Designing Supporting Structures of Passenger Ropeways of Minimum Cost Based on Modular Intermediate Towers of Discretely Variable Height

Alexander V. Lagerev , Igor A. Lagerev

Urban Rail Transit ›› 2020, Vol. 6 ›› Issue (4) : 265 -277.

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Urban Rail Transit ›› 2020, Vol. 6 ›› Issue (4) : 265 -277. DOI: 10.1007/s40864-020-00137-0
Original Research Papers

Designing Supporting Structures of Passenger Ropeways of Minimum Cost Based on Modular Intermediate Towers of Discretely Variable Height

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Abstract

Passenger ropeways are a promising alternative for the development of public transport infrastructure in large cities. However, the construction of ropeways has a rather high cost and requires taking into account a significant number of restrictions associated with the features of the existing urban development and the placement of urban infrastructure. The main objective of this research is to develop optimization models that minimize the total cost of modular intermediate towers of a discretely variable height and a rope system due to the optimal placement and selection of the height of these towers, taking into account the features of the surface topography and urban development. The proposed modular principle for the construction of intermediate towers also enables the cost of construction to be further reduced. As a specific example, the design of a ropeway in the city of Bryansk, which has a complex terrain, is considered. The developed models are conveniently used at the initial stage of the design of the ropeway to compare the cost of various options for the location of the ropeway route in order to reduce the risk of error when choosing the least expensive option. The calculation results can serve as a guide for a preliminary assessment of the number and height of intermediate towers, their installation locations on the ground and the characteristics of the cable system.

Keywords

Aerial passenger ropeway / Urban environment / Step of towers / Height of towers / Optimization / Cost

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Alexander V. Lagerev, Igor A. Lagerev. Designing Supporting Structures of Passenger Ropeways of Minimum Cost Based on Modular Intermediate Towers of Discretely Variable Height. Urban Rail Transit, 2020, 6(4): 265-277 DOI:10.1007/s40864-020-00137-0

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References

[1]

Vuchic V. Urban transit systems and technology, 2007, Hoboken: Wiley

[2]

Garsous G, Suárez-Alemán A, Serebrisky T (2017) Cable cars in urban transport: travel time savings from La Paz-El Alto (Bolivia). Transport Policy. Banco Inter-Americano de Desarrollo, Washington, DC. https://doi.org/10.1016/j.tranpol.2017.05.005

[3]

Hoffmann K. Recent developments in cable-drawn urban transport systems. FME Trans, 2006, 34: 205-212.

[4]

Nikšić M, Gašparović S. Geographic and traffic aspects of possibilities for implementing ropeway systems in passenger transport. Promet Traffic Trans, 2010, 22(5): 389-398

[5]

Escobar-García D, García-Orozco F, Cadena-Gaitán C (2013) Political determinants and impact analysis of using a cable system as a complement to an urban transport system. Maastricht University UNU-MERIT Working Paper Series: 2013-017

[6]

Tiessler M, Engelhardt R, Bogenberger R, Hessel C, Serwa-Klamouri M. Integration of an urban ropeway into Munich’s transit system demand modeling. Transp Res Rec, 2019, 2673(10): 47-57

[7]

El-Jouzou H (2016) A comparative study of aerial ropeway transit (ART) systems. Advantages and possibilities. A thesis of Master of Sciences. Frankfurt University of Applied Sciences Master Dissertation

[8]

Beňo P, Krilek J, Kováč J, Kozak D, Fragassa C. The analysis of the new conception transportation cableway system based on the tractor equipment. FME Trans, 2018, 46: 17-22

[9]

Mohan D (2009) Intelligent transportation systems (ITS) and the transportation system. UNESCO-Encyclopedia Life Support Systems. http://greenplanet.eolss.net/EolssLogn/LoginForm.aspx. Accessed 26 June 2007

[10]

Winter JA, Sesma I, Funda M (2016) Case study of cable-propelled transit to be an alternative application to conventional means of public transportation. In: 15th International conference on automated people movers and automated transit systems 2016: innovation in a rapidly urbanizing world, Toronto, Canada. https://doi.org/10.1061/9780784479797.025

