• 제목/요약/키워드: ultrasound energy

검색결과 188건 처리시간 0.027초

투수계수에 미치는 초음파의 영향 (Effect of Ultrasound on Permeability)

  • 목진만;김영욱;김지형
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2003년도 봄 학술발표회 논문집
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    • pp.613-620
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    • 2003
  • This study investigated the effect of ultrasound on the permeability of the granular soil. The investigation laboratory experiments, and laboratory tests were conducted under a broad range of conditions including energy levels of ultrasonic waves, time for the treatment, and type of the soil. The results of the study show that sonication enhances the permeability of the soil specimens significantly. The degree of varies with sonication power and duration of application, and type of soil.

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Effect of Ultrasound on the Properties of Biodegradable Polymer Blends of Poly(lactic acid) with Poly(butylene adipate-co-terephthalate)

  • Lee, Sang-Mook;Lee, Young-Joo;Lee, Jae-Wook
    • Macromolecular Research
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    • 제15권1호
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    • pp.44-50
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    • 2007
  • This study investigated the effect of ultrasound irradiation on the blend of poly(lactic acid) (PLA) and poly(butylene adipate-co-terephthalate) (PBAT). The blends of PLA/PBAT(50/50) (PBAT50) were prepared in a melt mixer with an ultrasonic device attached. Thermal, rheological, and mechanical properties, morphology, and biodegradability of the sonicated blends were analysed. The viscosity of the sonicated blends was increased by the ultrasound irradiation owing to the strong interaction. The morphology of the sonicated blends was significantly dependent on the duration o the ultrasound irradiation. For PBAT50, the phase size reduction was maximized when the blends were ultrasonically irradiated for 30 sec. At longer duration of ultrasound irradiation, the PBAT phase underwent flocculation. Measurement of the tensile properties showed an increased breakage tensile stress and an enhanced Young's modulus when the blends were properly irradiated. This improvement was ascribed to better adhesion between the PLA matrix and the PBAT domain and to better dispersion of the PBAT phase. However, the tensile properties were maximized after excessive energy irradiation, which was ascribed to an emulsifying effect leading to coalescence of the PBAT phase. Impact strength was increased to reach a peak with the ultrasound irradiation, and was higher than the untreated sample for all sonicated samples due to the difference of failure mechanism between the tensile test and the impact test.

Factors Related to Successful Energy Transmission of Focused Ultrasound through a Skull : A Study in Human Cadavers and Its Comparison with Clinical Experiences

  • Jung, Na Young;Rachmilevitch, Itay;Sibiger, Ohad;Amar, Talia;Zadicario, Eyal;Chang, Jin Woo
    • Journal of Korean Neurosurgical Society
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    • 제62권6호
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    • pp.712-722
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    • 2019
  • Objective : Although magnetic resonance guided focused ultrasound (MRgFUS) has been used as minimally invasive and effective neurosurgical treatment, it exhibits some limitations, mainly related to acoustic properties of the skull barrier. This study was undertaken to identify skull characteristics that contribute to optimal ultrasonic energy transmission for MRgFUS procedures. Methods : For ex vivo skull experiments, various acoustic fields were measured under different conditions, using five non-embalmed cadaver skulls. For clinical skull analyses, brain computed tomography data of 46 patients who underwent MRgFUS ablations (18 unilateral thalamotomy, nine unilateral pallidotomy, and 19 bilateral capsulotomy) were retrospectively reviewed. Patients' skull factors and sonication parameters were comparatively analyzed with respect to the cadaveric skulls. Results : Skull experiments identified three important factors related skull penetration of ultrasound, including skull density ratio (SDR), skull volume, and incidence angle of the acoustic rays against the skull surface. In clinical results, SDR and skull volume correlated with maximal temperature (Tmax) and energy requirement to achieve Tmax (p<0.05). In addition, considering the incidence angle determined by brain target location, less energy was required to reach Tmax in the central, rather than lateral targets particularly when compared between thalamotomy and capsulotomy (p<0.05). Conclusion : This study reconfirmed previously identified skull factors, including SDR and skull volume, for successful MRgFUS; it identified an additional factor, incidence angle of acoustic rays against the skull surface. To guarantee successful transcranial MRgFUS treatment without suffering these various skull issues, further technical improvements are required.

