References
1. Abuyenywa, A. A., Osei, C., Asiedu, E. K., Safo, E. Y. 2007. Integrated manure
and fertilizer use, maize production and sustainable soil fertility in sub-humid
zone of West Africa. Journal of Agronomy, 6 (2): 302-309.
2. Adams, H., Gebrekidan, H., Bedadi, B. and Enyew, A. 2015. Effects of organic and
inorganic fertilizers on yield and yield components of Maize. Am. J. Plant Nutr.
Fert. Technol., 5 (1): 1-15.
3. Adekunle, K. F. and Okolie, J. A. 2015. A Review of Biochemical Process of
Anaerobic Digestion. Advances in Bioscience and Biotechnology, 6, 205-212.
4. Aggelis, G., Iconomou, D., Christou, M., Bokas, D., Kotzailias, S., Christou, G.,
Tsagou, V. and Papanikolaou, S. 2003. Phenolic removal in a model olive oil mill
wastewater using Pleurotus ostreatus in bioreactor cultures and biological
evaluation of the process. Water Res 37:3897–3904.
5. Agri-Facts. 2003. Soil pH and Plant Nutrients. www.agric.gov.ab.ca
6. Ahmad, W., Shah, Z., Khan, F., Ali, S. and Malik, W. 2013. Maize yield and soil
properties as influenced by integrated use of organic, inorganic and bio-fertilizers
in a low fertility soil. Soil Environ. 32(2): 121-129.
7. Ahring, B., Angelidaki, I., Macario, E. C., Gavala, H. N., Hofman-Bang, J.,
Macario, A. J. L., Elferink, S. J., Raskin, L., Stams, A.J.M., Westermann, P. and
Zheng, D. 2003. Perspective for Anaerobic Digestion. Biomethanation, 81, 1-30.
Springer, Berlin and Heidelberg.
8. Alburquerque, J. A., De la Fuente, C., Campoy, M., Carrasco, L., Nájera, I.,
Baixauli, C., and Bernal, M. P. 2012. Agricultural use of digestate for horticultural
crop production and improvement of soil properties. European Journal of
Agronomy. Vol. (43), 119-128.
9. Alloway, B. J. Micronutrients and crop production: An introduction. In: Alloway
B. J. (ed.): Micronutrient Deficiencies in Global Crop Production. Springer
Science + Business Media, B.V., Dordrecht, 2008, pp 370.
10. Al Seadi, T., Ruiz, D., Prassl, H., Kottner, M., Finsterwaldes, T., Volke, S. and
Janssers, R. Handbook of Biogas. University of Southern Denmark, Esbjerg.
2008.
11. Angelidaki, I. and Ahring, B. 1997. Codigestion of olive-oil mill wastewaters with
manure, household waste or sewage sludge. Biodegradation (8): pp. 221–226.
12. Aslanzadeh, S. 2014. Pretreatment of Cellulosic Waste and High Rate Biogas
Production. Doctoral Thesis on Resource Recovery, University of Boras, Boras, 1-
50.
13. Austin, D. F., Lee, M., Weldboom, L. R. 2001. Genetic Mapping in Maize with
Hybrid Progeny Across Testers and Generations, Plant Height and Flowering,
Theor. Appl. Gen.102, pp. 163-176.
14. Babicka, L., Koznarova, V., Poust kova, I., Pulkrabek, J., Kourimska, L., Siskova,
J., Smolik, J. 2010. Digestate – a sugar beet fertilizer. Sugar and Sugar Beet
Journal, 126, pp. 106–109.15. Bachmann, S., Gropp, M. and Eichler-Loberman, B. 2014. Phosphorus
availability and soil microbial activity in a 3 year field experiment amended with
digested dairy slurry. Biomass Bioenergy, 70, 429–439.
16. Bambalov, G., Israilides, C., Tanchev, S. 1989. Alcohol Fermentation in Olive Oil
Extraction Effluents, Biological Wastes, 27, pp. 71-75.
17. Banik, S. and Nandi, R. 2004. Effect of supplementation of rice straw with biogas
residual slurry manure on the yield, protein and mineral contents of oyster
mushroom. Industrial Crops and Products, Vol. 20, No. 3, pp. 311-319.
