Библиометрический анализ публикаций о засолении почв в Центральной Азии за 2000–2022 гг. с акцентом на дренаж
https://doi.org/10.19047/0136-1694-2025-123-273-299
Аннотация
Засоление почв является серьезным бедствием во многих засушливых и сельскохозяйственных регионах, особенно в Центральной Азии. Экстенсивное экономическое воздействие засоления почв на национальную экономику стран Центральной Азии весьма значительно. Для решения этой проблемы большое значение имеют три системы: дренажная система, качественное выравнивание (планирование) земель и мероприятия по промывке почв от солей. Целью данного исследования является обзор опубликованных статей по вопросу сроков засоления почв в регионах Центральной Азии с 2000 по 2022 гг. В соответствии с этой целью авторами была собрана, рассмотрена и проанализирована 661 публикация, отвечающая критериям отбора, в базе данных Scopus за период 2000–2022 гг. Библиометрический анализ показал, что все статьи были опубликованы на английском языке, а наибольшее количество публикаций приходится на Узбекистан, Казахстан, Германию, Китай, Российскую Федерацию и США. Библиометрический анализ также показал, что для расширения научного обмена по данной теме необходимы международные исследования по засолению почв и дренажу, а также были бы полезны долгосрочные, непрерывные исследования и концепции использования засоленных почв для устойчивого развития будущей сельскохозяйственной деятельности и управления засолением почв.
Об авторах
З. КанназароваУзбекистан
М. Джулиев
Узбекистан
А. Муратов
Узбекистан
К. Астанакулов
Узбекистан
К. Шавазов
Узбекистан
Список литературы
1. Abduraimova D., Ibragimova Z., Otakhonov M. et al., Deformation processes in open drainages, E3S Web Conf., 2021, Vol. 264, 03010.
2. Aimbetov I., Bekimbetov R., Engineering and geoecological assessment of soils salinity in Nukus using GIS technologies, E3S Web Conf., 2021, Vol. 265, 03006.
3. Ayars J.E., Christen E.W., Hornbuckle J.W., Controlled drainage for improved water management in arid regions irrigated agriculture, Agricultural Water Management, 2006, Vol. 86, pp. 128–139.
4. Balla D., Omar M., Maassen S. et al., Efficiency of duckweed (Lemnaceae) for the desalination and treatment of agricultural drainage water in detention reservoirs., 2014, pp. 423–440.
5. Begmatov I., Matyakubov B., Akhmatov D. et al., Analysis of saline land and determination of the level of salinity of irrigated lands with use of the geographic information system technologies, ICIGIS, 2020, Vol. 26, pp. 309–316.
6. Bezak N., Mikoš M., Borrelli P. et al., Soil erosion modelling: A bibliometric analysis, Environmental Research, 2021, Vol. 197, 111087.
7. Bezborodov G.A., Shadmanov D.K., Mirhashimov R.T. et al., Mulching and water quality effects on soil salinity and sodicity dynamics and cotton productivity in Central Asia, Agriculture, Ecosystems & Environment, 2010a, Vol. 138, pp. 95–102.
8. Bezborodov G.A., Shadmanov D.K., Mirhashimov R.T. et al., Mulching and water quality effects on soil salinity and sodicity dynamics and cotton productivity in Central Asia, Agriculture, Ecosystems & Environment, 2010b, Vol. 138, pp. 95–102.
9. Çakir R., Waterlogging and Soil Salinity Problems under Conditions of Arid Environment, 2020, pp. 1-8.
10. Charzyński P., Urbańska M., Franco Capra G. et al., A global perspective on soil science education at third educational level; knowledge, practice, skills and challenges, Geoderma, 2022, Vol. 425, 116053.
11. di Santo N., Russo I., Sisto R., Climate Change and Natural Resource Scarcity: A Literature Review on Dry Farming, Land, 2022, Vol. 11, 2102.
