DOI QR코드

DOI QR Code

The Effect of the Addition of Carbohydrate Sources on the Concentration of Odorous Compounds for Recycling of Pig Slurry to Grassland

발효탄수화물 첨가 비육돈사료가 초지환원용 슬러리의 악취물질 농도에 미치는 영향

  • Received : 2013.11.05
  • Accepted : 2013.11.18
  • Published : 2013.12.31

Abstract

This study investigates the effect of fermentable carbohydrate on the concentration of odorous compounds in pig slurry. Four types of pig diet were studied: control, peanut hull (crude fiber 29.87, NDF 44.02%), golden fiber (crude fiber 48.77, NDF 65.88%), and almond hull (crude fiber 44.30, NDF 64.44%). Pigs (average BW 37.0 kg) were fed diets that met the Korean Feeding Standard (2012) and their excreta samples were collected from the slurry pits. Levels of volatile organic compounds (phenols and indoles) and volatile fatty acids were analyzed by gas chromatography. Phenol level was the lowest (p<0.05) in golden fiber (33.26 ppm) group and the highest in control (97.29 ppm). The concentration of indoles in the peanut hull (1.27 ppm), almond hull (1.20 ppm), and golden fiber (1.02 ppm) groups was lower (p < 0.05) than that of control (1.79 ppm). Levels of short chain fatty acid (SCFA) were lower (p < 0.05) in golden fiber (1,319 ppm) and almond hull (1,433 ppm) groups than in control (1,893 ppm). Concentration of branched chain fatty acid (BCFA) in the golden fiber group (74 ppm) was lower (p < 0.05) than that of control (98 ppm). Taken together, the concentration levels of phenols, indoles, and VFAs decreased on addition of peanut hull, golden fiber or almond hull to the diet, suggesting that fermentable carbohydrate may contribute to reducing odorous compounds in pig slurry.

양돈 사료에 발효탄수화물을 첨가하여 돼지의 슬러리에서 악취물질의 농도를 평가하였다. VFA 분석결과, 분뇨의 SCFA 농도는 대조구, 땅콩껍질, 아몬드피 및 골든화이버구에서 각각 1,893, 1,591, 1,433 및 1,319 ppm으로 대조구에서 가장 높았고(p<0.05), 아몬드피와 골든파이버 구에서 가장 낮았다(p<0.05). VFA의 구성을 살펴보면 SCFA 중에서 아세트산의 비율이 가장 높으며, 다음으로 프로피온산, 부티르산, BCFA 순으로 낮았다. BCFA의 농도는 대조구, 땅콩껍질, 아몬드피 및 골든화이버 구에서 각각 98, 92, 78 및 74 ppm으로 대조구에서 가장 높았고(p<0.05), 골든화이버 구에서 가장 낮았다(p<0.05). VOC 분석결과, 분뇨의 페놀류 농도는 대조구, 땅콩껍질, 아몬드피 및 골든화이버 구에서 각각 97.3, 47.0, 54.3 및 33.3 ppm으로 골든화이버 구에서 가장 낮았으며, 대조구에서 가장 높았다(p<0.05). 그리고 p-크레졸 농도가 페놀류 농도의 93~96%를 차지하였다. 인돌류 농도는 대조구, 땅콩껍질, 아몬드피 및 골든화이버 구에서 각각 1.8, 1.3, 1.2 및 1.0 ppm으로 발효탄수화물 처리구간에 차이가 없었으며(p>0.05), 대조구에서 가장 높았다(p<0.05). ${NH_4}^+$-N의 농도는 대조구, 땅콩껍질, 아몬드피 및 골든화이버 구에서 각각 1,395, 995, 995 및 836 ppm으로 대조구에서 가장 높았으며, 골든화이버 구에서 가장 낮았다(p<0.05). 가축의 장내 또는 슬러리에서 발효과정 동안 미생물이 성장을 위해 필요로 하는 에너지가 제한요소로 작용되면, 미생물은 단백질을 에너지원으로 이용하기 때문에 많은 아미노산이 분해되어 악취물질이 증가 될 수 있다. 따라서 다른 처리구에 비하여 골든화이버 구에서 VOC의 농도가 가장 낮은 것은 골든화이버의 높은 NDF 함량으로(Getachew et al., 2004) 단백질 발효보다 탄수화물 발효가 활발하게 일어나 악취물질의 농도가 낮았다고 판단된다.