18. Barbosa, D. P., Nabel, M. and Jablonowski, N. D. 2014. Biogas-digestate as
nutrient source for biomass production of Sida hermaphrodita, Zea mays L. and
Medicago sativa L. Energy Procedia (59): 120 – 126
19. Barlog, p., Lukas, H. and Eva, K. 2020. Effect of Digestate on Soil Organic
Carbon and Plant-Available Nutrient Content Compared to Cattle Slurry and
Mineral Fertilization. Agronomy 2020, 10, 379.
20. Beadle, L. C. Techniques in bio-productivity and photosynthesis. Pergamon
press, Oxford, New york, Toronto, 1989.
21. Behera S. K., Singh, M. V., Singh, K. N. and Todwal, S. 2011. Distribution
variability of total extractable zinc in cultivated acid soils of India and their
relationship with some selected soil properties. Geoderma, 162: 242–250.
22. Boari, G., Brunetti, A., Rassino, R. and Rozzi, A. 1984. Anaerobic digestion of
olive mill wastewater. Agricultural Wastes 10. Pp. 161-175.
23. Borja, R., Alba, J. and Banks, J. C. 1997. Impact of the main phenolic
compounds of olive mill wastewater on the kinetics of acetoclastic
methanogenesis. Pro. Bio., V32, I2, Pp. 121-133.
24. Borjesson, P. and Berglund, M. 2007. Environmental systems analysis of biogas
systems―Part II: The environmental impact of replacing various reference
systems. Biomass and Bioenergy, Vol. 31, No. 5, pp. 326-344.
25. Callander, I. J. and Barford, J. P. 1983. Precipitation, chelation, and the
availability of metals as nutrients in anaerobic digestion. II. Applications.
Biotechnol. 25, 1959–1972.
26. Chandra, R., Takeuchi, H. and Hasegawa, T. 2012. Methane Production from
Lignocellulosic Agricultural Crop Wastes: A Review in Context to Second
Generation of Biofuel Production. Renewable and Sustainable Energy Reviews,
16, 1462-1476.
27. Chen, Y., Cheng, J. J. and Creamer, K. S. 2008. Inhibition of anaerobic digestion
process: a review. Biores. Technol. 2008, 99, 4044–4064.
28. Dahlberg, S. P., Lindley, J. A. and Giles, J. F.1988. Effect of anaerobic digestion
on nutrient availability from dairy manure. Trans. ASAE, 31, 1211 1216.
29. Dareioti, M. A., Dokianakis, S. N., Stamatelatoa, K., Zafiri, C. and Kornaros, M.
2010. Exploitation of olive mill wastewater and liquid cow manure for biogas
production. Waste Management, 30, 1841- 1848.
30. Diederichsen, A., Boguslavskij, L. R., Halan, M. and Richards, W. K. 2007.
Collecting plant genetic resources in the eastern Carpathian Mountains within the
territory of Ukraine in 2005. Plant Genetic Newsletter, Biodiversity International
and FAO. No. 151, P: 14-21.
31. Di Giovacchino, L., Basti, C., Surricchio, G. and Ferrante, M. 2002. Effect of
spreading Olive Vegetable Water on soil cultivated with Maize and Grapevine.
OLIVE. 91, 37-42.
32. Dogruel, S., Olmez-Hanci T., Kartal Z., Arslan-Alaton I. and Orhon, D. 2009.
Effect of Fenton's oxidation on the particle size distribution of organic carbon inolive mill wastewater. Water Research, Volume 43, Issue 16, September 2009, Pp.
3974-3983.
33. El-Gizawy, N. K. B. and H. M. Salem. 2010. Influence of Nitrogen Sources on
Yield and its Components of Some Maize Varieties. World J. of Agri. Sci. 6 (2):
218-223.
34. Erguder, H. T., Guven, E. and Demirer, N. G. 2000. Anaerobic treatment of olive
mill wastes in batch reactors. Process Biochemistry, 36 (3). Pp. 243-248.
35. Fan, J., Ding W., Chen Z., Ziadi N. 2011. Thirty-year amendment of horse
manure and chemical fertilizer on the availability of micronutrients at the
aggregate scale in black soil. Environmental Science and Pollution Research, 19:
2745–2754.
36. FAO. Methods of analysis for soils of arid and semiarid regions. Food and
Agriculture Organization, Rome, Italy. 2007.
37. FAO/WFP. Crop and food security assessment mission to the Syrian Arab
Republic. Special Report. FAO, Rome, 2017, Pp. 56.
38. Fehrenbach, H., Giegrich, J., Reinhardt, G., Sayer, U., Gretz, M. and Schmitz, J.
2008. Kriterien einer nachhaltigen Bioenrgienutzungim globalen Maβstab. UBAForschungsbericht
206: 41- 112.