모바일 초음파 영상신호의 빔포밍 알고리즘을 위한 멀티코어 프로세서 구현 (Implementation of Multi-Core Processor for Beamforming Algorithm of Mobile Ultrasound Image Signals)

  • 최병국;김종면
    • 정보처리학회논문지A
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    • 제18A권2호
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    • pp.45-52
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    • 2011
  • 과거에는 환자가 초음파 영상진단장치가 설치되어 있는 방에 가서 진단을 받았지만, 현재는 의사가 초음파 영상 진단장치를 가지고 이동하면서 환자를 진단(모바일 초음파, handheld ultrasound)할 수 있는 시대가 왔다. 그러나 초음파 영상진단장치로서의 기본적인 기능만을 구현하였으며, 초음파 영상의 질을 결정하는 초음파 빔의 포커싱 알고리즘에서 요구되는 고성능을 만족하지 못하는 실정이다. 또한 모바일 기기의 경우 저전력의 요구조건도 만족하여야 한다. 이를 위해 본 논문에서는 모바일 초음파 영상신호의 포커싱을 위한 방법 중 대표적인 빔포밍 알고리즘(Beamforming Algorithm)을 고성능, 저전력으로 처리 가능한 단일 명령어 다중 데이터(Single Instruction Multiple Data, SIMD)기반의 멀티코어 프로세서를 제안한다. 제안한 SIMD기반 멀티코어 프로세서는 16개의 프로세싱 엘리먼트(Processing Element, PE)로 구성되어 있으며, 초음파의 에코 영상데이터에 내재한 무수한 데이터 레벨 병렬성을 활용하여 빔포밍 알고리즘에서 요구되는 고성능을 만족시킨다. 모의실험 결과, 제안한 멀티코어 프로세서는 현재 상용 고성능 프로세서인 TI DSP C6416보다 평균 15.8배의 성능, 6.9배의 에너지 효율 및 10배의 시스템 면적 효율을 보였다.

Nanocomposite-Based Energy Converters for Long-Range Focused Ultrasound Treatment

  • Lee, Seung Jin;Heo, Jeongmin;Song, Ju Ho;Thakur, Ujwal;Park, Hui Joon;Baac, Hyoung Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.369-369
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    • 2016
  • A nanostructure composite is a highly suitable substance for photoacoustic ultrasound generation. This allows an input laser beam (typically, nanosecond pulse duration) to be efficiently converted to an ultrasonic output with tens-of-MHz frequency. This type of energy converter has been demonstrated by using a carbon nanotube (CNT)-polydimethylsiloxane (PDMS) composite film that exhibit high optical absorption, rapid heat transition, and mechanical durability, all of which are necessary properties for high-amplitude ultrasound generation. In order to develop the CNT-PDMS composite film, a high-temperature chemical vapor deposition (HTCVD) method has been commonly used so far to grow CNT and then produce a CNT-PDMS composite structure. Here, instead of the complex HTCVD, we use a mixed solution of hydrophobic multi-walled CNT and dimethylformamid (DMF) and fabricate a solution-processed CNT-PDMS composite film over a spherically concave substrate, i.e. a focal energy converter. As the solution process can be applied over a large area, we could easily fabricate the focal transmitter that focuses the photoacoustic output at the moment of generation from the CNT-PDMS composite layer. With this method, we developed photoacoustic energy converters with a large diameter (>25 mm) and a long focal length (several cm). The lens performance was characterized in terms of output pressure amplitude for an incident pulsed laser energy and focal spot dimension in both lateral and axial. Due to the long focal length, we expect that the new lens can be applied for long-range ultrasonic treatment, e.g. biomedical therapy.

