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1.
为寻求陕南烟田适宜的土壤改良技术,采用生物炭与菜籽饼二元配比试验,研究其对土壤矿质养分及烟叶品质与产量的影响。研究结果表明:生物炭与菜籽饼均有利于提高土壤矿质养分含量,且以混合施用效果更显著。生物炭与菜籽饼能有效促进烤烟生长,改善烤烟农艺性状,增加上、中部烟叶面积且随菜籽饼施用量的增加叶面积呈现增大的趋势。上等烟和中上等烟比率随生物炭施用量的增加呈先增加后降低的趋势;而产量与产值则随菜籽饼用量的增加表现出增大的趋势。生物炭和菜籽饼及二者交互对烤烟化学品质提升效果显著,能有效提高烤烟全氮、烟碱、钾及总糖和还原糖含量,降低烤后烟叶淀粉水平。综合分析,在陕西安康市旬阳地区推荐生物炭与菜籽饼配比为生物炭750 kg/hm2+菜籽饼750 kg/hm2。  相似文献   

2.
王娟娟  朱紫娟  钱晓晴  王桂良 《土壤》2021,53(5):983-990
为了研究减施化肥配施不同有机肥对稻麦轮作体系稻季土壤细菌群落结构的影响,采用Illumina高通量测序技术比较了单施化肥、配施菜籽饼和配施蚯蚓粪这3种施肥模式下稻季不同土层土壤环境因子、细菌群落结构变化特征。与单施化肥相比,配施有机肥显著提高各土层土壤有机质和电导率(EC)含量,配施菜籽饼增幅较大;显著增加各土层土壤氮磷钾养分含量,配施蚯蚓粪的土壤速效氮磷钾养分含量较高。配施有机肥提高土壤细菌Sobs指数和Shannon指数;前三位优势菌门,变形菌门(Proteobacteria)、酸杆菌门(Acidobacteria)、绿弯菌门(Chloroflexi)相对丰度分别达36.24%、18.30%、13.87%;配施有机肥对相对丰度小于1%的菌门影响较大。0-5cm土层土壤细菌群落结构主要受pH、TP影响;5-10cm土层土壤细菌群落结构主要受EC,TP、pH影响;10-15cm土层土壤细菌群落结构主要受TN、pH影响。配施有机肥通过改变土壤理化性质进而影响土壤细菌群落结构,特别是稀有菌群。  相似文献   

3.
陈利军  孙波  金辰  蒋瑀霁  陈玲 《土壤》2015,47(2):340-348
施用有机肥是快速培育瘠薄土壤的一个重要措施。针对中亚热带第四纪红黏土发育的红壤旱地,建立了玉米和花生单作系统等碳量投入有机肥和生物炭的田间试验,利用聚合酶链式反应—变性梯度凝胶电泳(polymerase chain reaction-denaturing gradient gel electrophoresis,PCR-DGGE)方法研究了土壤细菌和真菌群落组成和多样性的变化,分析了土壤呼吸速率(CO2通量)的变化及其与微生物多样性的关系。两年的试验表明,不同施肥方式导致微生物群落结构显著分异,施用有机肥和生物炭显著增加了细菌多样性,但施肥第二年真菌多样性有下降趋势。秸秆和猪粪配施显著增加了土壤呼吸速率,土壤呼吸速率与细菌和真菌多样性呈显著正相关,细菌多样性对土壤呼吸的影响(相对贡献率为71%)显著高于真菌(29%)。土壤磷素(全磷和速效磷)含量的变化是驱动红壤微生物多样性变化的主导因素,其对细菌和真菌多样性的相对贡献率分别为44.8%和47.4%。因此,合理配施秸秆和猪粪可以快速提高瘠薄红壤的生物功能。  相似文献   

