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微咸水滴灌对土壤酶活性、CO2通量及有机碳降解的影响

张前前,王飞,刘涛,褚贵新**   

  1. (新疆石河子大学农学院/新疆生产建设兵团绿洲生态农业重点试验室, 新疆石河子 832003)
  • 出版日期:2015-09-18 发布日期:2015-09-18

Effects of brackish water irrigation on soil enzyme activity, soil CO2 flux and organic matter decomposition.

ZHANG Qian-qian, WANG Fei, LIU Tao, CHU Gui-xin   

  1. (College of Agronomy, Shihezi University/Xinjiang Production and Construction Group Key Laboratory of Oasis Ecological Agriculture, Shihezi 832003, Xinjiang, China)
  • Online:2015-09-18 Published:2015-09-18

摘要: 利用微咸水灌溉是解决干旱区水资源短缺的重要途径.通过田间小区滴灌试验,研究了不同矿化度微咸水(0.31、3.0、5.0 g·L-1,NaCl浓度)对土壤过氧化氢酶、蔗糖酶、多酚氧化酶、β-葡萄糖苷酶和纤维素酶活性的影响,采用土壤碳通量和物料袋法研究了土壤CO2通量和有机碳降解对微咸水滴灌的响应.结果表明: 微咸水(3.0 g·L-1)处理下蔗糖酶、β-葡萄糖苷酶、纤维素酶的活性分别比淡水处理降低31.7%~32.4%、29.7%~31.6%、20.8%~24.3%,而土壤多酚氧化酶活性则随灌溉水矿化度提高而显著升高,在膜下微咸水、咸水处理多酚氧化酶较淡水处理提高2.4%、20.5%.土壤微生物生物量碳和微生物熵均随灌溉水矿化度提高呈降低趋势,而代谢熵则呈升高趋势.不同处理对土壤CO2通量影响表现为淡水>微咸水≥咸水,且膜下CO2通量显著高于膜间(P<0.05),棉花吐絮期(9月20日)膜下淡水处理较咸水和微咸水处理的CO2通量分别升高29.8%、28.2%,微咸水滴灌显著降低了土壤CO2通量.不同矿化度微咸水滴灌对有机物(棉花和苜蓿秸秆)的降解率表现为淡水>微咸水>咸水,膜下有机物降解显著高于膜间.在培养第125天时,咸水、微咸水、淡水处理的膜间棉花秸秆回收率分别为39.7%、36.3%、30.5%,膜间苜蓿秸秆回收率分别为46.5%、36.5%、35.4%.微咸水灌溉明显抑制了北疆滴灌棉田土壤酶活性,造成土壤微生物量和CO2通量下降,土壤有机物降解率降低,使绿洲农田土壤生物性状变差.

Abstract: Brackish water irrigation utilization is an important way to alleviate water resource shortage in arid region. A fieldplot experiment was set up to study the impact of the salinity level  (0.31, 3.0 or 5.0 g·L-1 NaCl) of irrigated water on activities of soil  catalase, invertase, β-glucosidase, cellulase and polyphenoloxidase in drip irrigation condition, and the responses of soil CO2 flux and organic matter decomposition were also determined by soil carbon dioxide flux instrument (LI-8100) and nylon net bag method. The results showed that in contrast with fresh water irrigation treatment (CK), the activities of invertase, β-glucosidase and cellulase in the brackish water (3.0 g·L-1) irrigation treatment declined by 31.7%-32.4%, 29.7%-31.6%, 20.8%-24.3%, respectively, while soil polyphenoloxidase activity was obviously enhanced with increasing the salinity level of irrigated water. Compared to CK, polyphenoloxidase activity increased by 2.4% and 20.5%, respectively, in the brackish water and saline water irrigation treatments. Both soil microbial biomass carbon and microbial quotient decreased with increasing the salinity level, whereas, microbial metabolic quotient showed an increasing tendency with increasing the salinity level. Soil CO2 fluxes in the different treatments were in the order of CK (0.31 g·L-1)>brackish water irrigation (3.0 g·L-1)≥ saline water irrigation (5.0 g·L-1). Moreover, CO2 flux from plastic film mulched soil was always much higher than that from no plastic film mulched soil, regardless the salinity of irrigated water. Compared with CK, soil CO2 fluxes in the saline water and brackish water treatments decreased by 29.8% and 28.2% respectively in the boll opening period. The decomposition of either cotton straw or alfalfa straw in the different treatments was in the sequence of CK (0.31 g·L-1)>brackish water irrigation (3.0 g·L-1)>saline water treatment (5.0 g·L-1). The organic matter decomposition rate in the plastic film mulched soil was significantly higher than that in the no plastic film mulched soil. 125 days after incubation, the recovery rates of cotton straw and alfalfa straw were 39.7% and 46.5% with saline water irrigation, 36.3% and 36.5% with brackish water irrigation, and 30.5% and 35.4% with CK, respectively. In conclusion, brackish water drip irrigation had a significant adverse effect on soil enzyme activities, which decreased soil microbial biomass, soil CO2 flux and soil organic matter decomposition, and subsequently deteriorated the soil biological characteristics in oasis farmland.