Dynamic Modelling and Parameter Optimisation of Friction-Induced Panhead Pitching and Dual-Strip Load Redistribution in a Metro Pantograph–Rigid Overhead Contact Line System
Abstract
1. Introduction
2. Materials and Methods
2.1. Pantograph Model with Independent Dual-Strip Contact
2.2. Planar Euler–Bernoulli Beam Model of the Rigid Overhead Contact Line
2.3. Moving-Contact Coupling and Numerical Formulation
3. Model Validation and Representative Adverse Operating Conditions
3.1. Baseline Model Validation
3.2. Representative Low-Temperature and Low-Humidity Scenario
3.3. Dynamic Response Under the Representative Adverse Condition
4. Results and Discussion
4.1. Sensitivity Analysis of Panhead Parameters
4.2. Engineering-Constrained Optimisation of Panhead Parameters
4.3. Robustness and Transferability of the Optimised Design
5. Conclusions
- (1)
- The proposed model resolves independent strip–wire contacts, local spring-box support, longitudinal friction-induced moments and panhead pitching. Baseline validation at 80 km/h shows that the simulated total-contact-force statistics reproduce the measured level with deviations below 20%, supporting comparative coupled-response analysis.
- (2)
- The representative low-temperature, low-humidity and snow-free scenario changes the mean contact force by only 1.58%, but increases its standard deviation and maximum by 25.66% and 38.61%, respectively, while the minimum decreases to 0 N. The principal mechanical effects are therefore fluctuation amplification, local impact and poor-contact risk rather than a change in mean uplift load.
- (3)
- Sensitivity analysis shows that collector-strip half-spacing, nominal spring-box length, equivalent spring-box stiffness and damping influence panhead attitude, force transmission and dual-strip load sharing in different ways. A single-index design cannot resolve these trade-offs.
- (4)
- The sensitivity-guided coordinate-search optimisation reduces the maximum panhead pitch angle from 1.02° to 0.63°, the total-contact-force standard deviation from 50.98 to 39.21 N, and the dual-strip load-imbalance index from 18.59% to 10.33%, corresponding to improvements of 38.24%, 23.09% and 44.43%. The results provide quantitative guidance for local panhead mechanical design under non-uniform contact conditions.
6. Limitations and Future Work
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Bruni, S.; Bucca, G.; Facchinetti, A.; Gregori, S.; Pombo, J. Recent developments on pantograph–overhead line interaction. Veh. Syst. Dyn. 2025, 63, 1358–1394. [Google Scholar] [CrossRef] [Scilit]
- Bruni, S.; Ambrosio, J.; Carnicero, A.; Cho, Y.H.; Finner, L.; Ikeda, M.; Kwon, S.Y.; Massat, J.P.; Stichel, S.; Tur, M.; et al. The results of the pantograph–catenary interaction benchmark. Veh. Syst. Dyn. 2015, 53, 412–435. [Google Scholar] [CrossRef] [Scilit]
- Feng, X.H.; Hu, Z.Y.; Gao, S.B.; Duan, F.C.; Chu, W.P.; Song, Y. Modelling and analysis of the effect of expansion joints on the dynamic performance of railway rigid overhead systems. Sensors 2023, 23, 6797. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wei, X.K.; Meng, H.F.; He, J.H.; Jia, L.M.; Li, Z.G. Wear analysis and prediction of rigid-catenary contact wire and pantograph strip for railway systems. Wear 2020, 442–443, 203118. [Google Scholar] [CrossRef] [Scilit]
