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1.
采用不同粒径(0.5,0.25~0.5,0.25mm)的4种原材料(椰糠、木薯秸秆、桉树枝、猪粪),通过不同热解温度(300,400,500,600℃)炭化不同时间(1,2,3,5h)制备生物炭,探讨制炭条件对生物炭碱性基团含量的影响,并探索生物炭改良酸性土壤pH的影响因素。结果表明,不同制炭条件所制备的生物炭均呈碱性,碱性基团含量范围为0.40~1.05mmol/g。不同原材料生物炭碱性基团含量呈现猪粪木薯秸秆椰糠桉树枝的规律。随着热解温度的升高、热解时间的延长及原材料粉碎粒度的减小,生物炭碱性基团含量呈增加趋势。研究还表明,添加生物炭能显著提高酸性土壤pH,其改良酸性土壤的能力随碱性基团含量的增加而增强。原材料粉碎粒度减小、热解温度升高和热解时间延长及用量增加,均能有效提升生物炭改良酸性土壤pH的效果。  相似文献   

2.
热解温度对生物质炭碳保留量及稳定性的影响   总被引:5,自引:4,他引:5  
以核桃壳为生物质炭生产原料,研究热解温度(200~700℃)对生物质炭产率、元素组成、表面官能团分布及其稳定性的影响,以期探明生物质炭基本性质随热解温度变化的规律,为全面了解生物质炭固碳减排效果提供理论参考。结果表明,生物质炭的C含量随温度升高而增加,H和O元素含量却随温度升高而降低。此外,生物质炭的H/C和O/C随着温度增加而减少。生物质炭的产率及碳保留量随着温度的升高而降低。红外光谱分析结果表明,经过热解核桃壳原材料分子中所含的-C-O和O-CH3基团消失,随着热解温度升高,生物质炭中的烷烃基团-CH逐渐减少,芳香化程度逐渐升高。500℃制备生物质炭的K2Cr2O7和KMn O4氧化碳损失量均最低,分别为10.4%和1.66%。相关分析表明,生物质炭的产率、碳保留量及稳定性与热解温度之间均具有显著相关关系。  相似文献   

3.
不同热解温度制备的水稻秸秆生物炭理化特性分析   总被引:1,自引:0,他引:1  
《土壤通报》2020,(1):136-143
以不同热解温度(100~800℃)制备的水稻秸秆生物炭为研究对象,研究在不同热解温度下制成的生物炭的理化特性。结果表明,热解温度为100~300℃制成的水稻秸秆生物炭呈弱酸性,400℃以上时呈碱性;水稻秸秆生物炭表面碱性含氧官能团数量随着热解温度的升高而增加、酸性含氧官能团则减少;水稻秸秆生物炭中的官能团C=C、C-O-C、-OH和-C=O在较高的热解温度下发生缔合或消除,促进了芳香基团的形成;随着热解温度的升高,水稻秸秆生物炭的阳离子交换量(CEC)、比表面积、孔径、比孔容、氮气吸附量和颗粒表面的分型维数(D1)均先增加后降低,阳离子交换量(CEC)在300~500℃时、其它性状在400~600℃之间达到最大值;以不同热解温度制成的水稻秸秆生物炭颗粒的孔隙结构均以孔隙宽度2~50 nm的中孔为主。随热解温度的升高,水稻秸秆生物炭的产率逐渐降低;400~500℃炭化2 h,生物炭产率最高,其孔隙结构最为复杂,所以可以认为400~500℃是水稻秸秆炭化的最佳温度。  相似文献   