39. Feng, H., Guang-Fei, QU., Ning, P., Fengxiong, X., Jia, L. J., Shi, Y. K. and
Zhang, S. J. 2011. The resource utilization of anaerobic fermentation residue.
Procedia Environmental Sciences 11,1092-1099.
40. Ferdous, Z., Ullah, H., Datta, A., Attia, A., Rakshit, A. and Molla, S. H. 2020.
Application of Biogas Slurry in Combination with Chemical Fertilizer Enhances
Grain Yield and Profitability of Maize. Communications in Soil Sci. and Plant
Analysis, 51:19, 2501-2510.
41. Filidei, S., Masciandro, G. and Ceccanti, B. 2003. Anaerobic digestion of olive
oil mill effluents: Evaluation of wastewater the organic load and
phytotoxicityreduction. Water, Air and Soil pollution, 145, 79 – 94.
42. Fiorentino, A., Gentili, A., Isidori, M., Monaco, P., Nardelli, A., Parrella, A. and
Temussi, F. 2003. Environmental effects caused by olive mill wastewaters:
Toxicity comparison of low-molecular-weight phenol components. Journal of
Agricultural Food Chem., 51, 1005 – 1009.
43. Fouda, S. 2011. Nitrogen availability of biogas residues. Ph.D. thesis, Technics
University, Munich.
44. FSSA (Fertilizer Society of South Africa). Fertilizer Handbook. The Fertilizer
Society of South Africa. Lynwood Ridge, Pretoria. 2000.
45. Fuchs, J.G. and Schleiss, K. 2008. Effects of compost and digestate on
environment and plant production – Results of two research project. Proceedings
of the International Conference ORBIT 2008, Wageningen, pp. 13-16.
46. Furukawa, Y. and Hasegawa, H. 2006. Response of spinach and komatsuna to
biogas effluent made from source-separated kitchen garbage. J. Environ. Qual. 35,
1939–1947.
47. Galvez, A., Sinicco, T., Cayuela, M. L., Mingorance, M. D., Fornasier, F. and
Mondini, C. 2012. Short term effects of bioenergy by-products on soil C and N
dynamics, nutrient availability and biochemical properties. Agric. Ecosys.
Environ. 160, Pp. 3–14.
48. Gell, K., Van Groenigen, J. W. and Cayuela, M. L. 2011. Residues of bioenergy
production chains as soil amendments: immediate and temporal phytotoxicity. J.
Hazard. Mater. 186, pp. 2017–2025.
49. Gerardi, M. H. 2003. The Microbiology of Anaerobic Digesters. Wiley, Hoboken, 89-9250. Gericke, D., Bornemann, L., Kage, H. and Pacholski, A. 2012. Modelling
ammonia losses after field application of biogas slurry in energy crop rotations.
Water Air Soil Pollut. 223, pp. 29–47.
51. Georgacakis, D., Sievers, D. M. and Ianotti, E. L. 1982. Buffer stability in manure
digesters. Agricultural Wastes, 4 (6), pp. 427- 441.
52. Gewin, V. 2010. Food. An Underground Revolution. Nature, 466: 552- 553.
53. Ginos, A., Manios. T. and Mantzavinos, D. 2006. Treatment of olive mill
effluents by coagulation– flocculation–hydrogen peroxide oxidation and effect on
phytotoxicity. Journal of Hazardous Materials, Vol. 133, Issues 1-3, Pages 135-
142.
54. Glowacka, A., Szostak, B. and Klebaniuk, R. 2020. Effect of Biogas Digestate
and Mineral Fertilization on the Soil Properties and Yield and Nutritional Value of
Switchgrass Forage. Agronomy, 10, 490.
55. Hamdi, M., Bouhamed, H. and Ellouz, R. 1991. Optimization of the fermentation
of olive mill waste-waters by Aspergillus niger. Appl, Microbiol. Biothecnol., 36,
285-288.
56. Hanackova, E., Slamka, P. and Candrakova, E. 2007. Effect of fertilization with
fermented bio-slurry on sugar beet bulbs quality and yield. Sugar and Sugar Beet
Journal, 123, pp. 162–166.
57. Hanackova, E. 2009. Agrochemical efficiency of biosludge on soil and crops. In:
Use of biosludge in the growing of field crops, pp. 39–64.