12. Drovovozova T.I., Mariach S.A., Panenko N.N., Technical solutions for cleaning drainage water from irrigated areas, IOP Conf. Ser.: Earth Environ. Sci., 2021, Vol. 677, 042094.
13. Duan Y., Ma L., Abuduwaili J. et al., Driving factor identification for the spatial distribution of soil salinity in the irrigation area of the Syr Darya River, Kazakhstan, Agronomy, 2022, Vol. 12, 1912.
14. Egamberdieva D., Alleviation of salt stress by plant growth regulators and IAA producing bacteria in wheat, Acta Physiol. Plant, 2009, Vol. 31, pp. 861–864.
15. Egamberdieva D., Hashem A., Abd-Allah E.F., Biological control of fungal disease by rhizobacteria under saline soil conditions, 2014, pp. 161–172.
16. Egamberdieva D., Kamilova F., Validov S. et al., High incidence of plant growth-stimulating bacteria associated with the rhizosphere of wheat grown on salinated soil in Uzbekistan, Environ. Microbiol., 2007, Vol.10(1), pp. 1–9.
17. Egamberdieva D., Kucharova Z., Selection for root colonising bacteria stimulating wheat growth in saline soils, Biol. Fertil. Soils, 2009, Vol. 45, pp. 563–571.
18. Egamberdieva D., Renella G., Wirth S. et al., Secondary salinity effects on soil microbial biomass, Biol. Fertil. Soils, 2010, Vol. 46, pp. 445–449.
19. Egamberdieva D., Wirth S., Bellingrath-Kimura S.D. et al., Salt-tolerant plant growth promoting rhizobacteria for enhancing crop productivity of saline soils, Front. Microbiol., 2019, Vol. 10, 2791.
20. Egamberdieva D., Wirth S.J., Shurigin V.V. et al., Endophytic bacteria improve plant growth, symbiotic performance of chickpea (Cicer arietinum L.) and induce suppression of root rot caused by Fusarium solani under salt stress, Front. Microbiol., 2017, Vol. 8, 1887.
21. Elhaj M., Hashan M., Hossain M.E., A critical review and future trend on relative permeability hysteresis, 2018,
22. Forkutsa I., Sommer R., Shirokova Y.I. et al., Modeling irrigated cotton with shallow groundwater in the Aral Sea Basin of Uzbekistan: II, Soil salinity dynamics, Irrig. Sci., 2009, Vol. 27, pp. 319–330.
23. Gafurova L., Juliev M., Soil degradation problems and foreseen solutions in Uzbekistan, In: Regenerative Agriculture, 2021, pp. 59–67.
24. Gao J., Faheem M., Yu X., Global research on contaminated soil remediation: A bibliometric network analysis, Land, 2022, Vol. 11, 1581.
25. Ghasemi M., Shafiei A., Foroozesh J., A systematic and critical review of application of molecular dynamics simulation in low salinity water injection, Advances in Colloid and Interface Science, 2022, Vol. 300, 102594.
26. Ibrakhimov M., Martius C., Lamers J.P.A. et al., The dynamics of groundwater table and salinity over 17 years in Khorezm, Agricultural Water Management, 2011, Vol. 101, pp. 52–61.
27. Iovcheva A.D., Semenkov I.N., Assessment of the barrier function of Chernozem and Luvisol under their experimental contamination by copper ions, Dokuchaev Soil Bulletin, 2023, Vol. 116, pp. 76–108, DOI: https://doi.org/10.19047/0136-1694-2023-116-76-108.
28. Ivushkin K., Bartholomeus H., Bregt A.K. et al., Global mapping of soil salinity change, Remote Sensing of Environment, 2019b, Vol. 231, 111260.
29. Jalankuzov T., Suleimenov B., Busscher W.J. et al., Irrigated cotton grown on sierozem soils in South Kazakhstan, Communications in Soil Science and Plant Analysis, 2013, Vol. 44, pp. 3391–3399.