- Mei, G.M. Tribological performance of rigid overhead lines against pantograph sliders under DC passage. Tribol. Int. 2020, 151, 106538. [Google Scholar] [CrossRef] [Scilit]
- Wu, Q.; Gu, X.P.; Ma, Z.; Wang, A. A Study on the Vibration Characteristics and Damage Mechanism of Pantograph Strips in a Railway Electrification System. Machines 2022, 10, 710. [Google Scholar] [CrossRef] [Scilit]
- Zhi, X.S.; Zhou, N.; Wei, H.F.; Chen, H.M.; Cheng, Y.; Sun, Y.; Zhao, L.; Huang, G.; Zhang, W. Analysis of abnormal wear of pantograph contact strips through combined experimental and simulation approaches. Sci. Rep. 2025, 15, 45706. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhi, X.S.; Zhou, N.; Cheng, Y.; Wei, H.F.; Yao, Y.M.; Zhang, W.H.; Chen, G.X. Study on wear performance and mechanism of pantograph contact strip that contact with damaged contact wire under ambient humidity. Friction 2026, 14, 9441101. [Google Scholar] [CrossRef] [Scilit]
- Zhi, X.S.; Zhou, N.; Cheng, Y.; Wang, X.; Wei, H.; Chen, G.; Zhang, W. Effect and behaviors of ambient humidity on the wear of metal-impregnated carbon strip in pantograph-catenary system. Tribol. Int. 2023, 188, 108864. [Google Scholar] [CrossRef] [Scilit]
- Shen, M.X.; Ji, D.H.; Hu, Q.; Xiao, L.; Li, Q.P. Current-carrying tribological behaviour of C/Cu contact pairs in extreme temperature and humidity environments for railway catenary systems. Sci. China Technol. Sci. 2024, 67, 2537–2548. [Google Scholar] [CrossRef] [Scilit]
- Ji, D.H.; Xiao, L.; Hu, Q.; Chen, S.Y.; Li, Q.P.; Shen, M.X. Effect of temperature on the current-carrying tribological behaviour of C/Cu contact pairs in high-humidity environments. Tribol. Lett. 2024, 72, 63. [Google Scholar] [CrossRef] [Scilit]
- Tong, L.; Zhang, M.Z.; Hu, S.T.; Ji, Y.M. Changing patterns in the thermal environment of subway tunnels and comprehensive utilisation of waste heat. Buildings 2024, 14, 2524. [Google Scholar] [CrossRef] [Scilit]
- Kimura, K.; Shibata, K.; Sato, M.; Tanita, N.; Yagi, H.; Kondo, Y. Simple estimation formula of air temperature in tunnels: Estimation method for cooling load caused by train wind in an underground station: Part 2. J. Environ. Eng. (Trans. AIJ) 2018, 83, 607–613. [Google Scholar] [CrossRef] [Scilit]
- Morris, A.J. Computer evaluation of controlled pantographs for current collection from simple catenary overhead equipment at high speed. J. Dyn. Syst. Meas. Control 1983, 105, 287–294. [Google Scholar] [CrossRef] [Scilit]
- Schaub, M.; Simeon, B. Pantograph-Catenary Dynamics: An Analysis of Models and Simulation Techniques. Math. Comput. Model. Dyn. Syst. 2001, 7, 225–238. [Google Scholar] [CrossRef] [Scilit]
- Simo, J.C.; Vu-Quoc, L. On the dynamics of flexible beams under large overall motions: The plane case, Part I. J. Appl. Mech. 1986, 53, 849–854. [Google Scholar] [CrossRef] [Scilit]
- Shabana, A.A. Absolute nodal coordinate formulation. J. Mech. Des. 1997, 119, 589–595. [Google Scholar] [CrossRef] [Scilit]
- Shabana, A.A. Computational Continuum Mechanics; Cambridge University Press: Cambridge, UK, 2012. [Google Scholar]
