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      KCI등재 SCIE SCOPUS

      Numerical investigation of the high pressure selective catalytic reduction system impact on marine two-stroke diesel engines

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      https://www.riss.kr/link?id=A107883256

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      다국어 초록 (Multilingual Abstract)

      This study aims to investigate the impact of the High Pressure Selective Catalytic Reduction system (SCRHP) on a large marine two-stroke engine performance parameters by employing thermodynamic modelling. A coupled model of the zero-dimensional type i...

      This study aims to investigate the impact of the High Pressure Selective Catalytic Reduction system (SCRHP) on a large marine two-stroke engine performance parameters by employing thermodynamic modelling. A coupled model of the zero-dimensional type is extended to incorporate the modelling of the SCR-HP components and the Control Bypass Valve (CBV) block. This model is employed to simulate several scenarios representing the engine operation at both healthy and degraded conditions considering the compressor fouling and the SCR reactor clogging. The derived results are analysed to quantify the impact of the SCR-HP on the investigated engine performance. The SCR system pressure drop and the cylinder bypass valve flow cause an increase of the engine Specific Fuel Oil Consumption (SFOC) in the range 0.3e2.77 g/kWh. The thermal inertia of the SCR-HP is mainly attributed to the SCR reactor, which causes a delayed turbocharger response. These effects are more pronounced at low engine loads. This study supports the better understanding of the operating characteristics of marine two-stroke diesel engines equipped with the SCR-HP and quantification of the impact of the components degradation on the engine performance.

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      참고문헌 (Reference)

      1 Watson, N., "Turbocharging the Internal Combustion Engine" Macmillan 1982

      2 Tsinoglou, D. N., "Transient modelling of flow distribution in automotive catalytic converters" 28 (28): 775-794, 2004

      3 Gholami, F., "Technologies for the Nitrogen Oxides Reduction from Flue Gas: A Review" 714-, 2020

      4 Sung, Y., "Synergistic effect of mixer and mixing chamber on flow mixing and NOx reduction in a marine urea-SCR system" 150 : 2020

      5 Dang, D., "Some single zone scavenging models for two-stroke engines" 34 (34): 595-604, 1992

      6 Foteinos, M. I., "Simulation of the transient thermal response of a high pressure selective catalytic reduction aftertreatment system for a tier III twostroke marine diesel engine" 141 : 071001-071001, 2019

      7 Sigurdsson, E., "Scavenging Flow in a Two-Stroke Diesel Engine" University of Denmark 2011

      8 Ghojel, J. I., "Review of the development and applications of the wiebe function : a tribute to the contribution of Ivan Wiebe to engine research" 11 (11): 297-312, 2010

      9 UN, "Review of Maritime Transport. United nations conference on trade and development"

      10 Foteinos, M. I., "Response of a direct-drive large marine two-stroke engine coupled to SCR exhaust aftertreatment system when operating in waves" 234 (234): 651-667, 2020

      1 Watson, N., "Turbocharging the Internal Combustion Engine" Macmillan 1982

      2 Tsinoglou, D. N., "Transient modelling of flow distribution in automotive catalytic converters" 28 (28): 775-794, 2004

      3 Gholami, F., "Technologies for the Nitrogen Oxides Reduction from Flue Gas: A Review" 714-, 2020

      4 Sung, Y., "Synergistic effect of mixer and mixing chamber on flow mixing and NOx reduction in a marine urea-SCR system" 150 : 2020

      5 Dang, D., "Some single zone scavenging models for two-stroke engines" 34 (34): 595-604, 1992

      6 Foteinos, M. I., "Simulation of the transient thermal response of a high pressure selective catalytic reduction aftertreatment system for a tier III twostroke marine diesel engine" 141 : 071001-071001, 2019

      7 Sigurdsson, E., "Scavenging Flow in a Two-Stroke Diesel Engine" University of Denmark 2011

      8 Ghojel, J. I., "Review of the development and applications of the wiebe function : a tribute to the contribution of Ivan Wiebe to engine research" 11 (11): 297-312, 2010

