed 13, a gradient magnetic field power supply 21, a transmitting circuit 23, a receiving circuit 25, a bed drive device 27, a sequence control circuit 29, a superconducting magnet control device 30, and a host computer 50.

[0009] The mounting frame 11 includes a superconducting magnet 41 and a gradient coil 43. The superconducting magnet 41 and the gradient coil 43 are housed in the casing of the mounting frame 11. The casing of the mounting frame 11 has a hollow bore. A transmitting coil 45 and a receiving coil 47 are arranged inside the bore of the mounting frame 11.

[0010] The superconducting magnet 41 has a hollow, approximately cylindrical shape and generates a static magnetic field inside the approximately cylindrical interior. Here, the central axis of the superconducting magnet 41 is defined as the Z-axis, the axis perpendicular to the Z-axis is defined as the Y-axis, and the axis perpendicular to the Z-axis horizontally is defined as the X-axis. The X-axis, Y-axis, and Z-axis constitute an orthogonal three-dimensional coordinate system.

[0011] The gradient coil 43 is a coil unit mounted inside the superconducting magnet 41 and formed in a hollow, approximately cylindrical shape. The gradient coil 43 generates a gradient magnetic field by receiving current from the gradient power supply 21. More specifically, the gradient coil 43 has three coils corresponding to the mutually orthogonal X, Y, and Z axes. These three coils form a gradient magnetic field in which the magnetic field strength changes along each of the X, Y, and Z axes. The gradient magnetic fields along each of the X, Y, and Z axes are combined to form mutually orthogonal slice-selective gradient magnetic field Gs, phase-encoded gradient magnetic field Gp, and frequency-encoded gradient magnetic field Gr in the desired direction. The slice-selective gradient magnetic field Gs is used to arbitrarily determine the imaging cross-section (slice). The phase-encoded gradient magnetic field Gp is ​​used to change the phase of the magnetic resonance signal (hereinafter referred to as the MR signal) according to the spatial position. The frequency-encoded gradient magnetic field Gr is used to change the frequency of the MR signal according to the spatial position. In the following explanation, the gradient direction of the slice selection gradient magnetic field Gs is assumed to be the Z-axis, the gradient direction of the phase encoding gradient magnetic field Gp is ​​assumed to be the Y-axis, and the gradient direction of the frequency encoding gradient magnetic field Gr is assumed to be the X-axis.

[0012] The gradient power supply 21 supplies current to the gradient coil 43 according to the sequence control signal from the sequence control circuit 29. By supplying current to the gradient coil 43, the gradient power supply 21 generates gradient magnetic fields along the X, Y, and Z axes. These gradient magnetic fields are superimposed on the static magnetic field formed by the superconducting magnet 41 and applied to the subject P.

[0013] The transmitting coil 45 is, for example, positioned inside the gradient magnetic field coil 43 and receives current from the transmitting circuit 23 to generate high-frequency pulses (hereinafter referred to as RF pulses).

[0014] The transmitting circuit 23 supplies current to the transmitting coil 45 in order to apply an RF pulse to the subject P via the transmitting coil 45 in order to excite the target proton present in the subject P. The RF pulse oscillates at a resonant frequency unique to the target proton, thereby exciting the target proton. An MR signal is generated from the excited target proton and detected by the receiving coil 47. The transmitting coil 45 is, for example, a whole-body coil (WB coil). A whole-body coil may also be used as a transmitting and receiving coil.

[0015] The receiving coil 47 receives MR signals emitted from target protons present in the subject P in response to the action of an RF magnetic field pulse. The receiving coil 47 has multiple receiving coil elements capable of receiving MR signals. The received MR signals are supplied to the receiving circuit 25 via wired or wireless connection. Although not shown in Figure 1, the receiving coil 47 has multiple receiving channels implemented in parallel. Each receiving channel has a receiving coil element that receives the MR signal and an amplifier that amplifies the MR signal. The MR signal is output for each receiving channel. The total number of receiving channels and the total number of receiving coil elements may be the same, or the total number of receiving channels may be greater than or less than the total number of receiving coil elements.

[0016] The receiving circuit 25 receives the MR signal generated from the excited target proton via the receiving coil 47. The receiving circuit 25 processes the received MR signal to generate a digital MR signal. The digital MR signal can be represented in k-space, which is defined by the spatial frequency. Therefore, the digital MR signal will be referred to as k-space data below. k-space data is a type of raw data used for image reconstruction. The k-space data is supplied to the host computer 50 via wired or wireless connection.

[0017] The transmitting coil 45 and receiving coil 47 described above are merely examples. Instead of the transmitting coil 45 and receiving coil 47, a transmitting and receiving coil equipped with both transmitting and receiving functions may be used. Furthermore, the transmitting coil 45, receiving coil 47, and the transmitting and receiving coil may be combined.

[0018] A bed 13 is installed adjacent to the stand 11. The bed 13 has a top plate 131 and a base 133. The subject P is placed on the top plate 131. The base 133 supports the top plate 131 so as to be slidable along the X-axis, Y-axis, and Z-axis respectively. A bed driving device 27 is housed in the base 133. The bed driving device 27 moves the top plate 131 in response to control from the sequence control circuit 29. The bed driving device 27 may include any motor such as a servo motor or a stepping motor.

[0019] The sequence control circuit 29 has, as hardware resources, a processor such as a CPU (Central Processing Unit) or MPU (Micro Processing Unit) and memories such as a ROM (Read Only Memory) and a RAM (Random Access Memory). The sequence control circuit 29 synchronously controls the gradient magnetic field power supply 21, the transmission circuit 23, and the reception circuit 25 based on the imaging conditions set by the processing circuit 51, performs MR imaging on the subject P according to a pulse sequence corresponding to the imaging conditions, and collects k-space data regarding the subject P.

[0020] The superconducting magnet control device 30 is a mechanical system that controls the superconducting magnet 41. The superconducting magnet control device 30 controls cooling, excitation, demagnetization, etc. of the superconducting magnet 41. Details of the superconducting magnet control device 30 will be described later.

[0021] As shown in FIG. 1, the host computer 50 is a computer having a processing circuit 51, a memory 52, a display 53, an input interface 54, and a communication interface 55.

[0022] The processing circuit 51 has a processor such as a CPU as a hardware resource. The processing circuit 51 functions as the central hub of the magnetic resonance imaging apparatus 1. For example, the processing circuit 51 sets imaging conditions automatically or manually. The processing circuit 51 also reconstructs an MR image of the subject P based on k-space data collected via the receiving circuit 25. The processing circuit 51 can also perform various processing on the MR image, such as rendering, image recognition, and image analysis.

[0023] Memory 52 is a storage device such as an HDD (Hard Disk Drive), SSD (Solid State Drive), or integrated circuit storage device that stores various types of information. Alternatively, memory 52 may be a drive device that reads and writes various types of information to and from portable storage media such as a CD-ROM drive, DVD drive, or flash memory. For example, memory 52 stores imaging conditions, k-space data, MR images, control programs, and the like.