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A bond graph approach to energy efficiency analysis of a self-powered wireless pressure sensor

  • Cui, Yong;Gao, Robert X.;Yang, Dengfeng;Kazmer, David O.
    • Smart Structures and Systems
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    • 제3권1호
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    • pp.1-22
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    • 2007
  • The energy efficiency of a self-powered wireless sensing system for pressure monitoring in injection molding is analyzed using Bond graph models. The sensing system, located within the mold cavity, consists of an energy converter, an energy modulator, and a ultrasonic signal transmitter. Pressure variation in the mold cavity is extracted by the energy converter and transmitted through the mold steel to a signal receiver located outside of the mold, in the form of ultrasound pulse trains. Through Bond graph models, the energy efficiency of the sensing system is characterized as a function of the configuration of a piezoceramic stack within the energy converter, the pulsing cycle of the energy modulator, and the thicknesses of the various layers that make up the ultrasonic signal transmitter. The obtained energy models are subsequently utilized to identify the minimum level of signal intensity required to ensure successful detection of the ultrasound pulse trains by the signal receiver. The Bond graph models established have shown to be useful in optimizing the design of the various constituent components within the sensing system to achieve high energy conversion efficiency under a compact size, which are critical to successful embedment within the mold structure.

Development of Nanostructured Light-Absorbers for Ultrasound Generation by Using a Solution-Based Process

  • Sang, Pil Gyu;Heo, Jeongmin;Song, Ju Ho;Thakur, Ujwal;Park, Hui Joon;Baac, Hyoung Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.377-377
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    • 2016
  • Under nanosecond-pulsed laser irradiation, light-absorbing thin films have been used for photoacoustic transmitters for ultrasound generation. Especially, nanostructured absorbers are attractive due to high optical absorption and efficient thermoacoustic energy conversion: for example, 2-dimensional (2-D) gold nanostructure array, synthetic gold nanoparticles, carbon nanotubes (CNTs), and reduced graphene oxides. Among them, CNT has been used to fabricate a composite film with polydimethylsiloxane (PDMS) that exhibits excellent photoacoustic conversion performance for high-frequency, high-amplitude ultrasound generation. Previously, CNT-PDMS nanocomposite films were made by using a high-temperature chemical vapor deposition (HTCVD) process for CNT growth. However, this approach is not suitable to fabricate large-area CNT films (>several cm2). This is because a chamber dimension of HTCVD is limited and also the process often causes nonuniform CNT growth when the film area increases. As an alternative approach, a solution-based process can be used to overcome these issues. We develop PDMS composite transmitters, based on the solution process, using several nanostructured light-absorbers such as CNTs, nanoink powders, and imprinted regular arrays of gold nanostructure. We compare fabrication processes of each composite transmitters and photoacoustic output performance.

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초음파 서모그라피를 이용한 개방 균열의 크기 측정 (A Measurement of Size of the Open Crack using Ultrasound Thermography)

  • 조재완;서용칠;정승호;정현규;김승호
    • 제어로봇시스템학회논문지
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    • 제13권3호
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    • pp.218-223
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    • 2007
  • The dissipation of high-power ultrasonic energy at the faces of the defect causes an increase in temperature. It is resulted from localized selective heating in the vicinity of cracks because of the friction effect. In this paper the measurement of size and direction of crack using UET(Ultrasound Excitation Thermography) is described. The ultrasonic pulse energy is injected into the sample in one side. The hot spot, which is a small area around the crack tip and heated up highly, is observed. The hot spot, which is estimated as the starting point of the crack, is seen in the nearest position from the ultrasonic excitation point. Another ultrasonic pulse energy is injected into the sample in the opposite side. The hot spot, the ending point of the crack, is seen in the closest distance from the injection point also. From the calculation of the coordinates of both the first hot spot and the second hot spot observed, the size and slope of the crack is estimated. In the experiment of STS fatigue crack specimen(thickness 14mm), the size and the direction of the crack was measured.