Abstract
An increase of components production for the equipment intended for oil and gas production is a key factor for analyzing existing technological processes and searching for new technological solutions to improve the efficiency of the production process and the quality of components. The article presents a simulation model designed to determine the rational technological processing parameters for the production of the “Centralizer shell” part. The basis for optimizing the working cycle of a production line is synchronization based on the principle of proportionality, which involves equalizing the duration of all technological operations with the rhythm of the production line. Synchronization of technological operations on the production line is carried out by choosing rational cutting parameters for each technological transition (cutting speed, feedrate, number of working passes). The “Centralizer shell” part is made of titanium alloy VT16, which has high strength, corrosion resistance and ductility. For the part under consideration, the permissible values of the cutting parameters were determined based on the calculation of the total processing error, as well as the frequency of replacement of the worn cutting tool. The simulation model described in the article made it possible to increase the efficiency of the production process due to the synchronization of technological operations and the search for rational technological parameters, as well as to improve the manufacturing quality of the “Centralizer shell” part by analyzing the processing error at various parameters of the technological process.
Publisher
Saint-Petersburg Mining University
Subject
Economic Geology,Geology,Geotechnical Engineering and Engineering Geology
Reference37 articles.
1. Барьеры реализации водородных инициатив в контексте устойчивого развития глобальной энергетики / В.С.Литвиненко, П.С.Цветков, М.В.Двойников, Г.В.Буслаев // Записки Горного института. 2020. Т. 244. С. 428-438. DOI: 10.31897/PMI.2020.4.5
2. Максаров В.В. Технологическое обеспечение качества прецизионных поверхностей детали типа «тел вращения» из титановых сплавов / В.В.Максаров, Е.В.Кошелева, А.Ю.Важенин // Металлообработка. 2018. № 4 (106). С. 52-59.
3. Максаров В.В. Технологическое обеспечение параметров точности и шероховатости станин на основе совершенствования торцевого фрезерования на станках с ЧПУ / В.В.Максаров, Р.Р.Рахманкулов // Вестник Рыбинской государственной авиационной технической академии им. П.А.Соловьева. 2017. № 1 (40). С. 268-276.
4. Математическая модель погрешности при точении труднообрабатываемых сплавов / И.И.Козарь, Д.Ю.Колодяжный, М.М.Радкевич, Т.А.Цимко // Научно-технические ведомости Санкт-Петербургского государственного университета. 2014. № 2 (195). С. 194-201.
5. Опорно-центрирующая оснастка обсадных колонн для крепления боковых стволов / Е.В.Кожевников, Н.И.Николаев, А.В.Розенцвет, А.А.Лырчиков // Вестник Пермского национального исследовательского политехнического университета. Геология. Нефтегазовое и горное дело. 2015. № 16. С. 54-60. DOI: 10.15593/2224-9923/2015.16.6
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献