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Polybrominated diphenyl ethers, perfluorinated alkylated substances, and metals in tile drainage and groundwater following applications of municipal biosolids to agricultural fields

机译:在市政生物固体应用于农业领域之后,瓷砖排水和地下水中的多溴联苯醚,全氟烷基化物质和金属

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Polybrominated diphenyl ethers (PBDEs), perfluorinated alkylated substances (PFAS), and metals were monitored in tile drainage and groundwater following liquid (LMB) and dewatered municipal biosolid (DMB) applications to silty-clay loam agricultural field plots. LMB was applied (93,500 Lha~(-1)) in late fall 2005 via surface spreading on un-tilled soil (SS_(LMB)), and a one-pass aerator-based pre-tillage prior to surface spreading (AerWay SSD) (A). The DMB was applied (8 Mg dw ha~(-1)) in early summer 2006 on the same plots by injecting DMB beneath the soil surface (DI), and surface spreading on un-tilled soil (SS_(DMB)). Key PBDE congeners (BDE-47,-99, -100, -153, -154, -183, -209) comprising 97% of total PBDE in LMB, had maximum tile effluent concentrations ranging from 6 to 320 ng L~(-1) during application-induced tile flow. SS_(LMB) application-induced tile mass loads for these PBDE congeners were significantly higher than those for control (C) plots (no LMB) (p<0.05), but not A plots (p> 0.05). PBDE mass loss via tile (0-2 h post-application) as a percent of mass applied was -0.04-0.1% and -0.8-1.7% for A and SS_(LMB), respectively. Total PBDE loading to soil via LMB and DMB application was 0.0018 and 0.02 kg total PBDE ha~(-1) yr~(-1) respectively. Total PBDE concentration in soil (0-0.2 m) after both applications was 115 ng g~(-1) dw, (sampled 599 days and 340 days post LMB and DMB applications respectively). Of all the PFAS compounds, only PFOS (max concentration=17 ng L~(-1)) and PFOA (12 ng L~(-1)) were found above detectable limits in tile drainage from the application plots. Mass loads of metals in tile for the LMB application-induced tile hydrograph event, and post-application concentrations of metals in groundwater, showed significant (p<0.05) land application treatment effects (SS_(LMB)> A>C for tile and SS_(LMB) and A>C for groundwater for most results). Following DMB application, no significant differences in metal mass loads in tile were found between SS_(DMB) and DI treatments (PBDE/PFAS were not measured). But for many metals (Cu, Se, Cd, Mo, Hg and Pb) both SS_(DMB) and DI loads were significantly higher than those from C, but only during < 100 days post DMB application. Clearly, pre-tilling the soil (e.g., A) prior to surface application of LMB will reduce application-based PBDE and metal contamination to tile drainage and shallow groundwater. Directly injecting DMB in soil does not significantly increase metal loading to tile drains relative to SS_(DMB). thus, Dl should be considered a DMB land application option.
机译:在粉质粘土壤土农业田地中使用液体(LMB)和脱水的城市生物固体(DMB)之后,在瓷砖排水和地下水中监测了多溴联苯醚(PBDEs),全氟烷基化物质(PFAS)和金属。 LMB于2005年秋末通过在未倾斜的土壤(SS_(LMB))上进行表层铺展(93_500 Lha〜(-1)),并在表层铺展之前进行了基于通气的单次耕作(AerWay SSD) (一个)。通过在土壤表层(DI)下注入DMB,并在未倾斜的土壤上铺展(SS_(DMB)),于2006年夏初在同一地块上施用了DMB(8 Mg dw ha〜(-1))。在LMB中占总PBDE的97%的主要PBDE同系物(BDE-47,-99,-100,-153,-154,-183,-209)的最大瓷砖废水浓度范围为6至320 ng L〜(- 1)在应用引起的瓷砖流动期间。这些PBDE同系物的SS_(LMB)应用诱导的瓷砖质量载荷显着高于对照(C)图(无LMB)(p <0.05),而不是A图(p> 0.05)。对于A和SS_(LMB),通过瓷砖(施用后0-2小时)的PBDE质量损失占施用质量的百分比分别为-0.04-0.1%和-0.8-1.7%。通过LMB和DMB施用到土壤中的PBDE总量为0.0018和0.02 kg PBDE总ha〜(-1)yr〜(-1)。两次施用后土壤(0-0.2 m)中的多溴二苯醚总浓度为115 ng g〜(-1)dw(分别在LMB和DMB施用后599天和340天取样)。在所有PFAS化合物中,从应用图中发现瓷砖排水中只有PFOS(最大浓度= 17 ng L〜(-1))和PFOA(12 ng L〜(-1))高于可检测的极限。对于LMB应用引起的瓦片水文事件,瓦片中金属的质量负荷以及地下水中金属的施用后浓度均显示出显着的(p <0.05)土地施用处理效果(SS_(LMB)> A> C对于瓦片和SS_ (LMB)和A> C(对于大多数结果为地下水)。在使用DMB之后,SS_(DMB)和DI处理(未测量PBDE / PFAS)之间的瓷砖金属质量负载没有显着差异。但是对于许多金属(Cu,Se,Cd,Mo,Hg和Pb),SS_(DMB)和DI负载均显着高于C负载,但仅在DMB应用后不到100天内。显然,在LMB表面施涂之前对土壤(例如A)进行预铺装将减少基于应用的PBDE和金属对瓷砖排水和浅层地下水的污染。相对于SS_(DMB),直接向土壤中注入DMB不会显着增加瓷砖排水沟中的金属负载。因此,D1应该被视为DMB土地申请选项。

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