International Multidimensional Engine Modeling, 2018

Size: px
Start display at page:

Download "International Multidimensional Engine Modeling, 2018"

Transcription

1 Numerical Analysis of a Six-Stroke Gasoline Compression Ignition (GCI) Engine Combustion with Continuously Variable Valve Duration (CVVD) Control Oudumbar Rajput 1, Youngchul Ra 1, Kyoung-Pyo Ha 2 1 Mechanical Engineering-Engineering Mechanics, Michigan Technological University 2 Automotive, Research & Development Division, Hyundai Motor Company 1. Abstract A six-stroke GCI engine combustion employing CVVD technique is investigated numerically. To understand the effects of additional two strokes of the engine cycle on the thermal and chemical conditions of charge mixtures, a wide range of valve control through CVVD technique was considered under both positive valve overlap (PVO) and negative valve overlap (NVO) conditions. Simulation results show that the additional two strokes of a 6-stroke GCI engine can effectively recover the energy that may be lost in 4-stroke cycle engines. In addition, the control of valve timings could successfully control the thermodynamic and compositional conditions of in-cylinder mixtures that enable to control the combustion phasing. 2. Introduction To increase the combustion efficiency and to reduce the emissions, a six-stroke engine technology can be used over the conventional four-stroke technology for lower loads [1]. The primary difference between four-stroke and six-stroke cycles is the addition of a second compression and expansion strokes (called 2 nd power stroke) following the first combustion event during the fiest compression and expansion strokes (called 1 st power stroke). In a six-stroke engine, the additional two strokes capture the waste heat of four-stroke-cycle engines, improve the fuel efficiency, and reduce emissions by using the excess oxygen present in the cylinder. The Continuously Variable Valve Duration (CVVD) technique is one of the Variable Valve Actuation (VVA) technologies for minimizing the pumping loss, enhancing the volumetric efficiency, decreasing the amount of the residual gas inside the combustion chamber, and controlling the expansion and compression work. A new CVVD system developed by Hyundai Motor Company (HMC) [2] allows the control of all the valve events independently, regardless of the engine type and engine operating conditions. The maximum benefit of the CVVD control system can be achieved when it is applied to a six-stroke cycle engines, by controlling thermodynamic conditions of the charge mixtures and their subsequent combustion to result in additional improvement of fuel consumption. The objective of this work is to computationally investigate the effects of valve timing strategies using HMC s CVVD technique on the physical/chemical conditions of charge mixtures and their combustion behavior in a gasoline engine running a six-stroke cycle. 3. Methodology 3.1. MTU in-house KIVA code For simulating the fuel/air mixture preparation and combustion in the cylinder, MTU-KIVA-Geq-CHEMKIN code, an in-house version of KIVA code [3, 4] is used. The code employs various physical sub-models for multi-component fuel spray and evaporation [5-7], drop breakup [8], collision and coalescence [3], drop deformation [9], and wall impingement. For modeling flame propagation, Discrete Particle Ignition Kernel (DPIK) model [11] and G-equation model [12] were employed. Volumetric reaction chemistry in computational cells is calculated using Chemkin library [4], MPI parallelization [13] and the SpeedChem model [14]. For the turbulence calculation, the RNG k-ε model [15] was used. Physical properties of gasoline are modeled using a 14-component gasoline surrogate fuel [16]. Whereas, the combustion and emissions kinetics of the fuel are modeled using Group Chemistry Representation (GCR) model [17] and skeletal reaction mechanisms for four chemical surrogate (CS) fuel components viz., isooctane, n-heptane, ethanol and butane. This reduced mechanism consists of 97 species and 384 reactions whose performance was well validated against experimental ignition delay times, HCCI engine combustion, spray combustion in a constant volume chamber CVVD technique Combining the benefits of the Continuously Variable Valve Timing (CVVT) and Continuously Variable Valve Lift (CVVL) technologies, HMC developed a CVVD mechanism that can change the valve duration, while maintaining the same maximum valve lift; the operable duration ranges from 108 to 320 degca, which is a significant extension from that of conventional technologies. All the four valve timings can be independently controlled irrespective of the engine type and the operating conditions. The examples of valve profile are shown in Figure 1. In Fig. 1, it is seen that the valve closure timing can be controlled without affecting the valve open timing while the maximum valve lift remains constant. Figure 1 shows the controllability over valve duration without disturbing the maximum valve lift. 1

2 Figure 1: Nominal Valve Lift Profile: With constant opening point With constant maximum opening point. 4. Engine Specifications and Operating Conditions Figure 2 shows the computational grid used for the simulations. The engine simulated has a pent-roof head and a flat piston bowl with four valves. Engine specifications and simulated operating conditions are shown in Table 1. The compression ratio of the engine is 12.5 and a multi-hole injector with an included spray angle of 120 degrees and nozzle diameter of 134 mm was employed. Injection pressure was 450 bar. Boosted engine operations with an intake pressure of 1.36 bar were simulated at an engine speed of 1300 rev/min. Table 1: Engine specifications and operating conditions Engine specification Displacement [L/cyl] Bore x Stroke [mm x mm] 92 x 115 Compression ratio 12.5:1 Spray included angle [degree] 120 Number of Holes 6 Hole Diameter [mm] Operating conditions Intake manifold pressure [bar] 1.36 Engine speed [rev/min] 1300 Swirl ratio 0 EGR [%] 0 Injection Pressure [bar] 450 Figure 2: A 3-D computational grid with 4-valves used in CFD simulations. A simulation cycle was from 120 to 1200 degca, i.e., from exhaust valve open (EVO) to EVO. In Table 2, valve timings of all simulation cases are listed. IVO/EVO stands for intake/exhaust valve open. IVC/EVC stands for intake/exhaust valve closure. In the case names, the +/- sign after IV or EV indicates retardation/advance and the numbers indicate changed crank angles, i.e., for example, (IV+8) indicates a case with the intake valve open retarded by eight degca maintaining the constant valve duration. The numbers following NVO indicate the duration of NVO period. The numbers following LIVC indicate retarded crank angle of IVC only with IVO fixed. Table 2: Valve timings of simulated cases. Valve timings are in degca Case name IVO IVC EVO EVC Baseline IV IV IV IV IV EV EV EV NVO NVO NVO LIVC LIVC LIVC LIVC Results and Discussion 5.1. Six-stroke engine cycle Two simulation cases are run to understand a sixstroke engine cycle in detail, viz., SinglePulse (50% fuel 2

3 injection at 690 degca and skipping the second injection) and DoublePulse (50%/50% fuel injection at 690 and 1050 degca). Figure 3 shows the nominal valve lift profile of intake and exhaust valves for both the cases. The amount of fuel injected is 12.5mg at 450 bar for each injection event. Figure 3 shows the pressure and heat release rate (HRR) profiles and Fig. 3(c) shows the profiles of unburnt hydrocarbon (UHC) and carbon monoxide (CO) amounts in the cylinder. (c) Figure 3: Nominal valve lift profile with fuel injection timing details Pressure and heat release rate profiles (c) UHC and CO profiles From Figure 3, it is observed that additional heat release is made during the 2 nd power stroke, which indicates that the fuel injected during the 1 st pulse burns incompletely and keeps burning during the 2 nd power stroke. Indeed, the combustion efficiency of the 1 st power stroke at 842 degca (this corresponds to the EVO of the four-stroke cycle engine operation) was calculated to be 59.3 % and it becomes 74.5% at the end of the 2 nd power stroke with additional energy of 79 J released. The additional two strokes of a six-stroke cycle provide supplementary time for UHC and CO to further oxidize. In addition, the compression of gases during the 2 nd power stroke helps enhance the oxidation reactions. However, it is notable that the additional two strokes provide time for both oxidation and mixing of the partially burned gases. Due to decrease of equivalence ratio of local mixtures due to excessive mixing, the temperatures of burned gases are not raised high enough to oxidize CO completely. This results in decrease of UHC, but increase of CO emissions at the end of the 2 nd power stroke, as shown in Fig. 3(c). The 2 nd injection during the 2 nd power stroke helps form richer local mixtures to drive ignition and combustion of the partially burned gases. Due to this, in-cylinder gas pressures and heat release are significantly increased (Fig. 3) and UHC and CO emissions are decreased (Fig. 3(c)), reaching the combustion efficiency of 95.6%. More power is produced during the 2 nd power stroke, which makes it the main power stroke. However, the ignition time in the main power stroke is so early that the improvement of thermal efficiency is limited. The indicated thermal efficiency can be further improved by controlling the combustion phasing. The CVVD technology gives the freedom of controlling valve open duration while maintaining the maximum valve lift in a wide range (up to 320 degca). This enables to control the thermodynamic conditions and composition of in-cylinder mixtures by governing the amount of fresh air and residual exhaust gases, crank angle period for compression stroke etc., and thus ignition/combustion phasing and pressure rise rate can be altered, as well as emissions. Furthermore, combining with a six-stroke cycle engine, the CVVD approach gives wider flexibility and controllability, especially in low load engine operation. This allows an alternative to low load control techniques such as the cylinder deactivation, minimizing the pumping losses and ensuring a balanced (vibration less) engine operation Intake Valve (IV) timing variation with PVO As a way to retard the combustion phasing, simulations with retarded IV timing were performed. IV open duration was maintained constant and EV timings were unaltered. Due to retarding IVC, the effective compression ratio reduces, as seen in Figure 4. This reduces the incylinder gas temperature and the pressure at the start of the 1 st injection (SOI1). 3

