RF TRANSMIT SYSTEM WITH SWITCHABLE POWER SUPPLY DEVICE

20210116522 · 2021-04-22

Assignee

Inventors

Cpc classification

International classification

Abstract

The present invention is directed to a RF transmit system (1) for a magnetic resonance examination system where it is intended to provide a solution for the problem of rapidly switching between operation modes of different peak power requirements at good power efficiencies. For this purpose the RF transmit system (1) comprises at least one RF channel (14) wherein the RF channel (14) has an RF amplifier (3), at least two power supply devices (4, 5) wherein each of the power supply devices (4, 5) is configured to supply a voltage to the amplifier (3). The RF transmit system (1) further comprises a DC switch (8) configured to switch the voltage supplied to the amplifier (3) between the power supply devices (4, 5) and a controller (2) configured to switch the voltage based on sensor data.

Claims

1. A RF transmit system for a magnetic resonance examination system, comprising: at least one RF channel wherein the RF channel has an RF amplifier, the RF amplifier including; at least two power supply devices wherein each of the power supply devices is configured to supply a voltage to the RF amplifier, wherein the power supply devices are different and configured to provide different voltages, a DC switch configured to switch the voltage supplied to the RF amplifier between the power supply devices to switch the RF amplifier's operating point between high peak-power at high drain voltage and low peak-power at low drain voltage, conductor paths between the DC switch and each of the power supply devices, at least one capacitor bank is connected in series with the DC switch to each of the conductor paths, a controller configured to receive sensor data representative for parameters from sensors from at least one of the DC switch, capacitor banks, an MR sequence controller, the power supply devices, or the RF amplifier, the controller is further configured to switch the voltage based on sensor data during a MR pulse sequence.

2. (canceled)

3. A RF transmit system according to claim 1, wherein the switch, the power supply devices and the capacitor banks are associated to a plurality of amplifiers.

4. A RF transmit system according to claim 1, wherein each power supply device is permanently connected to the corresponding capacitor bank.

5. A RF transmit system according to claim 1, wherein the amplifier consists of a group of FETS.

6. A RF transmit system according to claim 1, wherein the DC switch is a solid-state switch or a mechanical switch or a MEMS switch or a vacuum switch.

7. A RF transmit system according to claim 1, wherein the DC switch is a switching matrix.

8. A RF transmit system according to claim 1, wherein the DC switch and/or the capacitator banks are located close to the RF amplifier or are integrated into the RF amplifier.

9. A RF transmit system according to claim 1, wherein the controller is configured to manage the parameters based on sensor data depending on RF sequence demands.

10. A magnetic resonance examination system comprising a RF transmit system according to claim 1.

11. A method for operating a RF transmit system according to claim 1, the method comprising the steps of: starting a MR sequence, managing parameters by the controller based on sensor data depending on RF sequence demands, switching the voltage by the DC switch depending on the controller, finishing the MR sequence, repeating the procedure.

12. A method for operating a RF transmit system according to claim 11, the method further comprising the step of: switching the voltage provided to the amplifier by the DC switch multiple times during the MR sequence.

13. A computer program comprising a computer program code adapted to perform a method or for use in a method according to claim 11 when said program is run on a programmable microcomputer.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0034] These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter. Such an embodiment does not necessarily represent the full scope of the invention, however, and reference is made therefore to the claims and herein for interpreting the scope of the invention.

[0035] In the drawings:

[0036] FIG. 1 shows a schematic illustration of a part of a magnetic resonance examination system including an embodiment of a RF transmit system in accordance with a preferred embodiment of the present invention.

[0037] FIG. 2 shows a flow chart in accordance with a preferred embodiment of the present invention.