- Seo, J.H.; Kim, S.W.; Jung, I.H.; Park, T.W.; Moon, S.J. Dynamic analysis of a pantograph–catenary system using absolute nodal coordinates. Veh. Syst. Dyn. 2006, 44, 615–630. [Google Scholar] [CrossRef] [Scilit]
- Pappalardo, C.M.; Patel, M.D.; Tinsley, B.; Shabana, A.A. Contact force control in multibody pantograph/catenary systems. Proc. Inst. Mech. Eng. Part K J. Multi-Body Dyn. 2016, 230, 307–328. [Google Scholar] [CrossRef] [Scilit]
- Kulkarni, S.; Pappalardo, C.M.; Shabana, A.A. Pantograph/Catenary Contact Formulations. J. Vib. Acoust. 2017, 139, 011010. [Google Scholar] [CrossRef] [Scilit]
- Qi, W.Y.; Peng, C.B.; Chen, Y.; Mei, G.M.; Zhang, J.W.; Zhang, W.H. Dynamic modelling of railway pantograph with rigid–flexible hybrid model and pantograph–catenary interaction analysis. Veh. Syst. Dyn. 2025. [Google Scholar] [CrossRef] [Scilit]
- Zhang, H.C.; Xu, X.H.; Wu, M.Z.; Zhou, R. Effect of coupled vibration modes of a dual-strip panhead on pantograph–catenary interaction. Acta Mech. Sin. 2025, 41, 524164. [Google Scholar] [CrossRef] [Scilit]
- Gil, J.; Tur, M.; Gregori, S.; Pedrosa, A.M.; Fuenmayor, F.J. Modelling of a high-speed railway pantograph with a nonlinear head-suspension mechanism and parameter optimisation. Nonlinear Dyn. 2025, 113, 11227–11246. [Google Scholar] [CrossRef] [Scilit]
- Chen, G.X. Handbook of Friction–Vibration Interactions; Woodhead Publishing: Oxford, UK, 2014. [Google Scholar]
- Qian, W.J.; Chen, G.X.; Zhang, W.H.; Ouyang, H.; Zhou, Z.R. Friction-induced self-excited vibration of a pantograph–catenary system. J. Vib. Acoust. 2015, 137, 051003. [Google Scholar]
- Amano, Y.; Kobayashi, S.; Yabuno, H.; Yamashita, Y.; Mori, H. Mechanism and suppression of friction-induced vibration in a catenary–pantograph system. Nonlinear Dyn. 2024, 112, 14959–14980. [Google Scholar] [CrossRef] [Scilit]
- Amano, Y.; Kobayashi, S.; Yamashita, Y.; Uji, H.; Yabuno, H. Effects of periodic structures on friction-induced vibrations in catenary–pantograph systems. Tribol. Int. 2025, 203, 110406. [Google Scholar] [CrossRef] [Scilit]
- Li, X.H. Friction-Induced Self-Excited Vibration of Pantograph–Rigid Overhead Contact Line Interaction. Ph.D. Thesis, Southwest Jiaotong University, Chengdu, China, 2022. (In Chinese) [Google Scholar]
- Feng, X.H.; Chen, G.X.; Mei, G.M.; Dong, B.J.; Zhao, P.P.; Li, X.H. Friction-induced self-excited vibration of the metro pantograph–catenary system. J. Southwest Jiaotong Univ. 2025, 60, 418–424. (In Chinese) [Google Scholar]
- Zhou, R.; Xu, X.H. Contact-force surrogate model and its application in pantograph–catenary parameter optimisation. Appl. Sci. 2024, 14, 448. [Google Scholar] [CrossRef] [Scilit]
- Chen, K.; Song, Y.; Lu, X.B.; Duan, F.C. Sensitivity analysis and optimisation of key parameters for a railway rigid overhead system and pantograph. Sustainability 2023, 15, 6803. [Google Scholar] [CrossRef] [Scilit]
- Wu, M.Z.; Liu, Y.; Xu, X.H. Sensitivity analysis and optimisation of parameters of a high-speed pantograph–catenary system. Chin. J. Theor. Appl. Mech. 2021, 53, 75–83. (In Chinese) [Google Scholar]