      9 UN, "Review of Maritime Transport. United nations conference on trade and development"

      10 Foteinos, M. I., "Response of a direct-drive large marine two-stroke engine coupled to SCR exhaust aftertreatment system when operating in waves" 234 (234): 651-667, 2020

      11 Tang, Y., "Research on the Modeling Methods of Power Engine for Marine Engine Room Simulator" Dalian Maritime University 2018

      12 IMO, "Report of the Marine Environment Protection Committee on its Seventy-First Session, Annex 1 Resolution MEPC.286(71), (Designation of the Baltic Sea and the North Sea Emission Control Areas" International Maritime Organization 2017

      13 Zhang, L., "Recent advances in the preparation of zeolites for the selective catalytic reduction of NOx in diesel engines" 4 : 975-985, 2019

      14 Wang, Z. G., "Reaction mechanism and chemical kinetics of NH3-NO/NO2-SCR system with vanadium-based catalyst under marine diesel exhaust conditions" 234 (234): 342-352, 2020

      15 Hountalas, D. T., "Prediction of marine diesel engine performance under fault conditions" 20 (20): 1753-1783, 2000

      16 Zhu, Y. Q., "Performance optimization of highpressure SCR system in a marine diesel engine" 62 : 27-39, 2019

      17 Zhu, Y. Q., "Performance optimization of highpressure SCR system in a marine diesel engine" 62 : 40-48, 2019

      18 Gan, H. B., "Parametric investigation of pre-injection on the combustion, knocking and emissions behaviour of a large marine four-stroke dual-fuel engine" 281-, 2020

      19 Nahim, H. M., "Oriented review to potential simulator for faults modeling in diesel engine" 21 (21): 533-551, 2016

      20 Zhang, C. F., "Optimisation design of SCR mixer for improving deposit performance at low temperatures" 237 : 465-474, 2019

      21 Hyung Sik Um, "Numerical study on the design of urea decomposition chamber in LP SCR system" 대한조선학회 11 (11): 307-313, 2019

      22 Yu, B., "Numerical simulation study on optimal layout of static mixer in SCR denitration system" 33 (33): 60-62, 2016

      23 Moon, S. J., "Numerical prediction on the influence of mixer on the performance of urea-SCR system" 8 (8): 972-978, 2014

      24 Wang, D.W., "Numerical and thermodynamic study on effects of high and low pressure exhaust gas recirculation on turbocharged marine low-speed engine" 261 : 2020

      25 Choi, C., "Numerical analysis of urea decomposition with static mixers in marine SCR system" 3 (3): 39-42, 2015

      26 최철영, "Numerical analysis of NOx reduction for compact design in marine urea-SCR system" 대한조선학회 7 (7): 1020-1033, 2015

      27 Wang, Z. Y., "Nitrogen oxide removal by coal-based activated carbon for a marine diesel engine" 9 (9): 1656-, 2019

      28 Xi, H. Y., "New experimental results of NO removal from simulated marine engine exhaust gases by Na2S2O8/urea solutions" 362 : 12-20, 2019

      29 Cho, C. P., "NOx reduction and N2O emissions in a diesel engine exhaust using Fe-zeolite and vanadium based SCR catalysts" 110 : 18-24, 2017

      30 Jung, Y., "NOx and N2O emissions over a Urea-SCR system containing both V2O5-WO3/TiO2 and Cu-zeolite catalysts in a diesel engine" 326 : 853-862, 2017

      31 Alegret, G., "Modeling of a large marine two-stroke diesel engine with cylinder bypass valve and EGR system" 48 (48): 273-278, 2015

      32 Chen, W. S., "Mechanism and performance of the SCR of NO with NH3over sulfated sintered ore catalyst" 9 (9): 90-, 2019

      33 Rubio, J. A. P., "Marine diesel engine failure simulator based on thermodynamic model" 144 : 982-995, 2018

      34 MAN B&W, "MAN Emission Project Guide: MAN B&W Two-Stroke Marine Engines" MAN B&W press 2019

      35 Xiao, Y., "Investigation on the control strategy for marine selective catalytic reduction system" 141 (141): 2019

      36 Xiang, L., "Investigation on gaseous fuels interchangeability with an extended zero-dimensional engine model" 183 : 500-514, 2019