58. Hanway J. J. How a corn a plant develops. Iowa State University Cooperative
Extension Service. 1971, Special Report, no. 48 (review).
59. Hjorth, M., Christensen, K. V., Christensen, M. L. and Sommer, S. G. 2010.
Solid–liquid separation of animal slurry in theory and practice. A review. Agron.
Sustain. 30, 153–180.
60. Ioannis, S. Z. and Pilidis, G. A. 2018. Anaerobic digestion of agricultural manures
and olive mill wastewater: The effects of co-digestion in biogas production and
organic load reduction. Univ. of Ioannina, Lab. of Environ. Chemistry, 45110
Ioannina, Greece.
61. Iqbal, A., Amanullah, D. R. and Iqbal, M. 2015. Impact of potassium rates and
their application time on dry matter partitioning, biomass and harvest index of
maize (Zea mays) with and without cattle dung application. Emir. J. Food Agric.,
27: 447–453.
62. Izumi, K., Okishio, Y. K., Niwa, C., Yamamoto, S. and Toda, T. 2010. Effects of
Particle Size on Anaerobic Digestion of Food Waste. International
Biodeterioration & Biodegradation, 64, 601-608.
63. Jiang, Y., Dennehy, C., Lawlor, P. G., Hu, Z., McCabe, M. and Cormican, P.
2018. Inhibition of volatile fatty acids on methane production kinetics during dry
co-digestion of food waste and pig manure. Waste Manage. 79,Pp 302 - 311.
64. Jones, J. B. Laboratory guide for conducting soils tests and plant analysis. CRC
Press, Boca Raton Florida, USA. 2001.
65. Jonsson, O., Polman, E., Jensen, J. K., Eklund, R., Schyle, H., and Ivarsson, S.
2003. Sustainable gas enters the European gas distribution system. Danish gas
technology center.
66. Khan, S. A., Malav, L. C., Kumar, S., Malav, M. K. and Gupta, N. 2015.
Resource utilization of biogas slurry for better yield and nutritional quality of
baby corn. Advances Environ. Agric. Sci., 382-394.67. Kirchmann, H. and Lundwall, A. 1993. Relationship between N immobilization
and volatile fatty acids in soil after application of pig and cattle slurry. Biol. Fertil.
Soils, 15, 161–164.
68. Kratzeisen, M., Starcevic, N., Martinov, M., Maurer, C. and Muller, J. 2010.
Applicability of biogas digestate as solid fuel. Fuel, 89. 2544–2548.
69. Kryvoruchko, V., Machmuller, A., Bodiroza, V., Amon, B. and Amon, T. 2009.
Anaerobic digestion of by-products of sugar beet and starch potato processing.
Biomass and Bioenergy, Vol. 33, No. 4 , pp. 620-627.
70. Kole S. G. 2010. Response baby corn (Zea mays) to plant density and fertilizer
levels. Master of Sci. Agri. , Dep. Col. Uni. Dharwad.
71. Kourimska, L., Poustkova, I. and Babicka, L. 2012. The use of digestate as a
replacement of mineral fertilizers for vegetables growing. Scientia agric.
bohemica, 43 (4): 121–126.
72. Kozel, M. and Lorencowicz, E. 2015. Agricultural use of biogas digestate as a
replacement fertilizers. Agri. and Agricultural Science Procedia 7: 119 – 124.
73. Laekemariam, F. and Gidago, G. 2012. Response of maize to integrated fertilizer
in Wolaita, South Ethiopia. Advances in Life Sciences and Technology, 5: 2224-
7181.
74. Li, B. Y., Zhou, D. M., Cang, L., Zhang, H. L., Fan, X. H. and Qin, S. W. 2007.
Soil micronutrient availability to crops as affected by long-term inorganic and
organic fertilizer applications. Soil and Tillage Research, 96: 166–173.
75. Liu, F., Li, Z., Li, Q. and Wang, Z. 2009a. Effects of combined application of
biogas digestate and chemical fertilizer on the yield and quality of sweet maize.
Chinese Journal of Soil Science, 3, pp. 24–26.
76. Liu, F., Li, Z., Shengqi, S. and Wang, Z. 2009b. Effect of combined application of
biogas slurry and chemical fertilizer on yield and quality of grape. China Biogas,
4: 21–23.
77. Liu, W., Du, L. and Yang, Q. 2009c. Biogas slurry added amino acids decreased
nitrate concentrations of lettuce in sand culture. Acta Agric. Scand. Sect. B Soil
Plant Sci. 2009, 59, 260–264.
