The seasonal variation in soil water acid neutralizing capacity in peaty podzols in mid-Wales

被引:12
作者
Chapman, PJ [1 ]
Reynolds, B [1 ]
Wheater, HS [1 ]
机构
[1] INST TERR ECOL,BANGOR RES UNIT,BANGOR LL57 2UP,GWYNEDD,WALES
关键词
soil solution; acid neutralizing capacity; acidity; ion exchange; organic acids; cations; anions;
D O I
10.1007/BF00477126
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Between 1985 and 1990, bulk precipitation and soil solution from the organic (Oh) and mineral (Bs) horizons of a well developed podzol were regularly sampled at a moorland catchment in Mid-Wales. Samples were analysed for pH, major cations, major anions, and dissolved organic carbon (DOC). Acid neutralizing capacity (ANC) was estimated by the charge balance method. Average monthly ANC of soil solutions from the Oh horizon varied seasonally, with a maximum in July and a minimum in February. In contrast, H+ concentrations varied little. Solute deposition, dominated by sodium and chloride, also varied seasonally with a winter maximum, which is reflected in the soil solution chemical composition. In the Oh horizon during winter, the increase in base cation (Na) concentrations led to release of H+ through ion exchange. ANC declined in the absence of any buffering mechanism. In summer, the depletion of exchangeable acidity that occurred in winter, was replenished by H+ produced by the dissociation of organic acids. During this period, organic anions contribute to an increase in ANC, while H+ concentrations remained similar to those in winter. These processes probably influenced the acidity and ANC of Bs horizon soil solutions but to a lesser extent than in the Oh horizon. Other mechanisms such as weathering and ion exchange involving H+ and Al may buffer solution acidity in the mineral soil.
引用
收藏
页码:1089 / 1094
页数:6
相关论文
共 13 条
[1]   HYDROCHEMICAL CHANGES ALONG STORMFLOW PATHWAYS IN A SMALL MOORLAND HEADWATER CATCHMENT IN MID-WALES, UK [J].
CHAPMAN, PJ ;
REYNOLDS, B ;
WHEATER, HS .
JOURNAL OF HYDROLOGY, 1993, 151 (2-4) :241-265
[2]  
*CLAG, 1994, CRIT LOADS ADV GROUP
[3]   EFFECTS OF ACIDIC DEPOSITION ON THE CHEMISTRY OF HEADWATER STREAMS - A COMPARISON BETWEEN HUBBARD BROOK, NEW-HAMPSHIRE, AND JAMIESON CREEK, BRITISH-COLUMBIA [J].
DRISCOLL, CT ;
JOHNSON, NM ;
LIKENS, GE ;
FELLER, MC .
WATER RESOURCES RESEARCH, 1988, 24 (02) :195-200
[4]   ACID NEUTRALIZING CAPACITY, ALKALINITY, AND ACID-BASE STATUS OF NATURAL-WATERS CONTAINING ORGANIC-ACIDS [J].
HEMOND, HF .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1990, 24 (10) :1486-1489
[5]   CATION-EXCHANGE PROPERTIES OF POROUS CERAMIC CUPS - IMPLICATIONS FOR FIELD USE [J].
HUGHES, S ;
REYNOLDS, B .
PLANT AND SOIL, 1988, 109 (01) :141-144
[6]  
KERKES J, 1986, WATER AIR SOIL POLL, V31, P165
[7]   ACID-RAIN ON ACID SOIL - A NEW PERSPECTIVE [J].
KRUG, EC ;
FRINK, CR .
SCIENCE, 1983, 221 (4610) :520-525
[8]   REVIEW OF ACID-DEPOSITION-CATCHMENT INTERACTION AND COMMENTS ON FUTURE-RESEARCH NEEDS - REPLY [J].
KRUG, EC .
JOURNAL OF HYDROLOGY, 1993, 142 (1-4) :493-496
[9]   HYDROGEOCHEMICAL CONTROLS FOR INORGANIC ALUMINUM IN ACIDIC STREAM AND SOIL WATERS AT 2 UPLAND CATCHMENTS IN WALES [J].
NEAL, C ;
REYNOLDS, B ;
STEVENS, P ;
HORNUNG, M .
JOURNAL OF HYDROLOGY, 1989, 106 (1-2) :155-175
[10]  
Reuss JO, 1986, ACID DEPOSITION ACID