      37 Ye, D., "Investigation of the promotion effect of WO3 on the decomposition and reactivity of NH4HSO4 with NO on V2O5-WO3/TiO2 SCR catalysts" 6 : 55584-55592, 2016

      38 Tang, Y., "Investigating the effect of cylinder body on the accuracy of marine diesel engine model" 38 (38): 1836-1843, 2017

      39 M.I. Lamas, "Internal modifications to reduce pollutant emissions from marine engines. A numerical approach" 대한조선학회 5 (5): 493-501, 2013

      40 Heywood, J. B., "Internal Combustion Engine Fundamentals" McGraw-Hill 1988

      41 Zhu, Y. Q., "Influences of NH4NO3 on the NOx reduction pathways with vanadium-based catalyst under diesel exhaust conditions" 92 : 1473-1480, 2018

      42 Li, Y. L., "Hierarchical three-dimensionally ordered macroporous Fe-V binary metal oxide catalyst for low temperature selective catalytic reduction of NOx from marine diesel engine exhaust" 268 : 2020

      43 Pedersen, N., "FMI for Co-simulation of embedded control software" Linkoping University Electronic Press (124) : 70-77, 2016

      44 박태화, "Effect of static mixer geometry on flow mixing and pressure drop in marine SCR applications" 대한조선학회 6 (6): 27-38, 2014

      45 Theotokatos, G., "Development of an extended mean value engine model for predicting the marine two-stroke engine operation at varying settings" 143 : 533-545, 2018

      46 Tang, Y., "Development of a real-time two-stroke marine diesel engine model with in-cylinder pressure prediction capability" 194 : 55-70, 2017

      47 Shen, H., "Development of a marine two-stroke diesel engine MVEM with in-cylinder pressure trace predictive capability and a novel compressor model" 8 (8): 204-, 2020

      48 Spath, N.., "DNV GL releases updated DNV GL NOx TIER III compliance guide"

      49 Vignesh, R., "Critical interpretative review on current outlook and prospects of selective catalytic reduction system for De-NOx strategy in compression ignition engine" 276-, 2020

      50 Chen, P., "Control-oriented modeling and observer-based estimation of solid and gas temperatures for a diesel engine aftertreatment system" 134 (134): 061011-, 2012

      51 Chen, P., "Control-oriented model for integrated diesel engine and aftertreatment systems thermal management" 22 : 81-93, 2014

      52 Zhu, Y. Q., "Combustion and emission characteristics for a marine lowspeed diesel engine with high-pressure SCR system" 27 : 12851-12865, 2020

      53 Galindo, J., "Characterization of a radial turbocharger turbine in pulsating flow by means of CFD and its application to engine modeling" 103 : 116-127, 2013

      54 Shen, H., "Applicable and comparative research of compressor mass flow rate and isentropic efficiency empirical models to marine large-scale compressor" 13 (13): 47-, 2020

      55 IMO, "Annex VI of MARPOL 73/78, Regulations for the Prevention of Air Pollution from Ships and NOx Technical Code"

      56 Zhu, Y. Q., "Ammonium-salt formation and catalyst deactivation in the SCR system for a marine diesel engine" 9 (9): 21-, 2019

      57 Nielsen, J. B., "A system approach to selective catalyst reduction DeNO(x)monolithic reactor modelling using bond graphs" 233 (233): 632-642, 2019

      58 Praveena, V., "A review on various after treatment techniques to reduce NOx emissions in a CI engine" 91 (91): 704-720, 2018

      59 Gu, Y. W., "A potentially overestimated compliance method for the Emission Control Areas" 55 : 51-66, 2017

      60 Benson, R. S., "A new gas dynamic model for the gas exchange process in two stroke loop and cross scavenged engines" 19 (19): 693-711, 1977

      61 Theotokatos, G., "A computational study on the performance and emission parameters mapping of a ship propulsion system" 229 : 58-76, 2015

      62 Woschni, G., "A Universally Applicable Equation for the Instantaneous Heat Transfer Coefficient in the Internal Combustion Engine" SAE 1967

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 SCIE 등재 (등재유지) KCI등재
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      2016 0.56 0.18 0.54
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