4.
Biochars are adsorptive solids potentially of benefit to soil microbes by providing improved nutrient retention, a carbon substrate and contaminant adsorption. A 28-day incubation experiment gauged the interactive effects of biochar application and contaminants on the microbial biomass and respiration of a sandy loam soil. Soil was amended with 250 mg/kg phenol or p-nitrophenol (two toxic but nevertheless biodegradable organic contaminants) or 50 mg/kg cadmium or copper. Biochar application generally caused increased microbial respiration and biomass relative to non-amended controls. Of the heavy metal-amended soils, Cu effected significant reductions in microbial biomass carbon and basal respiration, which were improved with concurrent biochar amendment. The biochar’s functional groups are likely to have mitigated the metals’ negative effects via complexation and sorption, while the soil’s proportion of negative pH-dependent sites was increased by the pH rise induced by biochar application, allowing more cationic retention. Organic contaminant-spiked soils had higher microbial biomass-specific respiration without biochar amendment, indicating that surviving microbes utilised the compounds and necromass as substrates. Paranitrophenol proved to be particularly toxic without biochar application, causing marked reductions in the microbial quotient and biomass carbon. Remarkably, concurrent biochar and pNP application led to hugely increased microbial biomass carbon and nitrogen, significantly higher than those in contaminant-free replicates. It is likely this arose from biochar sorbing the contaminant and allowing its microbial utilisation as a carbon and nitrogen source, stimulating growth. Biochar application is a highly promising strategy for reducing the soil microbial toxicity of heavy metals and aromatic organic contaminants, particularly p-nitrophenol.  相似文献   

5.
The use of pyrolysis products of manures gives positive effects on soil fertility, crop productivity and soil carbon sequestration. However, effects depend on soil characteristics, plant species and the raw material from which the biochar is derived, and some negative effects of biochar have been reported. The objective of this study was to evaluate the effectiveness of poultry manure (PM)‐derived biochar on the growth, and P, N, K, Ca, Mg, Fe, Zn, Cu and Mn concentration of lettuce (Lactuca sativa L.) plant. The treatments as follows: control, 20 g/kg poultry manure (PM), 20 g/kg phosphorus‐enriched poultry manure (PM+P), 10 g/kg Biochar (B), 10 g/kg Biochar+P (B+P). Application of biochar and PM significantly increased lettuce growth, and P‐enriched forms of PM and biochar gave the higher growth. PM has no significant effect on the N concentrations but biochar and, P‐enriched PM and biochar treatments significantly increased N concentrations. Phosphorus concentration of the lettuce leaves significantly increased by PM and biochar treatments. Plant K concentrations were also increased by PM and biochar, and their P‐enriched forms. Leaf Ca and Mg concentrations were lower in Biochar and B+P treatments than that of PM and PM+P treatments. Compared to control and PM treatments, biochar applications reduced Fe, Zn, Mn and Cu concentrations of the lettuce plants. The results of this study indicated that application of biochar to alkaline soil is beneficial for crop growth and N, P and K nutrition, but it certainly reduced Fe, Cu, Zn and Mn nutrition of lettuce.  相似文献   

6.
Biochar is obtained by the pyrolysis of biomass, and contains abundant carbon and minerals. Biochar supplementation of soils can greatly improve soil health and quality, but these beneficial effects typically develop slowly over time. Depending on the quality of the biochar and the soil to which it is applied, it may take years before positive effects are apparent. This is because organic substances are slowly sorbed onto the biochar over time, and the biochar eventually becomes part of the sorption complex of the soil. It is therefore advisable to apply biochar together with some organic material. We examined the effect of co-application of different doses of biochar with manure on soil dehydrogenase activity (DHA), soil oxidizable carbon (COX), cumulative soil respiration, soil buffering capacity, the soil exchange reaction (pH/KCl) and the production yield of winter rape seeds. We also determined seed production when artificial granular fertilizers were added to biochar and manure. The results showed that the application of biochar and manure significantly increased grain yield, DHA, the soil exchange reaction and cumulative respiration. Thus, application of biochar with organic material can increase seed yield and some properties of agricultural soils. However, the positive effect of biochar on seed yield was not directly proportional to biochar dose, in that the seed yield was lower for a biochar dose of 45 t/ha than 30 t/ha.  相似文献   

