• 제목/요약/키워드: Phantom Temperature

검색결과 68건 처리시간 0.027초

Comparison of Temperature Distribution in Agar Phantom and Gel Bolus Phantom by Radiofrequency Hyperthermia

  • Jung, Dong Kyung;Kim, Sung Kyu;Lee, Joon Ha;Youn, Sang Mo;Kim, Hyung Dong;Oh, Se An;Park, Jae Won;Yea, Ji Won
    • 한국의학물리학회지:의학물리
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    • 제27권4호
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    • pp.224-231
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    • 2016
  • The usefulness of Gel Bolus phantom was investigated by comparing the temperature distribution characteristic of the agar phantom produced to investigate the dose distribution characteristic of radiofrequency hyperthermia device with that of the Gel Bolus phantom under conditions similar to those of an agar phantom that can continuously carry out temperature measurement. The temperatures of the agar phantom and the Gel Bolus phantom were raised to $36.5{\pm}3^{\circ}C$ and a temperature sensing was inserted at depths of 5, 10, and 15 cm from the phantom central axis. The temperature increase rate and the coefficient of determination were analyzed while applying output powers of 100 W and 150 W, respectively, at intervals of 1 min for 60 min under conditions where the indoor temperature was in the range $24.5{\sim}27.5^{\circ}C$, humidity was 35~40%, internal cooling temperature of the electrode was $20^{\circ}C$, size of the upper electrode was 250 mm, and the size of the lower electrode was 250 mm. The coefficients of determination of 150 W output power at the depth point of 5 cm from the central axis of the phantom were analyzed to be 0.9946 and 0.9926 in the agar and Gel Bolus phantoms, respectively; moreover, the temperature change equation of the agar and Gel Bolus phantoms with time can be expressed as follows in the state the phantom temperature is raised to $36^{\circ}C:Y(G)$ is equation of Gel Bolus phantoms (in 5 cm depth) applying output power of 150 W. Y(G)=0.157X+36. It can be seen that if the temperature is measured in this case, the Gel Bolus phantom value can be converted to the measured value of the agar phantom. As a result of comparing the temperature distribution characteristics of the agar phantom of a human-body-equivalent material with those of the Gel Bolus phantom that can be continuously used, the usefulness of Gel Bolus phantom was exhibited.

초음파에 의한 온도상승 가시화용 생체 모의매질 (Tissue Mimicking Phantom for Visualization of Temperature Elevation Caused by Ultrasound)

  • 정지희;김정순;하강렬;김무준
    • 한국음향학회지
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    • 제33권5호
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    • pp.291-299
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    • 2014
  • 초음파에 의한 온도상승효과를 조사하기 위한 생체 모의매질을 제안하였다. 생체와 유사한 음향특성을 가지며 내부온도분포의 관찰이 가능한 투명도를 확보하기 위하여 카라기난(carrageenan) 젤을 선택하였다. 매질 내부의 온도상승효과를 가시화 하기 위하여 온도에 따라 변색되는 시온필름을 사용하였으며 카라기난의 농도 및 첨가제로 사용한 수크로스(sucrose)의 농도에 따른 생체 모의매질의 음향특성을 조사하였다. 그 결과, 카라기난 및 수크로스의 농도를 조절함으로써 음향감쇠계수를 0.44~0.49 dB/cm/MHz의 범위에서 제어할 수 있었으며 음향임피던스의 경우 1.52~1.77 Mrayls의 범위에서 제어가능함을 확인했다. 제안된 생체 모의매질은 첨가제 및 카라기난의 농도에 따라 생체조직에 대응되는 음향특성을 갖도록 제어할 수 있었으며 초음파에 의한 매질내부의 온도상승 관찰이 가능하였다. 제안된 모의매질을 이용하여 평면 및 집속 초음파에 의한 온도상승효과를 비침습적으로 가시화하여 확인함으로써 본 제안법의 유효성을 검증하였다.