Keywords

References

  1. Annual Research Report, Ministry of Environment, Korea. 2006.
  2. Conn, K.L., Topp, E. and Lazarovits, G. 2007. Factors influencing the concentration of volatile fatty acids, ammonia and other nutrients in stored liquid pig manure. Journal of Environmental Quality. 36:440-447. https://doi.org/10.2134/jeq2006.0222
  3. Cooper, P. and Cornforth, I.S. 1978. Volatile fatty acids in stored animal slurry. Journal of the Science of Food and Agriculture. 29:19-27. https://doi.org/10.1002/jsfa.2740290104
  4. Duncan, D.B. 1955. Multiple range and multiple F test. Biometrics. 11:1-42. https://doi.org/10.2307/3001478
  5. Getachew, G., Robinson, P.H., DePeters, E.J. and Taylor, S.J. 2004. Relationships between chemical composition, dry matter degradation and in vitro gas production of several ruminant feeds. Animal Feed Science and Technology. 111:57-71. https://doi.org/10.1016/S0377-8401(03)00217-7
  6. Gibson, G.R. and Roberfroid, M.B. 1995. Dietary modulation of the human colonic microbiota introducing the concept of prebiotics. Journal of Nutrition. 125:1401-1412.
  7. Goa, Y., Rideout, T., Lackeyram, D., Archbold, T., Fan, M.Z., Squires, E.J., Duns C.F.M. de Lange, G. and Smith, T.K. 1999. Manipulation of hindgut fermentation to reduce the excretion of selected odor-causing compounds in pigs. In: Proceedings of Canadian Pork Council: Symposium of The Hog Environmental Management Strategy, Ontario, Canada, 24-29.
  8. Jensen, B.B. and Jorgensen, H. 1994. Effect of dietary fiber on microbial activity and microbial gas production in various regions of the gastrointestinal tract of pigs. Applied and Environmental Microbiology. 60:1897-1904.
  9. Jensen, M.T., Cox, R.P. and Jensen, B.B. 1995. 3-Methylindole (skatole) and indole production by mixed populations of pig fecal bacteria. Applied and Environmental Microbiology. 61:180-3184.
  10. Kim, Y.I., Bae, J.S., Jung, S.H., Ahn, M.H. and Kwak, W.S. 2007. Yield and physicochemical characteristics of spent mushroom (Pleurotus ryngii, Pleurotus osteratus and Ammulina velutipes) substrates according to mushroom species and cultivation types. Korea Journal of Animal Science and Technology. 49:79-88. https://doi.org/10.5187/JAST.2007.49.1.079
  11. Knarreborg, A., Beck, J., Jensen, M.T., Laue, A., Agergaard, N. and Jensen, B.B. 2002. Effects of non-starch polysaccharides on production and absorption of indolic compounds in entire male pigs. Animal Science. 74:445-453. https://doi.org/10.1017/S1357729800052590
  12. Korean Feeding Standard, swine, 2012. National Institute of Animal Science, RDA, Korea.
  13. Le, P.D., Aarnink, A.J.A., Jongbloed, A.W., van der Peet-Schwering, C.M.C., Ogink, N.W.M. and Verstegen, M.W.A. 2008. Interactive effects of dietary crude protein and fermentable carbohydrate levels on odour from pig manure. Livestock Science. 114:48-61. https://doi.org/10.1016/j.livsci.2007.04.009
  14. Le, P.D., Aarnink, A.J.A., Ogink, N.W.M., Becker, P.M. and Verstegen, M.W.A. 2005. Odour from animal production facilities: Its relationship to diet. Nutrition Research Review. 18:3-30. https://doi.org/10.1079/NRR200592
  15. Lee, K.H., Hwang, O.H., Yang, S.H., Park, K.H., Lee, J.Y., Jeun, B.S., Ohh, S.J., Lee, S.S., Yoo, Y.H. and Cho, S.B. 2012. The effect of horseradish powder and mushroom waste in fattening pig diet on odorous compound concentration from slurry. Journal of Livestock House and Environment. 18:35-40.
  16. Li, C.Y., Liu, J.X., Wang, Y.Z., Wu, Y.M., Wang, J.K. and Zhou, Y.Y. 2009. Influence of differing carbohydrate sources on L-tryptophan metabolism by porcine fecal microbiota studied in vitro. Livestock Science. 120:43-50. https://doi.org/10.1016/j.livsci.2008.04.014
  17. Mackie, R.I. 1994. Microbial production of odor components. In International round table on swine odor control. pp. 18-19. Ames, IA, USA.