7.
【目的】揭示生物炭连续添加对旱地红壤溶解性有机碳的影响。【方法】通过定位试验,探讨了低剂量(0.75~1.5 t hm-2)生物炭连续施用7年后油菜产量、土壤理化性质和溶解性有机碳荧光光谱组分及参数变化特征。【结果】与对照(CK)相比,生物炭施用降低了土壤交换性Al3+含量(0.69~0.87 cmol kg-1),提高了土壤pH(0.13~0.21个单位)、有机质含量(11.7%~18.1%)和可溶性碳含量(127.5%~127.8%);油菜单株角果数提高了39.8%~45.2%,油菜产量增加了3.5%~20.3%,其产量随着生物炭添加量呈递增趋势。连续施用生物炭有利于增加溶解性有机碳中类酪氨酸和类富里酸的比例,且显著降低了微生物代谢产物的比例。与CK相比,连续施用生物炭后土壤溶解性有机碳荧光指数降低了4.4%~10.6%,新鲜度指数降低了17.4%~18.4%,自生源指数降低了0.26(22.6%),而腐殖化指数增加了1.2%~5.1%。相关分析表明溶解性有机碳与pH呈显著正相关,而与交换性Al3+呈显著负相关;微生物代谢产物与pH呈显著...  相似文献   

8.
ABSTRACT

Conversion of manures to vermicompost and biochar may alleviate some negative effects of manure application to soil but the efficiency of the produced vermicompost and biochar as compared to their feedstocks is not well-known. In the current investigation, we compared the effects of sheep manure and its derived vermicompost and biochar (pyrolyzed at 400°C for 4 h) on the properties of a calcareous soil that planted with five cultivars of barley (Behrokh, Khatam, Reyhaneh03, Fajr 30 and Nimrooz) for 60 days. Different soil properties and availability of nutrients and barley yield were determined after plant harvest. The biochar significantly increased barley yield rather than control (4.20 vs. 3.57 g pot?1), but sheep manure and vermicompost had no effect on it (3.51 and 3.37 g pot?1, respectively). Fajr 30 and Nimrooz (3.52 and 3.42 g pot?1, respectively) had significantly lower yield than other cultivars. Biochar increased soil pH up to 8.2. Soil salinity was increased by application of all organic materials (increase to 16–36%). Cation exchange capacity (CEC) and organic matter content of soil were also increased by all organic materials application (0.4–0.9 cmol kg?1 and 0.33–0.50%, respectively). All organic materials increased total nitrogen (N), but this increase was the highest with sheep manure application (53%). The availability of phosphorus (P) and potassium (K) was increased significantly by application of all organic materials, and this increase was the highest with biochar application (19 and 309 mg kg?1, respectively). Biochar application had no effect on the availability of micronutrients, but application of sheep manure and vermicompost increased the availability of iron (Fe) (0.62 and 0.48 mg kg?1, respectively) and zinc (Zn) (0.18 and 0.37 mg kg?1, respectively). Generally, organic materials may change the status of soil nutrients via change in soil pH, organic matter content, release of nutrients, increase in soil CEC and formation of soluble complex with nutrients.  相似文献   