4.
热解温度对玉米秸秆炭产率及理化特性的影响   总被引:2,自引:0,他引:2  
【目的】通过对不同热解温度条件下玉米秸秆炭理化特性的分析,探索玉米秸秆炭具有较高利用价值的炭化温度。【方法】以玉米秸秆为原料,采用低氧升温炭化法,在不同热解温度下 (100℃、200℃、300℃、400℃、500℃、600℃、700℃、800℃) 分别炭化2 h,制备生物炭,收集并测定了固体产物生物炭产率及特性。【结果】生物炭的产率随热解温度的升高逐渐降低。生物炭全碳含量和碳氮比随热解温度升高而升高,全氮含量在400℃以后随热解温度升高而降低。阳离子交换量 (CEC) 在400℃~600℃达到较高水平,为70.87~83.48 cmol/kg。随热解温度升高,玉米秸秆炭表面碱性含氧官能团增加、酸性含氧官能团减少,pH随着热解温度的升高逐渐增加,当温度达到400℃及400℃以上时呈碱性甚至强碱性。红外光谱分析表明,热解温度达到500℃时,纤维素和半纤维素已经完全分解;高温热解使玉米秸秆中–CH3、–CH2、–OH、–C=O间发生缔合或消除,促进芳香基团的形成。随着热解温度的升高,玉米秸秆炭的比表面积和比孔容均是先变大后变小,孔径先变小后变大,在400℃~600℃条件下,玉米秸秆炭的孔隙相对较为丰富,不同热解温度下玉米秸秆炭的比表面积和比孔容呈极显著正相关关系(P < 0.01)。【结论】综合各项指标,玉米秸秆的最佳热解温度为400℃~500℃,此温度下制备的生物炭产出率相对较高,氮、碳养分损失少,生物炭的理化性能和养分利用均达到最优。  相似文献   

5.
[目的]研究不同温度制备的玉米秸秆和污泥基生物质炭不同施加量对盐碱土壤基本理化性质的影响,为盐碱土改良及土壤污染物质的生态修复等方面的研究提供科学依据。[方法]以质量比5∶2的玉米秸秆和剩余活性污泥为原料,分别在300,350,400,450,500℃共5个不同温度条件下热解制备生物质炭,通过扫描电镜、元素分析和红外光谱对其性质及结构进行分析,并通过培养试验研究其对盐碱土壤基本理化性质的影响。[结果]随着热解温度的升高,生物质炭微观结构越发达,比表面积越大,表面官能团的种类和数量也产生了显著性变化;同时随着热解温度逐渐升高,生物质炭C含量不断增加,而O,H和N含量却逐渐降低;添加玉米秸秆和污泥共热解制备的生物质炭能够显著增加盐碱土壤中有机碳含量,而土壤中总氮、总磷、有效磷、速效钾含量变化幅度较小;水溶性盐含量降低明显;加入生物质炭后大幅度提高了土壤阳离子交换能力,添加量越大,阳离子交换量越大;但生物质炭对土壤pH值影响不大。[结论]玉米秸秆和污泥基生物质炭提高了土壤养分含量和肥力指标,降低了土壤盐碱性。玉米秸秆和污泥基生物质炭可用于盐碱土壤的改良。  相似文献   

6.
不同类型生物炭理化特性及其对土壤持水性的影响   总被引:5,自引:0,他引:5  
[目的]对比分析不同原料制备的生物炭的理化性质及其对土壤持水性的影响,为选择合适的生物炭改良和修复土壤提供理论依据。[方法]以鸡粪、浒苔及稻草为原料,分高、中、低3种不同温度制备生物炭,运用元素分析、盆栽培养等试验研究其特性。[结果]稻草中C,H及灰分的含量较高,鸡粪中N含量较高,浒苔中C含量低,O含量较高;而在制备的生物炭中,鸡粪基生物炭C和N含量较高,浒苔基生物C含量却比较低。另外,3种类型生物炭的H/C摩尔比值随着热解温度的升高而逐渐降低,C/N比随着热解温度的升高而增大。不同原料制备的生物炭pH值随着热解温度的升高而增大,pH值从6.82~8.35升高至9.33~10.29;3种类型的生物炭pH值随着灰分含量的增大而增大,但增长速率不同,稻草基生物炭浒苔基生物炭鸡粪基生物炭。并且,随着热解温度的升高,鸡粪、浒苔及稻草基生物炭引起土壤持水性逐渐增强。[结论]在土壤提供营养成分方面,鸡粪基生物炭显然更具优势,而且在促进土壤持水性方面,鸡粪生物炭也相对更强一些。  相似文献   

