GULLY MODELING FOR FOREST RECLAMATION PURPOSES
- Land Reclamation, Recultivation, and Land Protection
Purpose: to develop methodological approaches that allow assessing the mobility level of reclamation pumping stations operating in conjunction with sprinklers through a closed pressure network.
Materials and methods. Logical techniques: analysis, synthesis, comparison, abstraction and generalization were used as methodological approaches. To achieve this goal, classification methods were used, namely, when classifying indicators characterizing a mobile pumping station and mobility levels, the Harrington desirability function (as a universal evaluation method) was used.
Results. When developing a methodology for assessing the mobility level of reclamation pumping stations, the following tasks were solved: the formation of a conceptual apparatus in the form of a definition that allows limiting the area of assessment; determination of the composition of the compared mobility indicators and intervals of their quantitative values; development of a classification of mobility levels of pumping stations and linking it to the Harrington scale intervals; obtaining an equation for converting real values into private parameters; the product of the calculation of desirability d from private values and the generalized coefficient of desirability D; determination of the mobility level of the reclamation pumping station. The proposed method was tested on the example of a pumping station with given parameters. As a result of the procedures performed, a generalized coefficient of desirability D = 0.92 was obtained, which corresponds to the assessment “Very good level of mobility”.
Conclusions. The proposed methodology for assessing the mobility level can be used both when improving reclamation pumping stations, and when choosing commercially available pumping stations by agricultural producers, taking into account specific operating conditions. If necessary, the methodology for assessing the mobility level can be adjusted, in particular, changing the number of estimated indicators, as well as their value intervals.
doi: 10.31774/2712-9357-2022-12-2-68-83
mobility level, assessment, reclamation pumping station, classification, Harrington's desirability function
Voyevodin O. V., Kirilenko A. A. Methodology for assessing the mobility level of reclamation pumping stations. Land Reclamation and Hydraulic Engineering. 2022;12(2):68–83. (In Russ.). https://doi.org/10.31774/2712-9357-2022-12-2-68-83.
1. Almaev R.A., Kavelin N.Yu., Aibashev A.R., 2014. Razrabotka konstruktsii nasosnoy stantsii Baymakskoy orositel'noy sistemy [Development of the design of the pumping station of the Baymak irrigation system]. Sovremennye tekhnologii sel'skokhozyaystvennogo proizvodstva i prioritetnye napravleniya razvitiya agrarnoy nauki: materialy mezhdunarodnoy nauchno-prakticheskoy konferentsii, pos. Persianovskiy [Current Technologies of Agricultural Production and Priority Areas for the Development of Agricultural Science: Proc. of the International Scientific-Practical Conference]. Persianovsky, Don State Agrarian University, pp. 3-6. (In Russian).
2. Paraskun M.E., Karadayan L.I., Chuburkov V.V., 2021. Ekspluatatsiya peredvizhnykh nasosnykh stantsiy [Operation of mobile pumping stations]. Kontseptsii, teoriya i metodika fundamental'nykh i prikladnykh nauchnykh issledovaniy: sbornik statey po itogam mezhdunarodnoy nauchno-prakticheskoy konferentsii [Concepts, Theory and Methods of Fundamental and Applied Scientific Research: Proc. of the International Scientific-Practical Conference]. Sterlitamak, Agency for International Research, pp. 242-244. (In Russian).
3. Zhang K., Shi J., 2021. Pulsation simulation and energy consumption analysis of series pump valve cooperative control hydraulic system. International Journal of Fluid Power, vol. 22, iss. 3, pp. 409-424, https:doi.org/10.13052/ijfp1439-9776.2236.
4. Larsson L.V., Lejonberg R., Ericson L., 2022. Optimization of a pump-controlled hydraulic system using digital displacement pumps. International Journal of Fluid Power, vol. 23, iss. 1, pp. 53-78, DOI: 10.13052/ijfp1439-9776.2313.
5. Olgarenko G.V., 2017. Itogi i perspektivy nauchnykh issledovaniy i opytno-konstruktorskikh razrabotok FGBNU VNII “Raduga” (50 let nauchno-proizvodstvennoy deyatel'nosti) [Results and future trends of scientific research and experimental design projects of Federal State Budgetary Institution All-Russian Research Institute “Rainbow” (50 years of scientific and productive activities)]. Melioratsiya i vodnoe khozyaystvo [Irrigation and Water Management], no. 5, pp. 30-35. (In Russian).