78. Li, Z., Wang, Z., Li, Q., Xu, W., Li, C. h., Liu, C. h. and Wu, G.2006. Effects of
combined application of biogas digestate and chemical fertilizer on yield and
quality of lettuce. China Biogas, 2, p: 27–30.
79. Lindsay, W. 1991. Iron oxide solubilization by organic matter and its effect on
iron availability. Kluwer Academic Publishers, pp. 29-36.
80. Loria, E. R. and Sawyer, J. E. 2005. Extractable soil phosphorus and inorganic
nitrogen following application of raw and anaerobically digested swine manure.
Agron. Journal, 97, 879–885.
81. Loria, E. R., Sawyer, J. E., Backer, D. W., Lundwall, J. P. and Lorimor, J. C.
2007. Use of anaerobically digested swine manure as a nitrogen source in corn
production. Agronomy Journal, Vol. 99, No. 4, pp. 1119-1129.
82. Losak, T., Zatloukalova, A., Szostkova, M. and Hlusek, J. 2011. Comparison of
the effectiveness of digestate and mineral fertilizers on yields and quality of
kohlrabi (Brassica oleracea L.). Acta Universitatis Agriculturae et Silviculturae
Mendelianea Brunensis, 59, 117–121.
83. Lu, J., Gavala, H. N., Skiadas, I. V., Mladenovska, Z. and Ahrin, B. K. 2008.
Improving Anaerobic Sewage Sludge Digestion by Implementation of a Hyper-
Thermophilic Prehydrolysis Step. Journal of Environmental Management, 88,
881-889.84. Mahmoud, E., Abd El-Kader, N., Robin, P., Akkal -Corfini, N. and Abd El-
Rahman, L. 2009. Effects of different organic and inorganic fertilizers on
cucumber yield and some soil properties. World Journal of Agricultural Sciences,
5: 408–414.
85. Maj Duong, T. H., Smits, M., Vestraete, W. and Carballa, M. 2011. Enhanced
Biomethanation of Kitchen Waste by Different Pretreatments. Bioresource
Technology, 102, 592-599.
86. Makadi, M., Tomocsik, A. and Orosz, V. 2012. Digestate: A New Nutrient Source
– Review. Biogas, Dr. Sunil Kumar (Ed.), ISBN: 978-953-51-0204-5, In Tech,
Available from: www.intechopen.com.
87. Makadi, M., Tomocsik, A., Orosz, V. and Marton, A. 2007. Effect of digestate
and Phylazonit MC on the yield of silage maize and the biological activity of the
soil. Agrokémia és Talajtan Vol. 56, No. 2, pp. 367-378.
88. Marcato, C. E., Mohtar, R., Revel, J. C., Pouech, P., Hafidi, M. and Guiresse, M.
2009a. Impact of anaerobic digestion on organic matter quality in pig slurry.
International Biodeterioration & Biodegradation. Vol. 63, No. 3, pp. 260-266,
ISSN 0964- 8305.
89. Marcato, C. E., Pinelli, E., Cecchi, M., Winterton, P. and Guiresse, M. 2009b.
Bioavailability of Cu and Zn in raw and anaerobically digested pig slurry.
Ecotoxicology and Environmental Safety, vol. 72 (n° 5). pp. 1538-1544.
90. Marschner, P. Mineral Nutrition of Higher Plants, 3rd ed.; Academic Press:
London, UK, 2011; pp. 135–178.
91. Mebirouk, M. 2002. Rejets des huileries. Développement d’un procédé intégré
dans la biodégradation des polyphénols dans la margine. CMPP News.
92. Merlin Christy, P., Gopinath, L. R., and Divya, D. 2014. A Review on Anaerobic
Decomposition and Enhancement of Biogas Production through Enzymes and
Microorganisms. Renewable and Sustainable Energy Reviews, 34, 167-173.
93. Moller, H., Lund, I. and Sommer, S. 2000. Solid-liquid separation of livestock
slurry: efficiency and cost. Bioresource Technology, Vol. 74, No. 3, pp. 223- 229.
94. Moller, H. B., Sommer, S. G. and Ahring, B. K. 2004. Methane productivity of
manure, straw and solid fractions of manure. Biomass Bioenergy 26: 485-495.
95. Moller, K. 2015. Effects of anaerobic digestion on soil carbon and nitrogen
turnover, N emissions, and soil biological activity. A review. Agron. Sustain. 35,
1021–1041.
