• Title/Summary/Keyword: Thermal Scale

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STABILITY OF THE TWO-TEMPERATURE ACCRETION DISK

  • PARK MYEONG-GU
    • Journal of The Korean Astronomical Society
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    • v.28 no.1
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    • pp.97-107
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    • 1995
  • The stability of the geometrically thin, two-temperature hot accretion disk is studied. The general criterion for thermal instability is derived from the linear local analyses, allowing for advective cooling and dynamics in the vertical direction. Specifically, classic unsaturated Comptonization disk is analysed in detail. We find five eigen-modes: (1) Heating mode grows in thermal time scale, $(5/3)({\alpha}{\omega})^{-1}$, where alpha is the viscosity parameter and w the Keplerian frequency. (2) Cooling mode decays in time scale, $(2/5)(T_e/T_i)({\alpha}{\omega})^{-1}$, where $T_e\;and\;T_i$ are the electron and ion temperatures, respectively. (3) Lightman-Eardley viscous mode decays in time scale, $(4/3)(\Lambda/H)^2({\alpha}{\omega})^{-1}$, where $\Lambda$ is the wavelength of the perturbation and H the unperturbed disk height. (4) Two vertically oscillating modes oscillate in Keplerian time scale, $(3/8)^{1/2}\omega^{-1}$ with growth rate $\propto\;(H/\Lambda)^2$. The inclusion of dynamics in the vertical direction does not affect the thermal instability, adding only the oscillatory modes which gradually grow for short wavelength modes. Also, the advective cooling is not strong enough to suppress the growth of heating modes, at least for geometrically thin disk. Non-linear development of the perturbation is followed for simple unsaturated Compton disk: depending on the initial proton temperature perturbation, the disk can evolve to decoupled state with hot protons and cool electrons, or to one-temperature state with very cool protons and electrons.

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Study on the Application of DITI in Bell's Palsy Patients with Acupoints (Bell's palsy 환자에서 두면부 경혈의 적외선 체열촬영의 활용)

  • Kim, Hyee-Kwon;Kim, Dong-Min;Ha, Seon-Yoon;Nam, Sang-Soo;Kim, Yong-Suk
    • Journal of Oriental Medical Thermology
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    • v.6 no.1
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    • pp.16-22
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    • 2008
  • Objective: The aims of this study are to find out proper methods to assess Bell's palsy with DITI and to validate the correlation between DITI of acupoints and H-B scale. Methods: 36 Bell's palsy patients and 10 health people were measured. We checked thermal differences between abnormal and normal acupoints sites measured by using DITI and H-B scale. Results: There was no significant thermal difference between abnormal and normal sites. The H-B scale was significantly correlated with thermal differences of ST6 and TE17. Conclusion: DITI was useful for evaluating the severity of Bell's palsy.

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Study on the Application of DITI in Bell's Palsy Patients with Acupoints (Bell's Palsy 환자에서 두면부 경혈의 적외선 체열촬영의 활용)

  • Kim, Hyee-Kwon;Kim, Dong-Min;Ha, Seon-Yoon;Koh, Hyeong-Gyun;Nam, Sang-Soo;Kim, Yong-Suk
    • Journal of Acupuncture Research
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    • v.24 no.6
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    • pp.105-111
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    • 2007
  • Objectives : The aims of this study are to find out proper methods to assess Bell's palsy with DITI and to validate the correlation between DITI of acupoints and the H-B scale. Methods : 36 Bell's palsy patients and 10 healthy people were measured. We checked thermal differences between abnormal and normal acupoint sites measured by using DITI and the H-B scale. Results : There was no significant thermal difference between abnormal and normal sites. The H-B scale was significantly correlated with thermal differences between $ST_6$ and $TE_{17}$. Conclusions : DITI was useful for evaluating the severity of Bell's palsy.

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Small-scale effects on wave propagation in curved nanobeams subjected to thermal loadings based on NSGT

  • Ibrahim Ghoytasi;Reza Naghdabadi
    • Advances in nano research
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    • v.16 no.2
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    • pp.187-200
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    • 2024
  • This study focuses on wave propagation analysis in the curved nanobeam exposed to different thermal loadings based on the Nonlocal Strain Gradient Theory (NSGT). Mechanical properties of the constitutive materials are assumed to be temperature-dependent and functionally graded. For modeling, the governing equations are derived using Hamilton's principle. Using the proposed model, the effects of small-scale, geometrical, and thermo-mechanical parameters on the dynamic behavior of the curved nanobeam are studied. A small-scale parameter, Z, is taken into account that collectively represents the strain gradient and the nonlocal parameters. When Z<1 or Z>1, the phase velocity decreases/increases, and the stiffness-softening/hardening phenomenon occurs in the curved nanobeam. Accordingly, the phase velocity depends more on the strain gradient parameter rather than the nonlocal parameter. As the arc angle increases, more variations in the phase velocity emerge in small wavenumbers. Furthermore, an increase of ∆T causes a decrease in the phase velocity, mostly in the case of uniform temperature rise rather than heat conduction. For verification, the results are compared with those available for the straight nanobeam in the previous studies. It is believed that the findings will be helpful for different applications of curved nanostructures used in nano-devices.