7.
水稻秸秆生物质炭对土壤磷吸附影响的研究   总被引:3,自引:2,他引:3  
本文以水稻秸秆为原料,分析了不同热解温度下生物炭的性质,并利用批处理实验,分析了生物炭添加量和热解温度对土壤磷吸附特性的影响。结果表明:随着热解温度的升高,生物炭的碳化程度、比表面积和磷含量增加。生物炭添加显著减少了土壤对磷的吸附量,而且随着生物炭热解温度的增加,土壤对磷的吸附量显著增加。Langmuir方程和Freundlich方程都能够较好地拟合生物炭对土壤磷的等温吸附。准一级动力学方程和准二级动力学方程可较好地描述生物炭对土壤磷吸附动力学的行为。通过以上研究结果可知,水稻秸秆生物炭可以减少土壤对磷的吸附并增加土壤有效磷的含量,因此在土壤改良方面具有一定的应用潜力。  相似文献   

8.
生物炭对向日葵秸秆热解特性及气体产物影响   总被引:1,自引:1,他引:0  
为了研究生物炭对向日葵秸秆热解的影响,以向日葵秸秆为原料,基于TG-FTIR研究生物炭添加前后向日葵秸秆热解特性与气体产物的变化。结果表明,与向日葵秸秆相比,混合样品主热解区间由276~349℃变得更长,并且发生不同程度的偏移,热解活化能不同程度降低,由60.21降到38.07~50.35 kJ/mol,呋喃类、酸类、含羰基类化合物、芳香醛类、CO、CH4等产物吸光度值存在差异。随着添加500℃制备生物炭比例增加,混合样品热解的活化能减小,释放气体产物中芳香醛类释放量增量减少,CO与CH4释放量降低。添加不同制备温度的生物炭,混合样品热解产生呋喃类、酸类、含羰基类化合物释放量均有所降低;添加500和700℃制备的生物炭,混合样品热解气体产物中芳香醛类增加。添加900℃制备的生物炭,向日葵秸秆热解气体产物中CO产量增加。该研究为向日葵秸秆的有效利用提供理论基础和技术支撑。  相似文献   

9.
皇竹草生物炭的结构特征及其对()的吸附性能   总被引:1,自引:0,他引:1  
以皇竹草茎秆为原料,在限氧控温(300、500、700℃)条件下制备生物炭,研究该生物炭的结构特征及其对Cr(Ⅵ)的吸附行为。结果发现,随着热解温度的升高,皇竹草生物炭的产率下降,而灰分、pH呈上升趋势;电镜扫描(SEM)观察可见不同热解温度下所制备的生物炭结构相似,均具多孔和管状结构,但在700℃条件下所制备的生物炭相对300℃下制备的生物炭孔壁变薄,且孔壁有附着物,切面有突起结构。三种温度下制备的皇竹草生物炭对溶液中的Cr(Ⅵ)都具有较好的吸附作用,且500、700℃下制备的生物炭比300℃下制备的生物炭具有更好的吸附效果。在0~1 h之间,三种热解温度下制备的生物炭对铬的吸附量均随着时间的延长而快速增加,当吸附至1h时,基本达到饱和状态,随后吸附量无明显变化。  相似文献   

10.
不同热解温度制备的烟秆生物炭理化特征分析   总被引:2,自引:1,他引:1  
分别对100~800℃下于马弗炉中低氧炭化制备的烟秆生物炭进行研究,分析其基础理化性质的变化.结果表明,烟草秸秆生物炭微量元素含量在热解温度为100~400℃时呈逐渐上升的趋势,在400~500℃时较为稳定;大量元素含量增加;C含量和N元素含量在100~300℃时逐渐增加,在400~800℃时先增加后下降,C/N在30...  相似文献   