[0024] The display 53 displays various information. For example, the display 53 displays MR images, imaging condition setting screens, etc. As the display 53, for example, a CRT display, liquid crystal display, organic EL display, LED display, plasma display, or any other display known in the art can be used as appropriate.

[0025] The input interface 54 includes an input device that receives various commands from the user. Possible input devices include keyboards, mice, various switches, touchscreens, and touchpads. However, the input device is not limited to those with physical operating components such as mice and keyboards. For example, an electrical signal processing circuit that receives electrical signals corresponding to input operations from an external input device separate from the magnetic resonance imaging apparatus 1 and outputs the received electrical signals to various circuits is also an example of the input interface 54. Furthermore, the input interface 54 may also be a speech recognition device that converts audio signals collected by a microphone into instruction signals.

[0026] The communication interface 55 is an interface that connects the magnetic resonance imaging apparatus 1 to workstations, PACS (Picture Archiving and Communication System), HIS (Hospital Information System), RIS (Radiology Information System), etc., via a LAN (Local Area Network) or the like. The network interface transmits and receives various types of information between the connected workstation, PACS, HIS, and RIS.

[0027] The above configuration is merely an example and is not limited thereto. For example, the sequence control circuit 29 may be incorporated into the host computer 50. The sequence control circuit 29 and the processing circuit 51 may be mounted on the same board.

[0028] Figure 2 shows an example configuration of a superconducting magnet control device 30 and a superconducting magnet 41. As shown in Figure 2, the superconducting magnet 41 has a substantially cylindrical superconducting coil 410. The superconducting coil 410 is housed in a cooling container such as a cryostat (not shown). The cooling container contains a refrigerant such as liquid helium. The superconducting coil 410 is cooled by the refrigerant. More specifically, the cooling container has a first cooling layer for maintaining the temperature in the first stage range and a second cooling layer for maintaining the temperature in the second stage range. The first and second stages differ depending on the type of refrigerant, etc., but the first stage is, for example, around 40K (Kelvin) to 90K, and the second stage is a temperature for maintaining a liquid state, for example, around 2K to 30K. The superconducting coil 410 is housed in the second cooling layer. The superconducting coil 410 is cooled to an extremely low temperature by the refrigerant and maintains its superconducting state. A static magnetic field is formed when an excitation current flows through the superconducting coil 410. In excitation mode, current is supplied to the superconducting coil 410 from the main power supply 31 via the excitation / demagnetization unit 37, and when the superconducting coil 410 is disconnected from the main power supply 31 and switched to normal mode, current flows through the superconducting coil 410.

[0029] As shown in Figure 2, the superconducting magnet control device 30 includes a main power supply 31, a sub-power supply 32, a cooling system 33, a thermometer 36, an excitation / demagnetization unit 37, a processing circuit 38, and a memory device 39.

[0030] The main power supply 31 is a power supply device that supplies power to each component included in the superconducting magnet control device 30. The main power supply 31 is the normal power supply device used under normal conditions, i.e., when there is no power outage. For example, the main power supply 31 is configured to be able to supply power to at least the cooling system 33. For example, a commercial power supply is used as the main power supply 31.

[0031] The auxiliary power supply 32 is a power supply device that supplies power to each component included in the superconducting magnet control device 30. The auxiliary power supply 32 is a backup power supply device used in the event of a power outage of the main power supply 31. For example, the auxiliary power supply 32 is configured to be able to supply power to at least the cooling system 33. As the auxiliary power supply 32, for example, an uninterruptible power supply (UPS) or a generator can be used.

[0032] The cooling system 33 is a mechanical system for cooling the superconducting magnet 41. The cooling mechanism of the cooling system 33 may be water-cooled, air-cooled, or of another type. Specifically, the cooling system 33 includes a refrigerator compressor 34 and a refrigerator 35. The refrigerator compressor 34 and the refrigerator 35 are connected by a flow pipe, through which a refrigerant such as helium circulates. The refrigerator compressor 34 compresses the refrigerant and supplies it to the refrigerator 35. The refrigerator 35 cools the cooling container contained in the superconducting magnet 41, more specifically the inside of the first cooling layer and the second cooling layer, with the compressed refrigerant. In the case of water cooling, a chiller may be provided to cool the refrigerator 35. In the event of a power outage of the main power supply 31, the chiller receives power from the auxiliary power supply 32.

[0033] The thermometer 36 measures the temperature of the superconducting magnet 41. Information regarding the measured temperature is supplied to the excitation / demagnetization unit 37 and the processing circuit 38. The thermometer 36 is, for example, a resistance thermometer that is placed close to the superconducting coil 410 of the superconducting magnet 41 and measures the temperature of the superconducting coil 410 by utilizing the change in the electrical resistance of the thermometer due to the temperature change of the superconducting coil 410. Note that the type of thermometer 36 is not limited to a resistance thermometer; any type that can measure the temperature of the superconducting magnet 41, such as a gas thermometer, liquid thermometer, thermocouple thermometer, or optical thermometer, may be used.

[0034] The excitation / demagnetization unit 37 is a mechanical device that energizes or demagnetizes the superconducting magnet 41. For example, in excitation mode, the excitation / demagnetization unit 37 energizes the superconducting coil 410 by supplying current from the main power supply 31 to the superconducting coil 410. In demagnetization mode, the excitation / demagnetization unit 37 drains the current flowing through the superconducting coil 410 into a load provided on the excitation / demagnetization unit 37, causing it to dissipate. In demagnetization mode, the excitation / demagnetization unit 37 starts demagnetizing the superconducting magnet 41 after a third time interval based on a first time interval and a second time interval has elapsed since the start of a power outage at the main power supply 31.

[0035] The processing circuit 38 has a processor such as a CPU as a hardware resource. The processing circuit 38 functions as the central hub of the superconducting magnet control device 30. The processing circuit 38 has an acquisition function 381, a power supply time determination function 382, ​​a demagnetization required time determination function 383, a demagnetization start time determination function 384, and a control function 385, by executing various programs stored in the memory device 39, etc. Note that the processing circuit 38 does not necessarily have to be installed in the superconducting magnet control device 30 as long as it is installed on the same power line as the cooling system 33, and may be installed in the superconducting magnet 41 or in other devices.

[0036] In the acquisition function 381, the processing circuit 38 acquires various information related to the superconducting magnet control device 30 and the superconducting magnet 41. For example, the processing circuit 38 acquires information on the temperature of the superconducting magnet 41 measured by the thermometer 36. The processing circuit 38 may also acquire information on the capacity of the auxiliary power supply 32.

[0037] In the power supply time determination function 382, ​​the processing circuit 38 determines a first time during a power outage of the main power supply 31, based on the capacity of the auxiliary power supply 32, during which the auxiliary power supply 32 can supply power to the cooling system 33. Hereinafter, this first time will be referred to as the auxiliary power supply time. The auxiliary power supply time means the power duration or continuous operation time of the auxiliary power supply 32.

