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9. Sanaye, S., Mahmoudimehr, J.: Optimal design of a natural gas transmission network layout.
Chem. Eng. Res. Des. 91(12), 2465–2476 (2013)
10. Wang, B., et al.: Optimal design of oilfield surface pipeline networks for the cyclic water
injection development method. J. Petrol. Sci. Eng. 171, 1400–1408 (2018)
11. Wang, B., et al.: A methodology to restructure a pipeline system for an oilfield in the mid to
late stages of development. Comput. Chem. Eng. 115, 133–140 (2018)
12. Wang, B., et al.: Multi-objective site selection optimization of the gas-gathering station using
NSGA-II. Process Saf. Environ. Prot. 119, 350–359 (2018)
13. Wang, B., et al.: An MILP model for optimal design of multi-period natural gas transmission
network. Chem. Eng. Res. Des. 129, 122–131 (2018)
14. Wang, Y., et al.: Modeling for the optimization of layout scenarios of cluster manifolds with
pipeline end manifolds. Appl. Ocean Res. 46, 94–103 (2014)
15. Wang, Y., et al.: A mathematical model for subsea wells partition in the layout of cluster
manifolds. Appl. Ocean Res. 36, 26–35 (2012)
16. Zhang, H., et al.: A unified MILP model for topological structure of production well gathering
pipeline network. J. Petrol. Sci. Eng. 152, 284–293 (2017)
17. Zhou, J., et al.: Optimal design of star-tree oil-gas pipeline network in discrete space. J.
Pipeline Syst. Eng. Pract. 9(1), 04017034 (2018)
18. Zhou, J., et al.: Layout optimization of tree-tree gas pipeline network. J. Petrol. Sci. Eng. 173,
666–680 (2019)
275
8. Liu, Y., et al.: Layout optimization of large-scale oil–gas gathering system based on combined
optimization strategy. Neurocomputing 332, 159–183 (2019)
9. Sanaye, S., Mahmoudimehr, J.: Optimal design of a natural gas transmission network layout.
Chem. Eng. Res. Des. 91(12), 2465–2476 (2013)
10. Wang, B., et al.: Optimal design of oilfield surface pipeline networks for the cyclic water
injection development method. J. Petrol. Sci. Eng. 171, 1400–1408 (2018)
11. Wang, B., et al.: A methodology to restructure a pipeline system for an oilfield in the mid to
late stages of development. Comput. Chem. Eng. 115, 133–140 (2018)
12. Wang, B., et al.: Multi-objective site selection optimization of the gas-gathering station using
NSGA-II. Process Saf. Environ. Prot. 119, 350–359 (2018)
13. Wang, B., et al.: An MILP model for optimal design of multi-period natural gas transmission
network. Chem. Eng. Res. Des. 129, 122–131 (2018)
14. Wang, Y., et al.: Modeling for the optimization of layout scenarios of cluster manifolds with
pipeline end manifolds. Appl. Ocean Res. 46, 94–103 (2014)
15. Wang, Y., et al.: A mathematical model for subsea wells partition in the layout of cluster
manifolds. Appl. Ocean Res. 36, 26–35 (2012)
16. Zhang, H., et al.: A unified MILP model for topological structure of production well gathering
pipeline network. J. Petrol. Sci. Eng. 152, 284–293 (2017)
17. Zhou, J., et al.: Optimal design of star-tree oil-gas pipeline network in discrete space. J.
Pipeline Syst. Eng. Pract. 9(1), 04017034 (2018)
18. Zhou, J., et al.: Layout optimization of tree-tree gas pipeline network. J. Petrol. Sci. Eng. 173,
666–680 (2019)