11.
生物质炭对不同pH值土壤矿质氮含量的影响   总被引:4,自引:0,他引:4  
为了揭示生物质炭作为土壤调理剂添加后对土壤矿质氮形态、含量等土壤性质的影响,该研究利用芒草分别在350和700℃裂解制得生物质炭,发现2个温度尤其是700℃制得的生物质炭,对NH4+有很强的吸附能力,但对NO3-的吸附能力很弱。将生物质炭分别加入到酸性(pH值为3.8)和碱性(pH值为7.6)土壤中,25℃下室内培养180d。结果表明,生物质炭提高了土壤全氮含量,酸性和碱性土壤分别平均提高了22%和17%;但使土壤铵态氮含量大幅降低至接近仪器检测限水平;生物质炭对土壤硝态氮含量的影响因生物质炭和土壤类型而异。生物质炭对土壤矿质氮形态和含量的影响,显然与生物质炭对铵的吸附作用、提高土壤pH值、增强氨挥发损失,以及形成微生物量氮等密切相关。该研究可为开展生物质炭基氮素新型肥料及制剂等方面的科学研究提供参考。  相似文献   

12.
An incubation study was conducted to determine how biochar interacts with a nitrogen fertilizer and how it reacts in the soil as well as to measure the effect of different biochars on soil chemical properties. Two Iowa soils, Nicollet surface soil (fine-loamy, mixed, superactive, mesic Aquic Hapludoll) and Storden subsoil (fine-loamy, mixed, superactive, mesic Eutrudept), were mixed with three different qualities of biochar and a nitrogen fertilizer (urea). The biochar was created from corn stover that was pyrolized with three different amounts of atmospheric air: 0% (biochar 1), 10% (biochar 2), and 25% (biochar 3). Soil tests for pH, total nitrogen (N), extractable phosphorus (P), extractable potassium (K), ammonium N, nitrate N, organic matter, and total carbon (C) were performed. The different biochars significantly affected the total N, total organic C, and pH in both soils at all rates of urea applied. The conditions during pyrolysis influenced how the biochar/fertilizer reacted with the soil.  相似文献   

13.
This experiment was conducted to investigate the effects of biochars, produced from maize straw at different temperatures (300, 400, and 500 °C), on growth of maize. Maximum cation exchange capacity (CEC) (106 cmolc kg?1) of biochar was observed at 400 °C. The pH, electrical conductivity (EC), and carbon content of biochars significantly increased with increasing temperature, and maximum pH (9.8), EC (3.0 dS m?1), and carbon content (607 g kg?1) were observed at 500 °C. Concentration of phosphorus (P), potassium (K), calcium (Ca), and magnesium (Mg) significantly increased with increasing temperature, while of nitrogen (N) decreased. Ammonium bicarbonate–diethylene triamine penta acetic acid (AB-DTPA)–extractable nutrients were decreased with increasing pyrolysis temperature. Shoot and root dry matter of maize increased significantly with application of biochar produced at 300 and 400 °C and decreased significantly at 500 °C. Maximum shoot and root dry matter of maize was obtained at biochar produced at 300 °C. Phosphorus and K concentration in shoots and roots increased with biochar, and it was significantly more with fertilizer application. In contrast to P, shoot and root K concentration increased significantly with increasing pyrolysis temperature. The results of this study indicated that application of biochar produced at low pyrolysis temperature may be a practical approach to improve crop growth.  相似文献   

14.
Effects of repeated application of urea (UN) and calcium nitrate (CN) singly and together with crop straw biochars on soil acidity and maize growth were investigated with greenhouse pot experiments for two consecutive seasons. Canola straw biochar (CB), peanut straw biochar (PB) and wheat straw biochar (WB) were applied at 1% of dried soil weight in the first season. N fertilizers were applied at 200 mg N kg?1. In UN treatments, an initial rise in pH was subjected to proton consumption through urea hydrolysis, afterwards nitrification of NH4+ caused drastic reductions in pH as single UN had soil pH of 3.70, even lower than control (4.27) after the 2nd crop season. Post-harvest soil analyses indicated that soil pH, soil exchangeable acidity, NH4+, NO3? and total base cations showed highly significant variation under N and biochar types (< 0.05). Articulated growth of plants under combined application with biochars was expressed by 22.7%, 22.5%, and 35.7% higher root and 25.6%, 23.8%, and 35.9% higher shoot biomass by CB, PB and WB combined with CN over UN, respectively. Therefore, CN combined with biochars is a better choice to correct soil acidity and improve maize growth than UN combined with biochars.  相似文献   