[0038] In the demagnetization time determination function 383, the processing circuit 38 determines a second time required to demagnetize the superconducting magnet 41 based on the excitation current of the superconducting magnet 41 and the temperature of the superconducting magnet 41. Hereinafter, this second time will be referred to as the demagnetization time. In this embodiment, the excitation current is the magnet current that flows through the superconducting coil 410 to generate a static magnetic field of a desired magnetic field strength. In other words, the excitation current is the magnet current that flows through the superconducting coil 410 in normal mode. Note that in this embodiment, the magnet current is the current that flows through the superconducting coil 410.

[0039] In the demagnetization start time determination function 384, the processing circuit 38 determines a third time to start demagnetization based on the auxiliary power supply time and the required demagnetization time. Hereinafter, this third time will be referred to as the demagnetization start time.

[0040] In the control function 385, the processing circuit 38 controls various configurations of the superconducting magnet control device 30. For example, the processing circuit 38 supplies a demagnetization start instruction to the excitation / demagnetization unit 37 in order to start demagnetizing the superconducting magnet 41 after the demagnetization start time has elapsed from the start of a power outage of the main power supply 31. The processing circuit 38 also controls the switching between the main power supply 31 and the sub-power supply 32. Furthermore, the processing circuit 38 controls the switching of the excitation / demagnetization unit 37 between excitation mode, normal mode, and demagnetization mode.

[0041] The storage device 39 is a storage device such as an HDD, SSD, or integrated circuit storage device that stores various types of information. For example, the storage device 39 stores the current value of the excitation current of the superconducting magnet 41. The storage device 39 may also be incorporated into the processing circuit 38.

[0042] The following describes an example of the operation of the magnetic resonance imaging apparatus 1 according to this embodiment.

[0043] As mentioned above, superconducting magnetic resonance imaging systems use helium as a coolant. In recent years, the price of helium has soared, putting pressure on the lifetime cost of magnetic resonance imaging systems. Minimizing the coolant capacity as much as possible is an effective way to reduce lifetime costs. However, if the cooling system 33 of the superconducting magnet 41 stops working due to a power outage caused by an unforeseen accident such as a natural disaster or lightning strike, the temperature inside the superconducting magnet 41 will rise rapidly due to the small coolant capacity or, in the case of conductive cooling, the absence of coolant, thus shortening the time until a quench occurs.

[0044] In the event of a power outage at the main power supply 31, backup of the cooling system 33 using the auxiliary power supply 32 can be considered. However, the continuous operating time of the auxiliary power supply 32 is limited depending on its capacity, such as fuel and charging capacity. Therefore, when this capacity is depleted, the auxiliary power supply 32 also stops, and the cooling system 33 stops as well. When the cooling system 33 stops, the temperature of the superconducting magnet 41 rises due to insufficient or no refrigerant, leading to a quench. Once a quench occurs, the energy must be absorbed inside the superconducting magnet 41. If the refrigerant capacity is insufficient or absent, the energy cannot be efficiently released to the outside of the superconducting magnet 41, resulting in a significant temperature increase. When the superconducting magnet 41 is excited again, cooling will require considerable cost and time.

[0045] Figure 3 shows the time course of the internal temperature Kc of a low-refrigerant superconducting magnet 41 during a power outage. In the graph shown in Figure 3, the vertical axis is defined by the internal temperature Kc of the superconducting magnet 41, and the horizontal axis is defined by the elapsed time T from the start time T0 of the power outage of the main power supply 31. As shown in Figure 3, the auxiliary power supply 32 starts operating when the main power supply 31 starts to fail. The start time of the power outage T0 is approximately the same as the start time of power supply by the auxiliary power supply 32. Even when the main power supply 31 starts to fail, power continues to be supplied to the cooling system 33 by the auxiliary power supply 32, so the internal temperature Kc does not rise. At time Te, after the auxiliary power supply time Tt has elapsed from the start time of the power outage T0, the power supply from the auxiliary power supply 32 to the cooling system 33 stops. When the power supply from the auxiliary power supply 32 to the cooling system 33 stops, the internal temperature Kc starts to rise. When the internal temperature Kc rises, the superconducting state locally collapses and transitions to a normal conducting state, creating resistance. Joule heat is generated in the resisting portion, and this Joule heat expands the normal conducting portion. If a coolant is present, the coolant dissipates the Joule heat to the outside of the superconducting magnet 41. Depending on the amount of coolant stored in the superconducting magnet 41, if there is little or no coolant, the internal temperature Kc is thought to reach the critical temperature Kq, the limit temperature at which the superconducting coil 410 can maintain its superconducting state, in approximately 1 hour to 1 day. When the internal temperature Kc reaches the critical temperature Kq, the superconducting coil 410 can no longer maintain its superconducting state, a quench occurs, and the internal temperature Kc rises rapidly. Hereafter, the critical temperature Kq will be referred to as the quench temperature Kq.

[0046] Once a quench occurs, cooling the superconducting magnet 41 can take a considerable amount of time, ranging from several days to several weeks. If there is a large amount of refrigerant to absorb the heat generated by the quench, the heat generation will be suppressed by the refrigerant and, as a result, will be discharged to the outside of the superconducting magnet 41, thus suppressing the rise in internal temperature Kc. However, if there is no refrigerant, or only a small amount of tens of liters or less, the time from the start of a power outage to the rise in internal temperature Kc is short, making the suppression or prevention of quenching a crucial challenge in achieving a reduction in refrigerant volume. One way to solve this problem is to demagnetize the magnet by the excitation / demagnetization unit 37 when the auxiliary power supply 32 is operating, thereby avoiding a quench (hereinafter referred to as the demagnetization method).

[0047] Figure 4 shows the time course of the internal temperature Kc of a low-refrigerant superconducting magnet 41 during a power outage when using the demagnetization method. As shown in Figure 4, after the start of power supply by the auxiliary power supply 32, demagnetization is started by the excitation / demagnetization unit 37 from the demagnetization start time Ts. The slight rise in the internal temperature Kc of the superconducting magnet 41 from time Ts illustrates the effect of heat generation due to the change in the magnetic field caused by demagnetization. By appropriately setting the current change per unit time during demagnetization, it is possible to reduce the magnet current to approximately zero before reaching the quench temperature Kq. When the magnet current becomes zero, it means that there is no residual energy inside the superconducting magnet 41. Therefore, even if the capacity of the auxiliary power supply 32 becomes zero and the power supply to the cooling system 33 stops, no significant heat generation occurs. The rise in the internal temperature Kc after the completion of demagnetization is caused by heat intrusion from the outside to the inside of the superconducting magnet 41 (generally less than a few joules per second), which is a significantly smaller value compared to the quench energy (approximately 10M joules in the case of 3T). Therefore, even if the power supply to the cooling system 33 is interrupted, the internal temperature Kc can be kept at a lower temperature for a longer period of time compared to when a quench occurs.