9.
农田施用生物质炭作为农田土壤固碳减排技术的重要措施已受到广泛关注。本研究选择一次性大量施入生物质炭3年后且长期种植玉米的旱地土壤为研究对象,通过室内培养试验,研究了不同水分条件下的有机碳稳定性的变化,结果表明:一级动力学方程较好地描述了土壤有机碳的矿化动态,总体看来旱地土壤有机碳的矿化强度随土壤含水量的增加而增大,在25%WHC(持水量,water holding capacity)、50%WHC和75%WHC水分条件下,与C0(无生物质炭)相比,C20(生物质炭20 t/hm2)、C40(生物质炭40 t/hm2)处理下,有机碳的矿化强度分别降低了28.57%~42.86%(25%WHC)、22.22%~33.33%(50%WHC)、15.00%~30.00%(75%WHC),不同处理下土壤的微生物商和微生物代谢熵对水分的响应存在明显差异,与对照相比,生物质炭施用下微生物量相对稳定,且稳定程度与生物质炭用量有关。因此,旱地土壤施用生物质炭具有保持微生物量稳定且降低土壤有机碳矿化与CO2释放的作用,这对于农田土壤有机碳的固持增汇具有重要意义。  相似文献   

10.
生物质炭作为一种多功能的土壤培肥材料被广泛应用,但其与传统有机物料的对比及配施研究还比较少。通过盆栽试验,研究了生物质炭与秸秆、发酵鸡粪单施及配施对壤质潮土和砂土养分含量、酶活性及玉米生长的影响,并采用主成分分析方法对3种有机物料的培肥效果进行综合评价。试验设6个处理,分别为不添加有机物料(CK)、添加生物质炭(BC)、小麦秸秆(WS)、发酵鸡粪(CM)、秸秆和生物质炭(WS+BC)、鸡粪和生物质炭(CM+BC)。研究结果表明,各处理均增加了砂土玉米生物量和株高,3种有机物料的提升幅度排序为:鸡粪生物质炭秸秆,鸡粪还可增加壤质潮土玉米生物量和株高。添加生物质炭和有机物料还可提高土壤有机质含量,其中生物质炭的提升幅度最大。此外,3种有机物料对土壤养分和酶活性的影响各异,单施鸡粪分别增加壤质潮土和砂土的碱解氮22.08%和26.67%,速效磷91.92%和53.65%,脲酶活性40.54%和36.94%;单施生物质炭分别增加壤质潮土和砂土速效磷83.52%和89.91%,速效钾79.38%和127.02%,过氧化氢酶活性3.41%和11.22%,却降低了土壤碱解氮含量,且与鸡粪配施后会抑制鸡粪中氮的有效性;单施秸秆分别增加壤质潮土和砂土速效钾49.48%和63.02%,β-葡糖苷酶活性51.86%和59.09%;生物质炭与鸡粪或秸秆配施可以更均衡地提升土壤肥力。通过主成分分析和相关分析发现,玉米生物量和株高与土壤氮、磷供应正变化的第2主成分(PC2)得分呈极显著正相关关系。因此,3种有机物料中,鸡粪对土壤氮、磷含量及相关酶活性影响最大;秸秆对土壤钾以及纤维素分解相关酶影响较大,而生物质炭对土壤肥力的提升作用更均衡,且土壤肥力综合得分最高。秸秆或鸡粪配施生物质炭可以更全面地提高土壤肥力。  相似文献   

11.
ABSTRACT

Although environmental impacts of biochar are well characterized, impacts on soil quality, nutrient availability and crop productivity, still remain a challenge due to the diverse response of different soil types to different types of biochar, namely those obtained at low temperature. The impact of an alkaline woody biochar (two doses 5% and 10%) obtained at 280°C, on soil enzyme activity, soil microbial respiration rate, mineral nitrogen (N) availability and ammonia volatilization was studied in one conventionally and one organically managed soils, with and without the addition of urea or composted farmyard manure. Biochar additions had different effects on soil enzyme activity in both soils, suggesting lower decomposing microbial activity processes promoted by biochar. Both soils showed a similar decreasing trend regarding soil respiration rates for all treatments, and significant relationships were observed between the treatments with different rates of applied biochar, but not constant for the entire incubation period. Urea application increased soil mineral N concentrations, especially nitrate concentrations when biochar was applied as well. Biochar decreased ammonia volatilization from conventionally managed soil fertilized with urea, but did not have a significant effect when compost was added to the organically managed soil. Biochar altered microbial behavior in soil, and was affected by previous soil management. So, the impact of biochar produced at low temperatures on soil biological processes is similar to those obtained at high temperature, thus proving that there is no need to increase the energy expenditure to produce biochar, to obtain a good product.  相似文献   