[11]

Korotkiy AA, Lagerev AV, Meskhi BC, Lagerev IA, Panfilov AV (2017) The development of transport infrastructure of large cities and territories on the basis of technology of passenger ropeways. DGTU, Rostov-on-Don. https://doi.org/10.5281/zenodo.1311913

[12]

Tarichko VI, Khimich AV. Comprehensive model of the mobile transport and overloading rope complex. Nauchno-tekhnicheskiy vestnik Bryanskogo gosudarstvennogo universiteta, 2019, 4: 523-532

[13]

Chu N. (2012) Overview of urban gondolas: implications and opportunities for implementation in Chinese cities. In: Proceedings of 12th COTA international conference of transportation professionals. Beijing, China. https://doi.org/10.1061/9780784412442.342

[14]

Alshalalfah B, Shalaby A, Dale S. Experiences with aerial ropeway transportation systems in the urban environment. J Urban Plan Dev, 2014, 140(1): 04013001

[15]

Nuessgen M (2015) Urban ropeways in Europe. Creating opportunities in urban development. Eurist-European Institute for Sustainable Transport, pp 1–27. https://doi.org/10.13140/RG.2.1.1446.2163

[16]

Lagerev AV, Lagerev IA. Prospects of introduction of innovative technology overhead passenger traffic on the basis of the passenger ropeways for the modernization of the public transport system of the Bryansk city. Nauchno-tekhnicheskiy vestnik Bryanskogo gosudarstvennogo universiteta, 2017, 2: 163-177

[17]

Metro de Medellin. https://www.metrodemedellin.gov.co/. Accessed 22 Aug 2020

[18]

Thaler H, Wenin M, Brunner J, Reiterer D, Bertotti ML, Modanese G, Oberhuber E (2015) Numerical optimization in cable railway planning. In: Proceedings of 9th international conference on advanced computational engineering and experimenting. Springer, Munich

[19]

Lagerev AV, Lagerev IA. Optimizing the step of installation of intermediate tower structures along the ropeway line. Vestnik Bryanskogo gosudarstvennogo universiteta, 2014, 4: 22-30

[20]

Thaler H, Wenin M, Brunner J, Reiterer D, Bertotti ML, Modanese G, Oberhuber E (2017) Numerical optimization in ropeway planning. In: Properties and characterization of modern materials. Advanced structured materials. Springer, Singapore. https://doi.org/10.1007/978-981-10-1602-8_10

[21]

Lagerev AV, Lagerev IA. Design of passenger aerial ropeway for urban environment. Urban Rail Transit, 2019, 5(1): 17-28

[22]

Lagerev AV, Lagerev IA, Tarichko VI (2019) Impact of design capacity on optimal parameters of freight aerial mono-cable cableways. In: International conference on innovations and prospects of development of mining machinery and electrical engineering, IOP conference series: earth and environmental science, Saint-Petersburg, Russia. https://doi.org/10.1088/1755-1315/378/1/01206312

[23]

Reklaitis GV, Ravindran A, Ragsdell KM. Engineering optimization. Methods and applications, 1983, New York: Wiley

[24]

Molugaram K, Rao GS (2017) Curve fitting. In: Statistical techniques for transportation engineering. Butterworth-Heinemann, Oxford. https://doi.org/10.1016/B978-0-12-811555-8.00005-2

[25]

Birger IA, Shorr BF, Shneyderovich RM. Strength calculation of machine parts, 1966, Moscow: Mashinostroenie

[26]

Szabo I. Geschichte der mechanischen Prinzipien, 1987, Basel: Birkhäuser

[27]

Lagerev AV, Lagerev IA (2017) Optimization of the ropeway lines with unified towers. The Certificate No. 2017662165 on official registration of the computer program (RU). https://doi.org/10.5281/zenodo.3552924

Funding

Council on grants of the President of the Russian Federation (RU)(MD-422.2020.8)

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