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May 27, 2026Land0 citationsOpen Access

Assessing Cropland Water Deficit and Productivity-Loss Risk Through the Standardized Crop Water Deficit Index and Copula Analysis in the Huang–Huai–Hai Plain, China

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YZYuhan ZhaoCDChun DongYYYan Yang

Key Points

  • This study aims to develop a framework to assess the impact of water deficit on crop productivity in China's Huang–Huai–Hai Plain.
  • Developed a standardized crop water deficit index (SCWDI) linked to crop water balance and effective rainfall
  • Utilized Copula–Bayesian framework for drought detection and productivity-risk estimation
  • Analyzed drought events from 2001 to 2022, focusing on winter wheat and summer maize sensitivity periods.
  • Average of 1.15 drought events per year from 2001 to 2022
  • Summer maize showed a mean triggering threshold of -1.54 for GPP loss, while winter wheat required -2.54
  • Probability of GPP loss in summer maize exceeded 80% during extreme drought in key regions.

Abstract

The Huang–Huai–Hai Plain supports one of China’s most important grain production systems, but crop production there is persistently constrained by limited water availability and recurrent drought. Common regional drought indicators are useful for monitoring dry conditions, yet they do not explicitly represent crop water demand and irrigation input, which reduces their suitability for agricultural risk assessment. In this study, a crop-oriented framework was developed for winter wheat and summer maize by linking crop water requirement, effective rainfall, irrigation supply, drought-event detection, and productivity-risk estimation. A standardized crop water deficit index (SCWDI) was developed from crop water balance and integrated with run theory, monthly correlation analysis, and a Copula–Bayesian framework to detect drought events, identify crop-sensitive periods, and quantify the probability and triggering threshold of gross primary productivity (GPP) loss. During 2001–2022, the Huang–Huai–Hai Plain experienced an average of 1.15 drought events per year, with pronounced spatial differences. The main sensitive period was June for summer maize and March–April for winter wheat. Summer maize showed a stronger drought response, with a mean triggering threshold of −1.54, whereas winter wheat required more severe stress to trigger concentrated productivity loss (−2.54). Under extreme drought, the probability of summer-maize GPP loss exceeded 80% in both the Beijing–Tianjin–Hebei region and Henan. These results provide a basis for growth-stage-oriented irrigation prioritization and spatially differentiated drought management under agricultural water scarcity.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/6a168ae40c924ddd1bd59b02https://doi.org/10.3390/land15050872
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