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連年施加生物炭對黑土區(qū)土壤改良與玉米產(chǎn)量的影響
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國家自然科學(xué)基金項(xiàng)目(51479033)、國家重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2016YFC0400101)、黑龍江省博士后基金項(xiàng)目(LBH-Z17017)和東北農(nóng)業(yè)大學(xué)農(nóng)業(yè)農(nóng)村部農(nóng)業(yè)水資源高效利用重點(diǎn)實(shí)驗(yàn)室開放項(xiàng)目(2017009)


Effects of Successive Application of Biochar on Soil Improvement and Maize Yield of Black Soil Region
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    為研究連年施加生物炭對黑土區(qū)坡耕地的土壤結(jié)構(gòu)、持水性能、玉米產(chǎn)量及可持續(xù)性的影響,從2015年開始,在黑土區(qū)3°坡耕地徑流小區(qū)內(nèi),將玉米作為試驗(yàn)作物連續(xù)進(jìn)行4年生物炭效應(yīng)試驗(yàn)。共設(shè)置C0(0t/hm2)、C25(25t/hm2)、C50(50t/hm2)、C75(75t/hm2)和C100(100t/hm2) 5種生物炭的施用量處理。結(jié)果表明:4年中土壤容重隨生物炭的增加有減小的傾向,孔隙度有逐漸增加的傾向;適量生物炭可有效降低土壤固相比例,提高氣相和液相比例,除2015年外,連續(xù)3年廣義土壤結(jié)構(gòu)指數(shù)(GSSI)隨施炭量的增加先增大后減小,土壤三相結(jié)構(gòu)距離指數(shù)(STPSD)隨施炭量的增加先減小后增大,均在第3年C50處理達(dá)到最優(yōu)(99.96、0.63),同時(shí)土壤三相比偏離值R最小(1.03),三相比最接近理想狀態(tài);連續(xù)4年大于0.25mm團(tuán)聚體含量R0.25、平均質(zhì)量直徑(MWD)和幾何平均直徑(GMD)隨著生物炭的增加有先增加后減小的傾向;連續(xù)3年加入50t/hm2生物炭提高土壤穩(wěn)定性的效果最好;連續(xù)4年飽和含水率與施炭量呈正相關(guān);除2015年外,田間持水率隨施炭量的增加先增加后減小,分別在C100、C50、C50和C25處達(dá)最優(yōu),在2018年C25處為峰值37.33%;土壤有效含水率與田間持水率的變化規(guī)律相同。玉米各生育期0~60cm土層土壤儲水量呈先升高后降低傾向;60~100cm土層土壤儲水量與施炭量呈負(fù)相關(guān);玉米產(chǎn)量可持續(xù)性指數(shù)(SYI)在C50處達(dá)到最大(0.954),變異系數(shù)(CV)在C100處理處最低(0.022);逐年施加50t/hm2生物炭對促進(jìn)玉米產(chǎn)量穩(wěn)定性與可持續(xù)性效果最明顯。

    Abstract:

    In order to study the effects of biochar application on soil structure, water holding capacity, maize yield and sustainability of sloping farmland in black soil area, four consecutive years of biochar effect experiments were carried out in the runoff plot of 3° sloping farmland in black soil area from 2015. A total of five biochar application rates C0(0t/hm2), C25(25t/hm2), C50(50t/hm2), C75(75t/hm2) and C100(100t/hm2) were set. The results showed that soil bulk density was decreased with the increase of biochar in the four years, and porosity was increased gradually. Appropriate amount of biochar can effectively reduce the proportion of soil solid phase and improve the proportion of gas phase and liquid phase. In addition to 2015, the generalized soil structure index (GSSI) was increased first and then decreased with the increase of biochar application rate for three consecutive years, and the three-phase structure distance index (STPSD) was decreased first and then increased with the increase of biochar application rate, reaching the optimal values (99.96,0.63) in the third year of C50 treatment. At the same time, the soil three-phase ratio R was the smallest (1.03), and the threephase ratio was the closest to the ideal state. For four consecutive years, the aggregate content R0.25, mean mass diameter (MWD) and geometric mean diameter (GMD) were increased first and then decreased with the increase of biochar application rate. Adding 50t/hm2 biochar for three consecutive years had the best effect on improving soil stability. The saturated moisture content was positively correlated with carbon application rate for four consecutive years. In addition to 2015, the field water holding rate was increased first and then decreased with the increase of carbon application rate, and reached the optimal treatment at C100, C50, C50 and C25, respectively. The peak value was 37.33% at C25 in 2018. The change rule of soil effective moisture content and field water holding capacity was the same. Soil water storage in 0~60cm soil layer of maize at different growth stages was increased first and then decreased. Soil water storage in 60~100cm soil layer was negatively correlated with carbon application rate. The maize yield sustainability index (SYI) reached the maximum at C50 (0.954), and the coefficient of variation (CV) was the lowest at C100 (0.022). Annual application of 50t/hm2 biochar to promote maize yield stability and sustainability effect was the most obvious.

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魏永霞,朱畑豫,劉慧.連年施加生物炭對黑土區(qū)土壤改良與玉米產(chǎn)量的影響[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2022,53(1):291-301. WEI Yongxia, ZHU Tianyu, LIU Hui. Effects of Successive Application of Biochar on Soil Improvement and Maize Yield of Black Soil Region[J]. Transactions of the Chinese Society for Agricultural Machinery,2022,53(1):291-301.

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  • 收稿日期:2020-11-18
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  • 在線發(fā)布日期: 2022-01-10
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