111
References
[1] Chan, C. C. e state of the art of electric and hybrid vehicles. Proc. of the IEEE, 90.2
(2002): 247–275. DOI: 10.1109/5.989873. 1
[2] Fredriksson, Jonas, Henrik Weiefors, and Bo Egardt. Powertrain control for active
damping of driveline oscillations. Vehicle System Dynamics, 37.5 (2002): 359–376. DOI:
10.1076/vesd.37.5.359.3527.
[3] eodossiades, Stephanos, et al. Mode identification in impact-induced high-frequency
vehicular driveline vibrations using an elasto-multi-body dynamics approach. Proc. of the
Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics, 218.2 (2004):
81–94. DOI: 10.1243/146441904323074549.
[4] Menday, M. T., Homer Rahnejat, and M. Ebrahimi. Clonk: An onomatopoeic re-
sponse in torsional impact of automotive drivelines. Proc. of the Institution of Mechani-
cal Engineers, Part D: Journal of Automobile Engineering, 213.4 (1999): 349–357. DOI:
10.1243/0954407991526919.
[5] Duoba, Michael, Henry Ng, and Robert Larsen. In-situ mapping and analysis of the
Toyota Prius HEV engine, no. 2000–01-3096. SAE Technical Paper, 2000. DOI:
10.4271/2000-01-3096.
[6] Miller, John M. Hybrid electric vehicle propulsion system architectures of the e-
CVT type. IEEE Transactions on Power Electronics, 21.3 (2006): 756–767. DOI:
10.1109/tpel.2006.872372.
[7] Ahn, Kukhyun, Sungtae Cho, and Suk Won Cha. Optimal operation of the power-
split hybrid electric vehicle powertrain. Proc. of the Institution of Mechanical En-
gineers, Part D: Journal of Automobile Engineering, 222.5 (2008): 789–800. DOI:
10.1243/09544070jauto426.
[8] Canova, Marcello, Yann Guezennec, and Steve Yurkovich. On the control of engine
start/stop dynamics in a hybrid electric vehicle. Journal of Dynamic Systems, Measurement,
and Control, 131.6 (2009): 061005. DOI: 10.1115/1.4000066. 1
[9] Watts, G. R. A comparison of noise measures for assessing vehicle noisiness. Journal of
Sound and Vibration, 180.3 (1995): 493–512. DOI: 10.1006/jsvi.1995.0092. 1
112 REFERENCES
[10] Zhang, Xiaowu, Huei Peng, and Jing Sun. A near-optimal power management strategy
for rapid component sizing of multimode power split hybrid vehicles. IEEE Transactions
on Control Systems Technology, 23.2 (2015): 609–618. DOI: 10.1109/tcst.2014.2335060.
[11] Shiau, Ching-Shin Norman, et al. Optimal plug-in hybrid electric vehicle design and al-
location for minimum life cycle cost, petroleum consumption, and greenhouse gas emis-
sions. Journal of Mechanical Design, 132.9 (2010): 091013. DOI: 10.1115/1.4002194.
[12] Meng, Fei, et al. System modeling, coupling analysis, and experimental validation of a
proportional pressure valve with pulsewidth modulation control. IEEE/ASME Transac-
tions on Mechatronics, 21.3 (2016): 1742–1753. DOI: 10.1109/tmech.2015.2499270.
[13] Kuang, Ming L. An investigation of engine start-stop NVH in a power split pow-
ertrain hybrid electric vehicle, no. 2006–01-1500. SAE Technical Paper, 2006. DOI:
10.4271/2006-01-1500.
[14] Schulz, Marcus. Low-frequency torsional vibrations of a power split hybrid electric vehi-
cle drive train. Modal Analysis, 11.6 (2005): 749–780. DOI: 10.1177/1077546305053661.
1
[15] Huang, Yanjun, et al. A review of power management strategies and component sizing
methods for hybrid vehicles. Renewable and Sustainable Energy Reviews, 96 (2018): 132–
144. DOI: 10.1016/j.rser.2018.07.020. 1
[16] Huang, Yanjun, et al. Model predictive control power management strate-
gies for HEVs: A review. Journal of Power Sources, 341 (2017): 91–106. DOI:
10.1016/j.jpowsour.2016.11.106.
[17] Qin, Yechen, et al. A novel global sensitivity analysis on the observation accu-
racy of the coupled vehicle model. Vehicle System Dynamics (2018): 1–22. DOI:
10.1080/00423114.2018.1517219.
[18] Qin, Yechen, et al. Speed independent road classification strategy based on vehicle re-
sponse: eory and experimental validation. Mechanical Systems and Signal Processing, 117
(2019): 653–666. DOI: 10.1016/j.ymssp.2018.07.035.
