Adams CA, Loeper P, Krieger R, Andrie MJ, Foster DE (2013) Effects of biodiesel-gasoline blends on gasoline direct-injection compression ignition (GCI) combustion. Fuel 784–790
Google Scholar
Ansari E, Menucci T, Shahbakhti M, Naber J (2019) Experimental investigation into effects of high reactive fuel on combustion and emission characteristics of the diesel—natural gas reactivity controlled compression ignition engine. App Ener 239:948–956
CrossRef
Google Scholar
Asad U, Zheng M, Tjong J, Wang M (2012) A control strategy analysis for clean and efficient combustion in compression ignition engines. In: The 8th international conference on modelling and diagnostics for advanced engine systems (COMODIA 2012)
Google Scholar
Bahri B, Aziz AA, Shahbakhti M, Said MFM (2013a) Analysis and modeling of exhaust gas temperature in an ethanol fuelled HCCI engine. J Mech Sci Technol 27:3531–3539
CrossRef
Google Scholar
Bahri B, Aziz AA, Shahbakhti M, Muhamad Said MF (2013b) Understanding and detecting misfire in an HCCI engine fuelled with ethanol. App Ener 108:24–33
CrossRef
Google Scholar
Bahri B, Shahbakhti M, Kannan K, Aziz AA (2016) Identification of ringing operation for low temperature combustion engines. App Ener 171:142–152
CrossRef
Google Scholar
Bahri B, Shahbakhti M, Aziz AA (2017) Real-time modeling of ringing in HCCI engines using artificial neural networks. Energy 125:509–518
CrossRef
Google Scholar
Basina LNA, Irdmousa BK, Velni JM, Borhan H, Naber JD, Shahbakhti M (2020) Data-driven modeling and predictive control of maximum pressure rise rate in RCCI engines. In: 2020 IEEE conference on control technology and applications (CCTA), pp 94–99
Google Scholar
Batool S, Naber JD, Shahbakhti M (2021) Data-driven modeling and control of cyclic variability of an engine operating in low temperature combustion modes. In: IFAC modeling, estimation and control conference (MECC), Austin, TX, USA
Google Scholar
Bengtsson J, Strandh P, Johansson R, Tunestål P, Johansson B (2006) Multi-output control of a heavy duty HCCI engine using variable valve actuation and model predictive control. SAE Tech Pap 2006-01-0873
Google Scholar
Bidaravatan M (2015) Physics-based modelling and control of powertrain systems integrated with low temperature combustion engines. Michigan Technological University, Ph.D. thesis
Google Scholar
Bidarvatan M, Shahbakhti M (2014) Gray-box modeling for performance control of an HCCI engine with blended fuels. ASME J Eng Gas Turbines Power 136(10):101510
Google Scholar
Bidarvatan M, Thakkar V, Shahbakhti M, Bahri B, Aziz AA (2014) Grey-box modeling of HCCI engines. App Therm Engg 70:397–409
Google Scholar
Bidarvatan M, Kothari D, Shahbakhti M (2015) Integrated cycle-to-cycle control of exhaust gas temperature, load, and combustion phasing in an HCCI engine. In: 2015 American control conference (ACC), pp 7–12
Google Scholar
Borgqvist P, Tuner M, Mello A, Tunestal P, Johansson B (2012) The usefulness of negative valve overlap for gasoline partially premixed combustion, PPC. SAE Int 0148-7191
Google Scholar
Cairns A, Blaxill H (2007) The effects of two-stage cam profile switching and external EGR on SI-CAI combustion transitions. SAE Tech Pap 2007-01-0187
Google Scholar
Cho K, Han M, Wagner R, Sluder C (2009) Mixed-source EGR for enabling high efficiency clean combustion modes in a light-duty diesel engine. SAE Int J Eng 1:457–465
CrossRef
Google Scholar
Ciatti S, Subramanian SN (2011) An experimental investigation of low-octane gasoline in diesel engines. ASME J Eng Gas Turb Pow 133(9):092802
Google Scholar
Ebrahimi K, Koch C (2015) Model Predictive control for combustion timing and load control in HCCI engines. In: SAE 2015 World Congress & Exhibition