4 Figure 4: Effective compression ratio, Ignition delay (1 st and 2 nd fuel injection event), Overall combustion efficiency, Temperature and UHC amount at BDC (900degCA), Pressure profiles during second power stroke Lower pressure affects the fuel atomization and lower temperature reduces the reactivity of the fuel/air mixtures delaying the ignition times (10% release point of injected fuel energy). When IV timing is retarded more than 15 degca, it is seen that combustion becomes so poor that apparent ignition is not observed (partial burning or misfire) during the 1 st power stroke. This misfire timing is extended to more retardation of IV that the charge mixture misfires in the case of IV+25 or with more retardation. Due to the same expiation period, the gas temperatures at 900 degca (BDC) are directly coupled to the compression temperatures and are reduced with increasing retardation of IVC. Similarly, the gas pressures at BDC are decreased with increasing IV retardation. On the contrary, the UHC at 900 degca increases with increasing IVC retardation. Hence, with increasing IV timing retardation, the gas mixtures are at lower temperatures and richer equivalence ratios at the start of 2 nd injection (SOI2). It is predicted that the ignition delay time in the 2 nd power stroke is slightly increased with IV retardation up to 15 degca, but it is substantially increased with additional 10 degca retardation, as shown in Fig. 4. This can be explained by the fact that IV+25 case misfires during the 1 st power stroke that the temperature and pressure at BDC are become much lower than the first three cases. Since the equivalence ratio of the gas mixtures at SOI2 becomes richer, this behavior indicates that the ignition timing of the main power stroke is rather governed by the thermal conditions than the composition effect. With retardation of ignition time towards TDC, the compression work is reduced and the thermal efficiency is improved from 35.2% (baseline) to 39.3% (IV+25). With further retardation of IV timing, the compression temperature reduction in the 2 nd power stroke reduces mixture reactivity too much to make the mixtures ignite within an optimal crank angle window. Near this point mixture ignition becomes so sensitive to IV timing change that the charge mixtures misfire with even additional 5 degca retardation Exhaust Valve (EV) Timing Variation Exhaust valve (EV) timing variation with constant EV open duration was also simulated. With fixed IV timings, advance of EVC reduces PVO duration, eventually leading to NVO conditions. With earlier EVO, in-cylinder gases expand at higher pressures and temperatures to the exhaust manifold pressure. The process can be regarded as an isentropic expansion process, which typically has a larger polytropic coefficient than the expansion stroke before EVO, and thus the final mixture temperatures tend to be slightly lower at the end of expansion. This temperature difference stays quite the same during the subsequent exhaust process until EVC, which is also advanced. With fixed IVO at 352 degca, earlier EVC tend to increase the trapped residual gases to be mixed with the fresh air during the intake process. Thus advancing EV timing has two competing thermal effects; increase of residual gas amount tends to increase the gas temperature at IVC, while lowered expansion temperatures tend to decrease it. It is predicted that the competing effects cancel off each other so that the gas temperatures do not vary much while PVO is maintained. However, as valve timings fall into NVO conditions, IVC gas temperatures are predicted to increase with advancing EV timing (increasing NVO) because the residual gases are compressed during NVO and the temperatures at IVO become higher. Higher residual gas temperatures and larger mass tend to increase the gas mixture temperatures at IVC, which results in advancing ignition timings in the 1 st power stroke. Figure 5 shows pressure and HRR profiles during the 2 nd power stroke, ignition delays and combustion efficiencies. It is seen that the ignition timings in the 2 nd power stroke are quite early and do not change much 4

5 with the NVO variation, which is attributed to improved combustion during the 1 st power stroke. the 2 nd power stroke are significantly early and do not vary much with NVO variation, as shown in the figure. It indicates that the higher burned gas temperatures from better combustion during the 1 st power stroke tends to enhance reaction rates of the 2 nd injection fuel, while the increased combustion product amounts at SOI2 have reactionsuppressing effects. It seems that these effects cancel off each other, resulting similar ignition delay times. As expected from early ignition in the 2 nd power stroke, all test cases showed combustion efficiency comparable to that of the baseline case, with the NVO30 case showing the highest. Figure 5: Pressure (solid line) and Heat Release Rate (dashed line) Profile for 2 nd power stroke Ignition delay (1 st and 2 nd fuel injection event) and Overall combustion efficiency (%) Negative Valve Overlap (NVO) with IVO and EVC change Further investigation of NVO effects were performed. Here NVO variation was obtained by both advancing EVC and retarding IVO timings (refer to Table 2 for detailed timings). As mentioned above, with earlier EVC, the gases in the closed volume are compressed, raising the pressure and temperature of the residual gases higher at TDC, and more residual mass is trapped. However, with later IVO (note that IVO tested are after TDC), the residual gases expand again and the gas temperatures at IVO are significantly reduced, cancelling the longer compression effect to some extent. It is predicted that the gas temperature and pressure at IVO are increased with longer NVO periods. With the same IVC (i.e., effective compression ratio), the thermal conditions and compositions of the gas mixtures at IVC are the main factors to determine the combustion phasing. Hence, ignition delay in the 1 st power stroke is shortened with increasing NVO periods, as shown in Fig. 6. Advanced 1 st ignition leads to better combustion efficiency of the 1 st injection fuel, but more heat loss due to increased burned gas temperature and longer heat transfer time at high temperatures. Interestingly the ignition timings in Figure 6: Ignition delay period (1 st and 2 nd fuel injection event) and Overall combustion efficiency (%) Late Injection Valve Closure (LIVC) This section discusses the effects of retarding IVC only with fixed IVO. Compared to the case IV timing variation discussed above, the effects of intake duration can be investigated. With IVC retardation, it is predicted that the gas temperatures at IVC have minimal increase, as shown in Fig. 7. This indicates that the gas mass in the cylinder during the compression stroke is proportionally reduced with decreasing cylinder volume at IVC, cancelling the likely improvement of the volumetric efficiency. With reduced in-cylinder air mass, the overall equivalence ratio of the mixtures formed by the 1 st injection is increased, which has reactivity-enhancing effects. As discussed in IV timing variation, however, the reduced effective compression ratios tend to reduce the compression temperatures of the gas mixtures. As shown in Fig. 7, the behavior of ignition delays and combustion efficiency is very similar to that of IV timing variation (see Fig. 4). Both the 1 st and 2 nd ignition delays are increased with increasing IVC retardation and combustion efficiency drops with more retardation than a threshold value, resulting in misfire. This implies that intake interval has not significant effects on combustion phasing and it is mainly controlled by IVC timings through thermal effects. 5