초음파 Tissue Mimicking 팬텀의 제작과 온도 변화에 따른 영상 특성 변화 관찰 (Manufacture and Image Characteristic Changes Observation by Temperature of Ultrasound Tissue Mimicking Phantom)

  • 마상철
    • 대한방사선기술학회지:방사선기술과학
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    • 제39권2호
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    • pp.157-161
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    • 2016
  • 본 연구에서는 자체 제작한 3종의 초음파 TM 팬텀의 음향학적 특성 및 온도 민감도를 측정하였으며, 초음파 영상학적 특성을 관찰, 평가하였다. TM 팬텀은 폴리우레탄을 주재료로 국제전기표준회의(International Electronical Committee, IEC) 기준안에 따라 제작하였으며 외부 온도 변화 따른 초음파 영상학적 특성은 $22^{\circ}C$ 이하에서 온도감소에 따라 휘도 및 영상투과심도가 비례하여 감소하는 것이 확인되었다. 본 연구를 통하여 산란재 특성이 상이한 TM 팬텀을 제작하는 기초자료를 제공하였으며, TM 팬텀의 사용 온도는 $22^{\circ}C$ 이상에서 사용하는 것이 적합한 것으로 판단되었다.

초음파트랜스듀서의 재질에 따른 실출력과 인체모사조직의 온열효과에 관한 연구 (A Study on the Actual Output and Thermal Effect in Tissue Mimicking Phantom by the Material of the Ultrasonic Transducer)

  • 유상현;최원재;이승원
    • 대한물리의학회지
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    • 제10권1호
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    • pp.91-97
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    • 2015
  • PURPOSE: In this study investigated the thermal effect in tissue mimicking phantom by the material of the ultrasonic transducer in low intensity sonication. METHODS: The material of the ultrasonic transducer was made of ceramic, stainless steel, aluminum. Korea Testing Laboratory was measured of the three kinds of materials the total output of the ultrasonic transducer. Each material was measured core temperature and the actual output depending on the type of transducer. Agarose tissue mimicking phantom and silicone tissue mimicking phantom was made. Transducers made of three kinds of materials were emitted in the phantom. It is shown as a graph about time and temperature and the surface temperature rising speed and deep temperature rise rate was investigated. RESULTS: Ceramic transducers were highest output. Higher than the stainless steel transducer, aluminum had the lowest total output. Deep temperature was the highest in the ceramic transducer, and the surface temperature was the highest in the stainless steel transducer. Thermal images of ceramic transducer showed that a valid output is formed deeper wider than the metal. CONCLUSION: Ceramic transducer is confirmed the excellence than the metal transducer in deep thermal effect and the actual output of the ultrasound.

A Basic Study on the Variation of Temperature Characteristics for Attenuation Coefficient and Sound Velocity in Biological Tissues

  • Park, Heung-Ho
    • 대한의용생체공학회:의공학회지
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    • 제14권3호
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    • pp.273-282
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    • 1993
  • This study is concerned with the temperature dependence characteristics of ultrasound parameters in biological tissues, which are basic on the noninvasive deep body temperature estimation. Used parameters are ultrasonic attenuation coefficient and sound velocity In order to accomplishment our purpose, several signal processing methods were used. Attenua4iorl coefficient was estimated by spectral difference method and sound velocity was estimated by P-P method. And we also examined these methods through a series of IN VITRO experi mentis that used tissue-mimicking phantom samples and biological tissue samples. In order to imitate the biological soft tissue two kinds of phantom samples are used, one is agar phantom sample which is composed of agar, graphite, N-propyl alcohol and distilled water, and the other is fat phantom sample which is composed of pure animal fat. And the ultrasound transmission mode and reflection mode experiments are performed on the pig's spleen, kidney and fat. As a result, it is found that the temperature characteristics are uniform in case of phan- tom samples but not in biological tissues because of complicate wave propagation within them. Consequently, the possibility of temperature measurement using ultrasound on biological tissue is confirmed and its results may contribute to the establishment of reference values of internal temperature measurement of biological tissues.