DETAILED DESCRIPTION OF EMBODIMENTS

[0038] FIG. 1 shows a schematic illustration of a part of a magnetic resonance examination system including an embodiment of a RF transmit system 1 in accordance with a preferred embodiment of the present invention. The RF transmit system 1 comprises an amplifier 3 configured to amplify an input signal 9 and configured to output the amplified input signal 9 as output signal 10. The operational properties of the RF amplifier 3 depend on the bias point Idq the quiescent drain-source current and the drain voltage Vds. A typical MRI amplifier with a 16 kW forward power is formed by putting FETS together. The DC drain voltage Vds is supplied from a power supply device 4, 5. To realize the high energy demands in a short time frame a capacitor bank 6, 7 is connected to the conductor path 12, 13 between the power supply 4, 5 and the amplifier 3. The capacitor bank 6, 7 gets recharged during and after the end of the RF pulses before the next pulse starts. Typically its capacitance is in the order of 100 mF. Optimizing capabilities of capacitor bank 6, 7 and power supply 4, 5 is mandatory and has substantial impact on the costs of such a device. In order to achieve e.g. 16 kW (=10×1.6 kW) forward power one has to set (e.g.) Vds=50 V. The RF amplifier 3 operates very efficiently when it is used near max. RF power. The efficiency can be >70% indicating an efficient use of the DC power provided. At the same time heating and parameter drift remains limited due to the comparably low losses. In certain MRI application high power (e.g. 16 kW) with short duration may be mixed with pulses of low power (500 W) but long pulse durations. A However, at 500 W (10×50 W) the efficiency is very low, e.g. below 20%. Combined with the long pulse duration of the pulse in the order of seconds this is very challenging for the capacitor bank 6, 7 and the power supply 4, 5, and the cooling system of the amplifier and power supply. The voltage drop or heat dissipation during the pulse might be too large so that the desired envelope of the RF signal is not realizable. If one could choose a different lower drain voltage, e.g. Vds=25 V, the efficiency is much higher. So for an optimal efficiency at low RF powers, the requirements for the capacitor bank 6, 7 and the DC power supply device 4, 5 change. Therefore, two different power supply devices 4, 5 are shown in FIG. 1, wherein each of the power supply devices 4, 5 is configured to supply a voltage to the RF amplifier 3. A DC switch 8 is foreseen to change the voltages between the two power supply devices 4, 5. The DC switch 8 can also be a solid-state switch. Solid-state switches can be realized easily as it can be realized such that switching is done only while the current is zero. Another advantage of a solid-state switch is that they are fast, so that the voltage can be changed even during a MR Sequence within ms. The DC switch 8 can also be a switching matrix when a plurality of power supply devices 4, 5 are used. To each of the conductor paths 12, 13 between the power supply device 4, 5 and the DC switch 8 a capacitor bank 6, 7 is connected. The capacitor bank 6, 7 stores electric charge which comes from the power supply device 4, 5. In order to compensate a voltage drop at the time of the operation of the RF amplifier 3, the capacitor bank 6, 7 supplies power to the RF amplifier 3 as needed. Specifically, the capacitor bank 6, 7 functions as a battery for supplying excess power that cannot be delivered by the power supply device 4, 5. The DC switch 8 and the RF amplifier 3 are connected to a controller 2. By changing the drain voltage, the gain of the RF amplifier 3 changes as well. Therefore, the RF input level and/or the bias point have to be adapted as well. The controller 2 manages individual parameters from the magnetic resonance examination system 1 depending on the RF sequence demands 11. The controller 2 is adapted to manage information from the DC switch 8, the capacitor banks 6, 7, the MR sequence controller, the power supply devices 4, 5 and from the RF amplifier 3. With the information analysed by the controller 2, the power supply devices 4, 5 together with the capacitor banks 6, 7 can be switched to the RF amplifier 3 in dependence of the required gain setting. In an embodiment of the invention the controller can already get the information about the RF demand in advance so that he can switch the voltage prospectively. The power supply device 4, 5 of the invention can rapidly switch between at least two modes of operation. This enables clinically practical acquisition sequences of which the power requirements in preparation and signal generation are different, such as in ATP-sequences. In an embodiment of the invention a bias control 15 is foreseen. By changing Vds a change of the bias settings may be necessary to get back to an appropriate working point of the amplifier. The bias control is essentially a stabilized current or voltage source.

[0039] FIG. 2 shows a flow chart in accordance with a preferred embodiment of the present invention. The flow chart starts with step 100, according to which the MR examination is started. In step 110 the MR Method is selected and in step 120 the MR sequence is started. During a MR sequence it's sometimes necessary to realize a high energy demand in a short time frame. For this purpose the controller 2 manages in step 130 individual parameters of the magnetic resonance examination system. The parameters can be parameters obtained by sensors from the DC switch 8, the capacitor banks 6, 7, the MR sequence controller, the power supply devices 4, 5 and the status from the RF amplifier 3. The controller 2 manages the individual parameters depending on the RF sequence demands and switches with the DC switch 8 in step 140 the voltage between the power supply devices 4, 5 to the optimal voltage during the MR sequence. In an embodiment of the invention the switching within a sequence is also possible several times. Depending on the MR sequence and the clinical demands the voltage can also be switched multiple times during a MR sequence. In step 150 the MR sequence is finished and the procedure is repeated in step 160.

[0040] While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive; the invention is not limited to the disclosed embodiments. Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage. Any reference signs in the claims should not be construed as limiting the scope. Further, for the sake of clearness, not all elements in the drawings may have been supplied with reference signs.

REFERENCE SYMBOL LIST

[0041] RF transmit system 1 [0042] controller 2 [0043] RF amplifier 3 [0044] power supply device 4 [0045] power supply device 5 [0046] capacitor bank 6 [0047] capacitor bank 7 [0048] switch 8 [0049] RF input channel 9 [0050] RF output channel 10 [0051] RF demand signal 11 [0052] conductor path 12 [0053] conductor path 13 [0054] RF channel 14 [0055] BIAS control 15