6 Figure 7: Temperature profiles after IVC Ignition delays of 1 st and 2 nd power strokes and overall combustion efficiency. 6. Summary and Conclusions A six stroke-cycle engine combustion was simulated and analysis was done in order to understand the effects of additional two strokes on engine performance. It was found that the six-stroke operation successfully recovers the heat energy improving the combustion performance and reducing UHC emission. As an effective way to drive better combustion of the lean unburnt mixture of the 1 st injection fuel, additional fuel injection during the second compression stroke was employed. Double injections were found to be effective to utilize the additional two stokes for the combustion of overly mixed lean charge mixtures during the main power stroke. Parametric simulations were performed to investigate the effects of valve timing strategies on the physical/chemical conditions of charge mixtures and their combustion behavior. It was found that the IVC timing controls combustion phasing in both power strokes since it affects the thermal conditions of the gas mixture at SOI through effective compression ratio variation. Creating NVO with fixed EVO and IVC timings tends to advance SOI of the first power stroke, but has minimal effect on second SOI. The operation of a six-stroke GCI engine could be successfully simulated and the operability range of the engine could be substantially extended by employing the CVVD technique. Reference 1) Arai, M., Amagai, K., and Ida, Y., "New Concept for Six- Stroke Diesel Engine," SAE Technical Paper , 1994, 2) Kyoung-Pyo Ha, Woo Tae Kim, In Sang Ryu, You Sang Son, Development of Continuously Variable Valve Duration (CVVD) Engine, 25th Aachen Colloquium Automobile and Engine Technology, ) Amsden, A.A., KIVA-3V, Release 2, Improvements to KIVA-3V, LA-UR , ) Kee, R.J., Rupley, F.M., Miller, J.A., CHEMKIN-II: A FORTRAN Chemical Kinetics Package for the Analysis of Gas Phase Chemical Kinetics, Sandia Report SAND , ) Ra, Y. and Reitz, R.D., A vaporization model for discrete multi-component fuel sprays, Int. J. Multiphase Flow 35, , ) Kister, H.Z., Distillation Design, McGraw-Hill: New York, ) Standard Test Method for Distillation of Petroleum Products at Atmosphere Pressures, ASTM Standard D 86-04b. In Book of Standards, American Society for Testing and Materials: West Conshohocken, PA: Vol 05,01, ) Beale, J.C., and Reitz, R.D., Modeling Spray Atomization with the Kelvin-Helmholtz/Rayleigh-Taylor Hybrid Model. Atomization and Sprays, 9, , ) Liu, A.B., Mather, D., and Reitz, R.D. Modeling the Effects of Drop Drag and Breakup on Fuel Sprays, SAE Paper , ) O'Rourke, P.J., and Amsden, A.A. A Particle Numerical Model for Wall Film Dynamics in Port-Injected Engines, SAE Paper , ) Fan L., Reitz R.D., Development of Ignition and Combustion Model for Spark-Ignition Engines, SAE Paper , ) Federico Perini, Youngchul Ra, Kenji Hiraoka, Kazutoshi Nomura, Akihiro Yuuki, Yuji Oda, Christopher Rutland, Rolf Reitz, "An efficient level-set flame propagation model for hybrid unstructured grids using the G-Equation", SAE Int. J. of Engines 9(3): , ) 14) Perini F, Galligani E, Reitz RD, "An analytical Jacobian approach to sparse reaction kinetics for computationally efficient combustion modelling with large reaction mechanisms," Energy and Fuels, 26 (8), , ) Han, Z., and Reitz, R.D., Turbulence Modeling of Internal Combustion Engines Using RNG k-e models, Comb. Sci. Tech., 106, , ) Sung-Jun Kim, Youngchul Ra, Yongwook Yu, "CFD Simulation of GDI Engine Cold Start under Extreme Condition with Multicomponent Gasoline Fuels", FISITA World Automotive Congress, F2016-ESYG-010, ) Y. Ra and R. D. Reitz, "A combustion model for multicomponent fuels using a physical surrogate group chemistry representation (PSGCR)", Combustion and Flame, 162, ,

Numerical Study of Multi-Component Spray Combustion with a Discrete Multi- Component Fuel Model

Numerical Study of Multi-Component Spray Combustion with a Discrete Multi- Component Fuel Model Numerical Study of Multi-Component Spray Combustion with a Discrete Multi- Component Fuel Model Y. Ra, and R. D. Reitz Engine Research Center, University of Wisconsin-Madison Madison, Wisconsin 53706 USA

More information

ACTUAL CYCLE. Actual engine cycle

ACTUAL CYCLE. Actual engine cycle 1 ACTUAL CYCLE Actual engine cycle Introduction 2 Ideal Gas Cycle (Air Standard Cycle) Idealized processes Idealize working Fluid Fuel-Air Cycle Idealized Processes Accurate Working Fluid Model Actual

More information

System Simulation for Aftertreatment. LES for Engines

System Simulation for Aftertreatment. LES for Engines System Simulation for Aftertreatment LES for Engines Christopher Rutland Engine Research Center University of Wisconsin-Madison Acknowledgements General Motors Research & Development Caterpillar, Inc.

More information

Homogeneous Charge Compression Ignition combustion and fuel composition

Homogeneous Charge Compression Ignition combustion and fuel composition Loughborough University Institutional Repository Homogeneous Charge Compression Ignition combustion and fuel composition This item was submitted to Loughborough University's Institutional Repository by

More information

Emissions predictions for Diesel engines based on chemistry tabulation

Emissions predictions for Diesel engines based on chemistry tabulation Emissions predictions for Diesel engines based on chemistry tabulation C. Meijer, F.A. Tap AVL Dacolt BV (The Netherlands) M. Tvrdojevic, P. Priesching AVL List GmbH (Austria) 1. Introduction It is generally

More information

Recent Advances in DI-Diesel Combustion Modeling in AVL FIRE A Validation Study

Recent Advances in DI-Diesel Combustion Modeling in AVL FIRE A Validation Study International Multidimensional Engine Modeling User s Group Meeting at the SAE Congress April 15, 2007 Detroit, MI Recent Advances in DI-Diesel Combustion Modeling in AVL FIRE A Validation Study R. Tatschl,

More information

* Corresponding author

* Corresponding author Characterization of Dual-Fuel PCCI Combustion in a Light-Duty Engine S. L. Kokjohn * and R. D. Reitz Department of Mechanical Engineering University of Wisconsin - Madison Madison, WI 5376 USA Abstract.

More information

COMPARISON OF VARIABLE VALVE ACTUATION, CYLINDER DEACTIVATION AND INJECTION STRATEGIES FOR LOW-LOAD RCCI OPERATION OF A LIGHT-DUTY ENGINE

COMPARISON OF VARIABLE VALVE ACTUATION, CYLINDER DEACTIVATION AND INJECTION STRATEGIES FOR LOW-LOAD RCCI OPERATION OF A LIGHT-DUTY ENGINE COMPARISON OF VARIABLE VALVE ACTUATION, CYLINDER DEACTIVATION AND INJECTION STRATEGIES FOR LOW-LOAD RCCI OPERATION OF A LIGHT-DUTY ENGINE Anand Nageswaran Bharath, Yangdongfang Yang, Rolf D. Reitz, Christopher

More information

EFFECT OF INJECTION ORIENTATION ON EXHAUST EMISSIONS IN A DI DIESEL ENGINE: THROUGH CFD SIMULATION

EFFECT OF INJECTION ORIENTATION ON EXHAUST EMISSIONS IN A DI DIESEL ENGINE: THROUGH CFD SIMULATION EFFECT OF INJECTION ORIENTATION ON EXHAUST EMISSIONS IN A DI DIESEL ENGINE: THROUGH CFD SIMULATION *P. Manoj Kumar 1, V. Pandurangadu 2, V.V. Pratibha Bharathi 3 and V.V. Naga Deepthi 4 1 Department of

More information

Module 3: Influence of Engine Design and Operating Parameters on Emissions Lecture 14:Effect of SI Engine Design and Operating Variables on Emissions

Module 3: Influence of Engine Design and Operating Parameters on Emissions Lecture 14:Effect of SI Engine Design and Operating Variables on Emissions Module 3: Influence of Engine Design and Operating Parameters on Emissions Effect of SI Engine Design and Operating Variables on Emissions The Lecture Contains: SI Engine Variables and Emissions Compression

More information

Crankcase scavenging.