Google Scholar
EIA: International—U.S. Energy Information Administration. EIA
Google Scholar
Fathi M, Jahanian O, Shahbakhti M (2017) Modelling and controller design architecture for cycle-by-cycle combustion control of homogeneous charge compression ignition (HCCI) engines—a comprehensive review. Ener Conver Manag 139:1–19
CrossRef
Google Scholar
Fuerhapter A, Unger E, Piock W, Fraidl G (2004) The new AVL CSI engine—HCCI operation on a multi cylinder gasoline engine. SAE Tech Pap 2004-01-0551
Google Scholar
Gorzelic P (2015) Modeling and model-based control of multi-mode combustion engines for closed-loop SI/HCCI mode transitions with cam switching strategies. University of Michigan, Ph.D. thesis
Google Scholar
Han D, Ickes A, Assanis DN, Zhen H, Bohac SV (2010) The attainment and load extension of high-efficiency premixed low-temperature combustion with dieseline in a compression ignition engine. Ener Fuels 24:3517–3525
CrossRef
Google Scholar
Han S, Bae C, Choi SB (2013) Effects of operating parameters on mode transition between low-temperature combustion and conventional combustion in a light-duty diesel engine. Int J Eng Res 14:231–246
CrossRef
Google Scholar
Hanson R, Reitz R (2015) Investigation of cold starting and combustion mode switching as methods to improve low load RCCI operation. In: Proceeding of the ASME internal combustion engine division 2015 fall technical conference (ICEF 2015), vol 1, Advanced combustion, USA
Google Scholar
Haraldsson G, Tunestål P, Johansson B, Hyvönen J (2004) HCCI closed-loop combustion control using fast thermal management. SAE Tech Pap 2004-01-0943
Google Scholar
Hellstrom E, Larimore J, Jade S, Stefanopoulou AG, Jiang L (2014) Reducing cyclic variability while regulating combustion phasing in a four-cylinder HCCI engine. IEEE Trans Control Syst Technol 22:1190–1197
CrossRef
Google Scholar
Hyvönen J, Haraldsson G, Johansson B (2003) Operating range in a multi cylinder HCCI engine using variable compression ratio. SAE Tech Pap 2003-01-1829
Google Scholar
Hyvönen J, Haraldsson G, Johansson B (2005) Operating conditions using spark assisted HCCI combustion during combustion mode transfer to SI in a multi-cylinder VCR-HCCI engine. SAE Tech Pap 2005-01-0109
Google Scholar
Indrajuana A, Bekdemir C, Luo X, Willems F (2016) Robust multivariable feedback control of natural gas-diesel RCCI combustion. In: 8th IFAC symposium on advances in automotive control AAC 2016, vol 49, pp 217–222
Google Scholar
Indrajuana A, Bekdemir C, Feru E, Willems F (2018) Towards model-based control of RCCI-CDF mode-switching in dual fuel engines. SAE Tech Pap 2018-01-0263
Google Scholar
Irdmousa BK, Rizvi SZ, Veini JM, Naber JD, Shahbakhti M (2019) Data-driven modeling and predictive control of combustion phasing for RCCI engines. In: 2019 American Control Conference (ACC), pp 1617–1622
Google Scholar
Jade S, Hellström E, Larimore J, Stefanopoulou AG, Jiang L (2014) Reference governor for load control in a multicylinder recompression HCCI engine. IEEE Trans Cont Sys Tech 22(4):1408–1421
CrossRef
Google Scholar
Jia M, Dempsey AB, Wang H, Li Y, Reitz RD (2015) Numerical simulation of cyclic variability in reactivity-controlled compression ignition combustion with a focus on the initial temperature at intake valve closing, Int J Eng Res 16:441–460
Google Scholar
Kakuya H, Yamaoka S, Kumano K, Sato S (2008) Investigation of a SI-HCCI combustion switching control method in a multi-cylinder gasoline engine. SAE Tech Pap 2008-01-0792
Google Scholar
Kalghatgi GT, Head RA (2006) Combustion limits and efficiency in a HCCI engine. Int J Eng Res 7:215–236
CrossRef
Google Scholar