12.
生物黑炭被作为土壤改良剂应用逐渐被认可,但其应用机制特别是生物黑炭对氮素形态和根际微生物的影响机理尚不明确,影响其推广。本文采用盆栽试验,研究了玉米和水稻秸秆烧制的生物黑炭按不同量施入土壤后,对玉米苗期株高、生物量和根际土壤氮素形态及相关微生物的影响。结果表明,施入60 g·kg-1玉米黑炭和40~60 g·kg-1水稻黑炭均对玉米苗期株高有显著(P0.05)降低作用,其中水稻黑炭的降低效果更为明显;分别施入60 g·kg-1玉米黑炭和20~60 g·kg-1水稻黑炭后,玉米植株地上部生物量均显著降低。施入60 g·kg-1玉米黑炭后根际土壤含水量和微生物量氮显著提高。随两种生物黑炭施入量的不断增加,玉米苗期根际土壤全氮、硝态氮含量以及固氮作用强度也显著增加,且均在60 g·kg-1施用量下达最大值。施用40 g·kg-1玉米黑炭可显著提高玉米苗期根际土壤氨态氮含量。同时,施用两种生物黑炭后,均不同程度地抑制了玉米根际土壤中细菌总体数量,促进了固氮菌和纤维素降解菌的生长,其中施入60 g·kg-1玉米黑炭的效果最为明显。综上,玉米和水稻秸秆生物黑炭的适量施用,可以促进玉米根际土壤氮素的循环转化,影响相关微生物的群落结构,且与水稻秸秆相比,玉米秸秆生物黑炭的施用效果更加明显。本文针对作物生长、土壤氮素形态及相关微生物数量3个方面研究生物黑炭施入土壤对氮有效性的影响,能够更全面、更准确地将生物黑炭如何影响土壤氮素转化展现出来,促进生物黑炭的深入开发利用,对黑土肥力保护具有一定意义。  相似文献   

13.
Owing to their potential advantages such as waste reduction,recycling,and economic attributes,fast-growing bioenergy crops have the capacity to e?ectively phytoremediate heavy metal-contaminated soils.However,little is known about the role of microbial and chemical amendments in phytoremediation using bioenergy crops.Here,we studied the contributions of inoculation with the arbuscular mycorrhizal fungus (AMF) Acaulospora mellea ZZ and three soil amendments,i.e.,hydroxyapatite (HAP),manure,and bi...  相似文献   

14.
Biochar amendment in soil has been proposed as a carbon sequestration strategy which may also enhance soil physical and chemical properties such as nutrient and water holding capacity as well as soil fertility and plant productivity. However, biochar may also stimulate microbial activity which may lead to increased soil CO2 respiration and accelerated soil organic matter (OM) degradation which could partially negate these intended benefits. To investigate short-term soil microbial responses to biochar addition, we conducted a 24 week laboratory incubation study. Biochar produced from the pyrolysis of sugar maple wood at 500 °C was amended at concentrations of 5, 10 and 20 t/ha in a phosphorus-limited forest soil which is under investigation as a site for biochar amendment. The cumulative soil CO2 respired was higher for biochar-amended samples relative to controls. At 10 and 20 t/ha biochar application rates, the concentration of phospholipid fatty acids (PLFAs) specific to Gram-positive and Gram-negative bacteria as well as actinomycetes were lower than controls for the first 16 weeks, then increased between weeks 16–24, suggesting a gradual microbial adaptation to altered soil conditions. Increases in the ratio of bacteria/fungi and lower ratios of Gram-negative/Gram-positive bacteria suggest a microbial community shift in favour of Gram-positive bacteria. In addition, decreasing ratios of cy17:0/16:1ω7 PLFAs, a proxy used to examine bacterial substrate limitation, suggest that bacteria adapted to the new conditions in biochar-amended soil over time. Concentrations of water-extractable organic matter (WEOM) increased in all samples after 24 weeks and were higher than controls for two of the biochar application rates. Solution-state 1H NMR analysis of WEOM revealed an increase in microbial-derived short-chain carboxylic acids, lower concentrations of labile carbohydrate and peptide components of soil OM and potential accumulation of more recalcitrant polymethylene carbon during the incubation. Our results collectively suggest that biochar amendment increases the activity of specific microorganisms in soil, leading to increased CO2 fluxes and degradation of labile soil OM constituents.  相似文献   