96. Moller, K. and Muller, T. 2012. Effects of anaerobic digestion on digestate
nutrient availability and crop growth: A review. Eng. Life Sci. vol. 12, No. 3,
242–257.
97. Moller, K., Stinner, W. 2010. Effects of organic wastes digestion for biogas
production on mineral nutrient availability of biogas effluents. Nutr. Cycl.
Agroecosys. 87, 395–413.
98. Moller, K., Stinner, W., Deuker, A. and Leithold, G. 2008. Effects of different
manuring systems with and without biogas digestion on nitrogen cycle and crop
yield in mixed organic dairy farming systems. Nutr. Cycl. Agroecosys, 82, 209–
232.
99. Moller, K. and Stinner, W. 2009. Effects of different manuring systems with and
without biogas digestion on soil mineral nitrogen content and on gaseous nitrogen
losses (ammonia, nitrous oxides). Eur. J. Agron., 30, 1–16.
100. Morris, D. R. and Lathwell, D. J. 2004. Anaerobically digested dairy manure as
fertilizer for maize in acid and alkaline soils. Soil Sci. Plant Anal., 35, 1757–1771.101. Nafziger, E. Corn. (In) Illinois Agronomy Handbook. Department of Crop
Sciences, University of Illinois, Illinois. 2010.
102. Nevers, L., Ribeiro, R., Oliveira, R. and Alves, M. M. 2006. Enhancement of
Methane Production from Barley Waste. Biomass and Bioenergy, 30, 599-560.
103. Nyord, T., Sogaard, H. T., Hansen, M. N and Jensen, L. S. 2008. Injection
methods to reduce ammonia emission from volatile liquid fertiliser applied to
growing crops. Biosystem Engineering, Vol. 100, No. 2, pp. 235-244.
104. Odlare, M., Organic residues: a resource for arable soils. Ph.D. thesis, Swedish
University of Agricultural Sciences, Uppsala, Sweden, 2005.
105. Odlare, M., Pell, M. and Svensson, K. 2008. Changes in soil chemical and
microbiological properties during 4 years of application of various organic
residues. Waste Management, Vol. 28, No. 7, pp. 1246-1253.
106. Pages Diaz, J., Pereda Reyes, I., Lundin, M. and Sarvari Horvath, I. 2011. Co-
Digestion of Different Waste Mixtures from Agro-Industrial Activities: Kinetic
Evaluation and Synergetic Effects. Bioresource Technology, 102, 10834-10840.
107. Paavola, T. and Rintala, J. 2008. Effects of storage on characteristics and
hygienic quality of digestates from four co-digestion concepts of manure and
biowaste. Bioresource Technology, Vol. 99, No. 15 , pp. 7041-7050.
108. Paliwal, R. L. 2000. Introduction to maize and its importance. Chapter 1. Pp. 1-3.
In: Tropical Maize: Improvement and Production. R. L. Paliwal, G. Granados, H.
R. Lafitte, A. D. Violic, (eds). Food and Agriculture Organization of the United
Nations Rome.
109. PANNAR Handbook. 2013. The PANNAR Seed Handbook. Greytown, South
Africa.
110. Piatek, M. and Bartkowiak, A. 2019. Assessment of selected physicochemical
properties of soil fertilised with digestate. Water-Environ.-Rural Areas, 19, 55–66.
111. Plenet, D., Etchebest, S. Mollier, A. and Pellerin, S. 2000. Growth analysis of
maize field crops under phosphorus deficiency. I. Leaf growth. Plant Soil.
223:117–130.
112. Pospisil, R and Bitter, J. 2001. Effect of the use of digested sludge to biogas
production on soil fertility. Nase pole, 10, pp. 35–37.
113. Pospisil, R. and Mitruskova, M. 2009. Measurement of soil moisture after
biosludge application in crops of cultivated plants. In: Use of biosludge in the
growing of field crops, pp. 71–75. Nitra, Slovak Republic, SPU.
114. Potsch, E. M. Nutrient content of fermentation residues from agricultural biogas
systems and their utilization on permanent grassland. Final report, 2005, pp. 32.
115. Rahman, S.M.E.; M.A. Islam; and Oh. DH. Rahman (2008). Effect of cattle
slurry on growth, biomass yield and chemical composition of maize fodder.
Asian-Aust. J. Anim. Sci., 21: 1592-1598.
