Author
Listed:
- Jonathan Vieira
(Innovation and Competitiveness Group, Production Engineering Post-Graduation Program, Federal University of Santa Maria, Avenue Roraima 1000, Building 7, Room 302, Santa Maria 97105-900, Brazil)
- Alvaro Neuenfeldt Júnior
(Innovation and Competitiveness Group, Production Engineering Post-Graduation Program, Federal University of Santa Maria, Avenue Roraima 1000, Building 7, Room 302, Santa Maria 97105-900, Brazil)
- Paulo Carteri Coradi
(Agriculture Engineering Post-Graduation Program, Federal University of Santa Maria, Avenue Roraima 1000, Building 42, Santa Maria 97105-900, Brazil)
- Olinto Araújo
(Production Engineering Post-Graduation Program, Industrial Technical College, Federal University of Santa Maria, Avenue Roraima 1000, Building 5, Santa Maria 97105-900, Brazil)
- Vanessa Alves
(Innovation and Competitiveness Group, Production Engineering Post-Graduation Program, Federal University of Santa Maria, Avenue Roraima 1000, Building 7, Room 302, Santa Maria 97105-900, Brazil)
Abstract
B a c k g r o u n d : In the grain logistics context, pre-processing operations such as reception, pre-cleaning, drying, storage, and shipping are performed at farm, collecting, intermediate, sub-terminal, and terminal storage units to preserve quality, reduce losses, and add value in the products. However, high transportation costs and limited static storage capacity reduce the selling prices. The objective of this article is to maximize profit associated with pre-processing, storage, and transportation along the grain flow in Brazil. M e t h o d s : A generic post-harvest logistics network is represented as a graph connecting producers, multi-level storage units, agribusiness facilities, and ports. A multi-period, multi-level mathematical model is applied in a case study framework explored in three scenarios, covering pre-cleaning, drying, storage, and transportation costs from production areas to commercialization nodes. R e s u l t s : In all three scenarios, road transport resulted in transportation costs ranging from approximately US$ 49 million to US$ 492 million, mainly over long distances. C o n c l u s i o n s : The location and static capacity of collecting and intermediate storage units strongly influenced transport, storage use, CO 2 emissions, and post-harvest efficiency. Also, the flow concentration increased heavy-vehicle traffic, reducing overall logistics performance.
Suggested Citation
Jonathan Vieira & Alvaro Neuenfeldt Júnior & Paulo Carteri Coradi & Olinto Araújo & Vanessa Alves, 2026.
"A Mathematical Model to Maximize the Pre-Processing, Storage, and Transportation Associated with Grain Flow in Brazil,"
Logistics, MDPI, vol. 10(5), pages 1-24, May.
Handle:
RePEc:gam:jlogis:v:10:y:2026:i:5:p:99-:d:1933555
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