• 제목/요약/키워드: Gas temperature measurement

검색결과 593건 처리시간 0.027초

학교 현장에 적용 가능한 '샤를의 법칙' 실험방법의 분석 및 개발 (Analysis and Development of Experimental Method of Charle's Law Applicable to School)

  • 민정숙;김성희;정대홍
    • 대한화학회지
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    • 제53권2호
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    • pp.175-188
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    • 2009
  • 본 연구에서는 학교 현장에 적용 가능한 ‘샤를의 법칙’ 실험방법을 개발하였다. 교과서 및 문헌 분석을 통하여 실험 장치 및 방법을 구성하는데 필요한 요소를 분석하였다. 전체 부피를 결정하는 부분 으로 단순 구조인 주사기를 사용할 때 보다 바이알과 부피 변화를 관찰하는 부분으로 유리관을 연결한 구조를 사용하였을 때 온도 변화에 따른 기체의 부피 변화를 쉽게 측정할 수 있었고, 비커 같은 큰 부피 의 물중탕 기구 보다 눈금실린더를 이용한 물중탕 방법이 냉각 시간에 있어서 이점을 보여주었다. 부피 변화 부분에서 저항이 최소화된 형태로 액체 마개 형태가 이용되었다. 액체 마개로 물방울을 사용할 경 우 측정 초반에 증발에 의해 기체 부피변화에 큰 영향을 주는데, 글리세롤을 사용할 경우 이 같은 영향 은 거의 없었다. 제안된 실험방법으로 대략 1 시간 이내의 실험 시간을 소요하여 높은 선형 상관계수($R^2$ = 0.999)를 갖는 결과를 얻을 수 있었고, 부피가 0이 되는 온도가 $-216.7\;{^{\circ}C}$로 예측되는 정도로 매우 정확 한 결과를 보여주었다. 본 연구를 통해 개발된 샤를의 법칙 실험은 학교 급별 교육과정에 따라 수준을 조절하여 실시할 수 있을 것으로 예상한다.

폐열회수겸용 버너의 설계 기술 개발에 관한 연구 ( I ) (A Study on the Development of a Recuperative Burner ( I ))

  • 박병식;김원배;정대헌;김유
    • 한국연소학회지
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    • 제1권2호
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    • pp.1-7
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    • 1996
  • A recuperative, burner in the capacity of 400kW was designed using the design data from the experimental results. Performance tests on this burner were made. The exhaust gas analysis, including NOx, the measurement of the flame temperature and velocity in the recuperative burner were the main topics of hot combustion tests. Design data from the experimental results are the gas velocity, air velocity, the tip location of gas nozzle and the dimension of furnace. In view of uniform temperature distribution and thermal efficiency, it is appropriate to maintain the furnace pressure at 2-3mmAq.

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산소 유량별 플라즈마 방출광원 세기에 따른 전자온도 진단과 산화주석박막 특성연구 (Study on Electron Temperature Diagnostic and the ITO Thin Film Characteristics of the Plasma Emission Intensity by the Oxygen Gas Flow)

  • 박혜진;최진우;조태훈;윤명수;권기청
    • 한국표면공학회지
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    • 제49권1호
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    • pp.92-97
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    • 2016
  • The plasma has been used in various industrial fields of semiconductors, displays, transparent electrode and so on. Plasma diagnostics is critical to the uniform process and the product. We use the electron temperature of the various plasma parameters for the diagnosis of plasma. Generally, the range of the electron temperature which is used in a semiconductor process used the range of 1 eV to 10 eV. The difference of electron temperature of 0.5 eV has a influence in plasma process. The electron temperature can be measured by the electrical method and the optical method. Measurement of electron temperature for various gas flow rates was performed in DC-magnetron sputter and Inductively Coupled Plasma. The physical properties of the thin film were also determined by changing electron temperatures. The transmittance was measured using the integrating sphere, and wavelength range was measured at 300 ~ 1100 nm. We obtain the thin film of the mobility, resistivity and carrier concentration using the hall measurement system. As to the electron temperature increase, optical and electrical properties decrease. We determine it was influenced by the oxygen flow ratio and plasma.

