水-能源-粮食-温室气体关系:解决半干旱地区农业缺水问题的方法

IF 6.1 1区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY Agricultural Systems Pub Date : 2024-06-24 DOI:10.1016/j.agsy.2024.104040
Farnaz Ershadfath , Ali Shahnazari , Mahmoud Raeini Sarjaz , Omid Ali Moghadasi , Farshad Soheilifard , Soghra Andaryani , Rezvan Khosravi , Raheleh Ebrahimi , Fatemeh Hashemi , Dennis Trolle , Jørgen Eivind Olesen
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引用次数: 0

摘要

背景农业系统涉及水、能源和食物之间错综复杂的相互依存关系。加强对这些联系以及温室气体(GHG)排放影响的了解,并开发新的评估方法,对于实现关键的可持续发展目标至关重要。目标1)评估在灌溉小麦和油菜籽种植过程中,耕作、灌溉和残留物管理方法对水和能源消耗以及温室气体排放的影响;2)开发一种新的水-能源-粮食-温室气体(WEFG)关系指数,以全面评估水、能源、粮食和温室气体之间的联系、3) 应用 WEFG 关系指数,评估不同耕作、灌溉和残留物管理方法下灌溉小麦和油菜籽种植的可持续性。方法本研究制定了一个新的 WEFG 关系指数,应用水和能源消耗、二氧化碳当量排放、水和能源质量生产率、水、能源和二氧化碳当量经济生产率等八个指标来评估两种田间管理方法下小麦和油菜种植的可持续性:在伊朗东北部的半干旱地区,采用了两种田间管理方法:1)传统耕作沟灌(FICT);2)免耕中心枢轴灌溉(CPNT)。两种灌溉系统都采用亏缺灌溉法。结果与结论与传统耕作法相比,中心枢轴免耕灌溉系统的水耗和柴油耗平均分别减少了 46% 和 53%。CPNT 的平均二氧化碳当量排放量比 FICT 低 26%。此外,在氯化石蜡技术下,小麦和油菜籽的 WEFG 关系指数分别为 0.91 和 0.73(满分 1 分),而 FICT 为 0.18 和 0.12。这些得分表明,CPNT 方法是比 FICT 更为合适的战略,因为它有效地减少了水和能源消耗,同时更符合长期的环境和经济目标。所提出的 WEFG 关系的多方面评估方法可以改变其他面临多重资源和环境危机地区的农业管理观念。
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Water-energy-food-greenhouse gas nexus: An approach to solutions for water scarcity in agriculture of a semi-arid region

CONTEXT

Agricultural systems involve intricate interdependencies among water, energy, and food. Increasing understanding of these linkages, along with implications for greenhouse gas (GHG) emissions and developing new assessment approaches are critical for achieving key sustainability goals.

OBJECTIVES

1) Evaluation of the impacts of tillage, irrigation and residue management practices on water and energy consumption, and GHG emission in the cultivation of irrigated wheat and rapeseed, 2) Developing a novel Water-Energy-Food-Greenhouse gas (WEFG) nexus index to provide a holistic assessment of the linkages among water, energy, food, and GHG emissions in agriculture, and 3) Assessing the sustainability of irrigated wheat and rapeseed cultivation under different methods of tillage, irrigation and residue management applying the WEFG nexus index.

METHODS

This study formulated a new WEFG nexus index applying eight indicators of water and energy consumption, CO2-eq (CO2 equivalent) emission, water and energy mass productivity, water, energy and CO2-eq economic productivity to evaluate the sustainability of wheat and rapeseed cultivation under two field management practices: 1) furrow irrigation with conventional tillage (FICT), and 2) center pivot irrigation with no-tillage (CPNT), within a semi-arid region in northeastern Iran. Irrigation in both systems was done by applying a deficit irrigation approach.

RESULTS AND CONCLUSIONS

CPNT resulted on average in 46% and 53% energy consumption reductions from water and diesel usage, respectively, compared to FICT. The mean CO2-eq emission under CPNT was 26% lower than that recorded under FICT. Furthermore, the WEFG nexus index score for wheat and rapeseed under CPNT was 0.91 and 0.73, respectively, out of 1, compared to 0.18 and 0.12 for FICT. These scores suggest that the CPNT approach is a more appropriate strategy than FICT, as it effectively reduced water and energy consumption while aligning better with long-term environmental and economic aims.

SIGNIFICANCE

The study applies more accurate GHG emission-based indicators to introduce a new WEFG nexus index, and it uses these for evaluation of different field management at the farm level to reduce the uncertainties in the large-scale studies. The proposed methodology for assessing multiple aspects of the WEFG nexus can change previous perceptions about agricultural management in other regions confronting multiple resources and environmental crises.

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来源期刊
Agricultural Systems
Agricultural Systems 农林科学-农业综合
CiteScore
13.30
自引率
7.60%
发文量
174
审稿时长
30 days
期刊介绍: Agricultural Systems is an international journal that deals with interactions - among the components of agricultural systems, among hierarchical levels of agricultural systems, between agricultural and other land use systems, and between agricultural systems and their natural, social and economic environments. The scope includes the development and application of systems analysis methodologies in the following areas: Systems approaches in the sustainable intensification of agriculture; pathways for sustainable intensification; crop-livestock integration; farm-level resource allocation; quantification of benefits and trade-offs at farm to landscape levels; integrative, participatory and dynamic modelling approaches for qualitative and quantitative assessments of agricultural systems and decision making; The interactions between agricultural and non-agricultural landscapes; the multiple services of agricultural systems; food security and the environment; Global change and adaptation science; transformational adaptations as driven by changes in climate, policy, values and attitudes influencing the design of farming systems; Development and application of farming systems design tools and methods for impact, scenario and case study analysis; managing the complexities of dynamic agricultural systems; innovation systems and multi stakeholder arrangements that support or promote change and (or) inform policy decisions.
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