Thermal effects on nonlocal vibrational characteristics of nanobeams with non-ideal boundary conditions

  • Ebrahimi, Farzad;Shaghaghi, Gholam Reza
    • Smart Structures and Systems
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    • v.18 no.6
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    • pp.1087-1109
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    • 2016
  • In this manuscript, the small scale and thermal effects on vibration behavior of preloaded nanobeams with non-ideal boundary conditions are investigated. The boundary conditions are assumed to allow small deflections and moments and the concept of non-ideal boundary conditions is applied to the nonlocal beam problem. Governing equations are derived through Hamilton's principle and then are solved applying Lindstedt-Poincare technique to derive fundamental natural frequencies. The good agreement between the results of this research and those available in literature validated the presented approach. The influence of various parameters including nonlocal parameter, thermal effect, perturbation parameter, aspect ratio and pre-stress load on free vibration behavior of the nanobeams are discussed in details.

Improvement of Thermal Stability of Nickel Silicide Using Co-sputtering of Ni and Ti for Nano-Scale CMOS Technology

  • Li, Meng;Oh, Sung-Kwen;Shin, Hong-Sik;Lee, Hi-Deok
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.13 no.3
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    • pp.252-258
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    • 2013
  • In this paper, a thermally stable nickel silicide technology using the co-sputtering of nickel and titanium atoms capped with TiN layer is proposed for nano-scale metal oxide semiconductor field effect transistor (MOSFET) applications. The effects of the incorporation of titanium ingredient in the co-sputtered Ni layer are characterized as a function of Ti sputtering power. The difference between the one-step rapid thermal process (RTP) and two-step RTP for the silicidation process has also been studied. It is shown that a certain proportion of titanium incorporation with two-step RTP has the best thermal stability for this structure.

Analyzing nonlinear mechanical-thermal buckling of imperfect micro-scale beam made of graded graphene reinforced composites

  • Khalaf, Basima Salman;Fenjan, Raad M.;Faleh, Nadhim M.
    • Advances in materials Research
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    • v.8 no.3
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    • pp.219-235
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    • 2019
  • This research is devoted to analyzing mechanical-thermal post-buckling behavior of a micro-size beam reinforced with graphene platelets (GPLs) based on geometric imperfection effects. Graphene platelets have three types of dispersion within the structure including uniform-type, linear-type and nonlinear-type. The micro-size beam is considered to be perfect (ideal) or imperfect. Buckling mode shape of the micro-size beam has been assumed as geometric imperfection. Modified couple stress theory has been used for describing scale-dependent character of the beam having micro dimension. Via an analytical procedure, post-buckling path of the micro-size beam has been derived. It will be demonstrated that nonlinear buckling characteristics of the micro-size beam are dependent on geometric imperfection amplitude, thermal loading, graphene distribution and couple stress effects.

Synthesis of Silica Aerogel at Ambient Pressure and Characterization (II) (실리카 에어로겔의 상압합성 및 특성연구(II))

  • 권영근;최세영;강신규
    • Journal of the Korean Ceramic Society
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    • v.36 no.11
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    • pp.1189-1197
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    • 1999
  • Low-density silica gel monolith was synthesized at ambient pressure by surface modification with TMCS and sub-sequent heat treatment. The mechanical thermal and optical properties of gel were studied. Compressive strength and modulus of compression of 350$^{\circ}C$-heated gel with the density of 0.24g/cm3 were 250kPa and 0.2MPa respectively. The thermal conductivity of silica gels synthesized at ambient pressure exhibited 0.02 W/m$.$K for the density of 0.24g/cm3 which is similar to that of the gel via supercritical drying and their main thermal transfer mechanism is considered to be solid and radiation conduction at room temperature. Ambient-dried silica gels were transparent blue showing about 60% of transmittance in the wavelength of 1500-2100nm and typical absorption bands of existing bonds under heat treatment at 350$^{\circ}C$. Medium scale monolity(${\Phi}$=50mm) at ambient pressure could be successfully prepared through total 5-month process period.

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A Study for optimum design of Thermal Storage tank (성층축열조 최적설계를 위한 연구)

  • Jang Dong-Soon;Shin Mi-Soo;Kim Hey-Suk;Song Hye-Young;Lee Young-Soo;Lee Sang-Nam
    • 한국전산유체공학회:학술대회논문집
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    • 2002.10a
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    • pp.127-132
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    • 2002
  • Numerical and experimental works have been made in order to figure out the physical mechanism of thermal storage system for the determination of optimal design and to enhance the thermal efficiency of the system. To this end a computer program is developed and evaluated successfully against experimental data measured with a bench scale facility. Considering the thermal efficiency of storage is critically impaired by the mixing effect, the minimum flow mixing situation is calculated by the assumption of uniform plug-type flow as a reference condition. Further a parametric systematic calculations have been made for a hypothetical full-scale storage system with Fr, storage dimension, diffuser type and loading hour, etc.

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Thermal contact resistance on elastoplastic nanosized contact spots (탄소성접촉면의 나노스케일 열접촉저항)

  • Lee, Sang-Young;Cho, Hyun;Jang, Yong-Hoon
    • Proceedings of the KSME Conference
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    • 2008.11b
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    • pp.2214-2219
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    • 2008
  • The thermal contact resistance(TCR) of nanosized contact spots has been investigated through a multiscale analysis which considers the resolution of surface topography. A numerical simulation is performed on the finite element model of rough surfaces. Especially, as the contact size decreases below the phonon mean free path, the size dependent thermal conductivity is considered to calculate the TCR. In our earlier model which follows an elastic material, the TCR increases without limits as the number of nanosized contact spots increases in the process of scale variation. However, the elastoplastic contact induces a finite limit of TCR as the scale varies. The results are explained through the plastic behavior of the two contacting models. Furthermore, the effect of air conduction in nanoscale is also investigated.

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