ANALYSIS OF CHANGES IN CHARACTERISTICS OF KITCHEN WASTE AFTER SORTING AND DOMESTIC WASTE BEFORE SORTING IN BEIJING
-
摘要: 2020年5月1日起,北京市正式实施了《北京市生活垃圾管理条例》。为了解北京市垃圾分类后厨余垃圾与分类前生活垃圾性质变化,对居民区垃圾分类收集点厨余垃圾桶内的垃圾进行了采样分析,并与北京市分类前混合收运的生活垃圾性质进行比对。结果表明,北京实施垃圾分类后,厨余垃圾桶内厨余组分占比逐渐增加,实施1年后,厨余组分占比可达99%;含水率和容重较分类前明显增加,可燃分和热值明显降低,故不适宜采用焚烧处理;pH和C/N呈下降趋势,电导率呈小幅度增长趋势,有机质、总氮(以N计)、总磷(以P2O5计)和总钾(以K2O计)含量上升,垃圾资源化利用潜力增大。Cd、Pb、Cr、Hg、As、Cu和Zn 7种危害较大的重(类)金属元素中,除As外其余的金属元素含量均呈下降趋势;Na、Ca、Mg、Fe、Mn等金属元素,除Na外均呈下降趋势。故垃圾源头分类可以有效控制厨余垃圾中金属含量,使其种子发芽指数升高,减小对植物的生物毒害作用,降低环境风险。该研究结果可为北京市垃圾资源化利用和处理设施规划提供参考和依据。Abstract: On May 1st, 2020, Beijing officially implemented the Beijing Municipal Household Waste Management Regulations. In order to understand the changes in the characteristics of kitchen waste after garbage classification and domestic waste before classification in Beijing, the garbage in the kitchen waste garbage bins in the garbage classification collection points of residential areas was sampled and analyzed, and then compared with the domestic garbage mix collected and transported in Beijing before classification. The results showed that after Beijing implemented garbage classification, the proportions of kitchen waste components in kitchen waste bins gradually increased. After one year of implementation, the proportion of kitchen waste components reached 99%. The moisture content and bulk density of kitchen waste increased significantly, compared with that before classification, and the combustible points and calorific value were significantly reduced, so it was not suitable for incineration treatment; pH and C/N showed a downward trend, conductivity showed a tiny growing trend, and the contents of organic matter, total nitrogen (in terms of nitrogen element), total phosphorus (in terms of P2O5) and total potassium (in terms of K2O) increased, and the potential for waste resource utilization also increased. Among the seven kinds of heavy (metalloid) metals with greater harm, such as Cd, Pb, Cr, Hg, As, Cu and Zn, except for As, the content of the remaining metal elements showed a downward trend; among the metal elements such as Na, Ca, Mg, Fe, and Mn, the content of the remaining elements, except Na, showed a downward trend. Therefore, the metal content in kitchen waste could be effectively controlled through the garbage sorting, so that the seed germination index could be increased, the biological toxic effect on plants reduced, and the environmental risk reduced. This study can provide a reference and basis for the planning of waste resource utilization and treatment facilities in Beijing.