15.
Application of biochar to soil to achieve any number of goals should also consider unintended effects upon soil biology, including symbioses such as arbuscular mycorrhizas. We conducted an experiment to examine the interaction of biochar addition and arbuscular mycorrhizal (AM) fungus inoculation upon growth and phosphorus (P) uptake by Allium porrum L. and relate these responses to physicochemical properties of the biochars. A. porrum seedlings were grown with and without Glomus intraradices Schenck & Smith, and either without biochar or in the presence of one of 12 different biochars created by pyrolysis of three biomass feedstocks. Fast pyrolysis biochars greatly reduced colonization of roots by the AM fungus. Among biochars produced by a given pyrolysis method, higher surface areas were accompanied by higher AM fungus colonization. These findings are pertinent in selecting biochars for application to agricultural soils for such purposes as inactivation of pathogenic bacteria while being mindful of potential impacts upon the AM symbiosis.  相似文献   

16.
In this study, biochars from rice straw(Oryza sativa L.) were prepared at 200–600?C by oxygen-limited pyrolysis to investigate the changes in properties of rice straw biochars produced at different temperatures, and to examine the adsorption capacities of the biochars for a heavy metal, copper(Ⅱ)(Cu(Ⅱ)), and an organic insecticide of cyromazine, as well as to further reveal the adsorption mechanisms.The results obtained with batch experiments showed that the amount of Cu(Ⅱ) adsorbed varied with the pyrolysis temperatures of rice straw biochar. The biochar produced at 400?C had the largest adsorption capacity for Cu(Ⅱ)(0.37 mol kg-1) among the biochars,with the non-electrostatic adsorption as the main adsorption mechanism. The highest adsorption capacity for cyromazine(156.42 g kg-1) was found in the rice straw biochar produced at 600?C, and cyromazine adsorption was exclusively predominated by surface adsorption. An obvious competitive adsorption was found between 5 mmol L-1Cu(II) and 2 g L-1cyromazine when they were in the binary solute system. Biochar may be used to remediate heavy metal- and organic insecticide-contaminated water, while the pyrolysis temperature of feedstocks for producing biochar should be considered for the restoration of multi-contamination.  相似文献   

17.
铁改性稻壳生物炭对铵态氮的吸附效果研究   总被引:2,自引:0,他引:2  
  【目的】  研究稻壳生物炭和3种铁改性稻壳生物炭对铵态氮的吸附特性,为其作为添加剂进行炭基肥料的开发提供参考。  【方法】  以稻壳为原料,在500℃无氧条件下热解制备稻壳生物炭(RBC),并采用3种工艺制备铁改性稻壳生物炭 (FDRBC、FWRBC和FWBC)。利用比表面积测定仪 (BET) 和扫描电镜 (SEM)、X射线衍射 (XRD)、傅立叶红外光谱 (FT-IR) 等技术对稻壳炭和3种铁改性稻壳炭进行物理性质表征。以稻壳生物炭和3种铁改性稻壳生物炭为材料进行铵态氮吸附试验,采用Langmuir和Freundlich方程对稻壳炭和3种铁改性稻壳炭的等温吸附数据进行拟合;并分别用准一级动力学模型和准二级动力学模型对吸附数据进行拟合。  【结果】  1) 经过铁改性,稻壳炭比表面积降低了2.4%~63.7%,孔径平均提高了2.8%~319.2%,pH均降低到5左右;2) FWBC和FWRBC在pH为6时,对NH4+-N的吸附量最大,FDRBC和RBC在pH为7时,对NH4+-N的吸附量最大;3) Langmuir吸附等温方程能够很好地拟合稻壳炭和3种铁改性稻壳炭对铵态氮的吸附数据,RBC、FDRBC、FWRBC和FWBC对铵态氮的最大吸附量分别为2.22、8.82、4.67和3.67 mg/g;4) 稻壳炭和3种铁改性稻壳炭对铵态氮的吸附行为符合准二级动力学方程。  【结论】  供试稻壳炭和3种铁改性稻壳炭对铵态氮的吸附主要为单分子层吸附,以化学吸附方式为主。铁改性处理提高了稻壳炭的孔径,降低了pH。对铵态氮的吸附能力以FDRBC最优,用其制备新型肥料可提高肥料的保肥供肥能力。  相似文献   

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