






Vol.3 , No. 3, Publication Date: Oct. 11, 2016, Page: 52-67
[1] | М. Lyubenova, Department Ecology and EP, University of Sofia, Faculty of Biology, 8 D. Tzankov Blvd., Sofia. |
[2] | М. Grozeva, Forest Ecology Department, Forest Research Institute-BAS, 132 Kl. Ohridski, Sofia, Bulgaria. |
[3] | N. Georgieva, Department Ecology and EP, University of Sofia, Faculty of Biology, 8 D. Tzankov Blvd., Sofia. |
[4] | М. Zhiyanski, Forest Ecology Department, Forest Research Institute-BAS, 132 Kl. Ohridski, Sofia, Bulgaria. |
[5] | A. Asenov, Department Ecology and EP, University of Sofia, Faculty of Biology, 8 D. Tzankov Blvd., Sofia. |
The urban territories cause an enormous ecological footprint, affecting resources and biodiversity far beyond the cities boundaries. The urban revitalization therefore involves creation of habitat classification and methods developing for their assessment and optimization to supply services within the cities. The main aim of research is to demonstrate a model for the urban territory assets and services assessment. The indicators used are: water-physical properties of soil, dynamics of soil water supply, spectrums of biological types, life forms and floral elements, phenology, primary production and its quality – biomass fractions participation, nitrogen and crude protein content. The object relates to the J6 habitats sub-group by EUNIS habitat classification. Two experimental variants - fertilized and non-fertilized maize culture (variety Kneja – 509) are used. The obtained results show decreasing of Vertisols water capacity, its monthly dynamics, weed species richness and biological competition at fertilization, which reflects on the water supply and water potential. The biological spectrum is dominated by the perennial plants, the life spectrum – by the hemicryptophytes and terrophytes and the geoelements spectrum - by Euro-Asian and synantropic species (mainly apophytes). The rapid vegetative phase of maize onset, the differences in the sub-stages participation and a month earlier onset of weeds flowering are observed at fertilization. The duration and extent of mass occurrence of phenophases vary specifically for each weed species. The reported average production increases, respectively 1.8 and 1.3 times for maize and weeds at fertilization. The biomass structure is also changed at fertilization - the maize aboveground and the weeds belowground biomass increase compared to non-fertilized plot and vice versa, perhaps due to the weeds striving to capture the mineral elements better than the culture do. The changes of weeds dominant structure are also been observed. The estimated amount of nitrogen in the total production of maize decreases, while this of crude protein increases at fertilization. The indicators and indexes considered in the conducted model study are very sensitive to the cultivation practices and to the variation in the environmental factors. In the same time they are important characteristics of ecosystem functioning and they are widely used in the scientific investigations. However, their development as a complex application for the assessment of assets, capacity and potential of ecosystem services supplied from urban habitats is the originality of the study. They can also be applied to the urban habitats modeling and monitoring.
Keywords
J6 Habitat Sub-group, Plant Complex, Maize Culture, Dynamics of Soil Water Reserves, Phenology, Primary Production, Nitrogen and Crude Protein, Ecosystem Assets and Services
Reference
[01] | Intergovernmental Platform for Biodiversity and Ecosystem services, IPBES, http://www.ipbes.net/ |
[02] | Experimental Ecosystem Accounting. Technical Recommendations. UN-SEEA SEEA, DEPARTMENT OF ECONOMIC AND SOCIAL AFFAIRS STATISTICS DIVISION UNITED NATIONS, 2016. seea@un.org. |
[03] | Bagstad et al. 2014. From theoretical to actual ecosystem services: mapping beneficiaries and spatial flows in ecosystem services assessments. Ecological Services, 19: 64. |
[04] | Schröter M., Barton D., Remme R., Hein L. 2014 Accounting for capacity and flow of ecosystem services: A conceptual model and a case study for Telemark, Norway. Ecological Indicators 36: 539-551. |
[05] | Obst C., Hein L., Edens B. 2015. National accounting and the valuation of ecosystem assets and their services. Environmental and Resource Economics. DOI 10.1007/s10640-015-99211. |
[06] | European Economic Area, 2006, 2009 www.efta.int/eea |
[07] | http://www.eea.europa.eu/publications/10-messages-for-2010 |