116. Rajcan, I. and M. Tollenaar. 1999. Source: sink ratio and leaf senescence in
maize: I. Dry matter accumulation and partitioning during grain filling. Field
Crops Research, 60: 245-253.
117. Ranalli, A. 1991. The effluent from olive mills: Proposals for re-use and
purification with reference to Italian legislation. Olivae, 37, 30-39.
118. Rhodes, D. Vegetable Crops, Corn Notes. Department of Horticulture &
Landscape Architecture, Purdue University, USA, 2006.
119. Roger, E. and Lori, A. 2006. To be determined: Ear row numbers and kernels per
row in corn, Department of Agronomy, Integrated Crop Management, Iowa State
University, IC-496(13) Issue, 151-152.120. Rubio J. A., Romero L. I., Wilkie A. C. and García-Morales J. L. 2019.
Mesophilic Anaerobic Co-digestion of Olive-Mill Waste With Cattle Manure:
Effects of Mixture Ratio. Front. Sustain. Food Syst. 3:9.
121. Rubaek, G. H., Henriksen, K. Petersen, J. Rasmuseen, B. and Sommer, S.G.
1996. Effects of application technique and anaerobic digestion on gaseous
nitrogen loss from animal slurry applied to ryegrass (Lolium perenne). J. Agric .
Sci., 126: 481 -492.
122. Rutkowska, B., Szulc, W., Sosulski, T., and Stepien, W. 2014. Soil micronutrient
availability to crops affected by long-term inorganic and organic fertilizer
applications. Plant Soil Environ. Vol. 60, No. 5: 198–203
123. Saez, L., Perez, J. and Martinez, J. 1992. Low Molecular weight Phenolics
Attenuation during Simulated Treatment of Wastewater from Olive Oil Mills in
Evaporation Ponds. Wat. Res., 26, 1261-1266.
124. Satterthwaite, D., Mc Granahan, G. and Tacoli, C. 2010. Dimensions of global
population projections: what do we know about future population trends and
structures? Philosophical Transactions of Royal Society. B, Biological Sciences.
365, 2809- 2820.
125. Schnurer, A. and Jarvis, A. 2009. Microbiological Handbook for Biogas Plant.
Swedish Waste Management, Swedish Gas Centre, Malmo, 1-74.
126. Seleiman, M. F., Selim, S., Jaakkola, S., and Makela, P. S. A. 2017 Chemical
composition and in vitro digestibility of whole-crop maize fertilized with synthetic
fertilizer or digestate and harvested at two maturity stages in Boreal growing
conditions. Agric. Food Sci. 2017, 26, 47–55.
127. Sharifi, R. S. and hizaden, T. 2009. Response of maize (Zea mays L.) cultivars of
different levels of nitrogen fertilizer . J. of food Agri. Env., 7(3-4): 518-521.
128. Sheikh Ismail Zada, M. N., El-Kadry, S. and Dabbit, O. 2004. Treatment of olive
mill waste water intended to use for soil irrigation. R. J. of Aleppo Univ. Sciences
Series, 42.
129. Simon, T., Kunzova, E. and Friedlova, M. 2015. The effect of digestate, cattle
slurry and mineral fertilization on the winter wheat yield and soil quality
parameters. Plant Soil Environ. Vol. 61, No. 11, pp. 522-527.
130. Smith, J., Abegaz, A., Matthews, R. B., Subedi, M., Orskov, E. R.; Tumwesige,
V. and Smith, P. 2014. What is the potential for biogas digesters to improve soil
carbon sequestration in Sub-Saharan Africa? Comparison with other uses of
organic residues. Biomass Bioenergy, 70, 73–86.
131. Spencer, J. L. and Guan, J. 2004. Public health implications related to spread of
pathogens in manure from livestock and poultry operations. Methods Mol. Biol.
268, 503–515.
132. Sogn, T. A., Dragicevic, I., Linjordet, R., Krogstad, T., Eijsink, V. G. H. and
Eich-Greatorex, S. 2018. Recycling of biogas digestates in plant production: NPK
fertilizer value and risk of leaching. Recycl. Org. Waste Agric., 7, 49–58.
133. Stinner, W., Moller, K. and Leithold, G. 2008. Effect of biogas digestion of
clover/grass-leys, cover crops and crop residues on nitrogen cycle and crop yield
in organic stockless farming system. Euro J. of Agro, Vol. 29, No. 2-3, pp. 125-
134.