30. Juliev M., Gafurova L., Ergasheva O. et al., Land Degradation Issues in Uzbekistan, In: Environmental Degradation in Asia, 2022, pp. 163–176.
31. Kannazarova Z., Balabanov V.I., Lee A., Advanced method for cleaning horizontal closed drainage, Prirodoobustrojstvo, 2021, pp. 36–40.
32. Karimov A.Kh., Šimůnek J., Hanjra M.A. et al., Effects of the shallow water table on water use of winter wheat and ecosystem health: Implications for unlocking the potential of groundwater in the Fergana Valley (Central Asia), Agricultural Water Management, 2014, Vol. 131, pp. 57–69.
33. Kannazarova Z., Juliev M., et al., Groundwater in the commonwealth of independent states: A bibliometric analysis of scopus-based papers from 1972 to 2023, emphasizing the significance of drainage, Groundwater for Sustainable Development, 2024, Vol. 25, pp. 101083.
34. Kannazarova Z., Juliev M. et al., Drainage in irrigated agriculture: Bibliometric analysis for the period of 2017–2021, Agricultural Water Management, 2024, Vol. 305, pp. 109118.
35. Khasanov S., Juliev M., Uzbekov U. et al., Landslides in Central Asia: a review of papers published in 2000–2020 with a particular focus on the importance of GIS and remote sensing techniques, GeoScape, 2021, Vol. 15, pp. 134–145.
36. Khasanov S., Li F., Kulmatov R. et al., Evaluation of the perennial spatio-temporal changes in the groundwater level and mineralization, and soil salinity in irrigated lands of arid zone: as an example of Syrdarya Province, Uzbekistan, Agricultural Water Management, 2022, Vol. 263, 107444.
37. Kulagin V. et al., Groundwater hydro chemical regime and soil salinity under long-term operation on Tasotkel irrigated and drained lands of Zhambyl region, Series of geology and technical sciences, 2019, Vol. 2, № 434, pp. 102–113.
38. Laiskhanov S.U., Smanov Z.M., Kaimuldinova K.D. et al., A study of the effects of soil salinity on the growth and development of maize (Zea Mays L.) by using Sentinel-2 Imagery, OnLine Journal of Biological Sciences, 2022, Vol. 22, pp. 323–332.
39. Land resources and food security of Central Asia and Southern Caucasus n.d.; 2016, pp. 1–394.
40. Li S., He Z., Zhu P. et al., Experimental study on the triaxial compression properties of coarse-grained filling soil under drying–wetting cycles, Geofluids, 2022, pp. 1–14.
41. Liu W., Ma L., Smanov Z. et al., Clarifying soil texture and salinity using local spatial statistics (Getis-Ord Gi* and Moran’s I.) in Kazakh–Uzbekistan Border Area, Central Asia, Agronomy, 2022, Vol. 12, 332.
42. Makhkamova D., Gafurova L., Nabieva G. et al., Integral indicators of the ecological and biological state of soils in Jizzakh steppe, Uzbekistan, IOP Conf. Ser.: Earth Environ. Sci., 2022, Vol. 1068, 012019.
43. Mardieva D. et al., A Bibliometric Review: Interventions for Enhancing Speaking Skills in non-English-Speaking Contexts, XL, 2024, Vol. 17, No. 4, pp. 195–224.
44. Mutalov A. et al., Comprehensive strategies for managing stored grains: Tackling insect infestation and quality loss: A review, Journal of Stored Products Research, 2025, Vol. 112, pp. 102624.
45. Qadir M., Noble A.D., Qureshi A.S. et al., Salt-induced land and water degradation in the Aral Sea basin: A challenge to sustainable agriculture in Central Asia, Natural Resources Forum, 2009, Vol. 33, pp. 134–149.
46. Ravshanov N., Khurramov I., Aminov S.M., Mathematical modeling of the process of water-soline transport in soils, J. Phys.: Conf. Ser., 2019, Vol. 1210, 012118.
