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- TECHNOLOGY AND ORGANIZATION OF CONSTRUCTION
- Calculation Of Temporary Warehouse Space Requirements Based On A Building Information Model
- UDC 69:004:621.9.048.7:69.05.04
doi: 10.33622/0869-7019.2026.01.50-55
Azariy A. LAPIDUS1, lapidusaa@mgsu.ru
Imran S. MURTAZAEV1, pirlo.21.milan@mail.ru
Magomed A. ELMURZAEV2, elmurzaevmagamed-ali@mail.ru
Salambek A. ALIEV3, asa-fenix@mail.ru
1 National Research Moscow State University of Civil Engineering, Yaroslavskoe shosse, 26, Moscow 129337, Russian Federation
2 Complex Research Institute named after Kh. I. Ibragimov of the Russian Academy of Sciences, Staropromyslovskoye shosse, 21a, Grozny 364051, Russian Federation
3 Grozny State Oil and Gas Technical University named after Academician M. D. Millionshchikov, prospekt H. A. Isaeva, 100, Grozny 364051, Russian Federation
Abstract. The article is devoted to the development of a methodology for calculating the need for temporary storage areas in the organization of construction production based on the integration of digital information model data and modern organizational and technological design tools. An analysis of existing approaches to determining temporary storage areas was conducted, their limitations were identified, related to insufficient use of digital information model data, the absence of mechanisms for applying systematized templates of technological processes and optimization methods taking into account peak demand values across calendar periods. The proposed methodology is based on the integration of a database of technological process templates, schedule network charts, and visual programming scripts in the Dynamo environment, providing automation of calculations. Two data tables were developed: templates of technological processes and templates for storage of construction materials, including attributes for determining resource requirements and required storage standards. The methodology makes it possible to determine the required areas of various types of storage facilities (open, closed, under canopies) and provides visualization of the dynamics of material requirements at different stages of construction with identification of peak periods. Validation on the example of a real construction project (176 types of work) confirmed the effectiveness of the proposed approach and made it possible to obtain optimal recommendations for calculating areas.
Keywords: temporary storage areas, digital information model, organization of construction site; schedule network planning, construction organization project, visual programming, technological templates, optimization of storage areas, BIM technologies; organizational and technological modeling - REFERENCES
1. Whitman J. et al. Construction site utilization planning: a process based upon industry best practices [Планирование использования строительной площадки: процесс, основанный на лучших отраслевых практиках]. CivilEng, 2021, vol. 2, no. 2, pp. 309-324.
2. Kolariж S., Vukomanoviж M., Ramljak A. Analyzing the level of detail of construction schedule for enabling site logistics planning (SLP) in the building information modeling (BIM) environment [Анализ уровня детализации строительного графика для обеспечения планирования логистики в информационном моделировании зданий]. Sustainability, 2022, vol. 14, no. 11, p. 6701.
3. Tran T. T., Trieu X. H. A Hybrid genetic algorithm and tabu search for construction site layout planning problem [Гибридный генетический алгоритм и поиск с запретами для задачи планирования компоновки строительной площадки]. Journal of Telecommunication, Electronic and Computer Engineering, 2025, vol. 17, no. 3, pp. 1-6.
4. Xu J., Liu Q., Lei X. A fuzzy multi-objective model and application for the discrete dynamic temporary facilities location planning problem [Нечеткая многокритериальная модель для задачи дискретного динамического планирования размещения временных объектов]. Journal of Civil Engineering and Management, 2016, vol. 22, no. 3, pp. 357-372.
5. Jin H., Zhang M., Yuan Y. Analytic network process-based multi-criteria decision approach and sensitivity analysis for temporary facility layout planning in construction projects [Многокритериальный подход к принятию решений на основе сетевого процесса и анализ чувствительности для планирования размещения временных объектов в строительных проектах]. Applied Sciences, 2018, vol. 8, no. 12, p. 2434.
6. Pйrez C. T., Fernandes L. L. A., Costa D. B. A literature review on 4D BIM for logistics operations and workspace management [Обзор литературы по 4D BIM для логистических операций и управления рабочим пространством]. Proc. of the 24nd International Group of Lean Construction, 2016, pp. 486-495.
7. Kim M. et al. A typology model of temporary facility constraints for automated construction site layout planning [Типологическая модель ограничений временных объектов для автоматизированного планирования компоновки строительной площадки]. Applied Sciences, 2021, vol. 11, no. 3, p. 1027.
8. Cheng J. C. P., Kumar S. A BIM-based framework for material logistics planning [Основанная на BIM структура для планирования материальной логистики]. 23rd Annual Conference of the International Group for Lean Construction, Perth, Australia, 2015, pp. 33-42.
9. Skjelbred S., Fossheim M. E., Drevland F. Comparing different approaches to site organization and logistics: multiple case studies [Сравнение различных подходов к организации площадки и логистике: множественные тематические исследования]. Ibid, pp. 13-22.
10. Salah M., Elbeltagi E., Elsheikh A. Optimization of construction site layout using BIM generative design [Оптимизация компоновки строительной площадки с использованием генеративного проектирования BIM]. International Journal of Construction Management, 2024, vol. 24, no. 3, pp. 314-322.
11. Pham K. T. et al. 4D-BIM-based workspace planning for temporary safety facilities in construction SMEs [Планирование рабочего пространства на основе 4D-BIM для временных объектов на строительных предприятиях]. International Journal of Environmental Research and Public Health, 2020, vol. 17, no. 10, p. 3403.
12. Singh A. R., Patil Y., Delhi V. S. K. Optimizing site layout planning utilizing building information modelling [Оптимизация планирования компоновки площадки с использованием информационного моделирования зданий]. ISARC. Proc. of the International Symposium on Automation and Robotics in Construction, 2019, vol. 36, pp. 376-383.
13. Murtazaev S.-A.Yu., Elmurzaev M. A., Murtazaev I. S.-A. Automation of calculation of individual sections of the construction organization project using visual programming tools. Proc. of the VII All-Russian Scientific and Practical Conference (May 30, 2024, Grozny). Groznyy, GGNTU named after academician M. D. Millionshchikov Publ., 2024, pp. 156-163. (In Russ.).
14. Salamanova M. Sh, Elmurzaev M. A., Aliev S. A., Murtazaev I. S.-A. Modern digital models in organizational and technological design of construction projects. Modern science, man and civilization: a collection of scientific papers. Makhachkala, Aleph Publ., 2024, iss. 1, pp. 71-77. (In Russ.).
15. Murtazaev S. A. et al. Evaluation of organizational and technological design indicators of the object using modern digital models [Оценка организационно-технологических показателей проектирования объекта с использованием современных цифровых моделей]. Journal on Innovation and Sustainability RISUS, 2025, vol. 16, no. 1, pp. 115-130. - For citation: Lapidus A. A., Murtazaev I. S., Elmurzaev M. A., Aliev S. A. Calculation of Temporary Warehouse Space Requirements Based on a Building Information Model. Promyshlennoe i grazhdanskoe stroitel'stvo [Industrial and Civil Engineering], 2026, no. 1, pp. 50-55. (In Russ.). doi: 10.33622/0869-7019.2026.01.50-55
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