Global optimization of microalgae-to-biodiesel chains with integrated cogasification combined cycle systems based on greenhouse gas emissions reductions
Journal
Applied Energy
Journal Volume
197
Pages
63-82
Date Issued
2017
Author(s)
Abstract
A microalgae-based energy system, which is a combination of different microalgae-to-biodiesel chains and an integrated cogasification combined cycle (ICGCC) system, is presented. To address the low environmental impacts, the electricity is generated from ICGCC to meet the load demand from the microalgae-to-biodiesel chains and the flue gas exits from ICGCC to meet the demand of growing algal culture. To achieve the microalgae-based energy system with minimum life cycle greenhouse gas (GHG) emissions, the first step is to develop the superstructure model based on GAMS, the second step is to use the optimal heat exchanger network to maximize the heat recovery of ICGCC, and the third step is to find the optimal combination of the microalgae-to-biodiesel chain and optimal operating conditions of ICGCC by solving the global optimization of nonconvex mixed-integer nonlinear programming (MINLP) problem. For the scope of well-to-tank (WTT), the optimal microalgae-based energy system reduces 16.80% greenhouse gas (GHG) emissions compared to the other reported microalgae-to-biodiesel chains. For the scope of well-to-wheel (WTW), the optimal microalgae-based energy system reduces 45.77% GHG emissions compared to the conventional diesel process. ? 2017 Elsevier Ltd
Subjects
Global optimization
Heat integration
Integrated cogasification combined cycle
Life cycle assessment
Microalgae
Other Subjects
Algae; Biodiesel; Chains; Gas emissions; Global optimization; Heat exchangers; Integer programming; Life cycle; Microorganisms; Waste heat; Combined cycle; Greenhouse gas emissions reductions; Heat exchanger network; Heat integration; Life Cycle Assessment (LCA); Micro-algae; Nonconvex mixed-integer nonlinear programming; Optimal operating conditions; Greenhouse gases; biofuel; biotechnology; electricity generation; emission control; environmental impact assessment; greenhouse gas; heating; integrated approach; life cycle analysis; microalga; nonlinearity; optimization; phase transition; recovery; algae
Type
journal article