Kalghatgi GT, Risberg P, Angstrom HE (2006) Advantages of fuels with high resistance to auto-ignition in late-injection, low-temperature, compression ignition combustion. SAE Trans 115:623–634
Google Scholar
Kalghatgi G, Risberg P, Ångström H (2007) Partially pre-mixed auto-ignition of gasoline to attain low smoke and low NOx at high load in a compression ignition engine and comparison with a diesel fuel. SAE Tech Pap 2007-01-0006
Google Scholar
Karagiorgis S, Glover K, Collings N, Petridis A (2007) Hybrid modeling for switching between SI and HCCI combustion modes. In: 2007 European Control Conference (ECC), pp 62–69
Google Scholar
Kim SH, Bae C (2013) Strategy for mode transition between low temperature combustion and conventional combustion in a diesel engine. SAE Int J Eng 6:1706–1715
CrossRef
Google Scholar
Kim D, Ekoto I, Colban W, Miles P (2009) In-cylinder CO and UHC imaging in a light-duty diesel engine during PPCI low-temperature combustion. SAE Int J Fuels Lubr 1(1):933–956
CrossRef
Google Scholar
Kondipati NNT, Arora JK, Bidarvatan M, Shahbakhti M (2017) Modeling, design and implementation of a closed-loop combustion controller for an RCCI engine. In: 2017 American control conference (ACC), pp 4747–4752
Google Scholar
Koopmans L, Ström H, Lundgren S, Backlund O, Denbratt I (2003) Demonstrating a SI-HCCI-SI mode change on a Volvo 5-cylinder electronic valve control engine. SAE Tech Pap 2003-01-0753
Google Scholar
Krishnamoorthi M, Malayalamurthi R, He Z, Kandasamy S (2019) A review on low temperature combustion engines: Performance, combustion and emission characteristics. Renew Sust Ener Rev 116:109404
Google Scholar
Li D, Wang Z, Liu H, Wang J (2014) Combustion mode switch by integrating stoichiometric ASSCI mode in a four-cylinder gasoline SI/HCCI engine. SAE Tech Pap 2014-01-1288
Google Scholar
Li C, Yin L, Shamun S, Tuner M, Johansson B, Solsjo R, Bai XS (2016) Transition from HCCI to PPC: the sensitivity of combustion phasing to the intake temperature and the injection timing with and without EGR. SAE Tech Pap 2016-01-0767
Google Scholar
Liu Y, Li L, Lu H, Schmitt S, Deng J, Rao L (2019) SI/HCCI mode switching optimization in a gasoline direct injection engine employing dual univalve system. ASME J Eng Gas Turb Pow 141
Google Scholar
Manente V, Johansson B, Tunestal P (2009) Partially premixed combustion at high load using gasoline and ethanol, a comparison with diesel. SAE Tech Pap 2009-01-0944
Google Scholar
Manente V, Zander C, Johansson B, Tunestal P, Cannella W (2010) An advanced internal combustion engine concept for low emissions and high efficiency from idle to max load using gasoline partially premixed combustion. SAE Tech Pap 2010-01-2198
Google Scholar
Mauro AD, Chen H, Sick V (2019) Neural network prediction of cycle-to-cycle power variability in a spark-ignited internal combustion engine. Proc Comb Inst 37:4937–4944
CrossRef
Google Scholar
Milovanovic N, Blundell D, Gedge S, Turner J (2005) SI-HCCI-SI mode transition at different engine operating conditions. SAE Tech Pap 2005-01-0156
Google Scholar
Najt PM, Foster DE (1983) Compression-ignited homogeneous charge combustion. SAE Tech Pap 830264
Google Scholar
Nazemi M, Shahbakhti M (2016) Modeling and analysis of fuel injection parameters for combustion and performance of an RCCI engine. App Ener 165:135–150
CrossRef
Google Scholar
Nier T, Kulzer A, Karrelmeyer R (2012) Analysis of the combustion mode switch between SI and gasoline HCCI. SAE Tech Pap 2012-01-1105
Google Scholar
Ogunkunle O, Ahmed NA (2021) Overview of biodiesel combustion in mitigating the adverse impacts of engine emissions on the sustainable human–environment scenario. Sustainability 13
Google Scholar