-
Key words:
- kitchen waste /
- garbage sorting /
- characteristics /
- resource utilization /
- Beijing
-
[1] LINZNER R, SALHOFER S. Municipal solid waste recycling and the significance of informal sector in urban China[J]. Waste Management and Research, 2014, 32(9):896-907. [2] SUN Y, YUE D, LI R, et al. Assessing the performance of gas collection systems in select Chinese landfills according to the LandGEM model:drawbacks and potential direction[J]. Environmental Technology, 2015, 36(23):2912-2918. [3] DE CLERCQ D, WEN Z, GOTTFRIED O, et al. A review of global strategies promoting the conversion of food waste to bioenergy via anaerobic digestion[J]. Renewable and Sustainable Energy Reviews, 2017, 79:204-221. [4] WANG Y, ZANG B, LI G, et al. Evaluation the anaerobic hydrolysis acidification stage of kitchen waste by pH regulation[J]. Waste Management, 2016, 53:62-67. [5] 王宇卓, 聂永丰, 任连海. 湿热法处理实现厨余垃圾饲料化的研究[J]. 环境污染治理技术与设备, 2005, 6(9):75-78. [6] 徐栋, 沈东升, 冯华军. 厨余垃圾的特性及处理技术研究进展[J]. 科技通报, 2011, 27(1):130-135. [7] 北京实施垃圾分类新条例 未来3个月集中开展强化执法[J]. 再生资源与循环经济, 2020, 13(5):23. [8] 赵庆令, 李清彩. 电感耦合等离子体发射光谱法同时测定土壤样品中54种组分[J]. 岩矿测试, 2011, 30(1):75-78. [9] 丁湘蓉. 北京市生活垃圾现状与垃圾堆肥应用潜力研究[D]. 北京:中国农业大学, 2003. [10] 李春芸. 北京市城区生活垃圾理化特性调查研究[D]. 北京:北京工业大学, 2015. [11] 王桂琴, 张红玉, 王典, 等. 北京市城区生活垃圾组成及特性分析[J]. 环境工程, 2018, 36(4):132-136. [12] 赵岩, 邢薇, 王洪涛, 等. 基于生命周期模型的生活垃圾分类收运与处理系统环境影响评估[C]//2012中国环境科学学会学术年会, 南宁, 2012. [13] 刘岩. 城市有机垃圾筒仓式干式厌氧发酵处理试验研究[D]. 北京:中国石油大学(北京), 2016. [14] 刘跃勇, 任福民, 汝宜红, 等. 北京市生活垃圾成分及理化特性分析[J]. 北方交通大学学报, 2002(4):50-52. [15] 段怡彤. 北京生活垃圾特征分析与臭气源垃圾源头减量化技术研究[D]. 哈尔滨:东北林业大学, 2012. [16] 李春萍, 蒋建国, 李国学, 等. 北京市生活垃圾堆肥适宜性的判别分析[J]. 环境卫生工程, 2009, 17(2):54-57. [17] 岳波, 张志彬, 黄启飞, 等. 我国6个典型村镇生活垃圾的理化特性研究[J]. 环境工程, 2014, 32(7):105-110. [18] 姜薇. 垃圾分类背景下北京市生活垃圾处理的影响分析[J]. 中国资源综合利用, 2021, 39(4):138-141. [19] 陈伟浩. 余毅:垃圾分类新国策下的厨余垃圾处理实践及思考[EB/OL]. https://www.solidwaste.com.cn/news/313152.html. 2020-08-24. [20] 赵颖, 刘建国, 李润东, 等. 城市生活垃圾可燃组分挥发分析出动力学预测[J]. 清华大学学报(自然科学版), 2007(6):842-846. [21] 昝文安. 生活垃圾焚烧技术现状思考及展望[J]. 环境卫生工程, 2011, 19(4):18-20. [22] 聂永丰. 三废处理工程技术手册:固体废物卷[M]. 北京:化学工业出版社, 2000. [23] 陈伟浩.余毅:垃圾分类新国策下的厨余垃圾处理实践及思考[EB/OL]. https://www.solidwaste.com.cn/news/313152.html. 2020-08-24. [24] 邴君妍, 罗恩华, 金宜英, 等. 中国餐厨垃圾资源化利用系统建设现状研究[J]. 环境科学与管理, 2018, 43(4):39-43. [25] 张旭. 北京市生活垃圾热值测定及计算模型评价[C]//《环境工程》2018年全国学术年会. 北京, 2018. [26] 李仲根, 冯新斌, 汤顺林, 等. 城市生活垃圾填埋场垃圾-土壤-植物中汞含量的分布特征[J]. 地球与环境, 2006(4):11-18. [27] 鲍士旦. 土壤农化分析[M]. 3版. 北京:中国农业出版社, 2002. [28] 夏旻, 邰俊, 余召辉. 上海市分类后家庭厨余垃圾理化特性分析[J]. 安徽农业科学, 2015(7):276-278. [29] 李仙粉, 任福民, 汝宜红, 等. 北京市生活垃圾中重金属元素污染特性调查[J]. 中国环境监测, 2003(3):42-45. [30] ZUCCONI F, FORTE M, MONACO A, et al. Biological evaluation of compost maturity[J]. BioCycle, 1981, 22(4):27-29. [31] BERNAI M P, PAREDES C, SANCHEZ-MONEDERO M A, et al. Maturity and stability parameters of composts prepared with a wide range of organic wastes[J]. Bioresource Technology, 1998, 63(1):91-99.
点击查看大图
计量
- 文章访问数: 323
- HTML全文浏览量: 55
- PDF下载量: 9
- 被引次数: 0