15.
生物炭和有机肥施用提高了华北平原滨海盐土微生物量   总被引:2,自引:0,他引:2  
【目的】研究施加不同量生物炭和有机肥对山东滨州滨海盐地土壤微生物量碳、氮 (MBC、MBN) 含量的影响,为改善盐地土壤环境质量和盐地的可持续利用提供科学依据。【方法】试验共设置6个处理:CK (无机肥)、C1[生物炭5 t/(hm2·a)]、C2[生物炭10 t/(hm2·a)]、C3[生物炭20 t/(hm2·a)]、M1[有机肥7.5 t/(hm2·a)]、M2[有机肥10 t/(hm2·a)]。各处理均施加等量的N[200 kg/(hm2·a)]和P2O5[120 kg/(hm2·a)],生物炭和有机肥处理不足部分由尿素和磷酸二铵补充。生物炭、有机肥和基肥均分为玉米、小麦两季人工施入,每个处理3次重复,小区随机排列。在玉米和小麦的不同生育期,取0—20 cm和20—40 cm土样,测定土壤MBC和MBN、土壤pH、土壤含水量、硝态氮和铵态氮含量。【结果】施加生物炭和有机肥均可增加土壤MBC和MBN。施用基肥5天后,生物炭和有机肥显著增加了土壤MBC和MBN含量,而追肥对土壤MBC和MBN的影响并不显著。生物炭处理土壤MBC变化范围在64.1~570.0 μg/g,有机肥处理变化范围在90.6~451.3 μg/g之间。C3、M1、M2处理均显著增加了0—40 cm土壤MBC (增幅在40.9%~118.4%之间) ,而C1、C2仅显著增加20—40 cm土层的MBC含量 (增幅分别为47.7%、60.0%) 。生物炭处理MBN含量在5.3~92.5 μg/g之间,与CK相比差异不显著;有机肥处理变化范围为4.2~163.9 μg/g,M1和M2显著增加了土壤MBN含量,增加幅度达56.4%~162.3%。生物炭和有机肥的施加对土壤pH影响显著,生物炭显著降低了20—40 cm的土壤pH,而有机肥显著降低了0—40 cm的土壤pH。相关分析表明,土壤pH与土壤MBC和MBN均呈极显著的负相关关系。土壤MBC和MBN均与土壤矿质氮表现出显著正相关关系。除M1处理玉米产量显著降低外,生物炭和有机肥的施加对玉米和小麦产量均没有产生显著影响。玉米季前期以细菌为主,后期则以真菌为主。小麦季MBC/MBN波动较大。【结论】施加生物炭和有机肥对土壤MBC和MBN含量影响显著,对盐地土壤MBC和MBN均具促进作用。土壤MBC和MBN与土壤pH具有显著的负相关关系,与土壤矿质氮呈显著正相关关系,说明生物炭和有机肥的施加能够降低盐地土壤pH,增加土壤矿质氮,有利于盐地土壤环境质量的改善。  相似文献   