Crankcase scavenging. Software for engine simulation and optimization www.diesel-rk.bmstu.ru The full cycle thermodynamic engine simulation software DIESEL-RK is designed for simulating and optimizing working processes of two-

More information

Development of new combustion strategy for internal combustion engine fueled by pure ammonia

Development of new combustion strategy for internal combustion engine fueled by pure ammonia Development of new combustion strategy for internal combustion engine fueled by pure ammonia Dongeun Lee, Hyungeun Min, Hyunho park, Han Ho Song Seoul National University Department of Mechanical Engineering

More information

INVESTIGATION ON EFFECT OF EQUIVALENCE RATIO AND ENGINE SPEED ON HOMOGENEOUS CHARGE COMPRESSION IGNITION COMBUSTION USING CHEMISTRY BASED CFD CODE

INVESTIGATION ON EFFECT OF EQUIVALENCE RATIO AND ENGINE SPEED ON HOMOGENEOUS CHARGE COMPRESSION IGNITION COMBUSTION USING CHEMISTRY BASED CFD CODE Ghafouri, J., et al.: Investigation on Effect of Equivalence Ratio and Engine Speed on... THERMAL SCIENCE: Year 2014, Vol. 18, No. 1, pp. 89-96 89 INVESTIGATION ON EFFECT OF EQUIVALENCE RATIO AND ENGINE

More information

Potential of Large Output Power, High Thermal Efficiency, Near-zero NOx Emission, Supercharged, Lean-burn, Hydrogen-fuelled, Direct Injection Engines

Potential of Large Output Power, High Thermal Efficiency, Near-zero NOx Emission, Supercharged, Lean-burn, Hydrogen-fuelled, Direct Injection Engines Available online at www.sciencedirect.com Energy Procedia 29 (2012 ) 455 462 World Hydrogen Energy Conference 2012 Potential of Large Output Power, High Thermal Efficiency, Near-zero NOx Emission, Supercharged,

More information

VALVE TIMING DIAGRAM FOR SI ENGINE VALVE TIMING DIAGRAM FOR CI ENGINE

VALVE TIMING DIAGRAM FOR SI ENGINE VALVE TIMING DIAGRAM FOR CI ENGINE VALVE TIMING DIAGRAM FOR SI ENGINE VALVE TIMING DIAGRAM FOR CI ENGINE Page 1 of 13 EFFECT OF VALVE TIMING DIAGRAM ON VOLUMETRIC EFFICIENCY: Qu. 1:Why Inlet valve is closed after the Bottom Dead Centre

More information

EEN-E2002 Combustion Technology 2017 LE 3 answers

EEN-E2002 Combustion Technology 2017 LE 3 answers EEN-E2002 Combustion Technology 2017 LE 3 answers 1. Plot the following graphs from LEO-1 engine with data (Excel_sheet_data) attached on my courses? (12 p.) a. Draw cyclic pressure curve. Also non-fired

More information

Improving Fuel Efficiency with Fuel-Reactivity-Controlled Combustion

Improving Fuel Efficiency with Fuel-Reactivity-Controlled Combustion ERC Symposium 2009 1 Improving Fuel Efficiency with Fuel-Reactivity-Controlled Combustion Rolf D. Reitz, Reed Hanson, Derek Splitter, Sage Kokjohn Engine Research Center University of Wisconsin-Madison

More information

Variations of Exhaust Gas Temperature and Combustion Stability due to Changes in Spark and Exhaust Valve Timings

Variations of Exhaust Gas Temperature and Combustion Stability due to Changes in Spark and Exhaust Valve Timings Variations of Exhaust Gas Temperature and Combustion Stability due to Changes in Spark and Exhaust Valve Timings Yong-Seok Cho Graduate School of Automotive Engineering, Kookmin University, Seoul, Korea

More information

The effect of ethanolled gasoline on the performance and gaseous and particulate emissions on a 2/4-stroke switchable DI engine Yan Zhang & Hua Zhao

The effect of ethanolled gasoline on the performance and gaseous and particulate emissions on a 2/4-stroke switchable DI engine Yan Zhang & Hua Zhao The effect of ethanolled gasoline on the performance and gaseous and particulate emissions on a 2/4-stroke switchable DI engine Yan Zhang & Hua Zhao Centre for Advanced Powertrain and Fuels (CAPF) Brunel

More information

A Study of EGR Stratification in an Engine Cylinder

A Study of EGR Stratification in an Engine Cylinder A Study of EGR Stratification in an Engine Cylinder Bassem Ramadan Kettering University ABSTRACT One strategy to decrease the amount of oxides of nitrogen formed and emitted from certain combustion devices,

More information

Chapter 4 ANALYTICAL WORK: COMBUSTION MODELING

Chapter 4 ANALYTICAL WORK: COMBUSTION MODELING a 4.3.4 Effect of various parameters on combustion in IC engines: Compression ratio: A higher compression ratio increases the pressure and temperature of the working mixture which reduce the initial preparation

More information

A Computational Investigation of Two-Stage Combustion in a Light-Duty Engine

A Computational Investigation of Two-Stage Combustion in a Light-Duty Engine A Computational Investigation of Two-Stage Combustion in a Light-Duty Engine Sage L. Kokjohn and Rolf D. Reitz University of Wisconsin-Madison, Engine Research Center Abstract. The objective of this investigation

More information

Gas exchange and fuel-air mixing simulations in a turbocharged gasoline engine with high compression ratio and VVA system

Gas exchange and fuel-air mixing simulations in a turbocharged gasoline engine with high compression ratio and VVA system Third Two-Day Meeting on Internal Combustion Engine Simulations Using the OpenFOAM technology, Milan 22 nd -23 rd February 2018. Gas exchange and fuel-air mixing simulations in a turbocharged gasoline

More information

8 th International Symposium TCDE Choongsik Bae and Sangwook Han. 9 May 2011 KAIST Engine Laboratory

8 th International Symposium TCDE Choongsik Bae and Sangwook Han. 9 May 2011 KAIST Engine Laboratory 8 th International Symposium TCDE 2011 Choongsik Bae and Sangwook Han 9 May 2011 KAIST Engine Laboratory Contents 1. Background and Objective 2. Experimental Setup and Conditions 3. Results and Discussion

More information

INFLUENCE OF FUEL TYPE AND INTAKE AIR PROPERTIES ON COMBUSTION CHARACTERISTICS OF HCCI ENGINE

INFLUENCE OF FUEL TYPE AND INTAKE AIR PROPERTIES ON COMBUSTION CHARACTERISTICS OF HCCI ENGINE ENGINEERING FOR RURAL DEVELOPMENT Jelgava, 23.-24.5.213. INFLUENCE OF FUEL TYPE AND INTAKE AIR PROPERTIES ON COMBUSTION CHARACTERISTICS OF HCCI ENGINE Kastytis Laurinaitis, Stasys Slavinskas Aleksandras

More information

COMPUTATIONAL MODELING OF DIESEL AND DUAL FUEL COMBUSTION USING CONVERGE CFD SOFTWARE

COMPUTATIONAL MODELING OF DIESEL AND DUAL FUEL COMBUSTION USING CONVERGE CFD SOFTWARE COMPUTATIONAL MODELING OF DIESEL AND DUAL FUEL COMBUSTION USING CONVERGE CFD SOFTWARE Wan Nurdiyana Wan Mansor 1 and Daniel B. Olsen 2 1 School of Ocean Engineering, Universiti Malaysia Terengganu, Malaysia

More information

EXAMINATION OF INITIALIZATION AND GEOMETRIC DETAILS ON THE RESULTS OF CFD SIMULATIONS OF DIESEL ENGINES

EXAMINATION OF INITIALIZATION AND GEOMETRIC DETAILS ON THE RESULTS OF CFD SIMULATIONS OF DIESEL ENGINES International Multi-Dimensional Engine Modeler Meeting April 19, 2009, Detroit, MI EXAMINATION OF INITIALIZATION AND GEOMETRIC DETAILS ON THE RESULTS OF CFD SIMULATIONS OF DIESEL ENGINES Mike Bergin University

More information

Overview & Perspectives for Internal Combustion Engine using STAR-CD. Marc ZELLAT

Overview & Perspectives for Internal Combustion Engine using STAR-CD. Marc ZELLAT Overview & Perspectives for Internal Combustion Engine using STAR-CD Marc ZELLAT TOPICS Quick overview of ECFM family models Examples of validation for Diesel and SI-GDI engines Introduction to multi-component

More information

CFD Combustion Models for IC Engines. Rolf D. Reitz

CFD Combustion Models for IC Engines. Rolf D. Reitz CFD Combustion Models for IC Engines Rolf D. Reitz Engine Research Center University of Wisconsin-Madison ERC Symposium, June 7, 27 http://www.cae.wisc.edu/~reitz Combustion and Emission Models at the

