| Zugriffsnummer | 39487 |
| Dokumenttyp | Konferenzartikel |
| Sprache | Englisch |
| Titel | Higher is better: High peak and high average RF power transmit/receive switch for an integrated RF heating applicator operating at 297 MHz (7.0 Tesla) |
| Autor(in); Institution |
Ji, Y.; Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbrück Center for Molecular Medicine in the Helmholtz Association, Berlin, GERMANY
Hoffmann, Werner; 8.1, Biomedizinische Magnetresonanz, PTB-Berlin
Pham, M.; Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbrück Center for Molecular Medicine in the Helmholtz Association (MDC), Berlin, GERMANY
Oezerdem, C.; Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbrück Center for Molecular Medicine in the Helmholtz Association (MDC), Berlin, GERMANY
Waiczies, H.; MRI.TOOLS GmbH, Berlin, GERMANY
Niendorf, T.; Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbrück Center for Molecular Medicine in the Helmholtz Association, Berlin, GERMANY
Winter, L.; Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbrück Center for Molecular Medicine in the Helmholtz Association, Berlin, GERMANY
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| Quelle/Jahr | ISMRM 25th annual meeting & exhibition: 22 - 27 April 2017, Honolulu : IN: Proceedings of the Society of Magnetic Resonance in Medicine: 25 (2017), 5432-1 - 5432-3 |
| Availability | [online only] |
| Konferenzangaben | ISMRM 25th Annual Meeting & Exhibition, Honolulu, Hawaii, 22-27, April, 2017, USA |
| Zusammenfassung | Synopsis An integrated RF heating system utilizes the MR spin excitation frequency together with dedicated RF antennas for controlled RF heating and MR imaging in an integrated system. Operating the MR power amplifier for both RF heating and MR imaging applications simultaneously requires customized transmit/receive (Tx/Rx) switches that can handle both high peak powers and high average powers. In this work we designed, built and evaluated a high power Tx/Rx switch for handle MRI and RF heating requirements. Introduction Controlled application of thermal dose is of major interest in thermal phenotyping, multimodal RF hyperthermia treatments, thermal drug release and MR safety evaluations [1-3]. An integrated RF heating system utilizes the spin excitation frequency for controlled RF induced heating and MR imaging [4-5]. Operating the MR power amplifier for RF heating and MRI simultaneously requires customized transmit/receive (Tx/Rx) switches, which can protect the preamplifiers from high peak powers and withstand high average power of )50-100W. Traditional Tx/Rx switches commonly use pin diodes to switch between transmit and receive modes, which constraints the average power to (25W. To address this shortcoming we designed, built and evaluated a high power Tx/Rx switch tailored to be driven at much larger average power. Materials and Methods The schematic of the proposed high power Tx/Rx switch is presented in Fig.1a. It consists of three λ/4 stubs assembled with semi-rigid coaxial cables for 297MHz and two pin diodes (D1: Tx path, D2: Rx path, MA4P7441F-1091T, Macom, MA, USA). A LC resonant circuit tuned to 297MHz is placed between each pin diode and λ/4 stub to afford maximum isolation between the Tx and Rx paths. The Tx and Rx path circuits were placed in double shielded compartments to increase isolation (Fig.1b). During Tx mode, a short in point 1 and 4 (Fig.1a) is transformed into an open in point 2 and 3 by λ/4 stubs so that all RF signal is routed into the RF coil. During Rx mode, an open in point 4 translates into a short in point 3 and an open in point 2, directing the signal into the Rx port. Temperature in the Tx/Rx switch circuit while driving Pavg=85W was accessed with an infrared camera (Ti25, Fluke, WA, USA). An experimental setup comprising a rectangular phantom (90×180×260mm3) with cylindrical sample holders and a bow tie dipole antenna for transmission [4] (Fig.2a-b) was used to examine the suitability of the high power Tx/Rx switch for MR imaging and RF heating in a B0=7.0T MR system (Magnetom, Siemens Healthcare, Erlangen, Germany). MR images were acquired using a gradient echo sequence (FOV=(240×240)mm2, TR=8.6ms, TE=4.7ms, spatial resolution=(1.0×1.0×5.0)mm3) with i) the proposed high power Tx/Rx switch and ii) a conventional Tx/Rx switch (Stark Contrasts, Erlangen, Germany). RF heating was accomplished using the MR RF power amplifier (8kW peak power, 4ms rect-pulse, U=285V) and TR=40ms resulting in a duty cycle of 10%. This setup afforded a measured average power of 70W at the antenna. The heating paradigm consisted of 3×3min RF heating interleaved with 2D MR thermometry (MRTh) acquisitions. 2D MRTh was conducted using a proton resonance frequency shift method [6] and dual gradient-echo technique [7-8] (FOV=(300×300)mm2, TR=61ms, TE1=2.26ms and TE2=11.44ms, spatial resolution=(1.5×1.5×4)mm3). A fiber optic temperature sensor (Omniflex, Neoptix, Quebec, Canada) placed 5 mm below the RF antenna was used as reference. Results The proposed Tx/Rx switch provided an isolation of -29dB between Tx port and Rx port during the transmission mode (Table 1). Insertion loss was -0.3dB between the Tx port and the antenna in transmission mode and -0.3dB between the antenna and the Rx port in reception mode (Table1). After 3min driving Pavg=85W, Tmax in the circuit was 49.5°C in the pin diode of the Tx compartment (Fig.3b). MRI exploiting the proposed high power Tx/Rx switch and coventional Tx/Rx switches yielded similar image quality (Fig.4a-b). After 9 minutes of RF heating, the MR thermometry map (Fig.4c) acquired with the switch showed an increase of ΔT=14.8°C at the position of the fiber optic temperature sensor for which ΔT=14.1°C was registered. |
Zitierung
Ji, Y., Hoffmann, W., Pham, M., Oezerdem, C., Waiczies, H., Niendorf, T., & Winter, L. (2017). Higher is better: High peak and high average RF power transmit/receive switch for an integrated RF heating applicator operating at 297 MHz (7.0 Tesla). ISMRM 25th Annual Meeting & Exhibition, Honolulu, Hawaii, 22-27, April, 2017, USA.