상용급 재가열로에서 소재 온도 예측을 위한 해석과 실험 결과의 비교 분석 (The Comparative Analysis of Numerical and Experimental Results for Prediction of Workpiece Temperature in the Commercial Reheating Furnace)

  • 이춘식;이재용;유보현;임동렬
    • 한국가스학회지
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    • 제23권4호
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    • pp.74-79
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    • 2019
  • 상용급 재가열로 내부 소재 온도 측정을 위하여 특수 제작된 시험용 시편을 사용하고, 실시간 온도 예측을 위하여 선형화 된 열모델이 적용되었다. 적용된 로는 Walking Beam Type이고 소재의 형상은 폭 160mm, 높이 160mm, 길이 8100mm의 STS302 재질이며 온도 측정을 위해 폭, 높이와 길이 방향으로 총 6개의 열전대를 설치하였다. 로내의 분위기 온도는 섭씨 1265도까지 상승시켰으며 소재의 장입부터 토출까지 약 2.5시간이 소요되었다. 시험결과, 토출 시 소재의 온도는 섭씨 1256~1259도 범위에서 평균적으로 1257도 였으며, 열모델을 통한 예측된 평균 온도는 1251도로 나타났다. 따라서 해석과 시험결과의 편차는 6도 정도로서, 이는 산업계에서 요구되는 10도 이내의 범위에 있다.

보일러 화로내 연소가스 온도분포 구현에 관한 연구 (A Study on Monitoring of Gas Temperature in Boiler Furnace)

  • 장석원
    • 에너지공학
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    • 제15권3호
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    • pp.188-193
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    • 2006
  • 본 논문은 보일러 화로내 임의의 단면에서 다수의 음속 측정기를 설치하여 음속을 측정하고 평균온도, 최고온도, 최저온도로부터 세분화시킨 격자의 온도를 구하여 온도분포를 구현하는 방법에 대한 이론적 고찰과 적용결과에 관한 것이다. 음속 측정기 간 음속을 측정하여 보일러 내부의 연소가스 온도를 측정하고 화로를 임의의 격자로 구분하여 각 격자에 해당하는 온도값을 주위 격자의 온도구배로부터 유추하여 구한 뒤 모든 격자의 온도값을 완성하여 화로의 온도분포를 구현하는 방법에 대한 이론 및 관련 시스템을 구성하고 실제 현장적용하여 결과를 분석하였다.

복강경하 자궁근종절제술 후 적용한 온열요법이 가스 통증, 수술 후 회복력 및 체온불편감에 미치는 효과 (Influence of Gas Pain, Post-operative Resilience, and Body Temperature Discomfort in Laparoscopic Myomectomy Patients after Thermotherapy)

  • 이정애;전명화;박은주;이진아;안곤명;이승신;김지인
    • 여성건강간호학회지
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    • 제25권1호
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    • pp.4-18
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    • 2019
  • Purpose: The purpose of this study was to investigate the effects of thermotherapy on gas pain, post-operative resilience, and body temperature discomfort among patients who received laparoscopic myomectomies. Methods: The experimental group consisted of 62 patients with thermotherapy and the control group consisted of 60 patients. Thermotherapy was applied individually to the experimental group four hours after surgery. The collected data was analyzed using descriptive statistics, t-tests, ${\chi}^2$-tests, and repeated measures of analysis of variance, using IBM SPSS Statistics version 18. Results: The results showed no significant interaction effect between the group and time of measurement in gas-related pain in the experimental group. For gas-related pain, there was significant difference in right shoulder pain at 24 hours (t=-4.222, p=.000), 48 hours (t=-3.688, p=.000), 72 hours (t=-2.250, p=.028), and left at 24 hours (t=-3.727, p=.000), 48 hours (t=-4.150, p=.000), and 72 hours (t=-2.482, p=.016) and both shoulders at 24 hours (t=-2.722, p=.009) and 48 hours (t=-2.525, p=.014). There was no significant difference in epigastric pain, excluding both epigastric pain at 48 hours (t=2.908, p=.005), 72 hours (t=3.010, p=.004), but there was a significant difference in objective body temperature discomfort (t=2.895, p=.008). Conclusion: Thermotherapy relieved shoulder gas-related pain and objective body temperature discomfort. It needs to be developed and applied to improve post-operative discomfort in patients with laparoscopic hysterectomies.

CT-TDLAS를 이용한 고온 배기가스의 3차원 온도분포 측정 (Calculating of 3-Dimensional Temperature Distribution for High-Temperature Exhaust Gas Using CT-TDLAS)

  • 윤동익;김준호;전민규;최두원;조경래;도덕희
    • 한국수소및신에너지학회논문집
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    • 제29권1호
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    • pp.97-104
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    • 2018
  • 3-dimensional temperature distribution of the exhaust gas of a fire flame of LPG have been measured by the constructed CT-TDLAS system. 3-Dimensional temperature distributions are measured by 2 layers of CT-TDLAS. Each layer has $8{\times}8$ laser beams implying the temperatures of 64 meshes are measured. SMART algorithm has been adopted for reconstructing the absorption coefficients on the meshes. The line strengths at 6 representative wave lengths of $H_2O$ have been used for obtaining the absorption spectra of the exhaust gas. The temperature distributions measured by the constructed CT-TDLAS have been compared with those by the thermocouples. The relative errors measured between by thermocouple and CT-TDLAS were 13% in average and 33% at maximum. The similarity of temperature distribution between by thermocouples and by CT-TDLAS has been shown at the lower layer than the upper layer implying an unstability of combustions.