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집속초음파 자극기의 성능평가를 위한 팬텀 내부온도 측정 (Measurement of Internal Temperature Distribution for the Evaluation of Focused Ultrasound (FUS) Stimulation Devices)

  • 도일;조주형;김성목;백경민;김용태;박승민
    • 대한의용생체공학회:의공학회지
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    • 제43권3호
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    • pp.147-152
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    • 2022
  • This research is to measure real-time temperature distribution inside a tissue-mimicking phantom for the safety and effectiveness evaluations of focused ultrasound (FUS) device capable of linear scanning stimulation. Since the focusing area of the FUS stimulation device is smaller than diameter of conventional thermal probe and keeps moving, it is impossible to monitor temperature distribution inside the phantom. By using the phantom with a thin film temperature sensor array inserted, real-time temperature change caused by the FUS device was measured. The translation of the measured temperature peak was also tracked successfully. The present phantom had been experimentally proven to be applicable to validate the performance and safety of the therapeutic ultrasound devices.

쑥뜸과 1064 nm 파장의 근적외선 레이저로 가열된 아가젤 조직 팬텀 심부의 온도분포 가시화 (Visualization of Temperature Distribution Deep Inside the Agar Gel Tissue Phantom Heated Using Moxibustion and 1064 nm Infrared Laser)

  • 조지용;김중경
    • 한국가시화정보학회지
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    • 제8권4호
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    • pp.54-59
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    • 2010
  • A laser moxibustion therapy device having effect similar to that of traditional moxibustion is being developed using 1064 nm infrared laser. The therapy device allows direct interaction of laser light with the tissue rendering temperature distribution both on the skin surface and deep under the skin. We made a device that could measure temperature of deep under the surface of agar gel tissue phantom using thermocouples. A thermal imaging camera was used to verify results from the temperature measurement device. We compared the characteristics of heat transfer inside the tissue phantom during moxibustion and laser irradiation. The temperature distribution measured by thermocouples was found to be similar to that of distribution given by thermal imaging camera.

자기 공명영상 시스템의 수소원자 공명 주파수법을 이용한 생체 내 열 전달 관찰 (In-Vivo Heat Transfer Measurement using Proton Resonance Frequency Method of Magnetic Resonance Imaging)

  • 조지연;조종운;이현용;신운재;은충기;문치웅
    • 전자공학회논문지SC
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    • 제40권3호
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    • pp.172-180
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    • 2003
  • 본 연구에서는 자기공명영상(MRI)에서 수소 원자핵의 공명주파수(PRF) 방법을 기반으로 인체 종아리 근육 외부의 열원에 의해 근육 내부로 열원이 전달되는 과정을 비침습적으로 관찰하는 방법을 제시한다. 열전달과정을 온도 변화로 측정하였는데 온도 영상의 안정성 및 보정 실험은 phantom을 이용하였고 온도의 변화는 phantom과 인체 모두에서 측정하였다. Phantom 실험은 agarose gel을 중탕하여 약 50℃까지 가열시킨 후 1시간의 냉각과정 동안 매 3분마다 데이터를 획득하였다. 인체 실험에서는 지원자의 종아리(the calf)에 hot pack을 이용하여 열을 전달하였다. Hot pack을 발열시키기 전에 기준 데이터를 1번 획득하고, 발열시킨 후부터 매 2분마다 30분 동안 데이터를 획득하였다. 획득된 영상 데이터는 위상차 영상으로 재구성된 다음 각 ROI에서의 평균 위상차를 관측하였다. 온도를 34.2∼50.2℃의 범위에서 변화시켰을 때 phantom의 위상차는 온도 변화에 대해 선형적으로 변하였다. 이 범위에서 측정된 온도의 해상도는 0.0457 radian/℃(0.0038 ppm/℃)였다. 인체 실험에서는 각 영상에서 hot pack과 가까운 위치의 평균 위상차가 hot pack과 먼 위치의 평균 위상차보다 작은 값을 나타냈다 이를 통해 같은 영상 단면에서도 열원(heat source)과의 거리에 따라서 온도 변화가 다르게 나타나는 것을 관찰할 수 있었다. 본 연구를 통해 PRF방법을 이용하여 MRI에서도 비침습적으로 인체 내부의 열전달과정을 관측하였고 이로서 온열치료 시 MRI가 임상적 이용 가능성이 있음을 확인하였다.