6. Kozhanov A.L., 2018. Modelirovanie protsessa komponovki funktsional'nykh modu-ley osushitel'noy sistemy dvustoronnego deystviya [Modeling of the process of functional modules arrangement of a double-action drainage system]. Puti povysheniya effektivnosty oroshaemogo zemledeliya [Ways of Increasing the Efficiency of Irrigated Agriculture], no. 4(72), pp. 24-31. (In Russian).
7. Oleinik R.A., 2005. [Prospects for the use of mobile irrigation equipment]. Nauchnyy zhurnal KubGAU: politematicheskiy setevoy elektronnyy zhurnal, no. 13, pp. 50-55, available: http:ej.kubagro.ru/2005/05/15/ [accessed 01.12.2021]. (In Russian).
8. Shchedrin V.N., Kupriyanova S.V., Dokuchaeva L.M., Yurkova R.E., 2021. Tsiklicheskoe oroshenie – odin iz faktorov stabilizatsii zemledeliya v APK na primere chernozemov obyknovennykh [Cyclic irrigation is one of the agriculture stabilization factors in the agro-industrial complex on the example of ordinary chernozem]. Melioratsiya i vodnoe khozyaystvo [Irrigation and Water Management], no. 3, pp. 10-19. (In Russian).
9. Kozhanov A.L., 2016. Opredelenie energii dopolnitel'nogo urozhaya pri ispol'zo-vanii sistemy periodicheskogo orosheniya [Determining the energy of an additional yield when using a periodic irrigation]. Melioratsiya i vodnoe khozyaystvo: problemy i puti resheniya: materialy mezhdunarodnoy nauchno-prakticheskoy konferentsii [Irrigation and Water Management: Problems and Solutions: Proc. of International Scientific-Practical Conf.]. Moscow, pp. 269-274. (In Russian).
10. Kozhanov A.L., Voevodin O.V., Slabunov V.V., Zhuk S.L., 2012. Printsipy postroeniya klassifikatsiy meliorativnykh sistem [Principles for Constructing Classifications of Reclamation Systems]. Novocherkassk, 130 p., deposited in VINITI on 28.05.2012, no. 250-B2012. (In Russian).
11. Lyubchenko V.Ya., Iskhakov A.F., Pavlyuchenko D.A., 2020. Rating of organization's energy efficiency based on Harrington's desirability function. FarEastCon-2020. International Multi-Conference on Industrial Engineering and Modern Technologies, 9271239, DOI: 10.1109/FarEastCon50210.2020.9271239.
12. Zobkov M.B., 2012. Primenenie funktsiy zhelatel'nosti dlya analiza kachestva vo-dy [Application of desirability functions for water quality analysis]. Vodnye resursy [Water Resources], vol. 39, no. 1, pp. 63-70. (In Russian).
13. Pichkalev A.V., 2012. Obobshchennaya funktsiya zhelatel'nosti Kharringtona dlya sravnitel'nogo analiza tekhnicheskikh sredstv [Generalized Harrington desirability function for the comparative analysis of technical means]. Issledovaniya naukograda [Research in the Science City], no. 1, pp. 25-28. (In Russian).
14. Varavin V.I., Babkov A.P., Gureev Yu.A., Shershnev N.S., 2018. Pokazateli universal'nosti seyalok [Indicators of the seeder universality]. Nauchnoe obespechenie agropromyshlennogo proizvodstva: materialy mezhdunarodnoy nauchno-prakticheskoy konferentsii [Scientific Support of Agro-industrial Production: Proc. of the International Scientific-Practical Conference]. Kursk, Kursk State Agricultural Academy Publ., pp. 335-338. (In Russian).
15. Kolganov A.V., Shkura V.N., Shchedrin V.N., 2014. Slovar'-spravochnik gidrotekhnika-melioratora: terminologocheskiy slovar’ [Glossary of Hydraulic Engineers and Land Reclamation Engineers: terminological dictionary]. In 2 parts, pt. 1 (A-N), Novocherkassk, 422 p. (In Russian).
16. Rakhnyanskaya O.I., Mazanov R.R., Tarasyants S.A., Tarasyants A.S., 2017. Sposob regulirovaniya meliorativnoy nasosnoy stantsii [Method of Regulating Reclamation Pumping Station]. Patent RF, no. 2712335. (In Russian).