• 제목/요약/키워드: Diesel nozzle

검색결과 203건 처리시간 0.021초

과급식 디젤엔진의 성능개선 및 배기가스 저감에 관한 실험적 연구 (An Experimental Study on the Performance Improvement and Emission Reduction in a Turbocharged D.I. Diesel Engine)

  • 윤준규;차경옥
    • 한국자동차공학회논문집
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    • 제8권5호
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    • pp.36-46
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    • 2000
  • The performance improvement and emission reduction in a turbocharged D.I. diesel engine was studied experimentally in this paper. The system of intake port, fuel injection and turbochager are very important factors which have influence on the engine performance and exhaust emission because the properties in the injected fuel depend on the combustion characteristics. Through these experiments it can be expected to meet performance and emission by optimizing the main parameters; the swirl ratio of intake port, fuel injection system and turbocharger. The swirl ratio of intake port was modified by hand-working and measured by impulse swirl meter. Through this steady flow test, we knew that the increase of swirl ratio is decreasing the mean flow coefficient, whereas the gulf factor is increasing. And the optimum results of engine performance and emission are as follows; the swirl ratio is 2.43, injection timing is BTDC 13。 CA, compression ratio is 16, combustion bowl is re-entrant 5$^{\circ}$, nozzle hole diameter is $\Phi$0.28*6, turbocharger is GT40 model which are compressor A/R 0.58 AND turbine A/R 1.19.

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분무충돌을 이용한 w-형 직접분사식 디젤연소실에 대한 계산적 고찰 (Simulative consideration for w-shaped d.i. diesel combustion chamber system using spray wall impaction)

  • 박권하
    • 한국분무공학회지
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    • 제2권2호
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    • pp.8-15
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    • 1997
  • Combustion chamber systems using spray impinged on walls have been studied for improving combustion characteristics in high speed direct injection diesel engines. The fuel spray injected in a small combustion chamber may be easily impinged and deposited on the wall. The fuel deposit has been considered as the cause for unburned emission due to difficulty of fuel-air mixing. In this paper w-shaped combustion chamber which has four raised pips on the side wall is introduced and discussed by comparing with conventional chamber with no pips. The computer code employing new spray-wall interaction model in general non-orthogonal grids is used in here. The model is applied into the new chamber shape with raised pips. In this chamber system four-hole nozzle is used, and the sprays injected from the each hole impact on lands raised from the chamber wall surface. After impacting, the sprays break up into much smaller drops and distribute over all the chamber space, instead of distributing just near the wall surface in conventional omega-shape. The results showed the potential of the w-shaped chamber employing pips for dispersing droplets so as tn avoid the fuel deposit regions.

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디이젤 기관용 다공연료 분사 밸브의 분사율 측정 (On Rate of Multi-Hole Injector for Diesel Engine)

  • 정달순;안수길;권기린
    • 수산해양기술연구
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    • 제22권1호
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    • pp.41-48
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    • 1986
  • Ifis recommended that the injection rate should be accurate and reliable in the input data of the performance simulation in diesel engine. Matsuoka Sin improved W. Bosch's injection ratio measurement system. Matsuoka Sin reduced length of the test pipe and set the orifice. However, it was not measured accurately to measure the injection ratio due to reflection wave. In the present thesis, the improved measurement system with combination of the conventional W. Bosch type injection ratio measurement system and Matsuoka Sin type corrected W. Bosch type was practically made. The location of orifice and throttle valve was modified and set one more back pressure valve in order to reduce the effect of reflection wave. The results according to injection condition of multi-hole nozzle are following: 1. Measurement error of injection ratio measurement system in this thesis was $\pm$ 1 %, therefore, its reliability was good. 2. The form of injetion ratio is changed from trapezoidal shape to triangle shape with increase of revolution per minute when injection amount is constant. 3. In the case of constant rpm, the initial injection ratio is almost constant regardless of the amount, meanwhile the injection period becomes longer with increase of the amount. 4. The injection pressure of nozzle isn't largely influenced with injection ratio in the case of constant injection amount and rpm, otherwise the initial injection amount is increased by 3-4% when the injection pressure is low. 5. The injection ratio isn't nearly influenced with back pressure.

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분공수와 분사각의 영향에 따른 거시적 디젤 분무 가시화 (Macroscopic Visualization of Diesel Sprays with respect to Nozzle Hole Numbers and Injection Angles)

  • 정용진;장진영;배충식
    • 한국분무공학회지
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    • 제29권1호
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    • pp.32-37
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    • 2024
  • Macroscopic visualization of non-evaporating sprays was experimentally conducted to investigate spray tip penetration and spray angle under low-density conditions, corresponding to an early injection strategy. Furthermore, injectors with varying injection angles (146° and 70°) and numbers of holes (8 and 14) were employed to examine the impact of injector configuration. Compared to the baseline injector, 8H146, which has 8 holes and a 146° injection angle, the spray tip penetration of the 8H70 injector was found to be longer. This can be attributed to higher momentum due to a smooth flow field between the sac volume and the nozzle inlet, which is located closer to the injector tip centerline. The increase in velocity led to intense turbulence generation, resulting in a wider spray angle. Conversely, the spray tip penetration of the 14H70 injector was shorter than that of the 8H70 injector. The competition between increased velocity and decreased nozzle diameter influenced the spray tip penetration for the 14H70 injector; the increase in momentum, previously observed for the 8H70 injector, contributed to an increase in spray tip penetration, but a decrease in nozzle diameter could lead to a reduction in spray tip penetration. The spray angle for the 14H70 injector was similar to that of the 8H146 injector. Moreover, injection rate measurements revealed that the slope for a narrow injection angle (70°) was steeper than that for a wider injection angle during the injection event.