- Zhang, J.; Liu, W.Z.; Zhang, Z.F. Sensitivity analysis and optimisation methods for design parameters of a high-speed railway catenary. IET Electr. Syst. Transp. 2019, 9, 150–156. [Google Scholar] [CrossRef] [Scilit]
- Wang, H.L.; Zheng, D.Y.; Huang, P.; Yan, W.Y. Multi-objective design optimisation of railway pantograph–catenary systems. Veh. Syst. Dyn. 2023, 61, 2953–2975. [Google Scholar] [CrossRef] [Scilit]
- Pombo, J.; Ambrosio, J. Influence of pantograph suspension characteristics on contact quality with the catenary for high-speed trains. Comput. Struct. 2012, 110–111, 32–42. [Google Scholar] [CrossRef] [Scilit]
- Kim, J.W.; Yu, S.N. Design variable optimization for pantograph system of high-speed train using robust design technique. Int. J. Precis. Eng. Manuf. 2013, 14, 267–273. [Google Scholar] [CrossRef] [Scilit]
- Ambrosio, J.; Pombo, J.; Pereira, M. Optimisation of high-speed railway pantographs for improving pantograph–catenary contact. Theor. Appl. Mech. Lett. 2013, 3, 013006. [Google Scholar] [CrossRef] [Scilit]
- Allotta, B.; Pugi, L.; Bartolini, F. An active suspension system for railway pantographs: The T2006 prototype. Proc. Inst. Mech. Eng. Part F J. Rail Rapid Transit 2009, 223, 15–29. [Google Scholar] [CrossRef] [Scilit]
- Allotta, B.; Pugi, L.; Colla, V.; Bartolini, F.; Cangioli, F. Design and optimisation of a semi-active suspension system for railway applications. J. Mod. Transp. 2011, 19, 223–232. [Google Scholar] [CrossRef] [Scilit]
- Yang, Y.; Zhou, N.; Li, R.P.; Zhang, W.H. Finite-element simulation of dynamic performance in a pantograph–catenary transition section. J. Vib. Shock 2016, 35, 71–75, 116. (In Chinese) [Google Scholar]
- Qi, W.Y. Pantograph Parameter Optimisation and Active Control under Rigid Overhead Contact Line Operating Conditions. Ph.D. Thesis, Southwest Jiaotong University, Chengdu, China, 2022. (In Chinese) [Google Scholar]
- EN 50119:2009; Railway Applications—Fixed Installations—Electric Traction Overhead Contact Lines. European Committee for Electrotechnical Standardization: Brussels, Belgium, 2009.
- EN 50367:2012; Railway Applications—Current Collection Systems—Technical Criteria for the Interaction Between Pantograph and Overhead Line. European Committee for Electrotechnical Standardization: Brussels, Belgium, 2012.
- EN 50317:2012; Railway Applications—Current Collection Systems—Requirements for and Validation of Measurements of the Dynamic Interaction Between Pantograph and Overhead Contact Line. European Committee for Electrotechnical Standardization: Brussels, Belgium, 2012.




















| Contact-Force Statistic | Present Simulation/N | Line-Test Data/N | Relative Error/% |
|---|---|---|---|
| Minimum | 82.43 | 69.64 | 18.37 |
| Maximum | 142.53 | 165.83 | 14.05 |
| Mean | 116.06 | 104.03 | 11.53 |
| Standard deviation | 17.27 | 21.03 | 17.88 |
| Contact-Force Statistic | Baseline Case/N | Representative Adverse Case/N | Change/% |
|---|---|---|---|
| Maximum | 190.40 | 263.92 | 38.61 |
| Minimum | 33.42 | 0.00 | −100.00 |
| Mean | 110.69 | 112.44 | 1.58 |
| Standard deviation | 40.57 | 50.98 | 25.66 |
| Case | Elements per Span | Max. Step (ms) | Max. Pitch (deg) | Fstd (N) | Load Imbalance (%) |
|---|---|---|---|---|---|
| Baseline | 4 | 0.2 | 1.01899 | 50.9804 | 18.5873 |
