Copper recovery improvement by reducing the misreported copper minerals into the tailings of scavenger flotation circuit – Part II

Publish Year: 1403
نوع سند: مقاله ژورنالی
زبان: English
View: 30

This Paper With 7 Page And PDF Format Ready To Download

  • Certificate
  • من نویسنده این مقاله هستم

استخراج به نرم افزارهای پژوهشی:

لینک ثابت به این Paper:

شناسه ملی سند علمی:

JR_IJMGE-58-1_004

تاریخ نمایه سازی: 20 فروردین 1403

Abstract:

Loss of copper minerals in the tailings of the rougher and scavenger circuits poses a significant challenge in copper processing plants, diminishing the circuit's efficiency. Part I of this paper identified the causes of copper mineral loss in the scavenger circuit tailings of the Sungun copper concentration plant, situated in northwestern Iran. Changes in feed composition, particularly the ratio of copper oxide to sulfide minerals, along with alterations in the mineralogical properties of the input feed to the scavenger circuit, emerged as pivotal factors contributing to the loss of copper minerals into the tailings. In line with these findings, the objective of the present paper (part II) is to optimize the scavenger circuit by proposing a solution to mitigate the loss of copper minerals to the tailings. Samples were collected from the feed, concentrate, and final tailings, as well as from each cell of the scavenger circuit, followed by comminution and flotation tests on each sample. The results indicate that redirecting the scavenger circuit tailings to the input of the rougher cells, owing to their higher copper grade compared to the tailings of the rougher circuit, can enhance the circuit's recovery by more than ۴%. Additionally, employing a combination of sulfide and oxide collectors, along with sulfidation to float the copper oxide minerals in the scavenger circuit, resulted in an overall recovery increase exceeding ۱۱%. Furthermore, adjusting the size of the air bubbles to capture fine copper mineral particles from the scavenger circuit cells proved to be an effective strategy for boosting recovery. Moreover, modifying the grinding circuit to liberate the minerals present in the scavenger circuit feed, predominantly the concentrate of the scavenger circuit itself, led to a recovery increase of approximately ۵%. Considering the mineralogical characteristics of the scavenger circuit feed, derived from the tailings of the cleaner cells, implementing changes in the operating conditions of the cleaner circuit—such as employing hybrid bubbles (Nano and coarse bubbles) and utilizing sulfide and oxide collectors—significantly impacted the recovery of fine copper mineral particles and copper oxide minerals to the cleaner concentrate, thereby enhancing the scavenger circuit's performance.

Authors

Ataallah Bahrami

Department of Mining Engineering, Faculty of Engineering, Urmia University, Urmia, Iran.

Fatemeh Kazemi

Faculty of Engineering, University of Kashan, Kashan, Iran.

Mahsa Rahbari

Department of Mining Engineering, Faculty of Engineering, Urmia University, Urmia, Iran.

Abolfazl Danesh

Complex of Copper Processing – Sungun, East Azerbaijan Province, Headquarters Rd, Tabriz, Iran.

Mirsaleh Mirmohammadi

School of Mining Engineering, University of Tehran, Tehran, Iran.

Farhad Azizafshari

Complex of Copper Processing – Sungun, East Azerbaijan Province, Headquarters Rd, Tabriz, Iran.

مراجع و منابع این Paper:

لیست زیر مراجع و منابع استفاده شده در این Paper را نمایش می دهد. این مراجع به صورت کاملا ماشینی و بر اساس هوش مصنوعی استخراج شده اند و لذا ممکن است دارای اشکالاتی باشند که به مرور زمان دقت استخراج این محتوا افزایش می یابد. مراجعی که مقالات مربوط به آنها در سیویلیکا نمایه شده و پیدا شده اند، به خود Paper لینک شده اند :
  • Rahbari, M. (۲۰۲۲). Process mineralogy of flotation - scavenger circuit ...
  • Bahrami, A., Kashani, R. H., Kazemi, F., & Ghorbani, Y. ...
  • Shrimali, K., Jin, J., Hassas, B. V., Wang, X., & ...
  • Agheli, S., Hosseini, M., Haji Amin Shirazi, H., & Vaziri ...
  • Cross, H. (۱۹۳۶). Analysis of Flow in Networks of Conduits ...
  • Basha, H.A., and Kassab, B.G. (۱۹۹۶). Analysis of water distribution ...
  • Arsene, C.T.C., Bargiela, A., and Al-Dabass, D. (۲۰۰۴). Modelling and ...
  • Giustolisi, O. (۲۰۱۰). Considering actual pipe connections in water distribution ...
  • Ayad, A., Awad, H., and Yassin, A. (۲۰۱۳). Developed hydraulic ...
  • Boanoa, F., Scibettab, M., Ridolfia, L., and Giustolisic, O. (۲۰۱۵). ...
  • Creacoa, E., and Franchinib, M. (۲۰۱۵). The identification of loops ...
  • Brkic, D. (۲۰۰۹). An improvement of Hardy Cross method applied ...
  • Wang, Y.J. (۱۹۸۲). Ventilation Network Theory, Mine Ventilation and Air ...
  • Wang, Y.J. (۱۹۸۲). Critical Path Approach to Mine Ventilation Networks ...
  • نمایش کامل مراجع