[08] | Ian Douglas I., Goode D., Houck M., Wang R. 2011. Handbook of Urban Ecology. Taylor&Francis Group, 624. |
[09] | Zyankina E., Olga G. Baranova O. 2014. Classification of urban habitats of towns of the Udmurt Republic (Russia), 105–107. DOI 0.15414/2014.9788055212623. |
[10] | Nedkov, S. 2016. Ecosystem services in urban areas. Conference TUNESinURB. Sofia, 28 January 2016. |
[11] | Jiangbo Han J., Zhou Z. 2013. Dynamics of Soil Water Evaporation during Soil Drying: Laboratory Experiment and Numerical Analysis. Scientific World Journal, ID 240280, 10 p. http://dx.doi.org/10.1155/2013/240280 |
[12] | Shafiee A., Berglund, M., Arumugam, S. 2014. An Agent-Based Modeling Approach to Simulate the Dynamics of Water Supply and Water Demand. World Environmental and Water Resources Congress, 2014, 1806-1811. doi: 10.1061/9780784413548.179. |
[13] | Oliveira, W. 2016. Soil water energetic status and cowpea beans irrigated with saline water. Journal of Agricultural Engineering and the Environment, vol. 20 no. 8, ISSN 1807-1929, http://dx.doi.org/10.1590/1807-1929/agriambi.v20n8p685-691 |
[14] | Tsimba, R., Edmeades G., Millnerc J., Kemp P. 2013. The effect of planting date on maize: Phenology, thermal time durations and growth rates in a cool temperate climate. Field Crops Research, v. 150, 145–155. |
[15] | Khalid A. 2015. Phenology, Growth and Biomass Yield Response of Maize (Zea mays L.) to Integrated Use of Animal Manures and Phosphorus Application With and Without Phosphate Solubilizing Bacteria. J Microb Biochem Technol, 7, 439-444. doi: 10.4172/1948-5948.1000251. |
[16] | European nature information system, EUNIS http://eunis.eea.europa.eu/habitats.jsp |
[17] | Zhiyanski, M. et al. 2015. Methodology for assessment and mapping of urban ecosystems, their state and the services that they provide in Bulgaria. Draft for stakeholder review and comments. |
[18] | Velev St., Yordanova M., Drenovski I. 2002. A new scheme for physical-geographical regionalization of Bulgaria. In: Geography of Bulgaria. Physical geography. Socio-economic geography. ForKom Publisher, Sofia, 388-389. (in Bulgarian). |
[19] | Velev St. 2002. Climatic zoning.- In: Geography of Bulgaria. Physical geography. Socio-economic geography. ForKom Publisher, Sofia, 155-157. (in Bulgarian). |
[20] | Ninov N. 2002. Soil-geographical zoning. In: Geography of Bulgaria. Physical geography. Socio-economic geography. ForKom Publisher, Sofia, 300-303. (in Bulgarian). |
[21] | Bondev I. 2002. Geo-botanical zoning.- In: Geography of Bulgaria. Physical geography. Socio-economic geography. ForKom Publisher, Sofia, 336-352. (in Bulgarian). |
[22] | Donov C. 1993. Forest Soil Science. Martilen, Sofia, 436. (in Bulgarian). |
[23] | Donov V., Gencheva S., Yorova K. 1974. Manual for exercises in forest soil science. Zemizdat, Sofia, 218. (in Bulgarian). |
[24] | Radkov I. 1970. Ecological bases of forestry. Zemizdat, Sofia, 48. (in Bulgarian). |
[25] | World reference base for soil resources. 2006. A framework for international classification, correlation and communication. Rome, 128. |
[26] | Christov I. 2004. Evaluation of the water status of agroecosystems and formation of water supply in the soil. Pablish Seth Sai-Eco", Sofia, 185. (in Bulgarian). |
[27] | Christov, I. 2008. Management of Agroecosystem Water Status. Part 4. Relationships among Soil Moisture Energy Level, Soil Water Properties and Biological Features of Crop. – Journal of Balkan Ecology, v. 11, No. 4. |
[28] | Delipavlov D., I. Cheshmedzhiev (eds). 2003. Handbook to the vascular plants in Bulgaria, Plovdiv, Acad. Press of Agricult. Univ., 591. (in Bulgarian). |
[29] | Drake J. (ed.). Handbook of alien species in Europe. 2009. Springer science + Business Media B. V, 399. |
[30] | Petrova, A., V. Vladimirov, V. Georgiev. 2012. Invasive alien plants in Bulgaria. Institute of Biodiversity and Ecosystem Research, BAS, Sofia, 319. |
[31] | International Organization for Plant Information, Provisional Global Plant Checklist http://bgbm3.bgbm.fu-berlin.de/iopi/gpc/default.asp |
[32] | Tomov N. 1997. Maize. "Prof. M. Drinov"Acad. Press, Sofia, 257. (in Bulgarian). |
[33] | Lyubenova, М. 2004. Phytoecology. "Prof. M. Drinov"Акаd. Press, Sofia, 574 p. (in Bulgarian). |
[34] | Lyubenova M. 2009a. Community functioning. An-Di, Sofia, 368. (in Bulgarian). |
[35] | Lyubenova M. 2009b. Manual of community functioning. An-Di, Sofia, 209. (in Bulgarian). |
[36] | Legendre, L. 1995. Numerical Ecology. Elsevier Scientific Publishing Company, Amsterdam--Oxford -New York. |