134. Subedi, K. D. and Ma. B. L. 2005. Nitrogen uptake and partitioning in stay green
and leafy maize hybrids. Crop Science, 45: 740-747.
135. Szucs, B., Simon, M. and Füleky, G. 2006. Anaerobic pre-treatment effects on
the aerobic degradability of waste water sludge. Proceedings of the International
Conference ORBIT 2006, Weimar, 13-15 September, Part 2, pp. 425-434.136. Tambone, F., Genevini, P., D_Imporzano, G. and Adani, F. 2009. Assessing
amendment properties of digestate by studying the organic matter composition
and the degree of biological stability during the anaerobic digestion of the organic
fraction of MSW. Bioresource Technology, Vol. 100, No. 12, pp. 3140–3142.
137. Thurman E. M. Organic geochemistry of natural waters. Martinus Nijhoff Dr W.
Junk Publishers, Dordrecht, 1985, 497 p.
138. Vago, I., Katia, J., Makadi, M. and Balla, Kovacs, A. 2009. Effects of biogas
fermentation residues on the easily soluble macro- and microelement content of
soil. Trace elements in the food chain. Vol. 3. Deficiency or excess of trace
elements in the environment as a risk of health. Pp. 252-256.
139. Vasinka, M. and Badalikova, B. 2019. Changes in soil properties due to
application of Digestate. International Scientific Journal, Year LXV, Issue 4, pp.
129-131.
140. Vlyssides, A. G., Loizidou, M. and Zorpas, A. A. 1999. Characteristics of solid
residues from olive oil processing as bulking material for co- composting with
industrial wastewaters. Journal of Environmental Science and Health-Part A
Toxic/Hazardous Substances and Environmental Engineering, 34(3): 737–748.
141. Wang, Y., Zhang, Y., Wang, J., and Meng, L. 2009. Effects of volatile fatty acid
concentrations on methane yield and methanogenic bacteria. Biomass Bioenergy
33, 848–853.
142. Wilkie, A. C. 2008. Biomethane from biomass, biowaste and biofuels. in
Bioenergy, eds J.D. Wall, C. S. Harwood, and A. Demain (Washington, DC:
American Society for Microbiology Press), 195–205.
143. Wilkie, A. C., Castro, H. F., Cubinski, K. R., Owens, J. M., and Yan, S. C. 2004.
Fixed-film anaerobic digestion of flushed dairy manure after primary treatment:
wastewater production and characterization. Biosyst. Eng. 89, 457–471.
144. WRAP. DC-Agri, Field Experiments for Quality Digestate and Compost in
Agriculture—WP1 Report. Available online: www.wrapni.org.uk.
145. Yadvika, S., Sreekrishnan, T. R., Kholi, S. and Rana, V. 2004. Enhancement of
Biogas Production from Solid Substrates Using Different Techniques- A Review.
Bioresource Technology, 95, 1-100.
146. Yen, H. W. and Brune, D. E. 2007. Anaerobic Co-Digestion of Algal Sludge and
Waste Paper to Produce Methane. Bioresource Technology, 98, 130-134.
147. You, L., Yu, S., Liu, H., Wang, C., Zhou, Z., Zhang, L., and Hu, D. 2019.
Effects of biogas slurry fertilization on fruit economic traits and soil nutrients of
Camellia oleifera Abel. PloS one. Vol. 14, No. 5, pp., 208-289.
148. Yu, F., Luo, X., Song, C., Zhang, M. and Shan, S. 2010. Concentrated biogas
slurry enhanced soil fertility and tomato quality. Acta Agric. Scand. Sect. B Soil
Plant Sci., 60, 262–268.
149. Zenjari, B., Hajjouji El, H., Baddi Ait, G., Bailly R -J, Revel, C. J., Nejmeddine
A. and Hafidi M. 2006. Eliminating toxic compounds by composting olive mill
wastewater–straw mixtures. Journal of Hazardous Materials, Vol. 138, Issue 3, Pp.
433-437.
150. Zhang, J., Mauzerall, D. L., Zhu, T., Liang, S., Ezzah, M. and Remais, J. V.
2010. Environmental Health in China: Progress towards Clean Air and Safe
Water. Lancet, 375, 1110-1119.
151. Zorpas, A. and Costa, N. C. 2010. Combination of Fenton oxidation and
composting for the treatment of the olive solid residue and the olive mile
wastewater from the olive oil industry in Cyprus. Bioresource Technology, Vol.
101, No. 20, Pp. 7984-7987.