[19] Zou, Changfu, et al. Electrothermal dynamics-conscious lithium-ion battery cell-level
charging management via state-monitored predictive control. Energy, 141 (2017): 250–
259. DOI: 10.1016/j.energy.2017.09.048.
[20] Xiaolin Tang, et al. Research on the energy control of a dual-motor hybrid
vehicle during engine start-stop process. Energy, 166 (2019): 1181–1193. DOI:
10.1016/j.energy.2018.10.130. 2
REFERENCES 113
[21] Zou, Changfu, et al. Nonlinear fractional-order estimator with guaranteed robustness
and stability for Lithium-Ion batteries. IEEE Transactions on Industrial Electronics, 65.7
(2018): 5951–5961. DOI: 10.1109/tie.2017.2782691. 1
[22] Duoba, Michael, Henry Ng, and Robert Larsen. Characterization and comparison of two
hybrid electric vehicles (HEVs)—Honda Insight and Toyota Prius, no. 2001–01-1335.
SAE Technical Paper, 2001. DOI: 10.4271/2001-01-1335. 1
[23] Cho, Sungtae, Kukhyun Ahn, and Jang Moo Lee. Efficiency of the planetary gear hybrid
powertrain. Proc. of the Institution of Mechanical Engineers, Part D: Journal of Automobile
Engineering, 220.10 (2006): 1445–1454. DOI: 10.1243/09544070jauto176.
[24] Ahn, Kukhyun, et al. Performance analysis and parametric design of the dual-
mode planetary gear hybrid powertrain. Proc. of the Institution of Mechanical Engi-
neers, Part D: Journal of Automobile Engineering, 220.11 (2006): 1601–1614. DOI:
10.1243/09544070jauto334.
[25] Bellomo, Pietro, et al. Innovative vehicle powertrain systems engineering: beating the
noisy offenders in vehicle transmissions, no. 2000–01-0033. SAE Technical Paper, 2000.
DOI: 10.4271/2000-01-0033.
[26] Eisele, Georg, et al. Application of vehicle interior noise simulation (VINS) for NVH
analysis of a passenger car, no. 2005–01-2514. SAE Technical Paper, 2005. DOI:
10.4271/2005-01-2514.
[27] Govindswamy, Kiran, omas Wellmann, and Georg Eisele. Aspects of NVH integra-
tion in hybrid vehicles. SAE International Journal of Passenger Cars-Mechanical Systems,
2.2009–01-2085 (2009): 1396-1405. DOI: 10.4271/2009-01-2085.
[28] Syed, Fazal U., Ming L. Kuang, and Hao Ying. Active damping wheel-torque control sys-
tem to reduce driveline oscillations in a power-split hybrid electric vehicle. IEEE Transac-
tions on Vehicular Technology, 58.9 (2009): 4769–4785. DOI: 10.1109/tvt.2009.2025953.
[29] Guo, Yichao and Robert G. Parker. Purely rotational model and vibration modes of
compound planetary gears. Mechanism and Machine eory, 45.3 (2010): 365–377. DOI:
10.1016/j.mechmachtheory.2009.09.001.
[30] Parker, Robert G. and Xionghua Wu. Vibration modes of planetary gears with unequally
spaced planets and an elastic ring gear. Journal of Sound and Vibration, 329.11 (2010):
2265–2275. DOI: 10.1016/j.jsv.2009.12.023.
[31] Shin, Won, et al. 6 speed automatic transmission vibration magnitude prediction and
whine noise improvement through transmission system modeling, no. 2011–01-1553.
SAE Technical Paper, 2011. DOI: 10.4271/2011-01-1553. 1
114 REFERENCES
[32] Kahraman, A. Natural modes of planetary gear trains. Journal of Sound Vibration, 173
(1994): 125–130. DOI: 10.1006/jsvi.1994.1222. 1
[33] Sun, Tao and HaiYan Hu. Nonlinear dynamics of a planetary gear system with
multiple clearances. Mechanism and Machine eory, 38.12 (2003): 1371–1390. DOI:
10.1016/s0094-114x(03)00093-4.
[34] Eisele, Georg, et al. Application of vehicle interior noise simulation (VINS) for NVH
analysis of a passenger car, no. 2005–01-2514. SAE Technical Paper, 2005. DOI:
10.4271/2005-01-2514.
[35] Zhang, Lei, et al. Experimental impedance investigation of an ultracapacitor at different
conditions for electric vehicle applications. Journal of Power Sources, 287 (2015): 129–138.
DOI: 10.1016/j.jpowsour.2015.04.043.
