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131.
132.
蜡油催化裂化装置生产过程中存在泄漏点,其中泄漏出的VOCs会导致光化学烟雾、雾霾天气和PM2.5值上升。实施挥发性有机物(VOCs)泄漏检测与维修(LDAR)技术,通过紧固螺栓、更换部件、夹具堵漏和包裹环氧树脂等多种手段对这些漏点进行修复之后,装置VOCs泄漏率从1.57%下降至0.35%,效果较好。 相似文献
133.
A methodology for identifying volatile organic compounds (VOC) and determining air quality of indoor air has been developed. The air samples are collected using pump samplers by the inhabitants when they perceive odorous and/or discomfort episodes. Glass multi-sorbent tubes are connected to the pump samplers for the retention of VOC. The analysis is performed by automatic thermal desorption (ATD) coupled with gas chromatography-mass spectrometry (GC/MS). This methodology can be applied in cases of sick building syndrome (SBS) evaluation, in which building occupants experience a series of varied symptoms that appear to be linked to time spent in the building. Chemical pollutants concentrations (e.g., VOC) have been described to contribute to SBS. To exemplify the methodology, a qualitative determination and an evaluation of VOC present were performed in a dwelling where the occupants experienced the SBS symptoms. Higher total VOC (TVOC) value was detected in episodes in indoor air (1.33 ( 1.53 mg/m3) compared to outdoor air (0.71 ( 0.46 mg/m3). The concentrations of individual VOCs, such as ethanol, acetone, isopropanol, 1-butanol, acetic acid, acetonitrile and 1-metoxy-2-propanol, were also higher than the expected for a standard dwelling. The external source of VOC was found to be a not declared activity of storage and manipulation of solvents located at the bottom of a contiguous building. 相似文献
134.
135.
Food waste treatment plants (FWTPs) are usually associated with odorous nuisance and health risks, which are partially caused by volatile organic compound (VOC) emissions. This study investigated the VOC emissions from a selected full-scale FWTP in China. The feedstock used in this plant was mainly collected from local restaurants. For a year, the FWTP was closely monitored on specific days in each season. Four major indoor treatment units of the plant, including the storage room, sorting/crushing room, hydrothermal hydrolysis unit, and aerobic fermentation unit, were chosen as the monitoring locations. The highest mean concentration of total VOC emissions was observed in the aerobic fermentation unit at 21,748.2–31,283.3 μg/m3, followed by the hydrothermal hydrolysis unit at 10,798.1–23,144.4 μg/m3. The detected VOC families included biogenic compounds (oxygenated compounds, hydrocarbons, terpenes, and organosulfur compounds) and abiogenic compounds (aromatic hydrocarbons and halocarbons). Oxygenated compounds, particularly alcohols, were the most abundant compounds in all samples. With the use of odor index analysis and principal components analysis, the hydrothermal hydrolysis and aerobic fermentation units were clearly distinguished from the pre-treatment units, as characterized by their higher contributions to odorous nuisance. Methanthiol was the dominant odorant in the hydrothermal hydrolysis unit, whereas aldehyde was the dominant odorant in the aerobic fermentation unit. Terpenes, specifically limonene, had the highest level of propylene equivalent concentration during the monitoring periods. This concentration can contribute to the increase in the atmospheric reactivity and ozone formation potential in the surrounding air. 相似文献
136.
Food waste treatment plants(FWTPs) are usually associated with odorous nuisance and health risks, which are partially caused by volatile organic compound(VOC) emissions. This study investigated the VOC emissions from a selected full-scale FWTP in China. The feedstock used in this plant was mainly collected from local restaurants. For a year, the FWTP was closely monitored on specific days in each season. Four major indoor treatment units of the plant, including the storage room, sorting/crushing room, hydrothermal hydrolysis unit, and aerobic fermentation unit, were chosen as the monitoring locations.The highest mean concentration of total VOC emissions was observed in the aerobic fermentation unit at 21,748.2–31,283.3 μg/m3, followed by the hydrothermal hydrolysis unit at 10,798.1–23,144.4 μg/m3. The detected VOC families included biogenic compounds(oxygenated compounds, hydrocarbons, terpenes, and organosulfur compounds) and abiogenic compounds(aromatic hydrocarbons and halocarbons). Oxygenated compounds,particularly alcohols, were the most abundant compounds in all samples. With the use of odor index analysis and principal components analysis, the hydrothermal hydrolysis and aerobic fermentation units were clearly distinguished from the pre-treatment units, as characterized by their higher contributions to odorous nuisance. Methanthiol was the dominant odorant in the hydrothermal hydrolysis unit, whereas aldehyde was the dominant odorant in the aerobic fermentation unit. Terpenes, specifically limonene, had the highest level of propylene equivalent concentration during the monitoring periods. This concentration can contribute to the increase in the atmospheric reactivity and ozone formation potential in the surrounding air. 相似文献
137.
