Energetic closure of the spatially resolved global food system

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Kaye, Maxwell, MacDonald, Graham K., Galbraith, Eric
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916876605456384
author Kaye, Maxwell
MacDonald, Graham K.
Galbraith, Eric
author_facet Kaye, Maxwell
MacDonald, Graham K.
Galbraith, Eric
contents Integrated global food system analysis is hampered by the fragmentation of data among food types, processes, and scales. Studies also often neglect the connection to human metabolism -- the ultimate driver of food demand. Here we use a common energetic framework to harmonize data on 95 individual food commodities across food system processes, including production, processing, animal feed and consumption, and estimate human metabolism from body size, demographic, and activity data. We estimate that the share of unmetabolized food calories globally doubled between 1990 and 2019 (from about 10 to 20% of the total calories available for human consumption) as food supply outpaced energy expenditure. Approximately half (51%) of the global population's metabolic demands could theoretically be met by production in the same local 1-degree grid cell (~ 10,000 km2) when holding diets constant. Our open-source framework can be applied to assess strategies to reduce food system inefficiencies from photosynthesis to metabolism while meeting local energetic demands.
format Preprint
id arxiv_https___arxiv_org_abs_2412_10421
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Energetic closure of the spatially resolved global food system
Kaye, Maxwell
MacDonald, Graham K.
Galbraith, Eric
Physics and Society
General Economics
Economics
Integrated global food system analysis is hampered by the fragmentation of data among food types, processes, and scales. Studies also often neglect the connection to human metabolism -- the ultimate driver of food demand. Here we use a common energetic framework to harmonize data on 95 individual food commodities across food system processes, including production, processing, animal feed and consumption, and estimate human metabolism from body size, demographic, and activity data. We estimate that the share of unmetabolized food calories globally doubled between 1990 and 2019 (from about 10 to 20% of the total calories available for human consumption) as food supply outpaced energy expenditure. Approximately half (51%) of the global population's metabolic demands could theoretically be met by production in the same local 1-degree grid cell (~ 10,000 km2) when holding diets constant. Our open-source framework can be applied to assess strategies to reduce food system inefficiencies from photosynthesis to metabolism while meeting local energetic demands.
title Energetic closure of the spatially resolved global food system
topic Physics and Society
General Economics
Economics
url https://arxiv.org/abs/2412.10421