자체 제작한 자궁모형팬텀을 이용한 Convex probe 주사시간에 따른 자궁내부온도 평가 (Assessment of Uterine Internal Temperature according to the Time of Convex Probe Injection using a Self-made Uterine Model Phantom)

  • 이현경;허영철
    • 한국방사선학회논문지
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    • 제13권6호
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    • pp.895-900
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    • 2019
  • 초음파는 인체에 무해하다고 알려져 산부인과에서 태아의 진단 및 발육상태 확인을 위해 널리 이용되고 있다. 진단 초음파의 장시간 사용은 체온 변화를 야기할 수 있지만 초음파로 인한 임신부의 자궁온도 변화에 대한 연구가 부족한 실정이다. 이에 본 연구에서는 자체 제작한 자궁모형팬텀을 이용하여 초음파 주사시간에 따른 온도 변화를 알아보고자 하였다. 조직등가 물질인 아크릴과 돼지 자궁을 이용하여 인체 자궁과 유사한 자궁모형팬텀을 자체 제작하였으며 초음파 장비와 4MHz convex probe를 사용하였다. 아크릴 수조 내부, 자궁내부, 대기온도 측정을 위해 3개의 탐침형 온도계를 설치하였고 측정대상의 온도를 분단위로 6시간, 총 361회 측정 한 결과 자궁모형팬텀의 온도가 상승되었음을 확인하였다. 본 연구를 통해 초음파로 인한 인체 체온 상승의 가능성을 확인 할 수 있었고 본 연구가 초음파 열 흡수효과 연구의 기초자료로 활용 될 것이라 사료된다.

초고주파 가열치료를 위한 MR 호환 동축 슬롯 안테나의 개발 (Development of MR Compatible Coaxial-slot Antenna for Microwave Hyperthermia)

  • 김태형;천송이;한용희;김동혁;문치웅
    • 대한의용생체공학회:의공학회지
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    • 제30권4호
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    • pp.333-340
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    • 2009
  • MR compatible coaxial-slot antenna for microwave hyperthermia was developed while its structure and size of each part were determined by computer simulation using finite element method(FEM). Its local heating performance was evaluated using tissue-mimic phantom and swine muscles. 2% agarose gel mixed with 6mM/$\ell$ $MnCl_2$ as a biological tissue-mimic phantom was heated by the proposed antenna driven by a 2.45GHz microwave generator. The temperature changes of the phantom were monitored using multi-channel digital thermometer at the distance of 0mm, 5mm, 10mm and 20mm from the tip center of the antenna. Also muscle tissue of swine was heated for 2 and 5minutes with 50W and 30W of microwave generator powers, respectively, to evaluate the local heating performance of the antenna. MRI compatibility was also verified by acquiring MR images and MR temperature map. MR signals were acquired from the agarose gel phantom using $T2^*$ GRE sequence with 1.5T clinical MRI scanner(Signa Echospeed, GE, Milwaukee, WI, U.S.A.) at Pusan Paik Hospital and were transferred to PC in order to reconstruct MR images and temperature map using proton resonance frequency(PRF) method and laboratory-developed phase unwrapping algorithm. Authors found that it has no severe distortion due to the antenna inserted into the phantom. Finally, we can conclude that the suggested coaxial-slot antenna has an excellent local heating performance for both of tissue-mimic phantom and swine muscle, and it is compatible to 1.5T MRI scanner.