马里兰州黑格斯敦中央化学工厂附近的地质、水文和地下水污染

Trevor P. Needham, Alex R. Fiore, Scott W. Ator, Jeff P. Raffensperger, Madison B. Smith, Nicole M. Bellmyer, Caitlyn M. Dugan, Carol J. Morel
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引用次数: 0

摘要

欲了解更多信息,请联系:主任,马里兰州-特拉华州-华盛顿特区。水科学中心在20世纪的大部分时间里,由于农药和化肥的混合和生产,马里兰州黑格斯敦中央化学工厂的土壤和地下水受到了污染。补救调查的重点是两个可操作单元,包括表层土壤和废物处理泻湖(OU-1)和地下水(OU-2)。地下水的关注污染物(COC)包括41种化合物,它们分别属于挥发性有机化合物(VOCs)、半挥发性有机化合物(SVOCs)、农药和金属。本报告的目的是提供一个在中央化学设施及其附近的水文地质和地下水污染物运输的概念性场地模型。该概念模型是通过对近几十年来在该设施及其附近进行的水文地质、土壤和其他环境调查结果的审查、综合和解释而开发的,旨在支持OU-2地下水环境修复计划。对基岩伴生地下水污染物羽流的范围和性质进行了表征。浅层土壤、风化岩和表溶岩与较深的层状、倾斜、断裂和岩溶灰岩之间的岩性和构造对比说明了两个相互联系的流动系统——一个由松散覆盖层和表溶岩组成的表层流动系统和一个在表溶岩之下以结构为主的基岩流动系统。在表层岩溶系统中,特别是在空洞和悬空的表层岩溶地下水位中,存在着污染物的性质和运移的不确定性。在场地内观察到岩溶溶蚀特征,包括场地内的陷落孔和溶蚀孔洞。有趣的是,研究区北部的一口井(MW-J-71)似乎有一个溶蚀空洞,与北部更远的一口井(OW-2-115)相连。这一联系得到了地下水位数据和两口井中总悬浮固体(TSS)和氯苯浓度升高的支持。高水平的TSS支持了管道系统内颗粒结合污染物在场外运输的可能性。在靠近废物处理泻湖(特别是MW-A-51)的一些浅层岩溶井中,还观察到不同组的COC浓度偶尔升高。在同一井内不同COC之间观察到的差异可能是与处置泻湖无关的其他污染源物质的结果。如果在补救行动中不加以考虑,污染物质在表层岩溶系统内的储存和间歇性运输可能会阻碍补救工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Geology, hydrology, and groundwater contamination in the vicinity of Central Chemical facility, Hagerstown, Maryland
First posted September 20, 2023 For additional information, contact: Director, Maryland-Delaware-D.C. Water Science CenterU.S. Geological Survey5522 Research Park DriveCatonsville, MD 21228Contact Pubs Warehouse The soil and groundwater at the Central Chemical facility, Hagerstown, Maryland, are contaminated due to the blending and production of pesticides and fertilizers during much of the 20th century. Remedial investigations focus on two operable units (OU) consisting of the surface soils and waste disposal lagoon (OU-1) and the groundwater (OU-2). The contaminants of concern (COC) for groundwater include 41 compounds categorized within the subgroups of volatile organic compounds (VOCs), semi-volatile organic compounds (SVOCs), pesticides, and metals. The purpose of this report is to provide a conceptual site model of the hydrogeology and groundwater contaminant transport at and near the Central Chemical facility. The conceptual model was developed through review, synthesis, and interpretation of the results of hydrogeologic, soil, and other environmental investigations conducted at and in the vicinity of the facility in recent decades and is intended to support plans for environmental remediation of the groundwater in OU-2.The extent and nature of the groundwater contaminant plume associated with the bedrock was characterized for OU-2 of the site. Lithologic and structural comparisons between shallow soil, weathered rock, and epikarst and deeper competent but bedded, dipping, fractured, and karstic limestones illustrate two connected flow systems—a surficial flow system consisting of the unconsolidated overburden and epikarst and a structurally dominant bedrock flow system below the epikarst. Uncertainties exist regarding the nature and transport of contaminants within the epikarst system particularly within voids and perched epikarst water tables. Karst dissolution features are observed within the site including sinkholes and dissolution voids within wells at the site. Of interest, one well in the northern part of the study area (MW-J-71) appears to have a dissolution void connected to an offsite well (OW-2-115) farther to the north. This connection is supported by groundwater level data and elevated concentrations of total suspended solids (TSS) and chlorobenzene in both wells. The high level of TSS supports the possibility of offsite transport of particle-bound contaminants within the conduit system. Episodically elevated concentrations of COC from different groups also were observed within select wells in the epikarst near the waste disposal lagoon (particularly MW-A-51). The variability observed between different COC within the same well may be the result of additional contaminated source materials unrelated to the disposal lagoon. Storage and episodic transport of contaminated material within the epikarst system has the potential to hinder remediation efforts if not considered in the remedial action.
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