[36] Zhang, Jianwu, et al. Multi-body dynamics and noise analysis for the torsional
vibration of a power-split hybrid driveline. Proc. of the Institution of Mechanical
Engineers, Part K: Journal of Multi-body Dynamics, 228.4 (2014): 366–379. DOI:
10.1177/1464419314540152. 1, 20, 26, 28, 34, 40, 70, 86
[37] Li, R., Wang, J. Gear System Dynamics, Science Press, 1997 (in Chinese). 1, 51, 52, 55,
57, 59, 84
[38] Wang, Yongliang, et al. Design and analysis of a multi-stage torsional stiffness dual
mass flywheel based on vibration control. Applied Acoustics, 104 (2016): 172–181. DOI:
10.1016/j.apacoust.2015.11.004.
[39] Pfleghaar, Joachim and Boris Lohmann. e electrical dual mass flywheel-an effi-
cient active damping system. IFAC Proceedings Volumes, 46.21 (2013): 483–488. DOI:
10.3182/20130904-4-jp-2042.00046.
[40] Walter, Andreas, et al. Anti-jerk and idle speed control with integrated sub-harmonic
vibration compensation for vehicles with dual mass flywheels. SAE International Journal
of Fuels and Lubricants, 1.1 (2009): 1267–1276. DOI: 10.4271/2008-01-1737.
[41] Tang, Xiaolin, et al. Novel mathematical modelling methods of comprehensive mesh
stiffness for spur and helical gears. Applied Mathematical Modelling, 64 (2018): 524–540.
DOI: 10.1016/j.apm.2018.08.003.
[42] Tang, Xiaolin, et al. A novel simplified model for torsional vibration analysis of a series-
parallel hybrid electric vehicle. Mechanical Systems and Signal Processing, 85 (2017): 329–
338. DOI: 10.1016/j.ymssp.2016.08.020. 1
REFERENCES 115
[43] Tang, Xiaolin, et al. Novel torsional vibration modeling and assessment of a power-split
hybrid electric vehicle equipped with a dual-mass flywheel. IEEE Transactions on Vehicular
Technology, 67.3 (2018): 1990–2000. DOI: 10.1109/tvt.2017.2769084. 9, 88, 105
[44] Qin, Yechen, et al. A novel nonlinear road profile classification approach for controllable
suspension system: Simulation and experimental validation. Mechanical Systems and Signal
Processing (2018). DOI: 10.1016/j.ymssp.2018.07.015.
[45] Zhang, Xi, Xiaolin Tang, and Wei Yang. Analysis of transmission error and load dis-
tribution of a hoist two-stage planetary gear system. Proc. of the Institution of Mechani-
cal Engineers, Part K: Journal of Multi-body Dynamics (2018): 1464419318770886. DOI:
10.1177/1464419318770886.
[46] Yang, Wei and Xiaolin Tang. Modelling and modal analysis of a hoist equipped
with two-stage planetary gear transmission system. Proc. of the Institution of Mechan-
ical Engineers, Part K: Journal of Multi-body Dynamics, 231.4 (2017): 739–749. DOI:
10.1177/1464419316684067.
[47] Yang, Wei, Xiaolin Tang, and Xiaoan Chen. Nonlinear modelling and transient dynamics
analysis of a hoist equipped with a two-stage planetary gear transmission system. Journal
of Vibroengineering, 17.6 (2015).
[48] Huang, Yanjun, et al. A comparative study of the energy-saving controllers for automo-
tive air-conditioning/refrigeration systems. Journal of Dynamic Systems, Measurement, and
Control, 139.1 (2017): 014504. DOI: 10.1115/1.4034505. 9
[49] Tang, Xiaolin, et al. Torsional vibration and acoustic noise analysis of a compound
planetary power-split hybrid electric vehicle. Proc. of the Institution of Mechanical
Engineers, Part D: Journal of Automobile Engineering, 228.1 (2014): 94–103. DOI:
10.1177/0954407013508276. 5, 19, 25, 29, 64, 69
[50] Tang, Xiaolin, et al. Study on the torsional vibration of a hybrid electric vehicle powertrain
with compound planetary power-split electronic continuous variable transmission. Proc.
of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science,
228.17 (2014): 3107–3115. DOI: 10.1177/0954406214526162. 6
[51] Huang, Yanjun, et al. A supervisory energy-saving controller for a novel anti-idling sys-
tem of service vehicles. IEEE/ASME Transactions on Mechatronics, 22.2 (2017): 1037–
1046. DOI: 10.1109/tmech.2016.2631897.
[52] Huang, Yanjun, et al. An energy-saving set-point optimizer with a sliding mode con-
troller for automotive air-conditioning/refrigeration systems. Applied Energy, 188 (2017):
576–585. DOI: 10.1016/j.apenergy.2016.12.033.
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