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31.
近年来环境中生物炭胶体形成受到广泛关注,它是生物炭在环境中物理分解作用的重要过程,对污染物迁移有着重要影响.然而,目前对生物炭胶体释放过程和影响因素的研究甚少,人们对生物炭胶体释放机理的认识还很有限.本研究以小麦秸秆和花生壳为生物质来源,系统地探讨了生物炭的裂解温度(300~700 ℃)和溶液离子强度(0.1~10 mmol·L-1)对生物炭胶体产率的影响.结果表明,随着裂解温度的升高,生物炭的耐磨性增强,且在较高的裂解温度下(≥500 ℃)花生壳生物炭的耐磨性显著强于小麦秸秆生物炭.生物炭的胶体产率受到生物质来源和裂解温度的显著影响,花生壳生物炭的胶体产率低于小麦秸秆生物炭,高温裂解(≥600 ℃)生物炭的胶体产率显著低于中低温裂解生物炭.在相同溶液离子强度下,生物炭胶体产率与其亚微米级碎片率呈显著正相关(p<0.05),即生物炭中亚微米级碎片率越高,生物炭胶体产率越高.当溶液离子强度从1 mmol·L-1增加到10 mmol·L-1时,两种来源生物炭的胶体产率均显著降低,其降低的程度因生物炭裂解温度而异,其中低温裂解(300 ℃)生物炭的胶体产率降低了11.1%~11.2%,中高温裂解(≥ 500 ℃)生物炭的胶体产率降低了60.0%~97.2%.  相似文献   
32.
为研究机动车道路行驶过程中轮胎磨损排放的颗粒物理化特性,利用轮胎轮廓仿真磨耗仪,对国内主流17种轮胎胎面进行仿真磨耗实验,获得颗粒物样品,提取并检测其中18种元素和20种多环芳烃(PAHs)的含量.结果显示,元素和PAHs含量因轮胎品牌和速度等级的不同而差异显著.18种元素平均含量为(99.04±68.43)mg/g,占样品总重的9.90%,其中Si(88.97±67.85)mg/g、Zn(6.77±1.64)mg/g和Na(1.05±0.75)mg/g的平均含量均超过1mg/g,Cd的含量最低,为(0.43±0.31)μg/g.20种PAHs含量之和(∑20PAHs)在12.13~433.64 μg/g,平均为(94.13±110.18)μg/g,PY的平均含量最高(30.98±31.27)μg/g,其次是CHR、BaP、FA、PHE和BghiP,平均含量最低的是AC(0.58±0.2)μg/g;从环数看,以4环PAHs为主(占∑20PAHs的45.03%~67.93%),其次为3环(平均含量为15.45%)和5环(平均含量为12.62%).总体来说,国外品牌轮胎样品中元素和PAHs含量略高于国内品牌,而主要PAHs环数略低于国内品牌.  相似文献   
33.
陕北不同沟道土地盐碱化现状及影响因素   总被引:2,自引:0,他引:2       下载免费PDF全文
沟道土地是陕北黄土丘陵沟壑区重要的土地资源。然而,当前对黄土高原沟道土地的盐碱化问题关注不够,对盐碱化的现状、发生机制和防治措施也缺乏深入系统的认识,知识储备不能满足生产实际的需要。本文以陕北黄土丘陵沟壑区自然和人为形成的沟道土地为研究对象,分别是延安顾屯新造耕地(治沟造地)、延川马家湾淤地坝土地和子洲黄土洼天然古聚湫土地,在这些流域内沿沟道采集土壤样品,测定土壤的电导率(EC)、p H值、含水量及粒度,分析土壤盐碱化的现状和影响因子。结果表明:马家湾淤地坝土地盐碱化最为严重,流域中游至上游均出现不同程度的盐碱化;顾屯新造地上游出现盐碱化,盐碱化程度较马家湾轻,而黄土洼古聚湫全流域未出现盐碱化。地下水位较浅是沟道土地发生盐碱化的主要影响因素,因此陕北沟道土地盐碱化防治应着力控制地下水位,建设良好的排水系统,加强排水。  相似文献   
34.