More information

Dual Fuel Engine Charge Motion & Combustion Study

Dual Fuel Engine Charge Motion & Combustion Study Dual Fuel Engine Charge Motion & Combustion Study STAR-Global-Conference March 06-08, 2017 Berlin Kamlesh Ghael, Prof. Dr. Sebastian Kaiser (IVG-RF), M. Sc. Felix Rosenthal (IFKM-KIT) Introduction: Operation

More information

NUMERICAL INVESTIGATION OF EFFECT OF EXHAUST GAS RECIRCULATION ON COMPRESSIONIGNITION ENGINE EMISSIONS

NUMERICAL INVESTIGATION OF EFFECT OF EXHAUST GAS RECIRCULATION ON COMPRESSIONIGNITION ENGINE EMISSIONS ISSN (Online) : 2319-8753 ISSN (Print) : 2347-6710 International Journal of Innovative Research in Science, Engineering and Technology An ISO 3297: 2007 Certified Organization, Volume 2, Special Issue

More information

Combustion PVM-MF. The PVM-MF model has been enhanced particularly for dualfuel

Combustion PVM-MF. The PVM-MF model has been enhanced particularly for dualfuel Contents Extensive new capabilities available in STAR-CD/es-ice v4.20 Combustion Models see Marc Zellat presentation Spray Models LES New Physics Developments in v4.22 Combustion Models PVM-MF Crank-angle

More information

PDF-based simulations of in-cylinder combustion in a compression-ignition engine

PDF-based simulations of in-cylinder combustion in a compression-ignition engine Paper # 070IC-0192 Topic: Internal Combustion Engines 8 th US National Combustion Meeting Organized by the Western States Section of the Combustion Institute and hosted by the University of Utah May 19-22,

More information

Numerical Study of Flame Lift-off and Soot Formation in Diesel Fuel Jets

Numerical Study of Flame Lift-off and Soot Formation in Diesel Fuel Jets Numerical Study of Flame Lift-off and Soot Formation in Diesel Fuel Jets Song-Charng Kong*, Yong Sun and Rolf D. Reitz Engine Research Center, Department of Mechanical Engineering University of Wisconsin

More information

Progress in Predicting Soot Particle Numbers in CFD Simulations of GDI and Diesel Engines

Progress in Predicting Soot Particle Numbers in CFD Simulations of GDI and Diesel Engines International Multidimensional Engine Modeling User's Group Meeting April 20, 2015, Detroit, Michigan Progress in Predicting Soot Particle Numbers in CFD Simulations of GDI and Diesel Engines Abstract

More information

3D CFD Modeling of Gas Exchange Processes in a Small HCCI Free Piston Engine

3D CFD Modeling of Gas Exchange Processes in a Small HCCI Free Piston Engine 3D CFD Modeling of Gas Exchange Processes in a Small HCCI Free Piston Engine Aimilios Sofianopoulos, Benjamin Lawler, Sotirios Mamalis Department of Mechanical Engineering Stony Brook University Email:

More information

Control of PCCI Combustion using Physical and Chemical Characteristics of Mixed Fuel

Control of PCCI Combustion using Physical and Chemical Characteristics of Mixed Fuel Doshisha Univ. - Energy Conversion Research Center International Seminar on Recent Trend of Fuel Research for Next-Generation Clean Engines December 5th, 27 Control of PCCI Combustion using Physical and

More information

Gas exchange Processes. Typical valve timing diagram

Gas exchange Processes. Typical valve timing diagram Gas exchange Processes To move working fluid in and out of engine Engine performance is air limited Engines are usually optimized for maximum power at high speed Considerations 4-stroke engine: volumetric

More information

CHAPTER 8 EFFECTS OF COMBUSTION CHAMBER GEOMETRIES

CHAPTER 8 EFFECTS OF COMBUSTION CHAMBER GEOMETRIES 112 CHAPTER 8 EFFECTS OF COMBUSTION CHAMBER GEOMETRIES 8.1 INTRODUCTION Energy conservation and emissions have become of increasing concern over the past few decades. More stringent emission laws along

More information

Module7:Advanced Combustion Systems and Alternative Powerplants Lecture 32:Stratified Charge Engines

Module7:Advanced Combustion Systems and Alternative Powerplants Lecture 32:Stratified Charge Engines ADVANCED COMBUSTION SYSTEMS AND ALTERNATIVE POWERPLANTS The Lecture Contains: DIRECT INJECTION STRATIFIED CHARGE (DISC) ENGINES Historical Overview Potential Advantages of DISC Engines DISC Engine Combustion

More information

Recent enhancement to SI-ICE combustion models: Application to stratified combustion under large EGR rate and lean burn

Recent enhancement to SI-ICE combustion models: Application to stratified combustion under large EGR rate and lean burn Recent enhancement to SI-ICE combustion models: Application to stratified combustion under large EGR rate and lean burn G. Desoutter, A. Desportes, J. Hira, D. Abouri, K.Oberhumer, M. Zellat* TOPICS Introduction

More information

Marc ZELLAT, Driss ABOURI, Thierry CONTE and Riyad HECHAICHI CD-adapco

Marc ZELLAT, Driss ABOURI, Thierry CONTE and Riyad HECHAICHI CD-adapco 16 th International Multidimensional Engine User s Meeting at the SAE Congress 2006,April,06,2006 Detroit, MI RECENT ADVANCES IN SI ENGINE MODELING: A NEW MODEL FOR SPARK AND KNOCK USING A DETAILED CHEMISTRY

More information

Combustion. T Alrayyes

Combustion. T Alrayyes Combustion T Alrayyes Fluid motion with combustion chamber Turbulence Swirl SQUISH AND TUMBLE Combustion in SI Engines Introduction The combustion in SI engines inside the engine can be divided into three

More information

EXPERIMENTAL INVESTIGATION OF THE EFFECT OF HYDROGEN BLENDING ON THE CONCENTRATION OF POLLUTANTS EMITTED FROM A FOUR STROKE DIESEL ENGINE

EXPERIMENTAL INVESTIGATION OF THE EFFECT OF HYDROGEN BLENDING ON THE CONCENTRATION OF POLLUTANTS EMITTED FROM A FOUR STROKE DIESEL ENGINE EXPERIMENTAL INVESTIGATION OF THE EFFECT OF HYDROGEN BLENDING ON THE CONCENTRATION OF POLLUTANTS EMITTED FROM A FOUR STROKE DIESEL ENGINE Haroun A. K. Shahad hakshahad@yahoo.com Department of mechanical

More information

Foundations of Thermodynamics and Chemistry. 1 Introduction Preface Model-Building Simulation... 5 References...

Foundations of Thermodynamics and Chemistry. 1 Introduction Preface Model-Building Simulation... 5 References... Contents Part I Foundations of Thermodynamics and Chemistry 1 Introduction... 3 1.1 Preface.... 3 1.2 Model-Building... 3 1.3 Simulation... 5 References..... 8 2 Reciprocating Engines... 9 2.1 Energy Conversion...

More information

Module 2:Genesis and Mechanism of Formation of Engine Emissions Lecture 9:Mechanisms of HC Formation in SI Engines... contd.