16.
生物质炭对土壤有机质活性的影响   总被引:35,自引:4,他引:31  
章明奎  唐红娟 《水土保持学报》2012,26(2):127-131,137
为了解施用生物质炭对土壤碳组分的潜在影响,通过室内2年盆栽培养试验研究施用不同用量生物质炭对土壤有机碳积累、有机碳稳定性、微生物量碳和水溶性有机碳的影响,并与施用等碳量的小麦秸秆、酸洗生物质炭(去除生物质炭中的速效养分)及同时施用小麦秸秆与生物质炭的处理进行比较。结果表明,施用生物质炭可显著提高土壤有机碳的积累,增加土壤有机碳的氧化稳定性,降低土壤水溶性有机碳。施用生物质可在短时间内增加微生物量碳,但随着培养时间的增加,其微生物量碳逐渐下降,最终明显低于对照土壤(不施有机物料的处理)。土壤水溶性有机碳的下降可能与生物质炭对其吸附固定有关,而短时间内激发微生物量碳增加可能与施入生物质炭增加了土壤有效养分、改善土壤微生物生长环境有关。研究结果认为,长期单一施用生物质炭可能会引起土壤有机质生物活性的下降,但生物质炭与一般生物质有机肥配合施用可减免这些负影响。  相似文献   

17.

Purpose

Biochar addition to soils potentially affects various soil properties, and these effects are dependent on biochars derived from different feedstock materials and pyrolysis processes. The objective of this study was to investigate the effects of amendment of different biochars on soil physical and hydraulic properties.

Materials and methods

Biochars were produced with dairy manure and woodchip at temperatures of 300, 500, and 700 °C, respectively. Each biochar was mixed at 5 % (w/w) with a forest soil, and the mixture was incubated for 180 days, during which soil physical and hydraulic properties were measured.

Results and discussion

Results showed that the biochar addition significantly enhanced the formation of soil macroaggregates at the early incubation time. The biochar application significantly reduced soil bulk density, increased the amount of soil organic matter, and stimulated microbial activity at the early incubation stage. Saturated hydraulic conductivities of the soil with biochars, especially produced at high pyrolysis temperature, were higher than those without biochars on the sampling days. The treatments with woodchip biochars resulted in higher saturated hydraulic conductivities than the dairy manure biochar treatments. Biochar applications improved water retention capacity, with stronger effects by biochars produced at higher pyrolysis temperatures. At the same suction, the soil with woodchip biochars possessed higher water content than that with the dairy manure biochars.

Conclusions

Biochar addition significantly affected the soil physical and hydraulic properties. The effects were different with biochars derived from different feedstock materials and pyrolysis temperatures.  相似文献   

18.
有机物料对植烟土壤氮素矿化及微生物性质的影响   总被引:5,自引:0,他引:5  
采用稻草、油菜、黑麦草和菜籽饼等4种有机物料,采集高有机质含量(68.2 g·kg–1)烟-稻轮作土壤和低有机质含量(17.2 g·kg-1)旱地植烟土壤,在等氮(100 mg·kg-1)投入条件下通过室内培育实验,分析了不同培育时段土壤无机氮(NO3-、NH4+)矿化动态、土壤酶活性以及微生物功能多样性的变化。结果表明:植烟土壤矿化氮动态特征与施用有机物料碳氮比(C/N)密切相关,高有机质植烟土壤中添加稻草、油菜和黑麦草显著降低土壤净矿化氮水平,而低C/N的菜籽饼添加显著促进了土壤净矿化速率,引起土壤无机氮积累。在低有机质植烟土壤添加各有机物料明显提升了土壤硝化速率,但稻草和油菜添加显著降低了培养前期土壤无机氮浓度;而菜籽饼添加显著促进了土壤的净矿化速率,在短期培养内(7 d)土壤铵态氮浓度较对照土壤增加了3.3倍~3.7倍。施入高C/N的有机物料显著提升了土壤微生物功能多样性,引起土壤酶活性增高;但不同物料添加下土壤微生物群落变异不同,诱导了对碳源利用类型不同的微生物种群变化。因此,烟-稻轮作区的高有机质植烟土壤上合理施用稻草是改善烤烟品质重要措施,而对旱地植烟土壤应更加重视高氮源有机肥料的施用,以实现不同植烟区提质增效的目标。  相似文献   

