Optimization of Hanger Spacing of Steel Arch Bridges Using Dynamic Loads

Moch. Dhoni Bathista, Department of Civil Engineering and Planning, Universitas Negeri Malang, Malang 65145, Indonesia
Raden Ian Sulasmono, Department of Civil Engineering and Planning, Universitas Negeri Malang, Malang 65145, Indonesia
Puput Risdanareni, Department of Civil Engineering and Planning, Universitas Negeri Malang, Malang 65145, Indonesia

Abstract


Bridges are basic infrastructure that must be met to create regional connectivity in Indonesia. One type of bridge that is often used is a curved bridge, which has the advantages of high strength, attractiveness, aesthetics and economy. In order to accelerate the development of bridge infrastructure, an efficient innovation in curved bridge design is needed. The development of curved bridge structures to achieve efficient designs has received much attention in several decades. However, researchers have only focused on optimising the geometry variation of the arch height. Therefore, the aim of this research is to innovate the optimisation of the hanger spacing on the arch bridge structure. In order to obtain optimal results, a bridge model is carried out by varying the hanger spacing of the centre model with a hanger spacing ratio of (1.3 - 1.1 - 0.9 - 0.7), a flat model with a hanger spacing ratio of (1 - 1 - 1 - 1) and an edge model with a hanger spacing ratio of (0.7 - 0.9 - 1.1 - 1.3), so that from the three models, the effect of hanger location on three conditions is obtained. Each model is modelled in the SAP2000 software and given a bridge service load to obtain the internal forces and deflections that occur. The output of the internal force and deflection is then analysed to determine the effect of the location of the bridge service hanger. The serviceability of the bridge is also analysed by calculating the ratio between the weight of the bridge and the deflection that occurs. The results of the analysis show that the location of the hanger affects the performance of the arch bridge structure. The centre model bridge design produces the most efficient structural performance in resisting the compressive axial forces and moments that occur, and produces the least deflection. Meanwhile, the edge model will provide the most efficient structural performance in resisting tensile axial forces.  By referring to the results of the bridge weight to deflection ratio analysis, it can be concluded that the centre model produces the most efficient structural design when compared to other curved bridge models.


Keywords


Arch bridges; Optimization; Hanger spacing; Dynamic load

Full Text:

PDF

References


Ari I R A 2019 Perencanaan Jembatan Pelengkung Rangka Baja Pejalan Kaki Desa Paseban Kecamatan Kencong Kabupaten Jember (Universitas Jember)

Zaheer Q, Yonggang T and Qamar F 2022 Literature review of bridge structure’s optimization and it’s development over time Int. J. Simul. Multidiscip. Des. Optim. 13 5

Golecki T, Gomez F, Carrion J and Spencer B F 2023 Bridge topology optimization considering stochastic moving traffic Eng. Struct. 292 116498

Setiati N R, Wardhana P K, Almuhitsyah A and Halisa H 2015 Kekuatan Struktur Jembatan Gantung Sederhana untuk Pejalan Kaki J. HPJI 1 67–76

Fitriyah D K 2019 Modifikasi Jembatan Mataraman II Malang Menggunakan Struktur Gelagar Beton Bertulang Rekayasa Tenik Sipil Univ. Madura 4

Pusat Data dan Teknologi Informasi Kementerian PUPR 2021 Informasi Statistik Infrastruktur PUPR 2021 (Jakarta: Kementerian PUPR)

Novotny A A, Lopes C G and Santos R B 2021 Topological derivative-based topology optimization of structures subject to self-weight loading Struct. Multidiscip. Optim. 63 1853–61

Sen D, Erazo K, Zhang W, Nagarajaiah S and Sun L 2019 On the effectiveness of principal component analysis for decoupling structural damage and environmental effects in bridge structures J. Sound Vib. 457 280–98

Li Y, Lai Y, Lu G, Yan F, Wei P and Xie Y M 2022 Innovative design of long-span steel–concrete composite bridge using multi-material topology optimization Eng. Struct. 269 114838

Apriani W, Lubis F, Suryanita R and Sari E N 2019 Perilaku Struktur Jembatan Baja Pelengkung Berdasarkan Spektrum Gempa J. SAINTIS 19 71

Dapogny C, Faure A, Michailidis G, Allaire G, Couvelas A and Estevez R 2017 Geometric constraints for shape and topology optimization in architectural design Comput. Mech. 59 933–65

Fitrisari N, Pranoto Y and Jepriani S 2019 Desain Jembatan Pelengkung Lamaru-Tritip Menggunakan Tipe Trough Arch Teknol. SIpil 1

Greco F, Lonetti P and Pascuzzo A 2019 Structural integrity of tied arch bridges affected by instability phenomena Procedia Struct. Integr. 18 891–902

Bruno D, Lonetti P and Pascuzzo A 2016 An optimization model for the design of network arch bridges Comput. Struct. 170 13–25

Budio S P, Anggraini R, Remayanti C and Widia I M B A 2016 Optimalisasi Desain Jembatan Lengkung (Arch Bridge) Terhadap Berat dan Lendutan Rekayasa Sipil 10 212–21

