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1.
Lysine is widely used in the fields of food, medicine and feed, which generally appears in the form of lysine sulfate or lysine hydrochloride dust because of the high instability of the free L-lysine. The L-lysine Sulfate is in high risk of decomposition, spontaneous ignition and even the dust explosion, because the control temperature in its production process is high up to 90 °C. Thus, the thermal behaviors and its thermal stability of 65% lysine sulfate are experimentally explored in Air and Nitrogen using the simultaneous TG-DSC measurements. Results show: (1) the decomposition of 65% lysine sulfate can be divided into three stages both in the atmospheres of air and nitrogen, and most of the weight loss occurred in the first two stages, which are related with the decarboxylation and deamination process. (2) The effects of atmosphere on the decomposition of 65% lysine sulfate mainly occur at the third stage. In this stage, the weight loss in nitrogen is only 14.2%, which is much lower than that in air (34.3%), which is related to the oxidative degradation at high temperature. Besides, the active energy is slightly increased in nitrogen compared to that in air. (3) The initial temperatures of the decomposition of the 65% lysine sulfate are 145 °C and 155 °C, for the air and nitrogen atmosphere, respectively, which are much lower than that (260 °C) of the pure lysine.  相似文献   
2.
基于活化过一硫酸盐(PMS)产生SO4-·的新型高级氧化技术,在芬顿和类芬顿催化降解水中有机污染物的研究中占有重要地位。本文从活化PMS方法的特点和用途出发,对目前活化PMS的主要方法进行了论述,并对活化PMS降解水中有机污染物的机理进行了探讨,最后对该领域研究中存在的问题进行了分析。指出,开发高效的协同活化PMS的方法将成为该领域研究的必然趋势。  相似文献   
3.
Mining operations result in a wide range of environmental impacts: acid mine drainage (AMD) and acid sulfate soils being among the most common. Due to their acidic pH and high soluble metal concentrations, both AMD and acid sulfate soils can severely damage the local ecosystems. Proper post‐mining management practices are necessary to control AMD‐related environmental issues. Current AMD‐impacted soil treatment technologies are rather expensive and typically not environmentally sustainable. We conducted a 60‐day bench‐scale study to evaluate the potential of a cost‐effective and environment‐friendly technology in treating AMD‐impacted soils. The metal binding and acid‐neutralizing capacity of an industrial by‐product, drinking water treatment residuals (WTRs) were used for AMD remediation. Two types of locally generated WTRs, an aluminum‐based WTR (Al‐WTR) and a lime‐based WTR (Ca‐WTR) were used. Highly acidic AMD‐impacted soil containing very high concentrations of metals and metalloids, such as iron, nickel, and arsenic, was collected from the Tab‐Simco coal mine in Carbondale, Illinois. Soil amendment using a 1:1 Al‐ and Ca‐WTR mix, applied at 5 and 10 percent rates significantly lowered the soluble and exchangeable fractions of metals in the AMD‐impacted soil, thus lowering potential metal toxicity. Soil pH increased from an extremely acidic 2.69 to a near‐neutral 6.86 standard units over the 60‐day study period. Results from this preliminary study suggest the possibility of a successful scale‐up of this innovative, cost‐effective, and environmentally sustainable technology for remediating AMD‐impacted acid sulfate soils.  相似文献   
4.
为了解武汉市秋季PM_(2.5)中硫酸盐、硝酸盐理化特征,2016年9—11月利用热还原法在线连续监测分析系统对此进行了采样分析,并同步收集气象因子和离子色谱方法监测结果。结果表明,硫酸盐、硝酸盐的热还原分析方法与离子色谱法的相关系数分别为0.88、0.94;PM_(2.5)中硫酸盐、硝酸盐的水溶性部分占比达92.5%,难溶性部分为7.5%;空气质量为优、良和轻度污染时,硫酸盐、硝酸盐与PM_(2.5)的占比分别为45%、42%、45%;硫酸盐、硝酸盐在降水日和非降水日平均质量浓度分别为(19.6±18.5)μg/m~3和(31.0±9.1)μg/m~3;硝酸盐与硫酸盐的质量比为1.1,高于国内其他城市,与武汉市机动车保有量大幅增加有关。  相似文献   
5.
Devils Lake is a terminal lake located in northeast North Dakota. Because of its glacial origin and accumulated salts from evaporation, the lake has a high concentration of sulfate compared to the surrounding water bodies. From 1993 to 2011, Devils Lake water levels rose by ~10 m, which flooded surrounding communities and increased the chance of an overspill to the Sheyenne River. To control the flooding, the State of North Dakota constructed two outlets to pump the lake water to the river. However, the pumped water has raised concerns about of water quality degradation and potential flooding risk of the Sheyenne River. To investigate these perceived impacts, a Soil and Water Assessment Tool (SWAT) model was developed for the Sheyenne River and it was linked to a coupled SWAT and CE‐QUAL‐W2 model that was developed for Devils Lake in a previous study. While the current outlet schedule has attempted to maintain the total river discharge within the confines of a two‐year flood (36 m3/s), our simulation from 2012 to 2018 revealed that the diversion increased the Sheyenne River sulfate concentration from an average of 125 to >750 mg/L. Furthermore, a conceptual optimization model was developed with a goal of better preserving the water quality of the Sheyenne River while effectively mitigating the flooding of Devils Lake. The optimal solution provides a “win–win” outlet management that maintains the efficiency of the outlets while reducing the Sheyenne River sulfate concentration to ≤600 mg/L.  相似文献   
6.