研究了悬浮填料投加对分置式厌氧膜生物反应器(AnMBR)的COD去除效果、污泥混合液特性及膜污染的影响。试验结果表明:在反应器有机负荷为2.09 kg/(m3·d),污泥负荷为0.54 kg/(kg·d),水力停留时间(HRT)为48 h,温度为(35±2)℃的条件下,与未投加悬浮填料阶段比较,投加填料后AnMBR的COD总去除率由96.6%提高至97.9%,甲烷产率提高16.0%。同时投加悬浮填料后AnMBR混合液污泥平均粒径增大,滤饼层阻力、总阻力、滤饼层阻力在总阻力中的占比较未投加悬浮填料时分别降低7.8、6.5和1.3百分点,溶解性胞外聚合物(SEPS)和结合性胞外聚合物(BEPS)浓度分别降低了20.5%和29.4%,跨膜压差(TMP)线性增长速率降低,膜污染速率明显减缓。因此,投加悬浮填料可在不增加能耗的情况下改善污泥混合液特性,起到强化AnMBR处理效果和控制膜污染的作用。  相似文献   
35.
Carbon–silica materials with hierarchical pores consisting of micropores and mesopores were prepared by introducing nanocarbon microspheres derived from biomass sugar into silica gel channels in a hydrothermal environment.The physicochemical properties of the materials were characterized by nitrogen physical adsorption(BET),scanning electron microscopy(SEM),and thermogravimetric(TG),and the adsorption properties of various organic waste gases were investigated.The results showed that microporous carbon materials were introduced successfully into the silica gel channels,thus showing the high adsorption capacity of activated carbon in high humidity organic waste gas,and the high stability and mechanical strength of the silica gel.The dynamic adsorption behavior confirmed that the carbon–silica material had excellent adsorption capacity for different volatile organic compounds(VOCs).Furthermore,the carbon–silica material exhibited excellent desorption characteristics:adsorbed toluene was completely desorbed at 150℃,thereby showing superior regeneration characteristics.Both features were attributed to the formation of hierarchical pores.  相似文献   
36.
为了提升我国工业园区绿色发展水平,对目前我国工业园区发展历程、现状特征进行了分析,对工业园区绿色发展政策进行了梳理和对比,并结合工业园区绿色发展中存在的问题提出了对策建议.研究表明:①我国工业园区经历了快速发展、调整发展和科学发展等阶段,在经济发展、资源与能源优化利用、污染减排等方面成效显著.②我国工业园区绿色发展的相关政策主要体现在国家生态工业示范园区创建、园区循环化改造、国家低碳工业园区试点、绿色园区建设和UNIDO绿色工业园区创建等工作中,这些政策在推动主体、实施路径、侧重方向上各不相同又各有特色,对推动工业园区节能减排绩效明显.③目前,我国工业园区绿色发展存在的问题主要表现在重视程度有待提升、风险防范意识有待加强、创新能力有待提高等方面.为此,提出了我国工业园区绿色发展对策建议:积极践行绿色发展理念,推进园区绿色化、生态化、低碳化建设,实现经济环境双赢;注意环境风险防控,确保环境安全;创新管理机制,强化监督管理.   相似文献   
37.
Plants constitute a major element of constructed wetlands(CWs).In this study,a coupled system comprising an integrated vertical flow CW(IVCW) and a microbial fuel cell(MFC) for swine wastewater tre atment was developed to research the effects of macrophytes commonly employed in CWs,Canna indica,Acorus calamus,and Ipomoea aquatica,on decontamination and electricity production in the system.Because of the different root types and amounts of oxygen released by the roots,the rates of chemical oxygen demand(COD) and ammonium nitrogen(NH_4~+-N) removal from the swine wastewater differed as well.In the unplanted,Canna indica,Acorus calamus,and Ipomoea aquatica systems,the COD removal rates were 80.20%,88.07%,84.70%,and 82.20%,respectively,and the NH_4~+-N removal rates were 49.96%,75.02%,70.25%,and 68.47%,respectively.The decontamination capability of the Canna indica system was better than those of the other systems.The average output voltages were 520±42,715±20,660±27,and 752±26 mV for the unplanted,Canna indica,Acorus calamus,and Ipomoea aquatica systems,respectively,and the maximum power densities were 0.2230,0.4136,0.3614,and0.4964 W/m~3,respectively.Ipomoea aquatica had the largest effect on bioelectricity generation promotion.In addition,electrochemically active bacteria,Geobacter and Desulfuromonas,were detected in the anodic biofilm by high-throughput sequencing analysis,and Comamonas(Proteobacteria),which is widely found in MFCs,was also detected in the anodic biofilm.These results confirmed the important role of plants in IVCW-MFCs.  相似文献   
38.