| Mesh refined | 8 | 0.2 | 1.01829 | 50.9145 | 18.3763 |
| Mesh and step refined | 8 | 0.1 | 1.01829 | 50.9145 | 18.3763 |
| Parameter | Unit | Before Optimisation | After Optimisation | Change/% |
|---|---|---|---|---|
| Collector-strip half-spacing | m | 0.15000 | 0.15000 | 0.00 |
| Nominal spring-box length | m | 0.15060 | 0.10542 | −30.00 |
| Equivalent spring-box stiffness | N/m | 3500 | 2450 | −30.00 |
| Equivalent spring-box damping | N s/m | 80 | 84 | +5.00 |
| Index | Before Optimisation | After Optimisation | Improvement |
|---|---|---|---|
| Maximum panhead pitch angle/ | 1.02° | 0.63° | 38.24% |
| Standard deviation of total contact force/ | 50.98 N | 39.21 N | 23.09% |
| Dual-strip load-imbalance index/ | 18.59% | 10.33% | 44.43% |
| Metric | Baseline Mean ± SD | Optimised Mean ± SD | Improvement Range |
|---|---|---|---|
| Maximum panhead pitch angle (deg) | 0.968 ± 0.031 | 0.604 ± 0.019 | 37.25–37.81% |
| Contact-force standard deviation (N) | 51.103 ± 0.103 | 39.249 ± 0.030 | 23.09–23.30% |
| Dual-strip load-imbalance index (%) | 18.444 ± 0.114 | 10.288 ± 0.049 | 44.01–44.40% |
| Weight Set | [w1, w2, w3] | J Baseline | J Optimised | Reduction |
|---|---|---|---|---|
| W1 reference | [0.40, 0.35, 0.25] | 1.000 | 0.657 | 34.30% |
| W2 pitch priority | [0.50, 0.30, 0.20] | 1.000 | 0.653 | 34.71% |
| W3 load-sharing priority | [0.30, 0.35, 0.35] | 1.000 | 0.650 | 34.96% |
| Condition | Metric | Baseline | Optimised | Change |
|---|---|---|---|---|
| Ordinary 120 km/h | Maximum pitch angle (deg) | 0.463 | 0.283 | −38.79% |
| Ordinary 120 km/h | Contact-force standard deviation (N) | 40.573 | 21.833 | −46.19% |
| Ordinary 120 km/h | Dual-strip load-imbalance index (%) | 8.929 | 4.665 | −47.75% |
| Winter adverse 100 km/h | Maximum pitch angle (deg) | 0.925 | 0.649 | −29.91% |
| Winter adverse 100 km/h | Contact-force standard deviation (N) | 46.942 | 41.489 | −11.62% |
| Winter adverse 100 km/h | Dual-strip load-imbalance index (%) | 18.080 | 10.460 | −42.14% |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Fu, J.; Guan, J.; Chen, J. Dynamic Modelling and Parameter Optimisation of Friction-Induced Panhead Pitching and Dual-Strip Load Redistribution in a Metro Pantograph–Rigid Overhead Contact Line System. Machines 2026, 14, 1064. https://doi.org/10.3390/machines14091064
Fu J, Guan J, Chen J. Dynamic Modelling and Parameter Optimisation of Friction-Induced Panhead Pitching and Dual-Strip Load Redistribution in a Metro Pantograph–Rigid Overhead Contact Line System. Machines. 2026; 14(9):1064. https://doi.org/10.3390/machines14091064
Chicago/Turabian StyleFu, Jiayu, Jinfa Guan, and Junqing Chen. 2026. "Dynamic Modelling and Parameter Optimisation of Friction-Induced Panhead Pitching and Dual-Strip Load Redistribution in a Metro Pantograph–Rigid Overhead Contact Line System" Machines 14, no. 9: 1064. https://doi.org/10.3390/machines14091064
APA StyleFu, J., Guan, J., & Chen, J. (2026). Dynamic Modelling and Parameter Optimisation of Friction-Induced Panhead Pitching and Dual-Strip Load Redistribution in a Metro Pantograph–Rigid Overhead Contact Line System. Machines, 14(9), 1064. https://doi.org/10.3390/machines14091064