[0048] The demagnetization start time Ts is set to the time obtained by subtracting the required demagnetization time Tg from the auxiliary power supply time Tt (Tt-Tg). However, the cooling capacity of the refrigerator 35 decreases due to the aging deterioration of components such as sliding parts and thermal storage materials. As the cooling capacity deteriorates, the internal temperature Kc at the start of operation of the auxiliary power supply 32 will increase. If the internal temperature Kc is high, the time to reach quench is shorter, so it is necessary to set the demagnetization start time Ts earlier. In other words, even if the required demagnetization time Tg is constant and the cooling capacity is sufficient, it is necessary to set the demagnetization start time Ts with a certain margin. On the other hand, the later the demagnetization start time Ts is set, the lower the internal temperature Kc can be kept and the magnet current can be kept as an excitation current, so the time required to restore power from a power outage of the main power supply 31 can be shortened. To achieve this, it is necessary to estimate the accurate required demagnetization time Tg according to the individual circumstances.

[0049] Therefore, the magnetic resonance imaging apparatus 1 according to this embodiment adaptively estimates the appropriate demagnetization time Tg and / or demagnetization start time Ts according to the internal temperature Kc of the superconducting magnet 41, and starts demagnetization at the optimal timing in terms of both quench avoidance and reduction of recovery time. Hereinafter, the demagnetization method based on the adaptively estimated demagnetization time Tg and / or demagnetization start time Ts will be referred to as the adaptive demagnetization method.

[0050] Figure 5 shows the flow of an example of control processing for a superconducting magnet 41 using the adaptive demagnetization method by the superconducting magnet control device 30. Figure 6 shows the time change of the internal temperature Kc of a low-refrigerant type superconducting magnet 41 during a power outage when using the adaptive demagnetization method.

[0051] As shown in Figure 5, the processing circuit 38 waits for the main power supply 31 to shut off due to the implementation of the control function 385 (step S1). When there is no power outage, i.e., under normal conditions, power from the main power supply 31 is supplied to the refrigerator compressor 34, refrigerator 35 and processing circuit 38 via the auxiliary power supply 32, in AC or DC according to the ratings of each of the refrigerator compressor 34, refrigerator 35 and processing circuit 38. Note that under normal conditions, power from the main power supply 31 may be supplied to the refrigerator compressor 34, refrigerator 35 and processing circuit 38 without going through the auxiliary power supply 32. The main power supply 31 may shut off due to various factors such as natural disasters or lightning strikes.

[0052] If a power outage occurs in step S1 (step S1: YES), the processing circuit 38 activates the auxiliary power supply 32 by realizing the control function 385 (step S2). When the auxiliary power supply 32 is activated, power from the auxiliary power supply 32 is supplied to the refrigerator compressor 34, the refrigerator 35, and the processing circuit 38 in AC or DC according to the ratings of each of the refrigerator compressor 34, the refrigerator 35, and the processing circuit 38. Note that the power outage of the main power supply 31 in step S1 may be detected by other components such as the auxiliary power supply 32.

[0053] When step S2 is performed, the processing circuit 38 determines the auxiliary power supply time Tt by implementing the power supply time determination function 382 (step S3). In step S3, if the auxiliary power supply 32 is an uninterruptible power supply, the processing circuit 38 determines the auxiliary power supply time Tt based on the output capacity of the auxiliary power supply 32, and if the auxiliary power supply 32 is a generator, it determines the auxiliary power supply time Tt based on the remaining capacity of the auxiliary power supply 32. Hereinafter, the output capacity of the auxiliary power supply 32 and the remaining capacity of the auxiliary power supply 32 will be collectively referred to simply as capacity. The capacity of the auxiliary power supply 32 is obtained from the auxiliary power supply 32 when the main power supply 31 starts to fail. If the capacity of the auxiliary power supply 32 at the start of the main power supply 31 failure is known, the value of the capacity of the auxiliary power supply 32 is stored in the storage device 39 in advance, and the processing circuit 38 may obtain this value from the storage device 39 at any time.

[0054] More specifically, the processing circuit 38 determines the auxiliary power supply time Tt based on the power to be supplied by the auxiliary power supply 32 and the capacity of the auxiliary power supply 32 when the main power supply 31 fails. The power to be supplied by the auxiliary power supply 32 during a power outage includes at least the power to be supplied to the cooling system 33 during a power outage. The power to be supplied to the cooling system 33 during a power outage is equivalent to the power consumed by the cooling system 33 during a power outage, and it is preferable that this power value be measured in advance. The value of the power to be supplied to the cooling system 33 during a power outage is stored in the storage device 39. In addition, the power to be supplied by the auxiliary power supply 32 during a power outage may also include the power to be supplied to the processing circuit 38, the power to be supplied to the excitation / demagnetization unit 37, and the power to be supplied to the chiller installed for the purpose of cooling the cooling system 33, although this is not shown in the figure. The power to be supplied to the processing circuit 38, the power to be supplied to the excitation / demagnetization unit 37, and the power to be supplied to the chiller are equivalent to the power consumption of the processing circuit 38, the power consumption of the excitation / demagnetization unit 37, and the power consumption of the chiller, respectively. The values ​​of each power should be measured in advance and stored in the memory device 39. By considering the power supplied to components other than the cooling system 33, the auxiliary power supply time Tt can be accurately determined.

[0055] When step S3 is performed, the processing circuit 38 acquires the internal temperature Kc of the superconducting magnet 41 by realizing the acquisition function 381 (step S4). In step S4, the processing circuit 38 acquires information regarding the temperature of the superconducting coil 410 measured by the thermometer 36 at or immediately after the start time T0 of the power outage of the main power supply 31, as the internal temperature Kc. The thermometer 36 may be placed at multiple locations on the superconducting coil 410 to increase the accuracy of the internal temperature Kc. In this case, statistical values ​​such as the average, minimum, and maximum values ​​of the multiple measured temperatures may be set as the internal temperature Kc. The internal temperature Kc is not limited to the temperature of the superconducting coil 410, but may also be the first stage temperature or the second stage temperature of the refrigerator 35. In addition, the internal temperature Kc may also be the temperature of the heat shield provided in the cooling container. As described above, the processing circuit 38 acquires the internal temperature Kc measured by one or more thermometers 36 before demagnetization is performed by the excitation / demagnetization unit 37 in step S8.

[0056] When step S4 is performed, the processing circuit 38 determines the required demagnetization time Tg by realizing the demagnetization time determination function 383 (step S5). In step S5, the processing circuit 38 determines the required demagnetization time Tg based on the internal temperature Kc of the superconducting magnet 41 and the excitation current I0 of the superconducting magnet 41 measured in step S4. The current value of the excitation current I0 is measured as the current value of the magnet current I supplied to each superconducting coil 410 necessary for each superconducting coil 410 to achieve the desired magnetic field strength. The current value of the excitation current I0 is measured by using a magnetic field measuring instrument such as an NMR probe and energizing the superconducting magnet 41 with the excitation / demagnetization unit 37 for each of several magnetic field strength values, such as when installing the superconducting magnet 41. The relationship between the magnetic field strength value and the excitation current value is stored in the storage device 39 in the form of a LUT (Look Up Table) or database.