열광학적 분석 프로토콜에 의한 유기탄소와 원소탄소 측정값 비교 (Comparison of OC and EC Measurement Results Determined by Thermal-optical Analysis Protocols)

  • 김효선;정진상;이진홍;이상일
    • 한국대기환경학회지
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    • 제31권5호
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    • pp.449-460
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    • 2015
  • Carbonaceous aerosol is generally classified into OC (organic carbon) and EC (elemental carbon) by thermal optical analysis. Both NIOSH (National institute of occupational safety and health) with high temperature (HighT) and IMPROVE-A (Interagency monitoring of protected visual environments) with low temperature (LowT) protocols are widely used. In this study, both protocols were applied for ambient $PM_{2.5}$ samples (Daejeon, Korea) in order to underpin differences in OC and EC measurements. An excellent agreement between NIOSH and IMPROVE-A protocol was observed for TC (total carbon). However, significant differences between OC and EC appeared and the differences were larger for EC than OC. The main differences between two protocols are temperature profile and charring correction method. For the same charring correction method, HighT_OC was 10% higher than LowT_ OC, while HighT_EC was 15% and 33% lower than LowT_EC for TOT (thermal-optical transmittance) and TOR (thermal-optical reflectance), respectively. This difference may be caused by the temperature of OC4 in He step and possibly difference in POC (pryorilized OC) formation. For the same temperature profile, OC by TOT was about 26% higher than that by TOR. In contrast, EC by TOT was about 50% lower than that by TOR. POC was also dependent on both temperature profile and the charring correction method, showing much distinctive differences for the charring correction method (i.e., POC by TOT to POC by TOR ratio is about 2). This difference might be caused by different characteristics between transmittance and reflectance for monitoring POC formation within filters. Results from this study showed that OC and EC depends on applied analysis protocol as shown other studies. Because of the nature of the thermal optical analysis, it may not be possible to have an absolute standard analysis protocol that is applicable for any ambient $PM_{2.5}$. Nevertheless, in order to provide consistent measurement results for scientists and policy makers, future studies should focus on developing a harmonized standard analysis protocol that is suitable for a specific air domain and minimizes variations in OC and EC measurement results. In addition, future elaborate studies are required to find and understand the causes of the differences.

Effect of Substrate Temperature and Post-Annealing on Structural and Electrical Properties of ZnO Thin Films for Gas Sensor Applications

  • 도강민;김지홍;노지형;이경주;문성준;김재원;박재호;조슬기;신주홍;여인형;문병무;구상모
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.105-105
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    • 2011
  • ZnO is a promising material since it could be applied to many fields such as solar cells, laser diodes, thin films transistors and gas sensors. ZnO has a wide and direct band gap for about 3.37 eV at room temperature and a high exciton binding energy of 60 meV. In particular, ZnO features high sensitivity to toxic and combustible gas such as CO, NOX, so on. The development of gas sensors to monitor the toxic and combustible gases is imperative due to the concerns for enviromental pollution and the safety requirements for the industry. In this study, we investigated the effect of substrate temperature and post-annealing on structural and electrical properties of ZnO thin films. ZnO thin films were deposited by pulsed laser deposition (PLD) at various temperatures at from room temperature to $600^{\circ}C$. After that, post-annealing were performed at $600^{\circ}C$. To inspect the structural properties of the deposited ZnO thin films, X-ray diffraction (XRD) was carried out. For gas sensors, the morphology of the films is dominant factor since it is deeply related with the film surface area. Therefore, the atomic force microscopy (AFM) and field emission scanning electron microscopy (FE-SEM) were used to observe the surface of the ZnO thin films. Furthermore, we analyzed the electrical properties by using a Hall measurement system.

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90kW급 우드칩 온수 보일러 특성 및 성능 시험 (Measurement of Efficiency and Flue Gas Concentration of 90 kW Woodchip Boiler)

  • 강새별;김종진;최규성;이웅진
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
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    • pp.194-197
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    • 2008
  • We measured the efficiency and flue gas concentration of a 90kW woodchip boiler which is for heating water of lodging. At nominal operating condition, the fuel, woodchip is fed into the boiler at a rate of 22.6 kg/h. In order to determine the efficiency of the boiler, we measured the water flow rate, woodchip flow rate, heating value and water content of woodchip, temperature of inlet and outlet of heating water. The results of test show that the power output of the woodchip boiler is 90.0 kW(77,400 kcal/h) and the thermal efficiency of the boiler is 88.5%. By using a gas analyser, flue gas concentrations are measured. The results show that O2 in the flue gas is 10.2%, CO concentration is 393 ppm and NOx concentration is 74 ppm.

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