根据收集的珠江三角洲(珠三角)重点挥发性有机物(VOC)排放行业的活动水平数据,采用近年来VOC估算方面的研究成果及估算方法,建立了该地区2006年重点挥发性有机物排放行业和分城市的VOC排放清单.结果表明:珠江三角洲地区2006年重点挥发性有机物排放行业VOC排放总量为416.9kt,其不确定性(95%置信区间)为302.5~689.6kt(-31%~58%);家具制造业、建筑涂料使用、制鞋业是珠江三角洲重点VOC排放行业的主要来源,分别占总排放量的23.3%,21.2%和17.5%;东莞是珠江三角洲地区2006年重点挥发性有机物排放行业VOC排放量贡献最大的城市,其次是深圳,两者排放量分别占总排放量的23.6%和21.9%,主要的排放亦来源于家具制造业、建筑涂料使用与制鞋业.缺乏本地排放因子和良好的活动水平数据是本研究VOC排放量估算中主要的不确定性来源. 相似文献
138.
胶合板VOC释放率测量及其对室内环境影响评价 总被引:2,自引:0,他引:2
以胶合板为研究对象,采用1m3气候箱模拟室内环境,利用气相色谱质谱联用仪(GC-MS),研究胶合板挥发性有机化合物(VOC)的释放规律.同时,对胶合板VOC释放量进行定量分析,依据《室内环境质量评价标准》对该胶合板被利用到室内环境可能造成的污染进行评价.结果表明,在释放初期,各类化合物及TVOC质量浓度较大,后逐渐下降,在第14 d基本稳定,其中以芳香烃类化合物和烷烃类化合物的质量浓度下降最为迅速,第28 d胶合板VOC释放量为稳定值,被用于定量分析胶合板VOC的释放水平.单独使用该胶合板的室内空气质量满足室内空气品质等级的一级标准.同时确定了单位体积空间的室内环境中该胶合板可利用的暴露面积为6m2. 相似文献
139.
Volatile organic compound emissions from wastewater treatment plants in Taiwan: legal regulations and costs of control 总被引:2,自引:0,他引:2
This study assessed volatile organic compound (VOC) emission characteristics from wastewater treatment plants (WWTPs) in five Taiwanese industrial districts engaged in numerous manufacturing processes, including petrochemical, science-based industry (primarily semiconductors, photo-electronics, electronic products and biological technology), as well as multiple manufacturing processes (primarily pharmaceuticals and paint manufacturing). The most aqueous hydrocarbons dissolved in the wastewater of Taiwanese WWTPs were acetone, acrylonitrile, methylene chloride, and chloroform for the petrochemical districts; acetone, chloroform, and toluene for the science-based districts; and chlorinated and aromatic hydrocarbons for the multiple industrial districts. The aqueous pollutants in the united WWTPs were closely related to the characteristics of the manufacturing plants in the districts. To effectively prevent VOC emissions from the primary treatment section of petrochemical WWTPs, the updated regulations governing VOC emissions were issued by the Taiwanese Environmental Protection Administration in September 2005, legally mandating a seal cover system incorporating venting and air purification equipment. Cost analysis indicates that incinerators with regenerative heat recovery are optimal for treating high VOC concentrations, exceeding 10,000ppm as CH(4), from the oil separation basins. However, the emission concentrations, ranging from 100 to 1000ppm as CH(4) from the other primary treatment facilities and bio-treatment stages, should be collected and then injected into the biological oxidation basins via existing or new blowers. The additional capital and operating costs required to treat the VOC emissions of 1000ppm as CH(4) from primary treatment facilities are less than US$0.1 for perm(3) wastewater treatment capacity. 相似文献
140.
电子产品加工制造企业挥发性有机物(VOCs)排放特征 总被引:7,自引:4,他引:7
根据美国EPA挥发性有机物标准检测法TO-11及TO-14/15,采用VOCs快速检测仪、Summa罐及DNPH吸附管,对我国某大型电子产品加工制造企业中不同工艺环节生产车间内部及生产线最终废气排放管道中VOCs含量水平及组分特征进行检测.结果表明,该企业涉及VOCs排放工艺中压铸车间总挥发性有机物(TVOCs)浓度为0.1~0.5 mg·m-3、机加工车间TVOCs浓度为1.5~2.5 mg·m-3、喷涂车间中TVOCs浓度为20~200 mg·m-3,各车间VOCs组分主要包括烷类、烯炔类、芳香类、酮类、酯类和醚类,共20余种.其中涂装车间内苯系物及酮类物质为主要VOCs组分,各物质浓度分别为苯0.02~0.34 mg·m-3、甲苯0.24~3.35 mg·m-3、乙苯0.04~1.33 mg·m-3、对二甲苯0.13~0.96 mg·m-3、邻/间二甲苯0.02~1.18mg·m-3、丙酮0.29~15.77 mg·m-3、2-丁酮0.06~22.88 mg·m-3、环己酮0.02~25.79 mg·m-3、甲基异丁基甲酮0~21.29mg·m-3.根据该企业生产特征及工艺数据计算,其单条生产线VOCs年排放量为14 t,整个厂区年排放量约为840 t.结合生产流程及生产工艺分析,喷涂过程中的溶剂使用是电子产品加工制造企业的VOCs主要排放来源,废气排放口是重点排放点. 相似文献