선회유동 및 연소인자가 터보과급 디젤엔진의 성능 및 배기가스특성에 미치는 영향 (Effects of Swirl and Combustion Parameters on the Performance and Emission in a Turbocharged D.1. Diesel Engine)

  • 윤준규;차경옥
    • 에너지공학
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    • 제11권2호
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    • pp.90-98
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    • 2002
  • 본 연구는 선회유동과 연소인자가 9.4L인 터보과급 디젤엔진의 성능과 배기가스특성에 미치는 영향을 실험적으로 고찰하였다. 일반적으로 디젤엔진의 연소과정에서 선회유동은 분사되고 있는 연료와 흡칩공기의 혼합을 촉진시켜 줌으로써 엔진성능을 향상시키는데 매우 중요한 인자가 된다. 특히 터보과급 디젤엔진에서는 실린더내의 고온.고압가스로 인하여 연비와 NO$_{x}$ 농도는 서로 상반관계를 가지므로 적절한 용량의 과급기선정으로 흡.배기시스템, 분사시스템 및 연소실의 설계 등을 고려할 필요가 있다. 본 연구의 결과로서, 정상유동실험을 통하여 선회비가 증가함으로써 평균유량계수가 감소하고, 반면에 걸프 펙터가 증가함을 알 수 있었다. 또한 엔진실험을 통하여 흡기포트의 선회비 2.43, 분사시기 BTDC 13$^{\circ}$ CA, 압축비 16, 리앤트란트 5$^{\circ}$형 연소실, 노즐분공경 $\Phi$0.28*6 및 과급기 GT40(압축기 A/R 0.58, 터빈 A/R 1.19)의 적용인자가 최적의 성능 및 배기가스를 만족시킬 수 있었다.

디젤분사계의 특성에 관한 해석적 연구 (An Analytical Study on Characteristics of a Diesel Injection System)

  • 장영준;박호준;전충환
    • Journal of Advanced Marine Engineering and Technology
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    • 제13권4호
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    • pp.63-74
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    • 1989
  • 디젤기관의 연료분사계는 연소실과 함께 디젤기관의 성능에 가장 큰 영향을 미치는 요소의 하나로 이에 대한 이해는 디젤연소 규명에 있어서 매우 중요하다. 그러나 이분사계는 발화 및 완전연소에 필요한 무화, 공기의 이용율을 증가시키는 관통성 및 분포성등의 요건뿐만 아니라 요구되는 분사율, 2차분사 그리고 분사펌프와의 결합등의 많은 문제와 연관되어 있다. 따라서 본 연구에서는 이와 같이 복잡한 디젤기관의 연료분사계를 단순화시켜서 펌프측, 노즐측 및 분사파이프측의 세부분으로 나누어 모델링하여 해석함으로써 새로운 연료분사계의 개발을 위한 기초연구자료를 구하는 것을 목적으로 하였다. 분사파이프내의 압력과 분사계의 실험을 통하여 본 모델의 타당성을 검토하였으며 각 분사계에 있어서 분사량을 최대로 하는 분사파이프직경이 존재함을 확인할 수 있었다.

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디젤단공노즐의 분무특성에 관한 실험적 연구 (Experimental Study on the Spray Characteristics of the Diesel Single Hole Type Nozzle)

  • 안병규;송규근;윤소남;최병오
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2003년도 춘계학술대회 논문집
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    • pp.764-767
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    • 2003
  • The characteristics of diesel spray have much effect on the engine performances such as power. fuel consumption rate and emissions. Therefore, the measurement of fuel spray characteristics is very important for the improvement of heat engine. The factors which control diesel spray characteristics are injection pressure, ambient temperature and density etc. Spray behaviors are visualized by using the high speed video camera and spray angle, spray penetration are measured. Experimental equations of spray penetration and spray angle were derived by using the experimental results. 1) Ambient temperature and density influence on the characteristics of diesel spray. 2) Experimental equation of spray penetration is expressed as follows 0<t< $t_{b}$ ; $S_1$=11.628$\Delta$ $P^{0.485}$ $\rho$$_{a}$ $^{-0.478}$ $t^{1.337}$, $t_{b}$ <t; $S_2$=7.457$\Delta$ $P^{0.523}$ $\rho$$_{a}$ $^{-0.382}$ $t^{0.548}$ 3) Experimental equation of spray Angie is expressed as follows $T_{a}$ =293K; Tan($\theta$/2)=059($\rho$$_{a}$ / $\rho$$_{f}$ )$^{0.437}$, $T_{a}$ =473K; Tan($\theta$/2)=0588($\rho$$_{a}$ / $\rho$$_{f}$ )$^{0.404}$_{f}$ )$^{0.404}$