19.
Biochar application to arable soils could be effective for soil C sequestration and mitigation of greenhouse gas (GHG) emissions. Soil microorganisms and fauna are the major contributors to GHG emissions from soil, but their interactions with biochar are poorly understood. We investigated the effects of biochar and its interaction with earthworms on soil microbial activity, abundance, and community composition in an incubation experiment with an arable soil with and without N-rich litter addition. After 37 days of incubation, biochar significantly reduced CO2 (up to 43 %) and N2O (up to 42 %), as well as NH4 +-N and NO3 ?-N concentrations, compared to the control soils. Concurrently, in the treatments with litter, biochar increased microbial biomass and the soil microbial community composition shifted to higher fungal-to-bacterial ratios. Without litter, all microbial groups were positively affected by biochar × earthworm interactions suggesting better living conditions for soil microorganisms in biochar-containing cast aggregates after the earthworm gut passage. However, assimilation of biochar-C by earthworms was negligible, indicating no direct benefit for the earthworms from biochar uptake. Biochar strongly reduced the metabolic quotient qCO2 and suppressed the degradation of native SOC, resulting in large negative priming effects (up to 68 %). We conclude that the biochar amendment altered microbial activity, abundance, and community composition, inducing a more efficient microbial community with reduced emissions of CO2 and N2O. Earthworms affected soil microorganisms only in the presence of biochar, highlighting the need for further research on the interactions of biochar with soil fauna.  相似文献   

20.
Li  Yongfu  Hu  Shuaidong  Chen  Junhui  Müller  Karin  Li  Yongchun  Fu  Weijun  Lin  Ziwen  Wang  Hailong 《Journal of Soils and Sediments》2018,18(2):546-563
Purpose

Forests play a critical role in terrestrial ecosystem carbon cycling and the mitigation of global climate change. Intensive forest management and global climate change have had negative impacts on the quality of forest soils via soil acidification, reduction of soil organic carbon content, deterioration of soil biological properties, and reduction of soil biodiversity. The role of biochar in improving soil properties and the mitigation of greenhouse gas (GHG) emissions has been extensively documented in agricultural soils, while the effect of biochar application on forest soils remains poorly understood. Here, we review and summarize the available literature on the effects of biochar on soil properties and GHG emissions in forest soils.

Materials and methods

This review focuses on (1) the effect of biochar application on soil physical, chemical, and microbial properties in forest ecosystems; (2) the effect of biochar application on soil GHG emissions in forest ecosystems; and (3) knowledge gaps concerning the effect of biochar application on biogeochemical and ecological processes in forest soils.

Results and discussion

Biochar application to forests generally increases soil porosity, soil moisture retention, and aggregate stability while reducing soil bulk density. In addition, it typically enhances soil chemical properties including pH, organic carbon stock, cation exchange capacity, and the concentration of available phosphorous and potassium. Further, biochar application alters microbial community structure in forest soils, while the increase of soil microbial biomass is only a short-term effect of biochar application. Biochar effects on GHG emissions have been shown to be variable as reflected in significantly decreasing soil N2O emissions, increasing soil CH4 uptake, and complex (negative, positive, or negligible) changes of soil CO2 emissions. Moreover, all of the aforementioned effects are biochar-, soil-, and plant-specific.

Conclusions

The application of biochars to forest soils generally results in the improvement of soil physical, chemical, and microbial properties while also mitigating soil GHG emissions. Therefore, we propose that the application of biochar in forest soils has considerable advantages, and this is especially true for plantation soils with low fertility.

  相似文献   

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