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981.
以活性炭为吸附材料,用CS2洗脱,用气相色谱对漆包线生产工艺废气中的主要污染物进行了测定。并对不同吸附段的吸附量进行了比较,提出了一段活性炭吸附改进的快速分析方法。  相似文献   
982.
采用5B-1型COD快速测定仪测定废水中COD,得到较好的精密度和准确度。  相似文献   
983.
文章在介绍我国化学工业排放三废的严峻现状后,阐述了通过工艺改造和综合回收途径来推进三废资源化的技术对策,以及从宏观和微观上看深化三废资源化的意义和光明前景。  相似文献   
984.
Brazil has a great potential for use renewable raw materials in biorefineries. It is one of the largest producers of agricultural and animal commodities, which produce large amounts of residues and wastes. These agricultural residues and animal waste can be effectively transformed to energy and other products in systems similar to a ethanol refinery where an integrated process involves conversion for biomass into fuel, energy and chemicals, integrated in the context of a biorefinery. The objective of this work is the determination of the actual availability of main agricultural residues and animal wastes generated in Brazil and of their generation potential index and their prospects for 2020. The results indicate that the sugarcane has the highest agronomic availability, reaching 157 million tons of fresh material and an estimated reuse potential of 19.6 million tons (dry basis), followed by soybeans, rice, maize, orange, wheat, cotton, cassava and tobacco.  相似文献   
985.
田晓峰  侯浩波 《四川环境》2005,24(2):21-23,46
医疗垃圾属于国家规定的危险废物,焚烧后的残渣同样存在最后稳定化的问题,国外处理方法主要是填埋和基础回填,本文通过对两种胶凝材料(普硅水泥和复合矿渣水泥)对医疗废渣的固定化效果研究,探讨医疗废渣再利用的可行性和影响因素。  相似文献   
986.
罗邦容 《四川环境》2005,24(6):17-19
本文通过试验,阐明了舍汞固废(危废)焙烧过程中汞的迁移情况,并得到了焙烧治理技术的最佳工艺参数为:焙烧温度600℃、焙烧时间5h、炉内压力-50Pa—100Pa;焙烧后固废中残留汞含量小于0.0015%;汞回收率达95%左右。  相似文献   
987.
洗毛废水中含有重要的工业原料羊毛脂,不做回收处理排放到环境中就是"三废",既污染了环境又浪费了资源.介绍了用超滤膜从洗毛废水中回收羊毛脂的工艺技术,经处理的洗毛废水CODcr去除率达95.5%,BOD5去除率达93.1%,有效的回收了羊毛脂,经济效益良好,符合国家环保产业政策.  相似文献   
988.
采用化学法自动控制处理含铬和含镍电镀废水,选择合适的化学药剂和pH、ORP控制参数,连续式处理电镀废水.运行结果表明:该工艺简单、处理效果良好、运行稳定、可操作性好、运行成本适中、能很好的适应水质的波动,处理后的水质完全符合排放标准.  相似文献   
989.
昆明市医疗废物的焚烧处理   总被引:1,自引:0,他引:1  
医疗废物含有大量传染性物质,导致污染的可能是各种病菌和寄生虫卵等,是高度危险废物,必须进行无害化处置.针对昆明市医疗废物的现状,根据国内外先进的管理和处理模式,结合昆明市实际情况,采用焚烧实验炉焚烧昆明市医疗废物,医疗废物无须进行预处理,能直接进行焚烧.实验证明,高温焚烧可彻底清除医疗废物中的病菌及恶臭气体,保证医疗废物的无害化处理.  相似文献   
990.
ABSTRACT: The Phoenix metropolitan area has a unique combination of circumstances which makes it one of the prime areas in the Nation for waste water reuse. Overriding all of these conditions is the long-term inadequacy of the existing water supplies. The Salt River Valley has a ground water overdraft of about 700,000 acre feet per year. To help alleviate this situation, the Corps of Engineers in conjunction with the MAG 208 is looking at ways to reuse a projected 2020 waste water flow of 340,000 acre feet per year. Reuse options identified include ground water recharge, agricultural irrigation, turf irrigation, recreational lakes, fish and wildlife habitats, and industrial cooling. These look nice on paper but before they can be implemented, some hard questions have to be answered, such as: How acceptable are local treatment plants when 15 years ago there was a major push to eliminate local plants; is the Phoenix area ready for reuse in urban areas; what are people willing to pay for water; who benefits if a city goes to ground water recharge; how much agriculture will be left in the area by 2020? These and other questions must be resolved if reuse is to become a viable option in water resource planning in the Phoenix area. Summary. Large scale reuse of waste water conforms with the national goal of better resource management through recycling. The Phoenix metropolitan area has a unique combination of circumstances which makes it one of the prime areas in the nation for waste water reuse. Some of the most notable conditions are: the existence of a large and rapidly growing urban area which is in the process of planning for future waste water management systems; the existence of agricultural areas which are projected to be farmed well into the future, and the existence of constructed and planned major recreational systems such as Indian Bend Wash which can use recycled waste water; the existence of extensive depleted ground water aquifers; the need for a dependable source for the cooling of the Palo Verde Nuclear reactors; and finally, overriding all of this, the long-term inadequacy of the existing water supplies. Given this, one would expect to find total reuse within the Phoenix metropolitan area. Reuse is taking place with irrigation and nuclear power cooling to the west but there is no long term plan which looks at the Valley as a whole and considers waste water as part of the Valley's water resources. The Corps 208 plan is looking at waste water in this manner but initial analysis shows that although reuse is technically feasible there are many financial, social, institutional, and political questions still to be answered. These include: determining the value of existing diminishing water sources and what people are willing to pay for the next source of water; are people willing to identify priority uses of water for the area so that water of varying quality is put to its highest and best use; will the present institutional boundaries remain to create water-rich and water-poor areas; and will legislation be forthcoming to simplify the complex surface and ground water laws that presently exist? The Corps 208 study will not be able to answer these questions, but the goal at the moment is to identify feasible reuse systems along with decisions the public, owners, agencies, and politicians must make to select and implement them. If some sort of logical process is not developed and public awareness not increased, the chance for a long-term plan to utilize waste water as a major element in the Phoenix area water resource picture, may be missed.  相似文献   
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