A supply chain optimization for bioenergy potential estimation of giant reed ( Arundo donax L.) on marginal land in China

被引:0
|
作者
Nie, Yaling [1 ]
Zhu, Min [1 ]
Zhang, Yibo [1 ]
Yang, Gang [1 ]
Wang, Yunshan [1 ]
Xiao, Xin [1 ]
Wang, Limin [1 ]
Wang, Boyong [2 ]
Zhou, Changqing [2 ]
Chen, Longzhe [2 ]
Sun, Xiaoping [2 ]
Li, Zhuoran [2 ]
机构
[1] Chinese Acad Sci, Inst Proc Engn, Beijing 100190, Peoples R China
[2] China Inst Innovat & Dev Strategy, Beijing 100044, Peoples R China
来源
BIOMASS & BIOENERGY | 2024年 / 188卷
基金
中国国家自然科学基金;
关键词
Giant reed; Marginal land; Growth model; Bioenergy potential; Supply chain optimization; Carbon sequestration; CROPS; MISCANTHUS; DESIGN; IMPACT; YIELD; MILP;
D O I
10.1016/j.biombioe.2024.107311
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
To address the growing energy demand and environmental issues associated with fossil fuels, growing energy crops on marginal lands offers a sustainable solution to increase bioresources for bioenergy production while avoiding the conflict of food and fuel. Giant reed (Arundo donax L.), a non-food energy crop, is recognized for its substantial yield and adaptability to marginal lands, making it a promising candidate for bioenergy production and carbon sequestration. Despite its potential, the optimal supply chain configuration for giant reed (GR) based bioenergy production on China's marginal lands has not been established and evaluated. This study aims to fill this gap by developing and evaluating an integrated framework that includes the identification of available marginal lands, a region-specific growth model for GR biomass, and a Mixed-Integer Linear Programming (MILP) model for optimal design of spatial supply chain configuration. The growth model indicates an average yield potential of 24.5 t DM/ha annually. The optimization model provides multiple cost-effective solutions for the configurations of biomass production regions, storage depots, biorefineries, while considering transportation logistics across diverse geographic landscapes. Results at various replacement ratio of national energy consumption, demonstrate that large-scale GR plantation and utilization significantly increase the total cost but also contribute to substantial carbon sequestration, ranging from 23 Mt CO2 eq at a 1% replacement ratio to 620 Mt CO2 eq at 28% annually. This study not only provides a foundational framework for future research on the potential of GR in China's bioenergy development, but also highlights the feasibility of incorporating GR into China's bioenergy landscape.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Xylose production from giant reed (Arundo donax L.): Modeling and optimization of dilute acid hydrolysis
    Shatalov, Anatoly A.
    Pereira, Helena
    CARBOHYDRATE POLYMERS, 2012, 87 (01) : 210 - 217
  • [22] Agronomic and physiological response of giant reed (Arundo donax L.) to soil salinity
    Di Mola, Ida
    Guida, Gianpiero
    Mistretta, Carmela
    Giorio, Pasquale
    Albrizio, Rossella
    Visconti, Donato
    Fagnano, Massimo
    Mori, Mauro
    ITALIAN JOURNAL OF AGRONOMY, 2018, 13 (01) : 31 - 39
  • [23] Analysis of chromosome number and speculations on the origin of Arundo donax L. (Giant Reed)
    Bucci, A.
    Cassani, E.
    Landoni, M.
    Cantaluppi, E.
    Pilu, R.
    CYTOLOGY AND GENETICS, 2013, 47 (04) : 237 - 241
  • [24] Use of giant reed (Arundo donax L.) to control soil erosion and improve soil quality in a marginal degraded area
    Visconti, Donato
    Fiorentino, Nunzio
    Cozzolino, Eugenio
    Di Mola, Ida
    Ottaiano, Lucia
    Mori, Mauro
    Cenvinzo, Vincenzo
    Fagnano, Massimo
    ITALIAN JOURNAL OF AGRONOMY, 2020, 15 (04) : 332 - 338
  • [25] Use of giant reed (Arundo donax L.) for polymer composites obtaining: a mapping review
    Suarez, Luis
    Ortega, Zaida
    Barczewski, Mateusz
    Cunningham, Eoin
    CELLULOSE, 2023, 30 (08) : 4793 - 4812
  • [26] Seasonal Dynamics of Aboveground and Belowground Biomass and Nutrient Accumulation and Remobilization in Giant Reed (Arundo donax L.): A Three-Year Study on Marginal Land
    N. Nassi o Di Nasso
    N. Roncucci
    E. Bonari
    BioEnergy Research, 2013, 6 : 725 - 736
  • [27] Seasonal Dynamics of Aboveground and Belowground Biomass and Nutrient Accumulation and Remobilization in Giant Reed (Arundo donax L.): A Three-Year Study on Marginal Land
    Di Nasso, N. Nassi O.
    Roncucci, N.
    Bonari, E.
    BIOENERGY RESEARCH, 2013, 6 (02) : 725 - 736
  • [28] Comparative growth of giant reed (Arundo donax L.) from Florida, Texas, and California
    Spencer, David F.
    Stocker, R. K.
    Liow, P. -S.
    Whitehand, L. C.
    Ksander, G. G.
    Fox, A. M.
    Everitt, J. H.
    Quinn, L. D.
    JOURNAL OF AQUATIC PLANT MANAGEMENT, 2008, 46 : 89 - 96
  • [29] Analysis of the properties of particleboard Palm (Washingtonia robusta) and Giant Reed (Arundo donax L.)
    Ferrandez-Villena, M.
    Ferrandez-Garcia, C. E.
    Andreu-Rodriguez, J.
    Garcia-Ortuno, T.
    Ferrandez-Garcia, M. T.
    VIII CONGRESO IBERICO DE AGROINGENIERIA LIBRO DE ACTAS: RETOS DE LA NUEVA AGRICULTURA MEDITERRANEA, 2016, : 461 - 467
  • [30] Optimization of liquid ammonia pretreatment conditions for maximizing sugar release from giant reed (Arundo donax L.)
    Zhao, Chao
    Cao, Yan
    Ma, Zhongqing
    Shao, Qianjun
    BIOMASS & BIOENERGY, 2017, 98 : 61 - 69