Olsson J, Tunestål P, Johansson B (2001) Closed-loop control of an HCCI engine. SAE Tech Pap 2001-01-1031
Google Scholar
Raut A, Irdmousa BK, Shahbakhti M (2018a) Dynamic modeling and model predictive control of an RCCI engine. Cont Engg Prac 129–144(81)
Google Scholar
Raut A, Bidarvatan M, Borhan H, Shahbakhti M (2018b) Model predictive control of an RCCI engine. In: 2018 Annual American Control Conference (ACC), pp 1604–1609
Google Scholar
Ravi N, Liao HH, Jungkunz AF, Widd A, Gerdes JC (2012) Model predictive control of HCCI using variable valve actuation and fuel injection. Cont Engg Prac 20:421–430
CrossRef
Google Scholar
Roelle MJ, Shaver GM, Gerdes JC (2004) Tackling the transition: a multi-mode combustion model of SI and HCCI for mode transition control. In: Proceeding series of the ASME 2004 International mechanical engineering congress and exposition. Dynamic systems and control, Parts A and B, pp 329–336
Google Scholar
Santoso H, Matthews J, Cheng W (2005) Managing SI/HCCI dual-mode engine operation. SAE Tech Pap 2005-01-0162
Google Scholar
Shahbakhti M, Koch CR (2007) Control oriented modeling of combustion phasing for an HCCI Engine. In: 2007 American control conference, pp 3694–3699
Google Scholar
Shahbakhti M, Lupul R, Audet A, Koch CR (2007a) Experimental study of HCCI cyclic variations for low-octane PRF fuel blends. In: Proceeding of Combustion Institute/Canadian Section (CI/CS) Spring Technical Conference
Google Scholar
Shahbakhti M, Lupul R, Koch CR (2007) Sensitivity analysis and modeling of HCCI auto-ignition timing. In: 5th IFAC symposium on advances in automotive control, vol 40, pp 303–310
Google Scholar
Shahbakhti M, Ghazimirsaied A, Koch CR (2010) Experimental study of exhaust temperature variation in a homogeneous charge compression ignition engine. Proc Inst Mech Eng Part D J Auto Engg 224(9):1177–1197
Google Scholar
Shahbakhti M, Koch CR (2008) Characterizing the cyclic variability of ignition timing in a homogeneous charge compression ignition engine fueled with n-heptane/iso-octane blend fuels. Int J Eng Res 9:361–397
CrossRef
Google Scholar
Shaver GM, Roelle MJ, Caton PA, Kaahaaina NB, Ravi N, Hathout JP, Ahmed J, Kojic A, Park S, Edwards CF, Gerdes JC (2005) A physics-based approach to the control of homogeneous charge compression ignition engines with variable valve actuation. Int J Eng Res 6(4):361–375
Google Scholar
Shaver GM, Roelle M, Gerdes JC (2006) A two-input two-output control model of HCCI engines. In: 2006 American control conference, p 6
Google Scholar
Shen M, Tuner M, Johansson B, Cannella W (2013) Effects of EGR and intake pressure on PPC of conventional diesel, gasoline and ethanol in a heavy-duty diesel engine. SAE Tech Pap 2013-01-2702
Google Scholar
Shen M, Lonn S, Johansson B (2015) Transition from HCCI to PPC combustion by means of start of injection. SAE Tech Pap 2015-01-1790
Google Scholar
Singh AP, Agarwal AK (2021) Performance and emission characteristics of conventional diesel combustion/partially premixed charge compression ignition combustion mode switching of biodiesel-fueled engine. Int J Eng Res 22:540–553
CrossRef
Google Scholar
Singh AP, Agarwal AK (2021) Performance and emission characteristics of conventional diesel combustion/partially premixed charge compression ignition combustion mode switching of biodiesel-fueled engine. Int J 1778 Engine Res 22:540–553
Google Scholar
Solouk A, Shakiba-herfeh M, Shahbakhti M (2017) Analysis and control of a torque blended hybrid electric powertrain with a multi-mode LTC-SI engine. SAE Int J Alter P/t 6:54–67
CrossRef
Google Scholar
Souder JS, Mack JH, Hedrick J, Dibble RW (2004) Microphones and knock sensors for feedback control of HCCI engines. In: ASME 2004 internal combustion engine division fall technical conference, California, USA