47. Romanovskaya A.Yu., Savin I.Yu., Modern techniques for monitoring wind soil erosion, Dokuchaev Soil Bulletin, 2020, Vol. 104, pp. 110–157, DOI: https://doi.org/10.19047/0136-1694-2020-104-110-157.
48. Ruziyev I.M., Yusupov G.U., Djalilova G.T. et al., Development of geographic information system (GIS) to change the level of soil salinity in Syrdarya region, 2022, pp. 1-9.
49. Salimzoda A.F., Mahmadyorzoda U.M., Boimurodov R.B. et al., The salinization problems and soil hydromorphism as components of land desertification, irrigated zone of Tajikistan and the liquidation ways of them, E3S Web Conf., 2021, Vol. 254, 05008.
50. Shirokova Y., Use of electrical conductivity instead of soluble salts for soil salinity monitoring in Central Asia, Irrigation and Drainage Systems, 2000, Vol. 14, pp. 199–206.
51. Sommer R., Glazirina M., Yuldashev T. et al., Impact of climate change on wheat productivity in Central Asia, Agriculture, Ecosystems & Environment, 2013, Vol. 178, pp. 78–99.
52. Syshchykov D.V., Berezovskiy A.S., Agurova I.V. The influence of degradation processes on enzymatic activity and the content of forms of mineral nitrogen in agricultural soils, Dokuchaev Soil Bulletin, 2024, Vol. 121, pp. 28–46. DOI: https://doi.org/10.19047/0136-1694-2024-121-28-46.
53. Turdaliev A.T., Yo Darmonov D., Teshaboyev N.I. et al., Influence of irrigation with salty water on the composition of absorbed bases of hydromorphic structure of soil, IOP Conf. Ser.: Earth Environ. Sci., 2022, Vol. 1068, 012047.
54. Ullrich S.M., Tanton T.W., Abdrashitova S.A., Mercury in the aquatic environment: A Review of Factors Affecting Methylation, Critical Reviews in Environmental Science and Technology, 2001, Vol. 31, pp. 241–293.
55. Usmanova R.M., Aral Sea and sustainable development, Water Science and Technology, 2003, Vol. 47, pp. 41–47.
56. van der Zee S.E.A.T.M., Stofberg S.F., Yang X. et al., Irrigation and Drainage in Agriculture: A Salinity and Environmental Perspective, In: Current Perspective on Irrigation and Drainage, 2017.
57. Ventura Y., Wuddineh W.A., Myrzabayeva M. et al., Effect of seawater concentration on the productivity and nutritional value of annual Salicornia and perennial Sarcocornia halophytes as leafy vegetable crops, Scientia Horticulturae, 2011, Vol. 128, pp. 189–196.
58. Xaliqulov M. et al. Root harvester machine: a review of papers from the Scopus database published in English for the period of 1982-2022, E3S Web of Conf., ed. Tanaino I., Dzholdosheva T, 2023, Vol. 402, pp. 10010.
59. Zhang G., Xie S., Ho Y.-S., A bibliometric analysis of world volatile organic compounds research trends, Scientometrics, 2010, Vol. 83, pp. 477–492.
Рецензия
Для цитирования:
Канназарова З., Джулиев М., Муратов А., Астанакулов К., Шавазов К. Библиометрический анализ публикаций о засолении почв в Центральной Азии за 2000–2022 гг. с акцентом на дренаж. Бюллетень Почвенного института имени В.В. Докучаева. 2025;(123):273-299. https://doi.org/10.19047/0136-1694-2025-123-273-299
For citation:
Kannazarova Z., Juliev M., Muratov A., Astanakulov K., Shavazov K. Bibliometric analysis of publications about soil salinity in Central Asia during 2000–2022 with a special look at the importance of drainage. Dokuchaev Soil Bulletin. 2025;(123):273-299. https://doi.org/10.19047/0136-1694-2025-123-273-299