Module 2:Genesis and Mechanism of Formation of Engine Emissions Lecture 9:Mechanisms of HC Formation in SI Engines... contd. Mechanisms of HC Formation in SI Engines... contd. The Lecture Contains: HC from Lubricating Oil Film Combustion Chamber Deposits HC Mixture Quality and In-Cylinder Liquid Fuel HC from Misfired Combustion

More information

CHAPTER 1 INTRODUCTION

CHAPTER 1 INTRODUCTION 1 CHAPTER 1 INTRODUCTION 1.1 GENERAL Diesel engines are the primary power source of vehicles used in heavy duty applications. The heavy duty engine includes buses, large trucks, and off-highway construction

More information

A COMPREHENSIVE NUMERICAL STUDY OF THE ETHANOL BLENDED FUEL EFFECT ON THE PERFORMANCE AND POLLUTANT EMISSIONS IN SPARK-IGNITION ENGINE

A COMPREHENSIVE NUMERICAL STUDY OF THE ETHANOL BLENDED FUEL EFFECT ON THE PERFORMANCE AND POLLUTANT EMISSIONS IN SPARK-IGNITION ENGINE Zangooee Motlagh, M. R., Modarres Razavi, M. R.: A Comprehensive Numerical Study... THERMAL SCIENCE: Year 2014, Vol. 18, No. 1, pp. 29-38 29 A COMPREHENSIVE NUMERICAL STUDY OF THE ETHANOL BLENDED FUEL

More information

The Effect of Volume Ratio of Ethanol Directly Injected in a Gasoline Port Injection Spark Ignition Engine

The Effect of Volume Ratio of Ethanol Directly Injected in a Gasoline Port Injection Spark Ignition Engine 10 th ASPACC July 19 22, 2015 Beijing, China The Effect of Volume Ratio of Ethanol Directly Injected in a Gasoline Port Injection Spark Ignition Engine Yuhan Huang a,b, Guang Hong a, Ronghua Huang b. a

More information

TECHNICAL PAPER FOR STUDENTS AND YOUNG ENGINEERS - FISITA WORLD AUTOMOTIVE CONGRESS, BARCELONA

TECHNICAL PAPER FOR STUDENTS AND YOUNG ENGINEERS - FISITA WORLD AUTOMOTIVE CONGRESS, BARCELONA TECHNICAL PAPER FOR STUDENTS AND YOUNG ENGINEERS - FISITA WORLD AUTOMOTIVE CONGRESS, BARCELONA 2 - TITLE: Topic: INVESTIGATION OF THE EFFECTS OF HYDROGEN ADDITION ON PERFORMANCE AND EXHAUST EMISSIONS OF

More information

STATE OF THE ART OF PLASMATRON FUEL REFORMERS FOR HOMOGENEOUS CHARGE COMPRESSION IGNITION ENGINES

STATE OF THE ART OF PLASMATRON FUEL REFORMERS FOR HOMOGENEOUS CHARGE COMPRESSION IGNITION ENGINES Bulletin of the Transilvania University of Braşov Vol. 3 (52) - 2010 Series I: Engineering Sciences STATE OF THE ART OF PLASMATRON FUEL REFORMERS FOR HOMOGENEOUS CHARGE COMPRESSION IGNITION ENGINES R.

More information

Introduction to combustion

Introduction to combustion Introduction to combustion EEN-E005 Bioenergy 1 017 D.Sc (Tech) ssi Kaario Motivation Why learn about combustion? Most of the energy in the world, 70-80%, is produced from different kinds of combustion

More information

AN EXPERIMENT STUDY OF HOMOGENEOUS CHARGE COMPRESSION IGNITION COMBUSTION AND EMISSION IN A GASOLINE ENGINE

AN EXPERIMENT STUDY OF HOMOGENEOUS CHARGE COMPRESSION IGNITION COMBUSTION AND EMISSION IN A GASOLINE ENGINE THERMAL SCIENCE: Year 2014, Vol. 18, No. 1, pp. 295-306 295 AN EXPERIMENT STUDY OF HOMOGENEOUS CHARGE COMPRESSION IGNITION COMBUSTION AND EMISSION IN A GASOLINE ENGINE by Jianyong ZHANG *, Zhongzhao LI,

More information

Figure 1: The spray of a direct-injecting four-stroke diesel engine

Figure 1: The spray of a direct-injecting four-stroke diesel engine MIXTURE FORMATION AND COMBUSTION IN CI AND SI ENGINES 7.0 Mixture Formation in Diesel Engines Diesel engines can be operated both in the two-stroke and four-stroke process. Diesel engines that run at high

More information

Evolution of Particle Size Distribution within the Engine Exhaust and Aftertreatment System

Evolution of Particle Size Distribution within the Engine Exhaust and Aftertreatment System Evolution of Particle Size Distribution within the Engine Exhaust and Aftertreatment System A. J. Smallbone (1, 2), D. Z. Y. Tay (2), W. L. Heng (2), S. Mosbach (2), A. York (2,3), M. Kraft (2) (1) cmcl

More information

INFLUENCE OF INTAKE AIR TEMPERATURE AND EXHAUST GAS RECIRCULATION ON HCCI COMBUSTION PROCESS USING BIOETHANOL

INFLUENCE OF INTAKE AIR TEMPERATURE AND EXHAUST GAS RECIRCULATION ON HCCI COMBUSTION PROCESS USING BIOETHANOL ENGINEERING FOR RURAL DEVELOPMENT Jelgava, 2.-27..216. INFLUENCE OF INTAKE AIR TEMPERATURE AND EXHAUST GAS RECIRCULATION ON HCCI COMBUSTION PROCESS USING BIOETHANOL Kastytis Laurinaitis, Stasys Slavinskas

More information

Thermo-Kinetic Model to Predict Start of Combustion in Homogeneous Charge Compression Ignition Engine

Thermo-Kinetic Model to Predict Start of Combustion in Homogeneous Charge Compression Ignition Engine Thermo-Kinetic Model to Predict Start of Combustion in Homogeneous Charge Compression Ignition Engine Harshit Gupta and J. M. Malliarjuna Abstract Now-a-days homogeneous charge compression ignition combustion

More information

REDUCTION OF EMISSIONS BY ENHANCING AIR SWIRL IN A DIESEL ENGINE WITH GROOVED CYLINDER HEAD

REDUCTION OF EMISSIONS BY ENHANCING AIR SWIRL IN A DIESEL ENGINE WITH GROOVED CYLINDER HEAD REDUCTION OF EMISSIONS BY ENHANCING AIR SWIRL IN A DIESEL ENGINE WITH GROOVED CYLINDER HEAD Dr.S.L.V. Prasad 1, Prof.V.Pandurangadu 2, Dr.P.Manoj Kumar 3, Dr G. Naga Malleshwara Rao 4 Dept.of Mechanical

More information

Study of Performance and Environmental Emissions of a Gasoline Spark Ignition Engine

Study of Performance and Environmental Emissions of a Gasoline Spark Ignition Engine ENERGY ENVIRONMENT International Journal of Sustainable Future for Human Security J-SustaiN Vol., No. (03 8 4 http://www.j-sustain.com Study of Performance and Environmental Emissions of a Gasoline Spark

More information

Maximizing Engine Efficiency by Controlling Fuel Reactivity Using Conventional and Alternative Fuels. Sage Kokjohn

Maximizing Engine Efficiency by Controlling Fuel Reactivity Using Conventional and Alternative Fuels. Sage Kokjohn Maximizing Engine Efficiency by Controlling Fuel Reactivity Using Conventional and Alternative Fuels Sage Kokjohn Acknowledgments Direct-injection Engine Research Consortium (DERC) US Department of Energy/Sandia

More information

Effect of Tangential Grooves on Piston Crown Of D.I. Diesel Engine with Retarded Injection Timing

Effect of Tangential Grooves on Piston Crown Of D.I. Diesel Engine with Retarded Injection Timing International Journal of Engineering Research and Development e-issn: 2278-067X, p-issn : 2278-800X, www.ijerd.com Volume 5, Issue 10 (January 2013), PP. 01-06 Effect of Tangential Grooves on Piston Crown

More information

POSIBILITIES TO IMPROVED HOMOGENEOUS CHARGE IN INTERNAL COMBUSTION ENGINES, USING C.F.D. PROGRAM

POSIBILITIES TO IMPROVED HOMOGENEOUS CHARGE IN INTERNAL COMBUSTION ENGINES, USING C.F.D. PROGRAM POSIBILITIES TO IMPROVED HOMOGENEOUS CHARGE IN INTERNAL COMBUSTION ENGINES, USING C.F.D. PROGRAM Alexandru-Bogdan Muntean *, Anghel,Chiru, Ruxandra-Cristina (Dica) Stanescu, Cristian Soimaru Transilvania

More information

Powertrain Efficiency Technologies. Turbochargers

Powertrain Efficiency Technologies. Turbochargers Powertrain Efficiency Technologies Turbochargers Turbochargers increasingly are being used by automakers to make it possible to use downsized gasoline engines that consume less fuel but still deliver the