[0057] At one end, the processing circuit 38 determines the demagnetization required time Tg based on the excitation current I0 and the current change amount ΔI. More specifically, the demagnetization required time Tg is determined by dividing the excitation current I0 by the current change amount ΔI. The current change amount ΔI is defined as the change amount of the magnet current per unit time during demagnetization by the excitation / demagnetization unit 37. As shown in FIG. 6, the current change amount ΔI corresponds to the slope of the internal temperature Kc at the demagnetization required time Tg.

[0058] For example, as shown in FIG. 6, when the cooling capacity of the cooling system 33 is low, the internal temperature at the power failure start time T0 is Kc1, and when the cooling capacity of the cooling system 33 is high, the internal temperature at the power failure start time T0 is Kc2. The maximum temperature (allowable temperature) Kn allowed during demagnetization is set to a temperature below the quench temperature Kq. For example, in the case of the internal temperature Kc1, the demagnetization required time Tg1 is calculated such that the increase in the internal temperature Kc due to the heat generation of the superconducting coil 410 over the demagnetization required time Tg1 under the current change amount ΔI1 matches the difference Kn - Kc1 between the allowable temperature Kn and the internal temperature Kc1. Also, for example, in the case of the internal temperature Kc2, the demagnetization required time Tg2 is calculated such that the increase in the internal temperature Kc due to the heat generation of the superconducting coil 410 over the demagnetization required time Tg1 under the current change amount ΔI2 matches the difference Kn - Kc2 between the allowable temperature Kn and the internal temperature Kc2.

[0059] The processing circuit 38 may determine the demagnetization required time Tg based on the current change amount ΔI per unit time of the excitation current I0, the internal temperature Kc1, and the temperature change amount ΔK per unit time of the superconducting magnet 41. For example, for simplicity, consider the case where demagnetization starts at the internal temperature Kc1 from t = 0. In order not to quench after the demagnetization required time Tg, it is generally necessary to satisfy the relationship ΔK * Tg1 + Kc1 < Kn including the margin. That is, the processing circuit 38 determines the demagnetization required time Tg such that the temperature rise value over the demagnetization required time Tg under the pre-measured temperature change amount ΔK is infinitely close to but less than the difference value between the allowable temperature Kn and the internal temperature Kc1.

[0060] The temperature change amount ΔK is a function of the current change amount ΔI and the internal temperature Kc. Specifically, it can be expressed as ΔK = f(ΔI, Kc). The temperature change amount ΔK near the internal temperature Kc can be approximately expressed by an approximation formula such as ΔK = α(Kc)ΔI using the current change amount ΔI. α(Kc) is the ratio of the temperature change amount ΔK to the current change amount ΔI, and it is assumed to be measured in advance by type testing or the like. Using this approximation formula, the above relationship can be expressed as α(Kc)ΔI*Tg + Kc1 < Kn, and the processing circuit 38 determines ΔI*Tg1 so as to satisfy ΔI*Tg1 < (Kn - Kc1) / α(Kc). The processing circuit 38 determines the product ΔI*Tg1 of the current change amount ΔI and the demagnetization required time Tg1 to be smaller than the value obtained by dividing the difference between the allowable temperature Kn and the internal temperature Kc1 by α(Kc). Then, the processing circuit 38 determines the demagnetization required time Tg1 by dividing the product ΔI*Tg1 by the current change amount ΔI. The current change amount ΔI is also assumed to be measured in advance by type testing or the like. It is possible to determine the demagnetization required time Tg1 by the same method when the internal temperature is Kc2.

[0061] As described above, the ratio α(Kc) between the current change amount ΔI and the accompanying temperature change amount ΔK is measured by type testing (type approval test) or the like and stored in the storage device 39. In the type test, while changing the current change amount of the magnet current per unit time during demagnetization, the increase value of the internal temperature per unit time at the time of the current change amount is measured as the temperature change amount, and a table in which the ratio α(Kc) between the current change amount and the temperature change amount (internal temperature increase value) is recorded is generated. The table is stored in the storage device 39. Then, the processing circuit 38 sets an arbitrary current change amount such that the internal temperature after the temperature rise does not reach quenching as the current change amount ΔI from the table. The processing circuit 38 may set the current change amount ΔI in advance before the power failure, or may set the current change amount ΔI according to the internal temperature Kc acquired in step S4. The preset current change amount ΔI is stored in the storage device 39. Also, the processing circuit 38 sets the ratio α(Kc) corresponding to the set current change amount ΔI based on the above table. The ratio α(Kc) is also stored in the storage device 39.

[0062] As described above, the processing circuit 38 determines the time required for demagnetization, Tg, as the time required for demagnetization such that the temperature rise due to the heating of the superconducting coil 410 does not reach the temperature Kq at which quenching occurs when demagnetization is performed under a current change amount ΔI.

[0063] To more accurately determine the demagnetization time Tg, the processing circuit 38 may determine the demagnetization time Tg based on factors other than the internal temperature Kc and excitation current I0. For example, the processing circuit 38 may determine the demagnetization time Tg based on the excitation current I0, the internal temperature Kc, and the power required for demagnetization in the excitation / demagnetization unit 37. The demagnetization time Tg should be determined such that it is longer when the power required for demagnetization is large, and shorter when the power required for demagnetization is small. Alternatively, the processing circuit 38 may determine the demagnetization time Tg based on the positions of the thermometer 36, the superconducting coil 410, and the refrigerator 35, and the amount of heat transferred between the thermometer 36, the superconducting coil 410, and the refrigerator 35, in addition to the excitation current I0 and the internal temperature Kc.

[0064] The processing circuit 38 may calculate the required demagnetization time Tg using a heat generation calculation formula for demagnetization designed for each superconducting magnet 41, based on the internal temperature Kc, excitation current I0, and current change amount ΔI. Various elements may be incorporated into the heat generation calculation formula, such as the cooling capacity of the refrigerator 35, the position of the thermometer 36, the superconducting coil 410 and the refrigerator 35, and the amount of heat transferred between the thermometer 36, the superconducting coil 410 and the refrigerator 35. The cooling capacity of the refrigerator 35 may be the cooling capacity of the refrigerator 35 to maintain the first stage temperature, the cooling capacity of the refrigerator 35 to maintain the second stage temperature, or the cooling capacity of both.

[0065] As a simplified method for determining the demagnetization time Tg, the processing circuit 38 may determine the demagnetization time Tg by assuming that the current change ΔI and the amount of heat generated by the superconducting coil 410 are constant regardless of the excitation current I0 and the current change ΔI. Alternatively, the processing circuit 38 may obtain a function of the heat generation calculation formula for typical parameters such as the excitation current I0 through type testing and infer the actual state through interpolation or other means.

