A Mathematical Model and Two-Stage Heuristic for the Container Stowage Planning Problem With Stability Parameters

被引:19
作者
Bilican, Mevlut Savas [1 ]
Evren, Ramazan [1 ]
Karatas, Mumtaz [2 ]
机构
[1] Istanbul Tech Univ, Ind Engn Dept, TR-34367 Istanbul, Turkey
[2] Natl Def Univ, Turkish Naval Acad, Ind Engn Dept, TR-34940 Istanbul, Turkey
关键词
Container stowage plan; mixed integer linear programming; over-stow; stability; CRANE SCHEDULING PROBLEM; SHIP; COMPLEXITY; ALGORITHM; NUMBER; REDUCE;
D O I
10.1109/ACCESS.2020.3003557
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Owing to the significant increase in the volume of world trade, mega-container vessels are being used to meet transportation demands. As the size of the vessels increases, the loading sequence of containers onto the vessels presents an important challenge for planners. In this study, we consider the container stowage planning problem with stability constraints (e.g. shear force, bending moment, trim) and develop a mixed integer linear programming (MILP) formulation which generates load plans by minimizing total cost associated with the over-stows and trimming moments. Our study adopts a holistic perspective which encompasses several real-world features such as different container specifications, a round-robin tour of multiple ports, technical limitations related to stack weight, stress, and ballast tanks. We also propose a two-stage heuristic solution methodology that employs an integer programming (IP) formulation and then a swapping heuristic (SH) algorithm. This approach first acquires a lower bound on the total over-stow cost with the IP model, thereby creating an initial bay plan. Then, it applies the SH algorithm to this initial bay plan to minimize cost resulting from trimming moments. The efficiency of the MILP formulation and heuristic algorithm is investigated through numerical examples. The results have shown that the heuristic has greatly improved the solution times as well as the size of the solvable problems compared to the MILP formulation. In particular, the two-stage heuristic can solve all size problem instances within an average optimality gap of 0-25% in less than 8 minutes, whereas the MILP can only achieve an approximate optimality gap of 55-80% in 2 hours.
引用
收藏
页码:113392 / 113413
页数:22
相关论文
共 42 条
[1]   A Lagrangian relaxation-based heuristic for the multi-ship quay crane scheduling problem with ship stability constraints [J].
Al-Dhaheri, Noura ;
Diabat, Ali .
ANNALS OF OPERATIONS RESEARCH, 2017, 248 (1-2) :1-24
[2]   The quay crane scheduling problem with nonzero crane repositioning time and vessel stability constraints [J].
Al-Dhaheri, Noura ;
Jebali, Aida ;
Diabat, Ali .
COMPUTERS & INDUSTRIAL ENGINEERING, 2016, 94 :230-244
[3]   A decomposition heuristics for the container ship stowage problem [J].
Ambrosino, D ;
Sciomachen, A ;
Tanfani, E .
JOURNAL OF HEURISTICS, 2006, 12 (03) :211-233
[4]   Stowing a containership: the master bay plan problem [J].
Ambrosino, D ;
Sciomachen, A ;
Tanfani, E .
TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE, 2004, 38 (02) :81-99
[5]  
Ambrosino D, 1998, COMP MET WATER RES, V5, P175
[6]  
Ambrosino D., 2018, MARIT POLICY MANAG, P1
[7]   Computational evaluation of a MIP model for multi-port stowage planning problems [J].
Ambrosino, Daniela ;
Paolucci, Massimo ;
Sciomachen, Anna .
SOFT COMPUTING, 2017, 21 (07) :1753-1763
[8]   Experimental evaluation of mixed integer programming models for the multi-port master bay plan problem [J].
Ambrosino, Daniela ;
Paolucci, Massimo ;
Sciomachen, Anna .
FLEXIBLE SERVICES AND MANUFACTURING JOURNAL, 2015, 27 (2-3) :263-284
[9]   EXACT AND APPROXIMATE SOLUTIONS OF THE CONTAINER SHIP STOWAGE PROBLEM [J].
AVRIEL, M ;
PENN, M .
COMPUTERS & INDUSTRIAL ENGINEERING, 1993, 25 (1-4) :271-274
[10]   Stowage planning for container ships to reduce the number of shifts [J].
Avriel, M ;
Penn, M ;
Shpirer, N ;
Witteboon, S .
ANNALS OF OPERATIONS RESEARCH, 1998, 76 (0) :55-71