Google Scholar
Splitter D, Wissink M, DelVescovo D, Reitz R (2013) RCCI engine operation towards 60% thermal efficiency. SAE Tech Pap 2013-01-0279
Google Scholar
Strandh P, Bengtsson J, Johansson R, Tunestål P, Johansson B (2005) Variable valve actuation for timing control of a homogeneous charge compression ignition engine. SAE Tech Pap 2005-01-0147
Google Scholar
Tanabe K, Komatsu F, Nakayama SA (2011) Study on mode transition control between PCI and conventional combustion in a diesel engine. Int J Eng Res 12:69–86
CrossRef
Google Scholar
Taraza D, Henein N, Bryzik W (1998) Determination of the gas pressure torque of a multicylinder engine from measurements of the crankshaft’s speed variation. SAE Pap 980164
Google Scholar
Ternel C, Bouter A, Melgar J (2021) Life cycle assessment of mid-range passenger cars powered by liquid and gaseous biofuels: Comparison with greenhouse gas emissions of electric vehicles and forecast to 2030. Transp Res Part D Transp Environ 97
Google Scholar
Thring RH (1989) Homogeneous-charge compression-ignition (HCCI) engines. SAE Tech Pap 892068
Google Scholar
Tian G, Wang Z, Ge Q, Wang J, Shuai S (2007) Mode switch of SI-HCCI combustion on a GDI engine. SAE Tech Pap 2007-01-0195
Google Scholar
Weall A, Collings N (2007) Highly homogeneous compression ignition in a direct injection diesel engine fuelled with diesel and biodiesel. SAE Tech Pap 2007-01-2020
Google Scholar
Widd A, Liao H, Gerdes JC, Tunestål P, Johansson R (2011) Control of exhaust recompression HCCI using hybrid model predictive control. In: Proceedings of the 2011 American control conference, pp 420–425
Google Scholar
Williams S, Hu L, Nakazono T, Ohtsubo H, Uchida M (2009) Oxidation catalysts for natural gas engine operating under HCCI or SI conditions. SAE Int J Fuels Lubr 1(1):326–337
CrossRef
Google Scholar
Wissink ML (2015) Direct injection for dual fuel stratification DDFS: improving the control of heat release in advanced IC engine combustion strategies. University of Wisconsin, Madison, Ph.D. thesis
Google Scholar
Wu Y, Hanson R, Reitz RD (2014) Investigation of combustion phasing control strategy during reactivity controlled compression ignition (RCCI) multicylinder engine load transitions. ASME J Eng Gas Turb Pow 136
Google Scholar
Xia L, Jager BD, Donkers T, Willems F (2020) Robust constrained optimization for RCCI engines using nested penalized particle swarm. Cont Engg Prac 99:104411
Google Scholar
Yang T, Yin L, Ingesson G, Tunestål P, Johansson R, Long W (2017) Simultaneous control of soot emissions and pressure rise rate in gasoline PPC engine. In: 2017 IEEE Conference on control technology and applications (CCTA), pp 572–577
Google Scholar
Yang T, Yin L, Meng X, Tian H, Long W, Tunestål P (2020) Partially premixed combustion optimization using double injection strategy in transient operation. App Ther Eng 169:114963
Google Scholar
Yao C, Hu Y, Zhou T, Yang F, Ouyang M, Huang H (2016) Combustion stability control of dieseline PPCI based on in-cylinder pressure signals. In: 8th IFAC symposium on advances in automotive control AAC 2016, pp 333–339
Google Scholar
Yin L, Turesson G, Tunestål P, Johansson R (2020) Model predictive control of an advanced multiple cylinder engine with partially premixed combustion concept. IEEE/ASME Trans Mech 25:804–814
CrossRef
Google Scholar
Zhang Y, Xie H, Zhou N, Chen T, Zhao H (2007) Study of SI-HCCI-SI transition on a port fuel injection engine equipped with 4VVAS. SAE Tech Pap 2007-01-0199
Google Scholar
Zhu Q, Prucka R, Wang S, Prucka M, Dourra H (2016) Control oriented modelling of engine IMEP variation. ASME Int Comb Eng Div Fall Tech Conf
Google Scholar