Runaway reactions present a potentially serious threat to the chemical process industry and the community; such reactions occur time and time again often with devastating consequences. The main objective of this research is to study the root causes associated with ammonium nitrate (AN) explosions during storage. The research focuses on AN fertilizers and studies the effects of different types of fertilizer compatible additives on AN thermal decomposition. Reactive Systems Screening Tool (RSST) has been used for reactivity evaluation and to better understand the mechanisms that result in explosion hazards. The results obtained from this tool have been reported in terms of parameters such as “onset” temperature, rate of temperature and pressure rise and maximum temperature. The runaway behavior of AN has been studied as a solid and solution in water. The effect of additives such as sodium sulfate (Na2SO4) and potassium chloride (KCl) has also been studied. Multiple tests have been conducted to determine the characteristics of AN decomposition accurately. The results show that the presence of sodium sulfate can increase the “onset” temperature of AN decomposition thus acting as AN thermal decomposition inhibitor, while potassium chloride tends to decrease the “onset” temperature thus acting as AN thermal decomposition promoter.  相似文献   
7.
通过快速筛选热分析试验对硫酸羟胺热危险性进行定性分析,对其热分解过程进行初步研究,获得温度、压力变化规律;再运用C80微量热仪对硫酸羟胺进行深入分析,得到硫酸羟胺的化学反应动力学参数,根据Semenov模型计算其自加速分解温度(SADT)。试验结果表明:由RSD初步筛选试验得到硫酸羟胺在164.2℃时即发生分解放热;用C80法得到硫酸羟胺的起始热分解温度为137.1℃,并计算了该物质在3种典型包装下的自加速分解温度。由SADT得到储存、运输过程中硫酸羟胺的控制温度,从而为减少硫酸羟胺事故的发生提供必要的参考数据。  相似文献   
8.
硫酸盐还原颗粒污泥对Cr的吸附机理解析   总被引:1,自引:1,他引:0  
以硫酸盐还原颗粒污泥作为研究对象,进行Cr的吸附容量研究及吸附等温线拟合,测定颗粒污泥中的硫化物含量、对比实验前后颗粒污泥的表面形态和微生物组成并采用傅里叶红外变换光谱(FTIR)分析颗粒污泥的表面基团。结果表明,颗粒污泥对Cr的吸附容量为6.84 mg/g,吸附过程可用Langmuir吸附等温式描述。颗粒污泥中硫化物含量达9.868 mg/g(湿重),对应每克颗粒污泥对Cr的最大吸附量可达10.69 mg;颗粒污泥表面生长大量的微生物,以杆菌为主,颗粒污泥表面丰富的微孔结构及微生物所分泌的胞外物均可有效吸附溶液中的Cr;FTIR分析结果显示,颗粒污泥中包含大量C=O、C-N及-S等基团,这些基团均可通过与C(rⅥ)或C(rⅢ)之间的静电吸附作用吸附溶液中的Cr。研究表明化学与生物吸附作用在硫酸盐还原颗粒污泥吸附溶液中的Cr过程中起到了重要的作用。  相似文献   
9.
含重金属硫酸盐废水是我国工业水污染的突出问题,利用硫酸盐还原菌的生物去除重金属的方法具有投资少、成本低、能耗少、去除率高,没有二次污染等优点而成为研究的热点。文章以混合培混养物作为接种污泥,考察不同浓度的重金属离子(Cu2+、Cd2+、Ni2+、Hg2+)对硫酸盐还原菌(Sulfate reducing bacteria,SRB)的抑制作用。研究表明:10 mg/L的Cu2+、Cd2+和20 mg/L的Hg2+对SRB还原硫酸盐的影响较小,硫酸盐最大去除率可分别达到94.1%、94.6%、91.3%,与空白(93.9%)相近;20 mg/L的Cu2+对SRB的抑制最为强烈,硫酸盐最大还原率仅为48.2%,剩余金属离子(Cd2+、Ni2+、Hg2+)都分别随着浓度的增大而对SRB的抑制作用增强;相同浓度的重金属离子对SRB的抑制顺序为Ni2+>Cu2+>Cd2+>Hg2+,抑制浓度分别为10、20、30、60 mg/L。最后阐述了各个反应器中硫酸盐还原率最大时,(WCOD/WSO42-)与硫酸盐还原率的关系。  相似文献   
10.
厌氧氨氧化电子受体的研究   总被引:1,自引:0,他引:1  
在无机条件下,以该课题组已经培养出来的厌氧氨氧化污泥作为接种污泥,分别以硫酸盐、硝酸盐和亚硝酸盐为电子受体来研究氨的氧化反应。从去除速率的角度来看,以NO2--N、NO3--N和SO42--S为电子受体的反应器,分别在运行的第24.5天、40天和31天时达到0.030 0 kg/(m.3d)NH4+-N去除速率,则氧化氨的能力由大到小依次是:亚硝酸盐>硫酸盐>硝酸盐;从标准吉布斯自由能变化来看,3种反应都是可以发生的;以亚硝酸盐为电子受体的反应过程是一个消耗酸度的生物过程,而以硫酸盐为电子受体的反应过程是一个消耗碱度的生物过程。  相似文献   
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