[0066] When step S5 is performed, the processing circuit 38 determines the demagnetization start time Ts by implementing the demagnetization start time determination function 384 (step S6). For example, the processing circuit 38 sets the demagnetization start time Ts to the time Tt-Ts obtained by subtracting the auxiliary power supply time Tt from the auxiliary power supply time Tt. Alternatively, the demagnetization start time Ts may be set to the time Tt-Ts obtained by adding an arbitrary surplus time to the time Tt-Ts obtained by subtracting the auxiliary power supply time Tt from the auxiliary power supply time Tt.

[0067] According to this embodiment, an appropriate variable demagnetization time Tg can be determined according to the internal temperature Kc during a power outage. As shown in Figure 6, when the cooling capacity of the cooling system 33 is low, the internal temperature Kc at the start of the power outage T0 is higher than when the cooling capacity is high. When the cooling capacity is low, there is a high risk that the internal temperature Kc will reach the quench temperature Kq early, so the demagnetization time Tg1 is set to a relatively long value, and therefore the demagnetization start time Ts1 is set to a relatively short time from the start of the power outage T0. Also, when the cooling capacity is high, there is a low risk that the internal temperature Kc will reach the quench temperature Kq early, so the demagnetization time Tg2 is set to a relatively short value, and therefore the demagnetization start time Ts2 is set to a relatively long time from the start of the power outage T0.

[0068] When step S6 is performed, the processing circuit 38 waits for the demagnetization start time Ts to elapse due to the realization of the control function 385 (step S7). In step S7, the processing circuit 38 waits for the demagnetization start time Ts to elapse from the power outage start time T0.

[0069] When the demagnetization start time Ts has elapsed (step S7: YES), the processing circuit 38 controls the excitation / demagnetization unit 37 by realizing the control function 385 and starts demagnetization (step S8).

[0070] Figure 7 shows the equivalent circuit of the excitation / demagnetization unit 37 and the superconducting magnet 41 in normal mode (non-demagnetization mode). Figure 8 shows the equivalent circuit of the excitation / demagnetization unit 37 and the superconducting magnet 41 in demagnetization mode. As shown in Figures 7 and 8, the superconducting magnet 41 is provided with a superconducting coil 410, the excitation / demagnetization unit 37 is provided with a load diode 371 for demagnetization, and a superconducting switch SW is provided between the superconducting coil 410 and the load diode 371. The load diode 371 is an example of a load used to allow the magnet current I to flow through and dissipate. The superconducting switch SW is provided inside the superconducting magnet 41 and is a switch for switching between normal mode and demagnetization mode. The superconducting switch SW is switched ON and OFF by receiving power from the excitation / demagnetization unit 37.

[0071] As shown in Figure 7, in normal mode, the superconducting switch SW is ON, and a permanent loop is formed inside the superconducting magnet 41 in which the magnetic current I circulates between the superconducting coil 410 and the superconducting switch SW. As shown in Figure 8, when the excitation / demagnetization unit 37 receives a demagnetization start command, it turns the superconducting switch SW OFF. When the superconducting switch SW is turned OFF, the superconducting state is dissolved, and the equivalent circuit becomes equivalent to an open state. When the superconducting switch SW is turned OFF, the magnetic current I flows into the external excitation / demagnetization unit 37, and in the example of Figure 8, it flows into the load diode 371. The excitation / demagnetization unit 37 adjusts the amount of magnetic current I flowing into the load diode 371 per unit time to match the amount of current change ΔI.

[0072] In Figure 8, the number of stages of the load diode 371 is shown as one for simplicity, but it can be roughly determined by the ratio V / L = ΔI of the sum of the diode forward voltages V and the inductance L of the superconducting coil 410, which is necessary to achieve the desired demagnetization rate (current change) ΔI. In Figures 7 and 8, the load is shown as a diode, but it may also be composed of a current source or an electronic load.

[0073] In the example of the load diode 371 described above, the current change ΔI during demagnetization was assumed to be approximately constant. However, the current change ΔI does not necessarily have to be constant. For example, the load provided in the excitation / demagnetization unit 37 may be a constant current source capable of changing the current change ΔI instead of a load diode. In this case, the excitation / demagnetization unit 37 may, during demagnetization, obtain the internal temperature Kc of the superconducting coil 410 measured by the thermometer 36 and adjust the amount of current change flowing into the constant current source based on the internal temperature Kc. For example, it is preferable to maximize the amount of current change within a range where the internal temperature Kc does not exceed the quench temperature Kq. This makes it possible to demagnetize in the shortest possible time. In this case, the thermometer 36 should be provided in a part of the superconducting coil 410 where a large temperature rise due to resistance is expected in order to improve the accuracy of the internal temperature Kc. In addition, multiple thermometers 36 may be provided on the superconducting coil 410 in order to improve the accuracy of the internal temperature Kc. In this case, the excitation / demagnetization unit 37 may set the internal temperature Kc to a statistical value such as the maximum value of multiple temperatures measured by multiple thermometers 36.

[0074] As described above, the current change amount ΔI is predetermined based on the measurement results from a type test. If the cooling capacity of the refrigerator 35 decreases due to aging, performing demagnetization under the predetermined current change amount ΔI will result in a greater-than-expected increase in temperature per unit time. Therefore, the excitation / demagnetization unit 37 may, during demagnetization, acquire the internal temperature Kc of the superconducting coil 410 measured by the thermometer 36, and adjust the current change amount ΔI flowing into the constant current source based on the internal temperature Kc and the cooling capacity of the cooling system 33 according to its aging. For example, it is preferable to maximize the current change amount within a range where the internal temperature Kc does not exceed the quench temperature Kq. This makes it possible to demagnetize in the shortest possible time.

[0075] Furthermore, the excitation / demagnetization unit 37 may, during demagnetization, determine an allowable temperature rise of the superconducting magnet 41 based on the residual energy of the superconducting magnet 41 and adjust the current change based on that allowable value. This makes it possible to further shorten the demagnetization time Tg depending on the residual energy during demagnetization. The residual energy of the superconducting magnet 41 is (LI 2 It is defined by ) / 2, that is, it is proportional to the square of the magnet current I. For example, if a quench occurs when the magnet current is 1 / 10 of the excitation current I0, the residual energy can be reduced to 1 / 100 compared to when a quench occurs when the magnet current is 0.

[0076] The excitation / demagnetization unit 37 may terminate demagnetization after the magnetic current I has completely disappeared, or it may terminate demagnetization before the magnetic current I has completely disappeared if there is no risk of quenching or if the residual energy is sufficiently low.

[0077] Once the demagnetization is completed by the excitation / demagnetization unit 37, the control processing of the superconducting magnet 41 related to the adaptive demagnetization method by the superconducting magnet control device 30 is completed.