Released Ag ions or/and Ag particles are believed to contribute to the cytotoxicity of Ag nanomaterials, and thus, the cytotoxicity and mechanism of Ag nanomaterials should be dynamic in water due to unfixed Ag particle:Ag+ ratios. Our recent research found that the cytotoxicity of PVP-Ag nanoparticles is attributable to Ag particles alone in 3 hr bioassays, and shifts to both Ag particles and released Ag+ in 48 hr bioassays. Herein, as a continued study, the cytotoxicity and accumulation of 50 and 100 nm Ag colloids in Escherichia coli were determined dynamically. The cytotoxicity and mechanisms of nano-Ag colloids are dynamic throughout exposure and are derived from both Ag ions and particles. Ag accumulation by E. coli is derived mainly from extracellular Ag particles during the initial 12 hr of exposure, and thereafter mainly from intracellular Ag ions. Fe3+ accelerates the oxidative dissolution of nano-Ag colloids, which results in decreasing amounts of Ag particles and particle-related toxicity. Na+ stabilizes nano-Ag colloids, thereby decreasing the bioavailability of Ag particles and particle-related toxicity. Humic acid (HA) binds Ag+ to form Ag+-HA, decreasing ion-related toxicity and binding to the E. coli surface, decreasing particle-related toxicity. HA in complex conditions showed a stronger relative contribution to toxicity and accumulation than Na+ or Fe3+. The results highlighted the cytotoxicity and mechanism of nano-Ag colloids are dynamic and affected by environmental factors, and therefore exposure duration and water chemistry should be seriously considered in environmental and health risk assessments.  相似文献   
39.
The degradation of pharmaceutical micropollutants is an intensifying environmental problem and synthesis of efficient photocatalysts for this purpose is one of the foremost challenges worldwide. Therefore, this study was conducted to develop novel plasmonic Ag/Ag2O/BiVO4 nanocomposite photocatalysts by simple precipitation and thermal decomposition methods, which could exhibit higher photocatalytic activity for mineralized pharmaceutical micropollutants. Among the different treatments, the best performance was observed for the Ag/Ag2O/BiVO4 nanocomposites (5 wt.%; 10 min's visible light irradiation) which exhibited 6.57 times higher photodegradation rate than the pure BiVO4. Further, the effects of different influencing factors on the photodegradation system of tetracycline hydrochloride (TC-HCl) were investigated and the feasibility for its practical application was explored through the specific light sources, water source and cycle experiments. The mechanistic study demonstrated that the photogenerated holes (h+), superoxide radicals (?O2?) and hydroxyl radicals (?OH) participated in TC-HCl removal process, which is different from the pure BiVO4 reaction system. Hence, the present work can provide a new approach for the formation of novel plasmonic photocatalysts with high photoactivity and can act as effective practical application for environmental remediation.  相似文献   
40.
In this work, a series of Cu-ZSM-5 catalysts with different SiO2/Al2O3 ratios (25, 50, 100 and 200) were synthesized and investigated in n-butylamine catalytic degradation. The n-butylamine can be completely catalytic degradation at 350°C over all Cu-ZSM-5 catalysts. Moreover, Cu-ZSM-5 (25) exhibited the highest selectivity to N2, exceeding 90% at 350°C. These samples were investigated in detail by several characterizations to illuminate the dependence of the catalytic performance on redox properties, Cu species, and acidity. The characterization results proved that the redox properties and chemisorption oxygen primarily affect n-butylamine conversion. N2 selectivity was impacted by the Brønsted acidity and the isolated Cu2+ species. Meanwhile, the surface acid sites over Cu-ZSM-5 catalysts could influence the formation of Cu species. Furthermore, in situ diffuse reflectance infrared Fourier transform spectra was adopted to explore the reaction mechanism. The Cu-ZSM-5 catalysts are the most prospective catalysts for nitrogen-containing volatile organic compounds removal, and the results in this study could provide new insights into catalysts design for VOC catalytic oxidation.  相似文献   
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