Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (15): 3374-3386.doi: 10.3864/j.issn.0578-1752.2026.15.010

• SOIL & FERTILIZER·WATER-SAVING IRRIGATION·AGROECOLOGY & ENVIRONMENT • Previous Articles     Next Articles

Regulation Effect of Biochar Combined with Slow-Release Fertilizer on Soil Water Use in Oasis Irrigation Area

WANG Shen(), LI Pan, LIANG Miao, WANG LiPing, ZHANG DianKai, ZHAO LianHao, FAN ZhiLong, HU FaLong, NAN YunYou, YIN Wen(), CHAI Qiang()   

  1. College of Agronomy, Gansu Agricultural University/State Key Laboratory of Arid Land Crop Science, Lanzhou 730070
  • Received:2025-09-16 Accepted:2025-12-29 Online:2026-08-01 Published:2026-08-03
  • Contact: YIN Wen, CHAI Qiang

Abstract:

【Objective】To address water scarcity in oasis irrigation areas and issues such as excessive nitrogen fertilizer application and low water use efficiency in maize production, this study investigated the effects of biochar combined with slow-release fertilizers on maize soil water use characteristics under reduced nitrogen application, so as to provide the practical evidence for high maize yields and efficient water resource utilization.【Method】A split-plot design was employed. The main plots featured soil conditioner (biochar (B)) and no conditioner (C). Split plots included two nitrogen fertilizer types: traditional chemical nitrogen fertilizer (T) and slow-release nitrogen fertilizer (S). Sub-split plots tested two nitrogen application rates: traditional nitrogen application rate (N2: 360 kg·hm-2), and a 30% reduced traditional nitrogen application rate (N1: 252 kg·hm-2). This study investigated the effects of biochar combined with slow-release fertilizer on maize yield, water consumption, and water use efficiency under reduced nitrogen application during the 2023-2024 growth season.【Result】Applying biochar with slow-release fertilizer to reduce nitrogen application (BSN1) increased pre-sowing soil water storage capacity in nitrogen-reduced maize and lowered maize water consumption throughout its entire growth stage. Regarding pre-sowing soil water storage, biochar increased by 5.3%-6.5% compared with no conditioner; no significant differences were observed between slow-release fertilizer and traditional chemical nitrogen fertilizer, nor between reducted nitrogen application and traditional nitrogen application rates (P>0.05). Compared with traditional chemical nitrogen fertilizer application rate without soil conditioner (CTN2), BSN1 increased pre-sowing soil water storage by 11.1%-12.5%. Biochar reduced water consumption during the maize sowing to jointing stage and the big flare to flowering stage by 6.4%-6.7% and 4.6%-5.5%, respectively, though the evapotranspiration modulus showed no significant differences. Slow-release fertilizer reduced maize water consumption from sowing to maturity by 8.1%-10.0%, but only lowered the evapotranspiration modulus during the sowing to flowering stage. Reduced nitrogen application decreased water consumption during the big flare stage to flowering stage by 6.3%-7.5%, with no significant difference in the evapotranspiration modulus. Comprehensive analysis of soil conditioner, nitrogen fertilizer type, and nitrogen application rate showed that BSN1 reduced maize water consumption by 21.4%-29.5% and the evapotranspiration modulus by 6.3%-7.6% compared with CTN2 during the sowing to flowering stage, water consumption decreased by 8.0%-9.9% during flowering to maturity stage, while the evapotranspiration modulus showed an upward trend. The combination of biochar and slow-release fertilizer effectively coordinated water supply and demand during different growth stages of nitrogen-reduced maize. Consequently, maize under BSN1 exhibited a 13.6%-14.8% reduction in total water consumption compared with CTN2, with grain yield and water use efficiency increasing by 8.6%-9.1% and 24.1%-24.7%, respectively.【Conclusion】The application of biochar combined with slow-release fertilizer and reduced nitrogen rates significantly increased maize grain yield and water use efficiency compared with traditional chemical nitrogen fertilizers without soil conditioners at traditional nitrogen application levels. This approach served as a viable technology for nitrogen-saving, yield-enhancing, and water-efficient maize production in the Hexi Oasis irrigation areas.

Key words: biochar, slow-release fertilizer, reduced nitrogen application, maize, yield, water use efficiency, oasis irrigated area

Table 1

Soil bulk density of tillage layer under different treatments"

处理Treatment
BTN1 BTN2 BSN1 BSN2 CTN1 CTN2 CSN1 CSN2
容重 Bulk density (g·cm-3) 1.46 1.47 1.43 1.43 1.56 1.59 1.52 1.53

Fig. 1

Changes of air temperature and precipitation during the study area in 2023 and 2024"

Table 2

Physical and chemical properties of biocha"

pH 裂解温度
Cracking temperature (℃)
有机碳含量
Organic carbon content (%)
全氮含量
Total nitrogen content (%)
全磷含量
Total phosphorus content (%)
全钾含量
Total potassium content (%)
灰分
Ash (%)
9.21 500 53.28 1.04 0.26 0.51 35.64

Table 3

Treatment codes for different experimental designs"