[0078] Note that the processing flow shown in Figure 5 is just one example, and this embodiment is not limited thereto.

[0079] For example, the excitation / demagnetization unit 37 may stop demagnetizing when it detects that the main power supply 31 has been restored. This stops the demagnetization before the residual energy in the superconducting magnet 41 becomes zero, thereby reducing the cost and time required to re-excite the superconducting magnet 41. The main power supply 31 may be restored by detecting power supply from the main power supply 31, by receiving a restoration signal from the main power supply 31, or by receiving a restoration notification input by a user or the like via an input interface 54 or the like.

[0080] For example, the order of steps S3 and S4 may be reversed. That is, the auxiliary power supply time Tt may be determined after the internal temperature Kc is obtained.

[0081] As described above, the magnetic resonance imaging apparatus 1 includes a superconducting magnet 41, a cooling system 33, a main power supply 31, a sub-power supply 32, a processing circuit 38, and an excitation / demagnetization unit 37. The superconducting magnet 41 generates a static magnetic field. The cooling system 33 cools the superconducting magnet 41. The main power supply 31 is a power supply device capable of supplying power to the cooling system 33. The sub-power supply 32 is a power supply device capable of supplying power to the cooling system 33 in the event of a power outage of the main power supply 31. The processing circuit 38 determines the sub-power supply power supply time during which the sub-power supply 32 can supply power to the cooling system 33 based on the capacity of the sub-power supply 32 in the event of a power outage of the main power supply 31. The processing circuit 38 obtains the temperature of the superconducting magnet 41. Based on the excitation current and temperature of the superconducting magnet 41, the processing circuit 38 determines the required demagnetization time for demagnetizing the superconducting magnet 41. The excitation / demagnetization unit 37 starts demagnetizing the superconducting magnet 41 after the demagnetization start time, which is determined by the auxiliary power supply time and the required demagnetization time, has elapsed since the start of a power outage of the main power supply 31.

[0082] According to the above configuration, the appropriate demagnetization time Tg is adaptively determined according to the internal temperature Kc of the superconducting magnet 41. This allows for accurate estimation of the demagnetization time Tg according to individual circumstances, enabling demagnetization to be started at the optimal timing in terms of both quench avoidance and recovery time reduction. Therefore, even when accommodating a small volume of refrigerant, the possibility of quenching during a power outage can be more reliably reduced, and if quenching occurs, the temperature rise can be kept relatively small, significantly reducing the cost and time required for recovery. Furthermore, because the accurate demagnetization time Tg according to individual circumstances can be estimated, the demagnetization start time can be delayed as much as possible, such as when the cooling capacity of the cooling system 33 is high, which is expected to reduce the cost and time required for re-excitation work. In addition, since a magnetic resonance imaging device accommodating a small volume of refrigerant can be realized, lifetime costs can be suppressed.

[0083] According to at least one embodiment described above, the likelihood of quenching can be reduced.

[0084] In the above description, the term "processor" refers to circuits such as CPUs, GPUs, or Application Specific Integrated Circuits (ASICs), programmable logic devices (e.g., Simple Programmable Logic Devices (SPLDs), Complex Programmable Logic Devices (CPLDs), and Field Programmable Gate Arrays (FPGAs)). The processor achieves its function by reading and executing a program stored in a memory circuit. Alternatively, instead of storing the program in a memory circuit, the processor may be configured to directly incorporate the program into its circuitry. In this case, the processor achieves its function by reading and executing the program incorporated into the circuitry. Furthermore, instead of executing a program, the processor may achieve the function corresponding to the program through a combination of logic circuits. In this embodiment, each processor is not limited to being configured as a single circuit; multiple independent circuits may be combined to form a single processor and achieve its function. Moreover, the multiple components shown in Figures 1 and 2 may be integrated into a single processor to achieve its function.

[0085] While several embodiments have been described, these embodiments are presented as examples only and are not intended to limit the scope of the invention. These embodiments can be implemented in a variety of other forms, and various omissions, substitutions, modifications, and combinations of embodiments are possible without departing from the spirit of the invention. These embodiments and their variations are included in the scope and spirit of the invention, as well as in the claims and their equivalents.

[0086] With respect to the above embodiments, the following additional notes are disclosed as aspects of the invention and selective features.

[0087] (Note 1) A superconducting magnet that generates a static magnetic field, A cooling unit for cooling the superconducting magnet, A main power supply capable of supplying power to the cooling unit, A sub-power supply capable of supplying power to the cooling unit in the event of a power outage of the main power supply, A first determination unit determines a first period of time during a power outage of the main power supply, in which case the auxiliary power supply can supply power to the cooling unit based on the capacity of the auxiliary power supply, The acquisition unit acquires the temperature of the superconducting magnet, A second determination unit that determines a second time required for demagnetizing the superconducting magnet based on the excitation current of the superconducting magnet and the temperature, A demagnetizing unit that starts demagnetizing the superconducting magnet after a third time has elapsed based on the first time and the second time, from the start of a power outage of the main power supply, A magnetic resonance imaging apparatus equipped with the following features.

[0088] (Note 2) The first determination unit may determine the first time based on the output capacity of the auxiliary power supply or the remaining capacity of the auxiliary power supply.

[0089] (Note 3) The second determination unit may determine the second time based on the excitation current, the temperature, and the power required for demagnetizing the demagnetizing unit.

[0090] (Note 4) The auxiliary power supply may also supply power to the processing circuit having the first decision unit and / or the second decision unit in the event of a power outage of the main power supply.

[0091] (Note 5) The acquisition unit may acquire the temperature measured by one or more thermometers placed in the structure of the superconducting magnet before the demagnetization starts. The second determination unit may determine the second time using the acquired temperature.

[0092] (Note 6) The second determination unit may determine the second time based on the excitation current and the temperature, as well as the positions of the thermometer, the superconducting coil included in the superconducting magnet and the refrigerator included in the cooling unit, and the amount of heat transferred between the thermometer, the superconducting coil and the refrigerator.

[0093] (Note 7) The demagnetization unit may determine the time required for the demagnetization as the second time such that, when the demagnetization is performed under a current change per unit time of the excitation current, the temperature rise due to the heat generated by the superconducting magnet does not reach the temperature at which a quench occurs.

[0094] (Note 8) The second determination unit may determine the second time based on the current change per unit time of the excitation current, the temperature, and the temperature change per unit time of the superconducting magnet.

[0095] (Note 9) The aforementioned temperature change may be measured in advance by a type test.

[0096] (Note 10) The demagnetization unit may stop demagnetizing when it detects that power has been restored to the main power supply.

[0097] (Note 11) The acquisition unit may measure the temperature when the demagnetization is performed. The demagnetizing unit may, during the execution of the demagnetization, adjust the amount of change in current per unit time of the current flowing from the superconducting magnet to the load included in the demagnetizing unit based on the measured temperature.