  18. McGill, A.E.J. and Jackson, N. 1977. Changes in short chain carboxylic acid content and chemical oxygen demand of stored pig slurry. Journal of the Science of Food and Agriculture. 28:424-430. https://doi.org/10.1002/jsfa.2740280505
  19. Miller, D.N. and Varel, V.H. 2003. Swine manure composition affects the biochemical origins, composition, and accumulation of odorous compounds. Journal of Animal Science. 81:2131-2138. https://doi.org/10.2527/2003.8192131x
  20. Odor Control Law, Ministry of Environment, Korea. 2006.
  21. Overland, M., Kjos, N.K., Fauske, A.K., Teige, L. and Sorum, H. 2011. Easily fermentable carbohydrates reduce skatole formation in the distal intestine of entire male pigs. Livestock Science. 140:206-217. https://doi.org/10.1016/j.livsci.2011.03.032
  22. Parker, D.B., Lingshuang, C., Kim, K.H., Hales, K.E., Spiehs, M.J., Woodbury, D.L., Atkin, A.L., Nickerson, K.W. and Patefield, K.D. 2012. Reducing odorous VOC emissions from swine manure using soybean peroxidase and peroxides. Bioresource Technology. 124:95-104. https://doi.org/10.1016/j.biortech.2012.08.031
  23. Reid, C.A. and Hillman, K. 1999. The effects of retrogradation and amylose/amylopectin ratio of starches on carbohydrate fermentation and microbial population in the porcine colon. Animal Science. 68:503-510. https://doi.org/10.1017/S1357729800050529
  24. Rideout, T.C., Fan, M.Z., Cant, J.P., Wagner-Riddle, C. and Stonehouse, P. 2004. Excretion of major odor-causing and acidifying compounds in response to dietary supplementation of chicory inulin in growing pig. Journal of Animal Science. 82:1678-1684. https://doi.org/10.2527/2004.8261678x
  25. SAS. 1996. SAS/STAT(R) software for PC. SAS Institute Inc., Cary, NC, USA.
  26. Schaefer, J. 1977. Sampling characterization and analysis of malodours. Agricultural Environment. 3:121-127. https://doi.org/10.1016/0304-1131(77)90003-0
  27. Spoelstra, S.F. 1977. Simple phenols and indoles in anaerobically stored piggery wastes. Journal of the Science of Food and Agriculture. 28:415-423. https://doi.org/10.1002/jsfa.2740280504
  28. Spoelstra, S.F. 1980. Origin of objectionable odorous components in piggery wastes and the possibility of applying indicator components for studying odour development. Agricultural Environment. 5:241-260. https://doi.org/10.1016/0304-1131(80)90004-1
  29. Sutton, A.L., Kephart, K.B., Verstegen, M.W., Canh, T.T. and Hobbs, P.J. 1999. Potential for reduction of odorous compounds in swine manure through diet modification. Journal of Animal Science. 77:430-439. https://doi.org/10.2527/1999.772430x
  30. Williams, A.G. and Evans, M.R. 1981. Storage of piggery slurry. Agricultural Wastes. 3:11-321.
  31. Willing, S., Losel, D. and Claus, R. 2005. Effects of resistant potato starch on odor emission from feces in swine production units. Journal of Agricultural Food Chemistry. 53:1173-1178. https://doi.org/10.1021/jf048658+
  32. Wu, J.J., Park, S.H., Hengemuehle, S.M., Yokoyama, M,T., Person, H.L., Gerrish, J.B. and Masten, S.J. 1999. The use of ozone to reduce the concentration of malodorous metabolites in swine manure slurry. Journal of Agricultural Engineering Research. 72:317-327. https://doi.org/10.1006/jaer.1998.0378
  33. Zahn, J.A., Dispirotp, A.A., Do, Y.S., Brooks, B.E., Cooper, E.E. and Hatfield, J.L. 2001. Correlation of human olfactory responses to airborne concentration of malodorous volatile organic compounds emitted from swine effluent. Journal of Environmental Quality. 30:624-634. https://doi.org/10.2134/jeq2001.302624x

Cited by

  1. Comparison of Volatile Organic Compound and Volatile Fatty Acid Concentration in Feces and Urine of Finishing Pigs vol.34, pp.2, 2014, https://doi.org/10.5333/KGFS.2014.34.2.120
  2. Effect of Season on Volatile Organic Compounds and Volatile Fatty Acids Concentration in finishing Pig Slurry to Grassland vol.34, pp.2, 2014, https://doi.org/10.5333/KGFS.2014.34.2.125