Estimating Evapotranspiration of Greenhouse Tomato under Different Irrigation Levels Using a Modified Dual Crop Coefficient Model in Northeast China

IF 3.3 2区 农林科学 Q1 AGRONOMY
Mingze Yao, Manman Gao, Jingkuan Wang, Bo Li, Li-cui Mao, Mingyu Zhao, Zhanyang Xu, Hongfei Niu, Tieliang Wang, Lei Sun, Dongshuang Niu
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Abstract

Accurate quantification of evapotranspiration (ETc) and its components are critical for enhancing water use efficiency and implementing precision irrigation. A two-year experiment was conducted for greenhouse-grown tomatoes under mulched drip irrigation with three irrigation treatments during 2020–2021 in Northeast China. Three different irrigation treatments were applied by setting upper and lower soil moisture irrigation thresholds (i.e., W1, 65%θFC–75%θFC, W2, 75%θFC–85%θFC, W3, 85%θFC–95%θFC, respectively, where θFC is field capacity). In this study, a modified dual crop coefficient (Kc) model was proposed to simulate daily ETc, plant transpiration (Tr) and soil evaporation (Es). The simulations of the model were validated against observed data from the sap flow system combined with the soil water balance method. The controlling factors on the variations of evapotranspiration and its components were also identified by using the path analysis method. Results showed that the modified dual Kc model can accurately simulate daily ETc, Es, and Tr for the greenhouse tomato under different irrigation conditions, with the coefficients of determination ranging from 0.88 to 0.98 and the index of agreement higher than 0.90. The seasonal cumulative ETc of tomato for W1–W3 were 138.5–194.4 mm, of which 9.5–15.8% was consumed by Es. Path analysis showed that the net radiation (Rn) was the dominant factor controlling the variations of Tr and ETc during the growing seasons. The canopy coverage degree (Kcc) was the dominant controlling factor of Es, while the temperature (Ta) was the primary limiting factor affecting Es. This study can provide reference information for developing proper irrigation management in a greenhouse-grown tomato in the north cold climate regions.
基于修正双作物系数模型估算东北不同灌溉水平下温室番茄蒸散量
准确量化蒸散发及其组成对提高水分利用效率和实施精准灌溉至关重要。在2020-2021年对东北地区栽培番茄进行了为期2年的膜下滴灌3种灌溉处理试验。通过设置土壤水分灌溉上限和下限(即W1, 65%θFC-75%θFC, W2, 75%θFC-85%θFC, W3, 85%θFC-95%θFC,其中θFC为田间容量),采用了三种不同的灌溉处理。本研究提出了一种改进的双作物系数(Kc)模型,用于模拟日ETc、植物蒸腾(Tr)和土壤蒸发量(Es)。结合土壤水分平衡法和液流系统观测数据,对模型的模拟结果进行了验证。利用通径分析方法,确定了影响蒸散量及其组分变化的控制因素。结果表明,改进的双Kc模型能较准确地模拟不同灌溉条件下温室番茄的日ETc、Es和Tr,决定系数在0.88 ~ 0.98之间,一致性指数在0.90以上。w1 ~ w3番茄的季节累积ETc为138.5 ~ 194.4 mm,其中9.5 ~ 15.8%被Es消耗。通径分析表明,净辐射(Rn)是控制生长季Tr和ETc变化的主导因子。林冠覆盖度(Kcc)是Es的主要控制因子,温度(Ta)是Es的主要限制因子。本研究可为北方寒区温室番茄合理灌溉管理提供参考信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Agriculture-Basel
Agriculture-Basel Agricultural and Biological Sciences-Food Science
CiteScore
4.90
自引率
13.90%
发文量
1793
审稿时长
11 weeks
期刊介绍: Agriculture (ISSN 2077-0472) is an international and cross-disciplinary scholarly and scientific open access journal on the science of cultivating the soil, growing, harvesting crops, and raising livestock. We will aim to look at production, processing, marketing and use of foods, fibers, plants and animals. The journal Agriculturewill publish reviews, regular research papers, communications and short notes, and there is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental and/or methodical details must be provided for research articles.
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