[0098] (Note 12) The acquisition unit may measure the temperature when the demagnetization is performed. The demagnetization unit may adjust the amount of current change per unit time of the current flowing from the superconducting magnet to the load included in the demagnetization unit based on the measured temperature and the cooling capacity corresponding to the aging deterioration of the cooling unit.

[0099] (Note 13) The demagnetizing unit may determine an allowable temperature rise of the superconducting magnet based on the residual energy of the superconducting magnet, and adjust the amount of current change per unit time of the current flowing through the load included in the demagnetizing unit based on the allowable value.

[0100] (Note 14) In the event of a power outage of the main power supply, a first period of time during which the auxiliary power supply can supply power to the cooling section that cools the superconducting magnet is determined based on the capacity of the auxiliary power supply that supplies power to the cooling section. The temperature of the superconducting magnet is obtained, Based on the excitation current of the superconducting magnet and the temperature, a second time required for the demagnetization of the superconducting magnet is determined. After a third time period has elapsed based on the first time period and the second time period, the demagnetization of the superconducting magnet by the demagnetizing unit is initiated from the start of the power outage of the main power supply. A method for controlling a superconducting magnet that possesses the following characteristics. [Explanation of symbols]

[0101] 1. Magnetic Resonance Imaging System 11. Stand 13 berths 21 Gradient magnetic field power supply 23 Transmitter Circuit 25 Receiving Circuit 27 Bed drive mechanism 29 Sequence control circuit 30 Superconducting magnet control device 31 31 Main power supply 32 Sub-power supply 33 Cooling system 34 Refrigeration compressor 35 Refrigeration unit 36 Thermometer 37 Excitation / demagnetization section 38 Processing Circuit 39 Storage device 41 Superconducting Magnets 43. Gradient field coil 45 Transmitter coil 47 Receiving coil 50 Host Computers 51 Processing Circuit 52 memory 53 displays 54 Input Interfaces 55 Communication Interfaces 131 Top plate 133 Base 371 Load diode 381 Acquisition function 382 Power supply time determination function 383 Demagnetization required time determination function 384 Demagnetization start time determination function 385 Control Functions 410 Superconducting Coil

Claims

1. A superconducting magnet that generates a static magnetic field, A cooling unit that cools the superconducting magnet by a cooling method using a refrigerant or a conduction cooling method, A main power supply capable of supplying power to the cooling unit, A sub-power supply capable of supplying power to the cooling unit in the event of a power outage of the main power supply, The acquisition unit acquires the temperature of the superconducting magnet, A demagnetizing unit, which, upon the commencement of a power outage of the main power supply, starts demagnetizing the superconducting magnet based on the capacity of the auxiliary power supply to supply power to the cooling unit, the temperature of the superconducting magnet, and the excitation current of the superconducting magnet, A magnetic resonance imaging apparatus equipped with the following features.

2. In the event of a power outage of the main power supply, the system includes a first determination unit that determines a first period of time during which the auxiliary power supply can supply power to the cooling unit based on its capacity. The first determination unit determines the first time based on the output capacity of the auxiliary power supply or the remaining capacity of the auxiliary power supply as the capacity, The demagnetizing unit starts demagnetizing the superconducting magnet based on the first time. The magnetic resonance imaging apparatus according to claim 1.

3. The system includes a second determination unit that determines a second time required for demagnetizing the superconducting magnet based on the excitation current of the superconducting magnet and the temperature. The second determination unit determines the second time based on the excitation current, the temperature, and the power required for demagnetizing the demagnetizing unit. The demagnetizing unit starts demagnetizing the superconducting magnet based on the second time. The magnetic resonance imaging apparatus according to claim 1.

4. The magnetic resonance imaging apparatus according to claim 2, wherein the auxiliary power supply further supplies power to the processing circuit having the first determination unit in the event of a power outage of the main power supply.

5. The magnetic resonance imaging apparatus according to claim 3, wherein the auxiliary power supply further supplies power to the processing circuit having the second determination unit in the event of a power outage of the main power supply.

6. The acquisition unit acquires the temperature measured by one or more thermometers placed on the structure of the superconducting magnet before the demagnetization starts. The second determination unit determines the second time using the acquired temperature. The magnetic resonance imaging apparatus according to claim 3.

7. The magnetic resonance imaging apparatus according to claim 6, wherein the second determination unit determines the second time based on the excitation current and the temperature, as well as the positions of the thermometer, the superconducting coil included in the superconducting magnet and the refrigerator included in the cooling unit, and the amount of heat transferred between the thermometer, the superconducting coil and the refrigerator.

8. The magnetic resonance imaging apparatus according to claim 3, wherein the second determination unit determines as the second time the time required for the demagnetization such that, when the demagnetization is performed under a current change per unit time of the excitation current, the temperature rise due to the heat generated by the superconducting magnet does not reach the temperature at which a quench occurs.

9. The magnetic resonance imaging apparatus according to claim 3, wherein the second determination unit determines the second time based on the current change per unit time of the excitation current, the temperature, and the temperature change per unit time of the superconducting magnet.

10. The magnetic resonance imaging apparatus according to claim 9, wherein the temperature change is measured in advance by a type test.

11. The magnetic resonance imaging apparatus according to claim 1, wherein the demagnetization unit stops demagnetizing when power is restored to the main power supply.

12. The acquisition unit measures the temperature during the demagnetization process. The demagnetizing unit adjusts the amount of current change per unit time of the current flowing from the superconducting magnet to the load included in the demagnetizing unit based on the measured temperature during the demagnetization process. The magnetic resonance imaging apparatus according to claim 1.

13. The acquisition unit measures the temperature during the demagnetization process. The demagnetizing unit adjusts the amount of current change per unit time of the current flowing from the superconducting magnet to the load included in the demagnetizing unit based on the measured temperature and the cooling capacity corresponding to the aging deterioration of the cooling unit. The magnetic resonance imaging apparatus according to claim 1.

14. The demagnetizing unit determines an allowable temperature rise of the superconducting magnet based on the residual energy of the superconducting magnet, and adjusts the amount of current change per unit time of the current flowing through the load included in the demagnetizing unit based on the allowable value. The magnetic resonance imaging apparatus according to claim 1.

15. The cooling unit cools the superconducting magnet by a conduction cooling method. The magnetic resonance imaging apparatus according to claim 1.

16. A superconducting magnet that generates a static magnetic field, A cooling unit that cools the superconducting magnet by a cooling method using a refrigerant or a conduction cooling method, A main power supply capable of supplying power to the cooling unit, A control method for a magnetic resonance imaging apparatus comprising a sub-power supply capable of supplying power to the cooling unit in the event of a power outage of the main power supply, The temperature of the superconducting magnet is obtained, When the main power supply is shut off, the auxiliary power supply starts demagnetizing the superconducting magnet based on the capacity to supply power to the cooling unit, the temperature of the superconducting magnet, and the excitation current of the superconducting magnet. A control method for a magnetic resonance imaging apparatus that is equipped with the following features.