Development of a process-based nitrogen mass balance model for a Virginia (USA) Spartina alterniflora salt marsh: implications for net DIN flux

被引:59
作者
Anderson, IC [1 ]
Tobias, CR [1 ]
Neikirk, BB [1 ]
Wetzel, RL [1 ]
机构
[1] Virginia Inst Marine Sci, Coll William & Mary, Sch Marine Sci, Gloucester Point, VA 23062 USA
关键词
salt marsh; mineralization; immobilization; nitrogen cycling; nitrification/denitrification; DIN flux;
D O I
10.3354/meps159013
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Primary production is nitrogen limited in most salt marshes with the possible exception of those impacted by high anthropogenic inputs of nitrogen. It is hypothesized that mature salt marshes which receive only small inputs of 'new' nitrogen from the atmosphere, surface water runoff, groundwater, tidal creek, and nitrogen-fixation will have a conservative nitrogen cycle. We have developed a process-based N mass balance model for a short-term Spartina alterniflora marsh in Virginia, USA. Data for the model included rates of gross mineralization, nitrification, denitrification, nitrogen fixation, above- and belowground macrophyte production, and benthic microalgal production. The annual balance between sources (mineralization, nitrogen fixation, tidal creek flux, atmospheric deposition, and sediment input) and sinks (above- and belowground macrophyte uptake, sediment microalgal uptake, sediment burial, microbial immobilization, denitrification, and nitrification) of dissolved inorganic nitrogen (DIN) was determined for both interior S. alterniflora-vegetated sites and unvegetated creek bank sites. Sediment/water exchanges of DIN species, predicted by results of the mass balance analysis, were compared to measured exchanges. Annually, sources and sinks of DIN in the vegetated marsh were in close balance. The vegetated. marsh imported DIN from the adjacent creek during most of the year; the unvegetated creek bank exported NH4+ to overlying tidal water during July and imported NH4+ during other seasons. The net flux of DIN was 5.7 g N m(-2) yr(-1) from overlying water into the marsh; however, this flux was small relative to rates of internal N-cycling processes. The sediment NH,+ pool turned over rapidly as a result of the high rate of gross mineralization (84 g N m(-2) yr(-1)). Other microbial N-cycling rates were low (0.6 to 4 g N m(-2) yr(-1)). The NH4+ supplied by mineralization was more than sufficient to support both macrophyte (33 g N m(-2) yr(-1)) and benthic microalgal (5 g N m(-2) yr(-1)) uptake. We propose that in order to maintain steady state in the system approximately half of the DIN mineralized is immobilized into a readily remineralizable particulate organic N pool Since mineralization and macrophyte uptake are temporally out of phase, the labile organic N pool may serve to temporarily sequester NH4+ until it is required for plant uptake.
引用
收藏
页码:13 / 27
页数:15
相关论文
共 74 条
[1]  
AXELRAD DM, 1974, THESIS COLL WILLIAM
[2]   DIAGENESIS OF BELOWGROUND BIOMASS OF SPARTINA-ALTERNIFLORA IN SALT-MARSH SEDIMENTS [J].
BENNER, R ;
FOGEL, ML ;
SPRAGUE, EK .
LIMNOLOGY AND OCEANOGRAPHY, 1991, 36 (07) :1358-1374
[3]   CARBON CONVERSION EFFICIENCY FOR BACTERIAL-GROWTH ON LIGNOCELLULOSE - IMPLICATIONS FOR DETRITUS-BASED FOOD WEBS [J].
BENNER, R ;
LAY, J ;
KNEES, E ;
HODSON, RE .
LIMNOLOGY AND OCEANOGRAPHY, 1988, 33 (06) :1514-1526
[4]  
BLUM LK, 1993, MAR ECOL PROG SER, V102, P169, DOI 10.3354/meps102169
[5]   A N-15 ISOTOPE-DILUTION STUDY OF AMMONIUM PRODUCTION AND CONSUMPTION IN A MARSH SEDIMENT [J].
BOWDEN, WB .
LIMNOLOGY AND OCEANOGRAPHY, 1984, 29 (05) :1004-1015
[6]   NITRIFICATION, NITRATE REDUCTION, AND NITROGEN IMMOBILIZATION IN A TIDAL FRESH-WATER MARSH SEDIMENT [J].
BOWDEN, WB .
ECOLOGY, 1986, 67 (01) :88-99
[7]   DIFFUSION METHOD TO PREPARE SOIL EXTRACTS FOR AUTOMATED N-15 ANALYSIS [J].
BROOKS, PD ;
STARK, JM ;
MCINTEER, BB ;
PRESTON, T .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1989, 53 (06) :1707-1711
[8]  
BROOKS PD, 1993, ASA SPEC P, V55, P193
[9]   AVAILABLE AND REFRACTORY NITROGEN IN DETRITUS OF COASTAL VASCULAR PLANTS AND MACROALGAE [J].
BUCHSBAUM, R ;
VALIELA, I ;
SWAIN, T ;
DZIERZESKI, M ;
ALLEN, S .
MARINE ECOLOGY PROGRESS SERIES, 1991, 72 (1-2) :131-143
[10]   A FLUCTUATING WATER-LEVEL CHAMBER FOR BIOGEOCHEMICAL EXPERIMENTS IN TIDAL MARSHES [J].
CHAMBERS, RM .
ESTUARIES, 1992, 15 (01) :53-58