Environmental desulfurization of mine wastes using various mineral processing techniques: Recent advances and opportunities

2021 ◽  
Vol 174 ◽  
pp. 107225
Author(s):  
Yassine Ait-Khouia ◽  
Mostafa Benzaazoua ◽  
Isabelle Demers
2021 ◽  
Vol 2 (4) ◽  
pp. 686-706
Author(s):  
Bona Lim ◽  
Richard Diaz Alorro

The concept of mining or extracting valuable metals and minerals from technospheric stocks is referred to as technospheric mining. As potential secondary sources of valuable materials, mining these technospheric stocks can offer solutions to minimise the waste for final disposal and augment metals’ or minerals’ supply, and to abate environmental legacies brought by minerals’ extraction. Indeed, waste streams produced by the mining and mineral processing industry can cause long-term negative environmental legacies if not managed properly. There are thus strong incentives/drivers for the mining industry to recover and repurpose mine and mineral wastes since they contain valuable metals and materials that can generate different applications and new products. In this paper, technospheric mining of mine wastes and its application are reviewed, and the challenges that technospheric mining is facing as a newly suggested concept are presented. Unification of standards and policies on mine wastes and tailings as part of governance, along with the importance of research and development, data management, and effective communication between the industry and academia, are identified as necessary to progress technospheric mining to the next level. This review attempts to link technospheric mining to the promotion of environmental sustainability practices in the mining industry by incorporating green technology, sustainable chemistry, and eco-efficiency. We argue that developing environmentally friendly processes and green technology can ensure positive legacies from the mining industry. By presenting specific examples of the mine wastes, we show how the valuable metals or minerals they contain can be recovered using various metallurgical and mineral processing techniques to close the loop on waste in favour of a circular economy.


AI Magazine ◽  
2013 ◽  
Vol 34 (3) ◽  
pp. 42-54 ◽  
Author(s):  
Vasile Rus ◽  
Sidney D’Mello ◽  
Xiangen Hu ◽  
Arthur Graesser

We report recent advances in intelligent tutoring systems with conversational dialogue. We highlight progress in terms of macro and microadaptivity. Macroadaptivity refers to a system’s capability to select appropriate instructional tasks for the learner to work on. Microadaptivity refers to a system’s capability to adapt its scaffolding while the learner is working on a particular task. The advances in macro and microadaptivity that are presented here were made possible by the use of learning progressions, deeper dialogue and natural language processing techniques, and by the use of affect-enabled components. Learning progressions and deeper dialogue and natural language processing techniques are key features of DeepTutor, the first intelligent tutoring system based on learning progressions. These improvements extend the bandwidth of possibilities for tailoring instruction to each individual student which is needed for maximizing engagement and ultimately learning.


2015 ◽  
Vol 76 ◽  
pp. 81-86 ◽  
Author(s):  
Beatriz Alicia Firpo ◽  
Juarez Ramos do Amaral Filho ◽  
Ivo André Homrich Schneider

JOM ◽  
1995 ◽  
Vol 47 (2) ◽  
pp. 52-55 ◽  
Author(s):  
R. Buchan ◽  
B. Yarar

2010 ◽  
Vol 57 (3) ◽  
pp. 105-108 ◽  
Author(s):  
Toyohisa FUJITA ◽  
Gjergj DODBIBA ◽  
Hyun Seo PARK ◽  
Koji HIGASHINO ◽  
Seiji MATSUO

Química Nova ◽  
2021 ◽  
Author(s):  
Marcela Bernardo ◽  
Rafaella Paschoalin ◽  
Danilo Santos ◽  
Stanley Bilatto ◽  
Cristiane Farinas ◽  
...  

PROCESSING AND APPLICATION OF POLYMERIC BIOMATERIALS: RECENT ADVANCES AND PERSPECTIVES. Biomaterials have been intensively investigated due to the increase in the elderly population and high prevalence of several disorders, such as cardiovascular and orthopedic diseases. Polymeric and composite polymeric materials in combination with different processing techniques, such as electrospinning, solution blow spinning, ultrathin film preparation, and 3D printing are promising for obtaining biomaterials with patient-specific applications. Here, we provide a review on recent advances and perspectives for synthetic and natural polymers as well as composites in the design of biomaterials. After introducing basic information about biomaterials, we describe the fundamentals of manufacturing techniques and highlight possible biomedical applications.


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