Fahriza A 2019 Pengaruh Variasi Ketinggian Busur Pada Perencanaan Ulang Jembatan Sardjito I Menggunakan Struktur Jembatan Pelengkung Beton Bertulang Terhadap Efisiensi Material (Universitas islam Indonesia Yogyakarta)

Almulianur A, Aminullah A and Muslikh M Optimasi Geometri Berdasarkan Gaya - Gaya Dalam Pada Jembatan Pelengkung Beton INERSIA 14

Zaini M and Suprapto S 2018 Analisis Optimalisasi Tinggi Fokus (F) Pelengkung Pada Perencanaan Jembatan Lengkung Tipe Lantai Atas (Arch Bridge Deck Type) Rekayasa Tek. Sipil 2

Abd Elrehim M Z, Eid M A and Sayed M G 2019 Structural optimization of concrete arch bridges using Genetic Algorithms Ain Shams Eng. J. 10 507–16

He L, Castoro C, Aloisio A, Zhang Z, Marano G C, Gregori A, Deng C and Briseghella B 2023 Investigation of a butterfly-arch stress-ribbon pedestrian bridge under ambient excitation: dynamic identification, FE modelling and parametric optimization Procedia Struct. Integr. 44 1594–601

Hafasha Y 2018 Perencanaan Ulang Jembatan Kesejahteraan Dengan Menggunakan Jembatan Busur Beton Redesign Of Kesejahteraan Bridge Using Through Arch Bri (Universitas Mataram) (Universitas Mataram)

Ostrycharczyk A W and Malo K A 2018 Parametric study on effects of load position on the stress distribution in network arch timber bridges with light timber decks on transverse crossbeams Eng. Struct. 163 112–21

Pipinato A 2018 Structural Optimization of Network Arch Bridges with Hollow Tubular Arches and Chords Mod. Appl. Sci. 12 36

Korus K, Salamak M and Jasiński M 2021 Optimization of geometric parameters of arch bridges using visual programming FEM components and genetic algorithm Eng. Struct. 241 112465

Belevičius R, Juozapaitis A, Rusakevičius D and Žilėnaitė S 2021 Parametric study on mass minimization of radial network arch pedestrian bridges Eng. Struct. 237 112182

Weronika Ostrycharczyk A and Arne Malo K 2022 Network arch timber bridges with light timber decks and spoked configuration of hangers – Parametric study Eng. Struct. 253 113782

Zhang S, Li H and Huang Y 2021 An improved multi-objective topology optimization model based on SIMP method for continuum structures including self-weight Struct. Multidiscip. Optim. 63 211–30

Weldeyesus A G, Gondzio J, He L, Gilbert M, Shepherd P and Tyas A 2020 Truss geometry and topology optimization with global stability constraints Struct. Multidiscip. Optim. 62 1721–37

Lai Y, Li Y, Huang M, Zhao L, Chen J and Xie Y M 2023 Conceptual design of long span steel-UHPC composite network arch bridge Eng. Struct. 277 115434

Zhou M, Lu W, Song J and Lee G C 2018 Application of Ultra-High Performance Concrete in bridge engineering Constr. Build. Mater. 186 1256–67

Han X, Han B, Xie H, Yan W, Yu J, He Y and Yan L 2022 Seismic stability analysis of the large-span concrete-filled steel tube arch bridge considering the long-term effects Eng. Struct. 268 114744

Hong H, Jeong K Il, On S Y, Kim W and Kim S S 2023 Structural optimization of an arch-structured epoxy/rubber composite vibration isolator using deep Q-value neural network reinforcement learning Compos. Struct. 323 117506

Latif M A and Saka M P 2019 Optimum design of tied-arch bridges under code requirements using enhanced artificial bee colony algorithm Adv. Eng. Softw. 135 102685

Sulistyantoro T N and Suharyatmo S 2023 Desain Struktur Jembatan Grembyangan Tipe Pelat Pelengkung Beton Bertulang J. Simetrik 13

Al Ansyorie M M, Kirom Mustofa M A, Firdaus Sabila M T and Putri N M 2020 Pemodelan Jembatan Rangka dengan Kombinasi Tipe Rangka Ditinjau dari Lendutan dan Berat Jembatan Prokons PROKONS Jur. Tek. Sipil 14 38




DOI: https://doi.org/10.21831/inersia.v20i1.67074

Refbacks

  • There are currently no refbacks.


Copyright (c) 2024 PUPUT RISDANARENI, Moch. Dhony Batista, Raden Ian Sulasmono

Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 International License.

 

Publisher:                   Co-Publisher:

Indexed by:
 
  
 

Supported by:
Jurnal Ilmiah Magister Managemen
 

Social Media:


 Online (e-ISSN): 2528-388X  || Printed (p-ISSN): 0216-762X

Lisensi Creative Commons
INERSIA by https://journal.uny.ac.id/index.php/inersia/index was distributed under a Creative Commons Attribution 4.0 International License.