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Swirl Groove Piston에 의한 바이오 디젤연료의 연소과정에 관한 연구 (A Study on Combustion Process of Biodiesel Fuel using Swirl Groove Piston)

  • 방중철;김성훈
    • 한국자동차공학회논문집
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    • 제17권1호
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    • pp.105-113
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    • 2009
  • The performance of a direct-injection type diesel engine often depends on the strength of swirl or squish, shape of combustion chamber, the number of nozzle holes, etc. This is of course because the combustion in the cylinder was affected by the mixture formation process. In this paper, combustion process of biodiesel fuel was studied by employing the piston which has several grooves with inclined plane on the piston crown to generate swirl during the compression stroke in the cylinder in order to improve the atomization of high viscosity fuel such as biodiesel fuel and toroidal type piston generally used in high speed diesel engine. To take a photograph of flame, single cylinder, four stroke diesel engine was remodeled into two stroke visible engine and high speed video camera was used. The results obtained are summarized as follows; (1) In the case of toroidal piston, when biodiesel fuel was supplied to plunger type injection system which has very low injection pressure as compared with common-rail injection system, the flame propagation speed was slowed and the maximum combustion pressure became lower. These phenomena became further aggravated as the fuel viscosity gets higher. (2) In the case of swirl groove piston, early stage of combustion such as rapid ignition timing and flame propagation was activated by intensifying the air flow in the cylinder. (3) Combustion process of biodiesel fuel was improved by the reason mentioned in paragraph (2) above. Consequently, the swirl grooves would also function to improve the combustion of high viscosity fuel.

디젤분무의 분열과정에 대한 수치해석 연구 (Numerical Study of Breakup Process of Diesel Spray)

  • 염정국;정우성
    • 대한기계학회논문집A
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    • 제37권12호
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    • pp.1489-1495
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    • 2013
  • 유체의 고압유동은 여러 산업현장에 활용되고, 특히 그 중 내연기관의 연료분사 인젝터가 대표적이며 디젤엔진의 커먼레일 시스템의 경우 1000bar 이상의 압력이 사용된다. 이와 같이 고속으로 분출되는 유체유동의 경우, 노즐을 통해 분사되는 고속의 유체는 주위기체와의 상호작용으로 분열과정을 거치게 된다. 이 분열과정은 연소실 혼합기형성기과정에 영향을 주게 되며, 그 결과 엔진의 연소상태에 까지 영향을 미치게 된다. 따라서 연료분무의 분열과정에 대한 해석은 중요하며, 본 연구에서는 연료분무의 분열을 위한 수치해석 서브모델로 Reitz&Diwakar 및 CAB(Cascade atomization and breakup)모델을 사용하였다. 본 연구의 목적은 분사된 분무의 분열과정의 정확한 해석이며, 분사연료의 분열발생 형태의 빈도 등을 조사하였다. 결과로서 본 연구는 상용 CFD 프로그램(CFX)을 이용하여 디젤분무의 분열과정해석을 위한 적합한 분열모델을 제안한다.

커먼레일 디젤인젝터의 분사성능 개선을 위한 내부유로형상 최적화에 관한 수치적 연구 (A Numerical Study on the Geometry Optimization of Internal Flow Passage in the Common-rail Diesel Injector for Improving Injection Performance)

  • 문성준;정수진;이상인;김태훈
    • 한국자동차공학회논문집
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    • 제22권2호
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    • pp.91-99
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    • 2014
  • The common-rail injectors are the most critical component of the CRDI diesel engines that dominantly affect engine performances through high pressure injection with exact control. Thus, from now on the advanced combustion technologies for common-rail diesel injection engine require high performance fuel injectors. Accordingly, the previous studies on the numerical and experimental analysis of the diesel injector have focused on a optimum geometry to induce proper injection rate. In this study, computational predictions of performance of the diesel injector have been performed to evaluate internal flow characteristics for various needle lift and the spray pattern at the nozzle exit. To our knowledge, three-dimensional computational fluid dynamics (CFD) model of the internal flow passage of an entire injector duct including injection and return routes has never been studied. In this study, major design parameters concerning internal routes in the injector are optimized by using a CFD analysis and Response Surface Method (RSM). The computational prediction of the internal flow characteristics of the common-rail diesel injector was carried out by using STAR-CCM+7.06 code. In this work, computations were carried out under the assumption that the internal flow passage is a steady-state condition at the maximum needle lift. The design parameters are optimized by using the L16 orthogonal array and polynomial regression, local-approximation characteristics of RSM. Meanwhile, the optimum values are confirmed to be valid in 95% confidence and 5% significance level through analysis of variance (ANOVA). In addition, optimal design and prototype design were confirmed by calculating the injection quantities, resulting in the improvement of the injection performance by more than 54%.