More information

COMBUSTION CONTROL IN GASOLINE HCCI ENGINE WITH DIRECT FUEL INJECTION AND EXHAUST GAS TRAPPING

COMBUSTION CONTROL IN GASOLINE HCCI ENGINE WITH DIRECT FUEL INJECTION AND EXHAUST GAS TRAPPING Journal of KONES Powertrain and Transport, Vol. 17, No. 2 2010 COMBUSTION CONTROL IN GASOLINE HCCI ENGINE WITH DIRECT FUEL INJECTION AND EXHAUST GAS TRAPPING Jacek Hunicz Lublin University of Technology

More information

Effect of piston profile on performance and emission characteristics of a GDI engine with split injection strategy A CFD study

Effect of piston profile on performance and emission characteristics of a GDI engine with split injection strategy A CFD study IOP Conference Series: Materials Science and Engineering PAPER OPEN ACCESS Effect of piston profile on performance and emission characteristics of a GDI engine with split injection strategy A CFD study

More information

is the crank angle between the initial spark and the time when about 10% of the charge is burned. θ θ

is the crank angle between the initial spark and the time when about 10% of the charge is burned. θ θ ME 410 Day 30 Phases of Combustion 1. Ignition 2. Early flame development θd θ 3. Flame propagation b 4. Flame termination The flame development angle θd is the crank angle between the initial spark and

More information

Incorporation of Flamelet Generated Manifold Combustion Closure to OpenFOAM and Lib-ICE

Incorporation of Flamelet Generated Manifold Combustion Closure to OpenFOAM and Lib-ICE Multiphase and Reactive Flows Group 3 rd Two-day Meeting on IC Engine Simulations Using OpenFOAM Technology 22-23 Feb 2018 - Milano Incorporation of Flamelet Generated Manifold Combustion Closure to OpenFOAM

More information

Simulation of Performance Parameters of Spark Ignition Engine for Various Ignition Timings

Simulation of Performance Parameters of Spark Ignition Engine for Various Ignition Timings Research Article International Journal of Current Engineering and Technology ISSN 2277-4106 2013 INPRESSCO. All Rights Reserved. Available at http://inpressco.com/category/ijcet Simulation of Performance

More information

The Influence of Port Fuel Injection on Combustion Stability

The Influence of Port Fuel Injection on Combustion Stability 28..9 Technical The Influence of Port Fuel Injection on Combustion Stability Shoichi Kato, Takanori Hayashida, Minoru Iida Abstract The demands on internal combustion engines for low emissions and fuel

More information

EXPERIMENTAL VALIDATION AND COMBUSTION MODELING OF A JP-8 SURROGATE IN A SINGLE CYLINDER DIESEL ENGINE

EXPERIMENTAL VALIDATION AND COMBUSTION MODELING OF A JP-8 SURROGATE IN A SINGLE CYLINDER DIESEL ENGINE EXPERIMENTAL VALIDATION AND COMBUSTION MODELING OF A JP-8 SURROGATE IN A SINGLE CYLINDER DIESEL ENGINE Amit Shrestha, Umashankar Joshi, Ziliang Zheng, Tamer Badawy, Naeim A. Henein, Wayne State University,

More information

Effect of Reformer Gas on HCCI Combustion- Part II: Low Octane Fuels

Effect of Reformer Gas on HCCI Combustion- Part II: Low Octane Fuels Effect of Reformer Gas on HCCI Combustion- Part II: Low Octane Fuels Vahid Hosseini, and M David Checkel Mechanical Engineering University of Alberta, Edmonton, Canada project supported by Auto21 National

More information

A Comparison of Numerical Results for an Optically Accessible HSDI Diesel Engine with Experimental Data

A Comparison of Numerical Results for an Optically Accessible HSDI Diesel Engine with Experimental Data A Comparison of Numerical Results for an Optically Accessible HSDI Diesel Engine with Experimental Data Way Lee Cheng, Robert Wang, Jared Zhao and Chia-fon F. Lee Department of Mechanical and Industrial

More information

REVIEW ON GASOLINE DIRECT INJECTION

REVIEW ON GASOLINE DIRECT INJECTION International Journal of Aerospace and Mechanical Engineering REVIEW ON GASOLINE DIRECT INJECTION Jayant Kathuria B.Tech Automotive Design Engineering jkathuria97@gmail.com ABSTRACT Gasoline direct-injection

More information

IC Engines Roadmap. STAR-CD/es-ice v4.18 and Beyond. Richard Johns

IC Engines Roadmap. STAR-CD/es-ice v4.18 and Beyond. Richard Johns IC Engines Roadmap STAR-CD/es-ice v4.18 and Beyond Richard Johns Strategy es-ice v4.18 2D Automated Template Meshing Spray-adapted Meshing Physics STAR-CD v4.18 Contents Sprays: ELSA Spray-Wall Impingement

More information

Normal vs Abnormal Combustion in SI engine. SI Combustion. Turbulent Combustion

Normal vs Abnormal Combustion in SI engine. SI Combustion. Turbulent Combustion Turbulent Combustion The motion of the charge in the engine cylinder is always turbulent, when it is reached by the flame front. The charge motion is usually composed by large vortexes, whose length scales

More information

Investigation on Diesel Engine for Airflow and Combustion in a Hemispherical Combustion Chamber

Investigation on Diesel Engine for Airflow and Combustion in a Hemispherical Combustion Chamber International Journal of Current Engineering and Technology E-ISSN 2277 4106, P-ISSN 2347 5161 2015INPRESSCO, All Rights Reserved Available at http://inpressco.com/category/ijcet Research Article Investigation

More information

Study of Performance and Emission Characteristics of a Two Stroke Si Engine Operated with Gasoline Manifold Injectionand Carburetion

Study of Performance and Emission Characteristics of a Two Stroke Si Engine Operated with Gasoline Manifold Injectionand Carburetion Indian Journal of Science and Technology, Vol 9(37), DOI: 10.17485/ijst/2016/v9i37/101984, October 2016 ISSN (Print) : 0974-6846 ISSN (Online) : 0974-5645 Study of Performance and Emission Characteristics

More information

A REVIEW OF SCAVENGING PROCESS OF TWO STROKE ENGINE

A REVIEW OF SCAVENGING PROCESS OF TWO STROKE ENGINE A REVIEW OF SCAVENGING PROCESS OF TWO STROKE ENGINE Prakash Kumar Sen 1, Lalit Kumar 2, Shailendra Kumar Bohidar 3 1 Student of M.Tech. Manufacturing Management, BITS Pilani (India) 2 Student of Mechanical

More information

SWIRL MEASURING EQUIPMENT FOR DIRECT INJECTION DIESEL ENGINE

SWIRL MEASURING EQUIPMENT FOR DIRECT INJECTION DIESEL ENGINE SWIRL MEASURING EQUIPMENT FOR DIRECT INJECTION DIESEL ENGINE G.S.Gosavi 1, R.B.Solankar 2, A.R.Kori 3, R.B.Chavan 4, S.P.Shinde 5 1,2,3,4,5 Mechanical Engineering Department, Shivaji University, (India)

More information

MODELING AND ANALYSIS OF DIESEL ENGINE WITH ADDITION OF HYDROGEN-HYDROGEN-OXYGEN GAS

MODELING AND ANALYSIS OF DIESEL ENGINE WITH ADDITION OF HYDROGEN-HYDROGEN-OXYGEN GAS S465 MODELING AND ANALYSIS OF DIESEL ENGINE WITH ADDITION OF HYDROGEN-HYDROGEN-OXYGEN GAS by Karu RAGUPATHY* Department of Automobile Engineering, Dr. Mahalingam College of Engineering and Technology,

More information

1 ERC Symposium - Future Engines and Their Fuels

1 ERC Symposium - Future Engines and Their Fuels Future Fuels and Reactivity Controlled Compression Ignition (RCCI) Rolf D. Reitz, Reed M. Hanson, Sage L. Kokjohn, Derek A. Splitter, Adam Dempsey, Bishwadipa Das Adhikary, Sandeep Viswanathan, ERC Students

More information

Effects of Pre-injection on Combustion Characteristics of a Single-cylinder Diesel Engine

Effects of Pre-injection on Combustion Characteristics of a Single-cylinder Diesel Engine Proceedings of the ASME 2009 International Mechanical Engineering Congress & Exposition IMECE2009 November 13-19, Lake Buena Vista, Florida, USA IMECE2009-10493 IMECE2009-10493 Effects of Pre-injection

