Ammonia emissions from liquid manure storages are affected by anaerobic digestion and solid-liquid separation

被引:24
作者
Balde, Hambaliou [1 ]
VanderZaag, Andrew C. [1 ]
Burtt, Stephen D. [1 ]
Wagner-Riddle, Claudia [2 ]
Evans, Leigh [3 ]
Gordon, Robert [4 ]
Desjardins, Raymond L. [1 ]
MacDonald, J. Douglas [5 ]
机构
[1] Agr & Agri Food Canada, KW Nearby Bldg,CEF,960 Carling Ave, Ottawa, ON K1A 0C6, Canada
[2] Univ Guelph, Sch Environm Sci, Guelph, ON, Canada
[3] Golder & Associates, Ottawa, ON, Canada
[4] Wilfrid Laurier Univ, Dept Geog & Environm Studies, Waterloo, ON, Canada
[5] Environm & Climate Change Canada, Gatineau, PQ, Canada
关键词
Ammonia emissions; Manure storage; Anaerobic digestion; Solid-liquid separation; GREENHOUSE-GAS EMISSIONS; DAIRY-COW MANURE; METHANE EMISSIONS; NITROUS-OXIDE; SLURRY; MITIGATION; COVERS; LAGOON;
D O I
10.1016/j.agrformet.2018.01.036
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The effects of manure management practices on ammonia (NH3) emissions were evaluated using a micrometeorological technique at four contrasting dairy storage facilities: untreated raw manure slurry (RM), solid-liquid separation with storage of separated liquids (SL), anaerobic digestion of manure and off-farm materials (AD), and anaerobic digestion with solid-liquid separation and storage of the liquid fraction (ADL). Annual average NH3 emissions per surface area were lowest for RM (2.7 g m(-2) d(-1)), followed by SL (4.5 g m(-2) d(-1)), AD (10.0 g m(-2) d(-1)), and ADL (15.5 g m(-2) d(-1)). Lower NH3 emissions from the RM storage were partly due to the 30 cm thick surface crust which formed on the storage surface in summer (wood shavings was used as bedding). Greater surface crusting at the AD storage compared to the ADL storage was also likely the reason for higher emissions at the ADL storage. Relationships between NH3 emissions, temperature, and wind-speed were observed at all sites but were strongest at sites with minimal crusting (SL, ADL) and weak at the RM storage with a crust cover. Total NH3 emissions from each storage facility (kg y(-1)) did not simply track the differences in fluxes; rather, facilities with greater storage (RM, AD, ADL) had higher emissions than the facility with less storage (SL) due to removal of solids and more frequent field application. Overall, bedding material, manure processing, and storage management all have important effects on NH3 emissions from manure storage.
引用
收藏
页码:80 / 88
页数:9
相关论文
共 43 条
[1]   Emissions of ammonia, nitrous oxide, methane, and carbon dioxide during storage of dairy cow manure as affected by dietary forage-to-concentrate ratio and crust formation [J].
Aguerre, M. J. ;
Wattiaux, M. A. ;
Powell, J. M. .
JOURNAL OF DAIRY SCIENCE, 2012, 95 (12) :7409-7416
[2]   Methane, nitrous oxide and ammonia emissions during storage and after application of dairy cattle slurry and influence of slurry treatment [J].
Amon, B ;
Kryvoruchko, V ;
Amon, T ;
Zechmeister-Boltenstern, S .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2006, 112 (2-3) :153-162
[3]  
[Anonymous], 2015, COSTS AMMONIA ABATEM
[4]   Does Fall Removal of the Dairy Manure Sludge in a Storage Tank Reduce Subsequent Methane Emissions? [J].
Balde, Hambaliou ;
VanderZaag, Andrew C. ;
Burtt, Stephen D. ;
Gordon, Robert J. ;
Desjardins, Raymond L. .
JOURNAL OF ENVIRONMENTAL QUALITY, 2016, 45 (06) :2038-2043
[5]   Measured versus modeled methane emissions from separated liquid dairy manure show large model underestimates [J].
Balde, Hambaliou ;
VanderZaag, Andrew C. ;
Burtt, Stephen ;
Evans, Leigh ;
Wagner-Riddle, Claudia ;
Desjardins, Raymond L. ;
MacDonald, J. Douglas .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2016, 230 :261-270
[6]   Methane emissions from digestate at an agricultural biogas plant [J].
Balde, Hambaliou ;
VanderZaag, Andrew C. ;
Burtt, Stephen D. ;
Wagner-Riddle, Claudia ;
Crolla, Anna ;
Desjardins, Raymond L. ;
MacDonald, Douglas J. .
BIORESOURCE TECHNOLOGY, 2016, 216 :914-922
[7]  
Bittman S., 2009, Better Crops with Plant Food, V93, P28
[8]   Modelling surface pH and emissions of hydrogen sulphide, ammonia, acetic acid and carbon dioxide from a pig waste lagoon [J].
Blanes-Vidal, V. ;
Sommer, S. G. ;
Nadimi, E. S. .
BIOSYSTEMS ENGINEERING, 2009, 104 (04) :510-521
[9]   Ammonia emissions from livestock industries in Canada: Feasibility of abatement strategies [J].
Carew, Richard .
ENVIRONMENTAL POLLUTION, 2010, 158 (08) :2618-2626
[10]   An ecoregion-specific ammonia emissions inventory of Ontario dairy farming: Mitigation potential of diet and manure management practices [J].
Chai, Lilong ;
Kroebel, Roland ;
MacDonald, Douglas ;
Bittman, Shabtai ;
Beauchemin, Karen A. ;
Janzen, H. Henry ;
McGinn, Sean M. ;
Vanderzaag, Andrew .
ATMOSPHERIC ENVIRONMENT, 2016, 126 :1-14