Zobrazeno 1 - 9
of 9
pro vyhledávání: '"Seit Shallari"'
Publikováno v:
Journal of Agricultural Engineering, Vol 50, Iss 1 (2019)
The reduction of ammonia (NH3) emissions associated with manure management requires identification and implementation of effective techniques. The objective of this study was to measure potential ammonia emissions from animal manure and evaluate emis
Externí odkaz:
https://doaj.org/article/a37f0b09bea840438e8cd5b65981ff85
Autor:
Ndue Kanari, Nour-Eddine Menad, Etleva Ostrosi, Seit Shallari, Frederic Diot, Eric Allain, Jacques Yvon
Publikováno v:
Metals, Vol 8, Iss 12, p 1084 (2018)
Iron sulfate, in particular FeSO4·7H2O, is derived from titanium dioxide production and the steel pickling process. Regarding TiO2 manufacturing, the amount of the resultant FeSO4·7H2O can be as high as 6 tons per ton of produced TiO2, leading to a
Externí odkaz:
https://doaj.org/article/8d61411faa7441ac8019b6e29aceae3d
Autor:
Seit Shallari, Eric Allain, Fabrice Patisson, Ndue Kanari, Nour-Eddine Menad, Jacques Yvon, Lev Filippov
Publikováno v:
Materials
Volume 14
Issue 15
Materials, MDPI, 2021, 14 (15), pp.4129. ⟨10.3390/ma14154129⟩
Materials, Vol 14, Iss 4129, p 4129 (2021)
Volume 14
Issue 15
Materials, MDPI, 2021, 14 (15), pp.4129. ⟨10.3390/ma14154129⟩
Materials, Vol 14, Iss 4129, p 4129 (2021)
The mass production of synthetic plastics began in the last century and today they have become one of the most abundant man-made materials. The disposal or the beneficiation of end-of-life plastics represent a great challenge for society especially i
Publikováno v:
Materials
Materials, MDPI, 2020, 13 (20), pp.4470. ⟨10.3390/ma13204470⟩
Materials; Volume 13; Issue 20; Pages: 4470
Materials, Vol 13, Iss 4470, p 4470 (2020)
Materials, MDPI, 2020, 13 (20), pp.4470. ⟨10.3390/ma13204470⟩
Materials; Volume 13; Issue 20; Pages: 4470
Materials, Vol 13, Iss 4470, p 4470 (2020)
International audience; The most economically important iron-chromium bearing minerals is chromite. In natural deposits, iron(II) is frequently substituted by magnesium(II) while chromium(III) is replaced by aluminum(III) and/or iron(III) forming a c
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::813685e6de8add240ea77ab217a255e1
https://hal.univ-lorraine.fr/hal-02964069/file/materials-13-04470.pdf
https://hal.univ-lorraine.fr/hal-02964069/file/materials-13-04470.pdf
Autor:
Sébastien Diliberto, Jacques Yvon, Fabrice Patisson, Seit Shallari, Frédéric Diot, Eric Allain, Ndue Kanari
Publikováno v:
Materials
Materials, MDPI, 2020, 13 (18), pp.4203. ⟨10.3390/ma13184203⟩
Materials; Volume 13; Issue 18; Pages: 4203
Materials, Vol 13, Iss 4203, p 4203 (2020)
Materials, MDPI, 2020, 13 (18), pp.4203. ⟨10.3390/ma13184203⟩
Materials; Volume 13; Issue 18; Pages: 4203
Materials, Vol 13, Iss 4203, p 4203 (2020)
During the treatment of copper anode slime (CAS) under an air atmosphere, several aspects of the interactions of its main components (CuAgSe, Cu2−xSeyS1−y, Ag3AuSe2) with oxygen were described in Part I. As a comparative and complementary study,
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::1e7e636731b764fca9ba55ab1cae1757
https://hal.univ-lorraine.fr/hal-02964053/file/materials-13-04203.pdf
https://hal.univ-lorraine.fr/hal-02964053/file/materials-13-04203.pdf
Autor:
Yvon, Ndue Kanari, Etleva Ostrosi, Cécile Diliberto, Inna Filippova, Seit Shallari, Eric Allain, Frederic Diot, Fabrice Patisson, Jacques
Publikováno v:
Materials; Volume 12; Issue 12; Pages: 1977
The investigation presented here features the design of a cleaner and greener chemical process for the conversion of industrial wastes into super-oxidizing materials. The waste of interest is the iron sulfate heptahydrate (FeSO4·7H2O) mainly generat
Autor:
Seit Shallari, Fabrice Patisson, Frédéric Diot, Jacques Yvon, Sébastien Diliberto, Ndue Kanari, Eric Allain
Publikováno v:
Materials, Vol 12, Iss 10, p 1625 (2019)
Materials; Volume 12; Issue 10; Pages: 1625
Materials
Materials, MDPI, 2019, 12 (10), pp.1625. ⟨10.3390/ma12101625⟩
Materials; Volume 12; Issue 10; Pages: 1625
Materials
Materials, MDPI, 2019, 12 (10), pp.1625. ⟨10.3390/ma12101625⟩
Development of our modern society requests a number of critical and strategic elements (platinum group metals, In, Ga, Ge…) and high value added elements (Au, Ag, Se, Te, Ni…) which are often concentrated in by-products during the extraction of b
Autor:
Dolja Pavlova, Guillaume Echevarria, Seit Shallari, Aida Bani, Sulejman Sulçe, Jean Louis Morel
Publikováno v:
Agromining: Farming for Metals
Agromining: Farming for Metals, Springer, 312 p., 2018, Mineral Resource Reviews, 978-3-319-61898-2. ⟨10.1007/978-3-319-61899-9_12⟩
Agromining: Farming for Metals ISBN: 9783319618982
Agromining: Farming for Metals, Springer, 312 p., 2018, Mineral Resource Reviews, 978-3-319-61898-2. ⟨10.1007/978-3-319-61899-9_12⟩
Agromining: Farming for Metals ISBN: 9783319618982
Initial experiments using Mediterranean Ni-hyperaccumulator plants for the purpose of phytomining were carried out in the 1990s. In order to meet commercial phytoextraction requirements, a technology has been developed using hyperaccumulator species
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::a25f14e39a8e0e188f9e517850dfcb8c
https://hal.archives-ouvertes.fr/hal-02154600
https://hal.archives-ouvertes.fr/hal-02154600
Autor:
Etleva Ostrosi, Jacques Yvon, Nour-Eddine Menad, Frédéric Diot, Seit Shallari, Eric Allain, Ndue Kanari
Publikováno v:
Metals
Volume 8
Issue 12
Metals, MDPI, 2018, 8 (12), pp.1084. ⟨10.3390/met8121084⟩
Metals, Vol 8, Iss 12, p 1084 (2018)
Volume 8
Issue 12
Metals, MDPI, 2018, 8 (12), pp.1084. ⟨10.3390/met8121084⟩
Metals, Vol 8, Iss 12, p 1084 (2018)
Iron sulfate, in particular FeSO4·
7H2O, is derived from titanium dioxide production and the steel pickling process. Regarding TiO2 manufacturing, the amount of the resultant FeSO4·
7H2O can be as high as 6 tons per ton of produ
7H2O, is derived from titanium dioxide production and the steel pickling process. Regarding TiO2 manufacturing, the amount of the resultant FeSO4·
7H2O can be as high as 6 tons per ton of produ