Search Documents
Search Again
Search Again
Refine Search
Refine Search
- Relevance
- Most Recent
- Alphabetically
Sort by
- Relevance
- Most Recent
- Alphabetically
-
Recycling of Zinc and Lead Bearing Materials at Hydrometal (Belgium)By P. Henry
Hydrometal provides an adequate technology to reintroduce lost metal units into the industrial cycle, thereby saving resources and energy, while keeping the environment cleaner. Two case studies of ou
Jan 1, 2008
-
Recycling of Zinc from the Steelmaking Dust in the Sintering ProcessBy Michal Stepien, Piotr Palimaka, Stanislaw Pietrzyk
During the steel scrap melting process in an electric arc furnaces, the generated dust may contain a significant amount of zinc. The content of zinc in case of melting galvanized steel scrap is variabl
Mar 1, 2017
-
Recycling of Zinc-Bearing Materials: A Valuable 'Land Mine' for Zinc SmeltersSocietal influences, needs, and uses for recyclable materials are becoming increasingly important business and economic factors in the traditional natural resource companies. Several metals (such as
Jan 1, 1993
-
Recycling of Zinc: An OverviewBy V. I. Lakshmanan, R. Roy
"Zinc is the fourth most widely used metal in the world after iron, aluminum and copper. The primary zinc production is through flotation of zinc concentrate, roasting, leaching and electrowinning. Cl
Jan 1, 2012
-
Recycling Of ZnO Flue Dust To Produce Zinc By Hydrometallurgical RoutesBy Jitka Jandová
In this study, hydrometallurgical processing of waste ZnO flue dust arising during zinc removal from galvanized low-alloy steel sheets was investigated on a laboratory-scale to obtain electrolytic zin
Jan 1, 2003
-
Recycling of' Used NI-MH Rechargeable BatteriesBy T. Yoshida
The Ni-MH (nickel metal hydride) rechargeable battery was developed several years ago. Its higher electrochemical capacity and greater safety compared with the Ni-Cd rechargeable battery have resulted
Jan 1, 1995
-
Recycling Plastics Scrap and ASR: The Simplicity of Automotive RecyclingBy Ivan Van Herpe
"ABSTRACT NOT AVAILABLEPresentation"
Jan 1, 2000
-
Recycling Polymeric Materials for Slag /Carbon Interactions in EAF SteelmakingBy \/eena Sahajwalla, Jonathan Dicker, Paul O'Kane, Cath Skidmore, James Dankwah, Magdalena Zaharia, Rita Khanna, David Knights, N Saha-Chaudhury, Somyote Kongkarat
Due to the inherent limitations of current methods of disposal of end of life polymeric materials, avenues are researched towards developing alternative, environmentally friendly and economic recyclin
Jan 1, 2011
-
Recycling Power Plant Fly Ash And Its New Application For Construction Materials - Preprint 09-037By N. S. Kim
Economically favored Cr and Cu leaching out process from spent power plant fly ash (PPFA) had been investigated. PPFA, bearing of C, S, V, Ni, Cu and Cr, has been widely used as an assistant fuel in c
Jan 1, 2009
-
Recycling Pre-Oxidized Chromite Fines in the Oxidative Sintered Pellet Production ProcessBy D. Paktunc, S. P. du Preez, J. P. Beukes, P. G. van Zyl, A. Jordaan
"The chromium (Cr) content of stainless steel originates from recycled scrap and/or ferrochrome (FeCr), which is produced mainly by the carbothermic reduction of chromite ore. The oxidative sintered p
Feb 1, 2019
-
Recycling Process For Tantalum And Some Other Metal ScrapsBy Ryosuke Matsuoka
Keywords: Tantalum capacitor, Scrap, Recovery, Titanium, Chlorination A recycling process for tantalum from capacitor scraps using an oxidation process followed by mechanical separation and chemic
Jan 1, 2004
-
Recycling Process Water In Complex Sulphide Ore FlotationBy F. K. Ikumapayi
An approach to environmental sustainability and improved process economy, in sulphide minerals production is recycling of process water in flotation of complex sulphide ores, although the chemistry of
Sep 1, 2012
-
Recycling Process Water in Sulfide Flotation, Part A: Effect of Calcium and Sulfate on Sphalerite RecoveryBy F. Ikumapayi
In order to predict and minimize detrimental production problems due to the recycling of process water in sulfide ore processing, the influence of major species, calcium and sulfate in process water o
-
Recycling Process Water in Sulfide flotation, Part B: Effect of H2O2 and Process Water Components on Sphalerite flotation From Complex SulfideBy F. Ikumapayi
Hydrogen peroxide production was measured during the grinding of a complex sulfide ore, and its oxidizing effect on solid surfaces was investigated using Fourier transform infrared spectroscopy (FTIR)
-
Recycling Rates of Waste Home Appliances in TaiwanBy Esher Hsu
On July 5, 1997, Environmental Protection Administration of Taiwan publicized the recycling regulation of waste home appliances that include four items, namely, television, refrigerator, washing machi
Jan 1, 2003
-
Recycling Scheme for Scrapped Automobiles in JapanBy Masao Suzuki
Over 5 million cars are scrapped yearly in Japan. After dismantling. scrapped automobiles, they are put into a shredder for differential recovery of ferrous and nonferrous metals. The residue, which i
Jan 1, 1995
-
Recycling SiO2 and Al2O3 from the Laterite Nickel Slag in Molten Sodium HydroxidesBy Donggen Fang, Liu Xuan, Jilai Xue
SiO2 and Al2O3 in the metallurgical slag of nickel laterite ore have great recycling values. In this work, Si and Al were extracted from the slag in NaOH based molten salts through alkali roasting and
Mar 1, 2018
-
Recycling Stainless Steel Pickle Liquors By An Electrodialytic Metathesis ProcessBy S. P. Rivers
The stainless steel industry re1ies on nitric-hydrofluoric acid (HNO,/HF) pickling solutions to remove surface contaminants and maintain the corrosion resistance of the steel. More stringent environme
Jan 1, 1993
-
Recycling System of Waste Materials from Discarded Mobile PhoneBy Kunihiko Takahashi, Gjergj Dodbiba, Hisayoshi Umeda, Toyohisa Fujita
"An increasing number of mobile phones is increasing the number of the discarded mobile phones. Many efforts are thus being made to collect and recycle these devices. This paper is a short introductio
Jan 1, 2008
-
Recycling Used Photographic Chemicals into High Quality FertilizerBy J. W. Whitney
Itronics Inc., through its wholly owned subsidiary Itronics Metallurgical, Inc. (IMI), has successfully developed technology that allows it to be fully integrated as a photochemical recycler. IMI is n
Jan 1, 2000