• 제목/요약/키워드: atomizing nozzle

검색결과 51건 처리시간 0.024초

공기 터빈 및 노즐 설계에 따른 도장기기의 회전수 특성에 관한 연구 (Study on the RPM Characteristics of Rotary Atomizer for Various Air Turbine and Nozzle Types)

  • 이찬;차상원
    • 청정기술
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    • 제9권4호
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    • pp.163-168
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    • 2003
  • 회전형 도장기기의 핵심 부품인 공기 터빈 및 무화 디스크 설계를 위한 기본 설계개념 및 방법을 제시하였고, 이를 이용하여 도장기기를 설계, 제작하였다. 제작된 도장기기의 회전수 및 유량의 측정 결과는 전산유체역 학적 해와 잘 일치하였다. 또한 공기 터빈 및 디스크 설계 사양에 따라 도장기기의 회전수가 현저히 변화됨을 알 수 있었고, 공기 터빈의 유로 기울기 $20^{\circ}$, 노즐 수 2개일 때의 도장기기 성능이 가장 우수하였다.

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Atomize법에 의한 용융소재의 고효율 미세화에 관한 연구(제2보 : 이젝터의 원리를 이용한 액체노즐의 액체공급 및 액막생성 기구와 특성) (A Study on the High-Efficiency Atomisation Molten Materials (PART 2 : A Study on the Mechanism of Liquid Supplying and Film Formation by Applying the Ejector Principle))

  • 오재건;조일영
    • 한국분무공학회지
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    • 제3권2호
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    • pp.14-23
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    • 1998
  • The negative pressure as much as 10's mmHg is demanded at nozzle inside, in case of atomizing the large density molten materials. by conventional air jet nozzle. In this study, suction type fluid nozzle is designed by applying the ejector principle in order to clarify the air flow of nozzle inside, mechanism of liquid suction and liquid film formation. The results of this experimental study areas follows. Suction force of liquid is magnified by using liquid nozzle, and it is able to supply the liquid stable. Negative pressure at nozzle inside is varied by throttle angle of liquid nozzle, position and outer diameter of air jet nozzle, and have a influence on liquid suction quantity and liquid film formation.

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PDPA를 이용한 노즐의 형상에 따른 분무 특성의 연구 (A Study of Spray Characteristics for the Shape of Nozzle by Phase Doppler Analyzer)

  • 황승식;이희상;김중;이봉규;김종철;전운학
    • 한국자동차공학회논문집
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    • 제6권5호
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    • pp.199-210
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    • 1998
  • The skill that utilizes atomization of the liquid has been widely used in the field of industry and engineering. Though there are dozens of methods to make atomization, the pressure type injection nozzle is frequently used in washing of parts, pastourization and painting because it has relatively simple system. This study is to reveal the characteristics of atomizing formed by three different types of the pressure type injection nozzle. We measured velocity and diameter of droplet to compare and analyze characteristic of each nozzle. In case of velocity, atomization of hollow-cone nozzle is irregular than others and change of radial direction is especially large. Atomization of flat nozzle is nearly uniform. In case of diameter, atomization of hollow-cone nozzle is increased rapidly, as measurement point become more distant from the center of nozzle. Atomization of flat nozzle has the most fixed magnitude. Accordingly, full-cone nozzle can be used irrespective of the form of subject and hollow-cone nozzle is proper to the occasion to spray large and smooth subject. Also, flat nozzle is proper to the occasion to spray a part of subject and long groove.

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Integrated CFD on Atomization Process of Lateral Flow in Injector Nozzle

  • Ishimoto, Jun
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2006년도 추계 학술대회논문집
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    • pp.7-8
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    • 2006
  • The governing equations for high-speed lateral atomizing injector nozzle flow based on the LES-VOF model in conjunction with the CSF model are presented, and then an integrated parallel computation are performed to clarify the detailed atomization process of a high speed nozzle flow and to acquire data which is difficult to confirm by experiment such as atomization length, liquid core shapes, droplets size distributions, spray angle and droplets velocity profiles. According to the present analysis, it is found that the atomization rate and the droplets-gas two-phase flow characteristics are controlled by the turbulence perturbation upstream of the injector nozzle, hydrodynamic instabilities at the gas-liquid interface, shear stresses between liquid core and periphery of the jet. Furthermore, stable and a high-resolution computation can be attained in the high density ratio (pl/ pg = 554) conditions conditions by using our numerical method.