More information

Influence of ANSYS FLUENT on Gas Engine Modeling

Influence of ANSYS FLUENT on Gas Engine Modeling Influence of ANSYS FLUENT on Gas Engine Modeling George Martinas, Ovidiu Sorin Cupsa 1, Nicolae Buzbuchi, Andreea Arsenie 2 1 CERONAV 2 Constanta Maritime University Romania georgemartinas@ceronav.ro,

More information

Module 2:Genesis and Mechanism of Formation of Engine Emissions Lecture 3: Introduction to Pollutant Formation POLLUTANT FORMATION

Module 2:Genesis and Mechanism of Formation of Engine Emissions Lecture 3: Introduction to Pollutant Formation POLLUTANT FORMATION Module 2:Genesis and Mechanism of Formation of Engine Emissions POLLUTANT FORMATION The Lecture Contains: Engine Emissions Typical Exhaust Emission Concentrations Emission Formation in SI Engines Emission

More information

Flow Simulation of Diesel Engine for Prolate Combustion Chamber

Flow Simulation of Diesel Engine for Prolate Combustion Chamber IJIRST National Conference on Recent Advancements in Mechanical Engineering (RAME 17) March 2017 Flow Simulation of Diesel Engine for Prolate Combustion Chamber R.Krishnakumar 1 P.Duraimurugan 2 M.Magudeswaran

More information

Numerical Study on the Combustion and Emission Characteristics of Different Biodiesel Fuel Feedstocks and Blends Using OpenFOAM

Numerical Study on the Combustion and Emission Characteristics of Different Biodiesel Fuel Feedstocks and Blends Using OpenFOAM Numerical Study on the Combustion and Emission Characteristics of Different Biodiesel Fuel Feedstocks and Blends Using OpenFOAM Harun M. Ismail 1, Xinwei Cheng 1, Hoon Kiat Ng 1, Suyin Gan 1 and Tommaso

More information

Advanced Combustion Strategies for High Efficiency Engines of the 21 st Century

Advanced Combustion Strategies for High Efficiency Engines of the 21 st Century Advanced Combustion Strategies for High Efficiency Engines of the 21 st Century Jason Martz Assistant Research Scientist and Adjunct Assistant Professor Department of Mechanical Engineering University

More information

Natural Gas fuel for Internal Combustion Engine

Natural Gas fuel for Internal Combustion Engine Natural Gas fuel for Internal Combustion Engine L. Bartolucci, S. Cordiner, V. Mulone, V. Rocco University of Rome Tor Vergata Department of Industrial Engineering Outline Introduction Motivations and

More information

Development of High-efficiency Gas Engine with Two-stage Turbocharging System

Development of High-efficiency Gas Engine with Two-stage Turbocharging System 64 Development of High-efficiency Gas Engine with Two-stage Turbocharging System YUTA FURUKAWA *1 MINORU ICHIHARA *2 KAZUO OGURA *2 AKIHIRO YUKI *3 KAZURO HOTTA *4 DAISUKE TAKEMOTO *4 A new G16NB gas engine

More information

PERFORMANCE AND EMISSION ANALYSIS OF DIESEL ENGINE BY INJECTING DIETHYL ETHER WITH AND WITHOUT EGR USING DPF

PERFORMANCE AND EMISSION ANALYSIS OF DIESEL ENGINE BY INJECTING DIETHYL ETHER WITH AND WITHOUT EGR USING DPF PERFORMANCE AND EMISSION ANALYSIS OF DIESEL ENGINE BY INJECTING DIETHYL ETHER WITH AND WITHOUT EGR USING DPF PROJECT REFERENCE NO. : 37S1036 COLLEGE BRANCH GUIDES : KS INSTITUTE OF TECHNOLOGY, BANGALORE

More information

Kul Internal Combustion Engine Technology. Definition & Classification, Characteristics 2015 Basshuysen 1,2,3,4,5

Kul Internal Combustion Engine Technology. Definition & Classification, Characteristics 2015 Basshuysen 1,2,3,4,5 Kul-14.4100 Internal Combustion Engine Technology Definition & Classification, Characteristics 2015 Basshuysen 1,2,3,4,5 Definitions Combustion engines convert the chemical energy of fuel to mechanical

More information

Numerically Analysing the Effect of EGR on Emissions of DI Diesel Engine Having Toroidal Combustion Chamber Geometry

Numerically Analysing the Effect of EGR on Emissions of DI Diesel Engine Having Toroidal Combustion Chamber Geometry Numerically Analysing the Effect of EGR on Emissions of DI Diesel Engine Having Toroidal Combustion Chamber Geometry Jibin Alex 1, Biju Cherian Abraham 2 1 Student, Dept. of Mechanical Engineering, M A

More information

(v) Cylinder volume It is the volume of a gas inside the cylinder when the piston is at Bottom Dead Centre (B.D.C) and is denoted by V.

(v) Cylinder volume It is the volume of a gas inside the cylinder when the piston is at Bottom Dead Centre (B.D.C) and is denoted by V. UNIT II GAS POWER CYCLES AIR STANDARD CYCLES Air standard cycles are used for comparison of thermal efficiencies of I.C engines. Engines working with air standard cycles are known as air standard engines.

More information

Which are the four important control loops of an spark ignition (SI) engine?

Which are the four important control loops of an spark ignition (SI) engine? 151-0567-00 Engine Systems (HS 2017) Exercise 1 Topic: Lecture 1 Johannes Ritzmann (jritzman@ethz.ch), Raffi Hedinger (hraffael@ethz.ch); October 13, 2017 Problem 1 (Control Systems) Why do we use control

More information

Modelling Combustion in DI-SI using the G-equation Method and Detailed Chemistry: Emissions and knock. M.Zellat, D.Abouri, Y.Liang, C.

Modelling Combustion in DI-SI using the G-equation Method and Detailed Chemistry: Emissions and knock. M.Zellat, D.Abouri, Y.Liang, C. Modelling Combustion in DI-SI using the G-equation Method and Detailed Chemistry: Emissions and knock Realize innovation. M.Zellat, D.Abouri, Y.Liang, C.Kralj Main topics of the presentation 1. Context

More information

Abstract 1. INTRODUCTION

Abstract 1. INTRODUCTION Abstract Study on Performance Characteristics of Scuderi Split Cycle Engine Sudeer Gowd Patil 1, Martin A.J. 2, Ananthesha 3 1- M.Sc. [Engg.] Student, 2-Asst. Professor, 3-Asst.Professor, Department of

More information

The influence of thermal regime on gasoline direct injection engine performance and emissions

The influence of thermal regime on gasoline direct injection engine performance and emissions IOP Conference Series: Materials Science and Engineering PAPER OPEN ACCESS The influence of thermal regime on gasoline direct injection engine performance and emissions To cite this article: C I Leahu

More information

COMPARISON OF BREAKUP MODELS IN SIMULATION OF SPRAY DEVELOPMENT IN DIRECT INJECTION SI ENGINE

COMPARISON OF BREAKUP MODELS IN SIMULATION OF SPRAY DEVELOPMENT IN DIRECT INJECTION SI ENGINE Journal of KONES Powertrain and Transport, Vol. 17, No. 4 2010 COMPARISON OF BREAKUP MODELS IN SIMULATION OF SPRAY DEVELOPMENT IN DIRECT INJECTION SI ENGINE Przemys aw wikowski, Piotr Jaworski, Andrzej

More information

PPC FOR LOW LOAD CONDITIONS IN MARINE ENGINE USING COMPUTATIONAL AND EXPERIMENTAL TECHNIQUES

PPC FOR LOW LOAD CONDITIONS IN MARINE ENGINE USING COMPUTATIONAL AND EXPERIMENTAL TECHNIQUES PPC FOR LOW LOAD CONDITIONS IN MARINE ENGINE USING COMPUTATIONAL AND EXPERIMENTAL TECHNIQUES Presented By:Kendra Shrestha Authors: K.Shrestha, O.Kaario, M. Imperato, T. Sarjovaara, M. Larmi Internal Combusion

More information

GT-Suite Users International Conference Frankfurt a.m., October 22 nd 2012

GT-Suite Users International Conference Frankfurt a.m., October 22 nd 2012 GT-Suite Users International Conference Frankfurt a.m., October 22 nd 2012 Computational Analysis of Internal and External EGR Strategies combined with Miller Cycle Concept for a Two Stage Turbocharged

More information