土壤调理剂
Soil conditioner
氮肥类型
Nitrogen type
施氮水平
Nitrogen level
处理代码
Treatment code
生物炭
Biochar (B)
传统化学氮肥
Traditional chemical nitrogen fertilizer (T)
传统施氮量 Traditional nitrogen application rate (N2) BTN2
传统施氮减量30% Reduction of 30% in N2 (N1) BTN1
缓释肥
Slow-release nitrogen fertilizer (S)
传统施氮量 Traditional nitrogen application rate (N2) BSN2
传统施氮减量30% (N1) Reduction of 30% in N2 (N1) BSN1
无调理剂
No conditioner (C)
传统化学氮肥
Traditional chemical nitrogen fertilizer (T)
传统施氮量 Traditional nitrogen application rate (N2) CTN2
传统施氮减量30% Reduction of 30% in N2 (N1) CTN1
缓释肥
Slow-release nitrogen fertilizer (S)
传统施氮量 Traditional nitrogen application rate (N2) CSN2
传统施氮减量30% Reduction of 30% in N2 (N1) CSN1

Fig. 2

Vertical changes of soil water content in 0-120 cm soil layer at various growth stages of maize under reduced nitrogen application with biochar and slow-release fertilizer B and C represent biochar and no conditioner; S and T represent slow-release fertilizer and traditional chemical nitrogen fertilizer; N1 and N2 represent 30% nitrogen reduction and traditional nitrogen application. The same as below. The error line above the figure represents the LSD value"

Fig. 3

The dynamic of average soil moisture content in 0-120 cm soil layer during the whole growth period of maize under reduced nitrogen application with biochar combined with slow-release fertilizer"

Fig. 4

Soil water storage before maize sowing under biochar combined with slow-release fertilizer at reduced nitrogen application SC: Soil conditioner; NT: Nitrogen type; NL: Nitrogen application level. Different letters indicate significant differences between treatments at the 0.05 level (Duncan). **: P<0.01; *: P<0.05; NS: No significant difference. The same as below"

Table 4

Evapotranspiration and evapotranspiration modulus coefficient of maize under the condition of reducing nitrogen application with biochar combined with slow-release fertilizer"

年份
Year
土壤调理剂
Soil conditioner
氮肥类型
Nitrogen type
施氮
水平
Nitrogen level
播种期—拔节期
Sowing-jointing
拔节期—
大喇叭口期
Jointing-big flare
大喇叭口期—
开花期
Big flare-flowering
开花期—灌浆期
Flowering-filling
灌浆期—成熟期
Filling-maturating
总耗水量
Total evapotran-
spiration
(mm)
ET
(mm)
CP
(%)
ET
(mm)
CP
(%)
ET
(mm)
CP
(%)
ET
(mm)
CP
(%)
ET
(mm)
CP
(%)
2023 B S N1 45.1c 8.3bc 106.9d 19.8d 92.7f 17.1d 126.4c 23.4a 169.8b 31.4b 540.9g
N2 46.5bc 8.3c 109.7d 19.6d 96.2e 17.2d 127.8c 22.9ab 179.1ab 32.0a 559.3fg
T N1 48.6abc 8.3c 129.8ab 22.1a 100.6d 17.1d 129.8abc 22.1bc 177.8ab 30.3cd 586.6cd
N2 51.3abc 8.3bc 135.9a 22.5a 113.3b 18.4b 134.1ab 21.7c 182.0a 29.5e 616.6ab
C S N1 48.2abc 8.5bc 118.6c 20.9c 98.1e 17.3cd 125.9c 22.2bc 176.1ab 31.1bc 566.9ef
N2 48.5abc 8.4bc 125.7b 21.7ab 101.0d 17.4cd 128.8bc 22.2bc 176.4ab 30.4cd 580.5cde
T N1 52.4ab 8.7a 126.6b 21.1bc 107.4c 17.9bc 129.8abc 21.6c 184.2a 30.7bcd 600.4bc
N2 54.6a 8.8a 127.0b 20.5c 118.3a 19.0a 135.4a 21.8c 185.7a 29.9de 621.1a
2024 B S N1 17.2c 2.8b 123.6f 20.3ab 87.6f 14.4b 137.1e 22.5a 243.5d 40.0a 609.0f
N2 17.5bc 2.8b 127.8e 20.5ab 92.1e 14.8ab 140.0d 22.4a 246.6d 39.5ab 623.9e
T N1 18.5ab 2.9b 135.7c 20.9ab 98.5c 15.2ab 144.5c 22.3a 251.5c 38.8bc 648.7c
N2 21.3a 3.2a 135.7c 20.2ab 110.6a 16.4a 148.1b 22.0a 257.6b 38.3c 673.2b
C S N1 18.5ab 3.0ab 125.0f 20.1b 94.9d 15.2ab 140.4d 22.5a 243.9e 39.2abc 622.7e
N2 19.1b 3.0ab 132.8d 20.8ab 97.9c 15.3ab 144.4c 22.6a 245.4de 38.4c 639.6d
T N1 20.8a 3.1a 139.4b 20.8ab 104.6b 15.6ab 147.4b 22.0a 258.4b 38.5c 670.7b
N2 21.1a 3.0a 146.0a 21.1a 109.3a 15.8ab 151.4a 21.9a 264.9a 38.2c 692.8a
显著性Significance
土壤调理剂Soil conditioner (SC) * NS NS NS * * NS NS NS NS NS
氮肥类型Nitrogen type (NT) * NS ** * ** * * * * * **
施氮水平Nitrogen level (NL) NS NS NS NS * NS NS NS NS NS NS
土壤调理剂×氮肥类型SC×NT * * ** * ** * * NS * * **
土壤调理剂×施氮水平SC×NL * * NS NS * NS NS NS NS NS NS
氮肥类型×施氮水平NT×NL NS NS ** NS * * ** NS * * **
土壤调理剂×氮肥类型×施氮水平
SC×NT×NL
** * ** * ** * * NS * * *

Fig. 5

Grain yield and water use efficiency of maize under biochar combined with slow-release fertilizer and nitrogen-reducing"

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