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압전 세라믹 진동자를 이용한 초음파 분무기의 분무 특성 (The Characteristics of an Ultrasonic Sprayer by using Piezoelectric Ceramic Resonator)

  • 배상태;이수호;석정영;김철환;사공건
    • 한국전기전자재료학회논문지
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    • 제22권5호
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    • pp.405-410
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    • 2009
  • The conventional ultrasonic nozzle produces a mist by applying an ultrasonic vibration into a non-flowering liquid. In this paper, we first present a novel designed nozzle type sprayer that is able to apply an ultrasonic vibration directly to the moving liquid and generate a mist instantly. For the novel nozzle, a ring-type actuator of the novel nozzle was designed and built using the PZW-PMN-PZT ceramics. This paper will describe a variety of physical, mechanical, and electrical characteristics of the ultrasonic nozzle. The characteristics of the mist particles was also measured as the amount of the outflow liquid was varied.

초음파 미립화 노즐의 분무 특성에 미치는 주요 인자의 영향 (Effect of Major Factors on the Spray Characteristics of Ultrasonic Atomizing Nozzle)

  • 정선용;이계복
    • 한국산학기술학회논문지
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    • 제18권6호
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    • pp.1-7
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    • 2017
  • 분무식 노즐(spray nozzle)은 액체의 표면을 증가시키기 위해 에너지를 공급하여 액체를 다수의 액적으로 미립화시키는 장치로 연소과정에서의 연료의 미립화 또는 표면이나 입자의 코팅 등 여러 산업분야에 다양한 목적으로 응용된다. 초음파 미립화 노즐은 진동 발생장치로부터 고진동수의 전기에너지를 받아 같은 진동수의 기계적 에너지로 변환시키는 변환기를 갖고 있다. 변환된 에너지를 액체에 부가하여 고주파 진동에 의해 미세한 액적을 생성하여 분사한다. 코팅작업에서 가압되지 않은 저속의 분무는 액적이 튕겨나가지 않고 표면에 달라붙어 과도하게 분사되는 양을 줄일 수 있다. 초음파 미립화 노즐은 초음파 진동부 외벽에 공기를 공급해 줄 수 있는 공간을 통해 생성된 보조 공기흐름을 이용하여 저속의 액적을 운반하여 분무특성이나 분무형상을 조절할 수 있다. 따라서 주위 공기의 흐름을 이용하여 원하는 분무특성을 얻을 수 있다. 본 연구에서는 액적의 분사 운동을 모사하기 위해 라그랑지안 분산상 모델(DPM)을 적용한 상용코드 FLUENT를 사용하여 액적 주위의 공기흐름을 동반하는 초음파 미립화 노즐을 해석하였다. 노즐 수축부 형상, 액적의 크기 그리고 공기 측 압력차의 크기를 변화시키며 수치해석을 수행하여 코팅용 분무를 위한 최적 조건을 연구하였다.

평판에 분사된 분무충돌제트의 냉각특성에 대한 실험적 연구 (An experimental study on cooling characteristics of mist impinging jet on a flat plate)

  • 전상욱;정원석;이준식
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 춘계학술대회논문집D
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    • pp.528-533
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    • 2001
  • An experimental study is carried out to investigate the effects of air and water mass flow rates on cooling characteristics of mist impinging jet on a flat plate. Experiments are conducted with air mass flow rates from 0.0 to 3.0 g/s, and water mass flow rates from 5.0 to 20.0 g/s. An air-atomizing nozzle is used for the purpose of controlling air and water mass flow rates. In this study, a new test section is designed to obtain local heat transfer coefficient distributions. Heat transfer characteristics of the mist impinging jet are explained with the aid of flow visualization. Surface temperature and heat transfer coefficient distributions become more uniform as air mass flow rate increases, and that the increases in water flow rate mainly enhance cooling performance. Air mass flow rate weakly influences averaged heat transfer coefficient when water mass flow rate is low, but averaged heat transfer coefficient increases remarkably as air mass flow rate in case of high water mass flow rate.

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평판에 분사된 분무충돌제트의 냉각특성에 대한 실험적 연구 (An Experimental Study on Cooling Characteristics of Mist Impinging Jet on a Flat Plate)

  • 전상욱;정원석;이준식
    • 대한기계학회논문집B
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    • 제27권4호
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    • pp.511-517
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    • 2003
  • An experiment is conducted to investigate the effect of air and water mass flow rates on cooling characteristics of mist impinging jet on a flat plate. The air mass flow rate ranges from 0.0 to 3.0 g/s, and water mass flow rates from 5.0 to 20.0 g/s. An air-atomizing nozzle is used fur the purpose of controlling air and water mass flow rates. The test section is designed distinctively from previous works to obtain local heat transfer coefficient distributions. Heat transfer characteristics of the mist impinging jet are explained with the aid of flow visualization. Surface temperature and heat transfer coefficient distributions become more uniform as air mass flow rate increases. The water flow rate provides substantial contribution to enhancement of cooling performance. On the other hand, The air mass flow rate weakly influences the averaged heat transfer rate when the water mass flow rate is low, but the averaged heat transfer rate Increases remarkably with the air mass flow rate in case of the high water mass flow rate.