Search results for "rauta"

showing 10 items of 43 documents

Kaukana Kainuussa, valtaväylän varrella : etnologinen tutkimus Kontiomäen rautatieläisyhteisön elinkaaresta 1950-1972

2004

FL Kimmo Lagerblomin etnologian väitöskirjan ”Kaukana Kainuussa, valtaväylän varrella. Etnologinen elinkaaritutkimus Kontiomäen rautatieläisyhteisöstä vuosina 1950-1973.” tarkastustilaisuus. Vastaväittäjänä professori Pekka Leimu (Turun yliopisto) ja kustoksena professori Bo Lönnqvist.Kimmo Lagerblomin tutkimus on ensimmäinen Suomessa tehty väitöskirja, jonka painopiste on rautatieläiskulttuurissa. Kontiomäen lisäksi tutkimuksessa tarkastellaan laajemminkin rautatien historiallista merkitystä sekä Suomessa että muualla. This study is located on Kontiomäki railtown; witch is a small village some 600 kilometres north from Helsinki. Kontiomäki is a typical railtown. The Finnish State Railway C…

1960-lukurautatieliikennepaikallisyhteisöt1970-lukurautatieläisetyhteisötelinkaarihistoriarautatieasematPaltamoKontiomäkiyhdyskunnatSuomirautatiet1950-lukuKainuu
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Selective recovery of phosphorus as AlPO4 from silicon-free CFB-derived fly ash leachate

2018

The prospect of phosphorus (P) recovery from siliceous fly ash was investigated. The phosphorus content in the pristine fly ash was 1.21%. Obtaining pure phosphorus products from fly ash is very challenging because of high concentration of other elements, silicon (Si) at 17.3% being the major contaminant. The fly ash was fractionated with sieve size of 125 μm to concentrate the phosphorus in the small-size fraction, which also facilitated the removal of 78% of silica (Si) in the solid phase. The fractionated fly ash was treated with 8 M HCl in order to remove 98% of Si by aging (5 h) of leachate until precipitation of Si-gel, and a phosphorus-rich solution is obtained. Iron (Fe) is also con…

AlPO4 precipitationpiiSilicon020209 energyphosphorus recoverychemistry.chemical_elementrauta02 engineering and technology010501 environmental sciencesRaw material01 natural sciencescomplex mixturesIndustrial and Manufacturing EngineeringironImpurity0202 electrical engineering electronic engineering information engineeringMaterials Chemistryrecovery (recapture)lentotuhkaLeachatephosphorusta116ta215fosfori0105 earth and related environmental sciencesPrecipitation (chemistry)Fe-EDTA chelationPhosphorusfungiMetals and Alloyssiliconfly ashfly ash utilizationchemistrytalteenottoReagentFly asherottaminen (tekniikka)Nuclear chemistry
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Iron as a source of color in river waters.

2015

Organic chromophores of total organic carbon (TOC) and those of iron (Fe) contribute to the color of water, but the relative contributions of colored organic carbon (COC%) and Fe (Fe%) are poorly known. In this study, we unraveled Fe% and COC% in 6128 unfiltered water samples collected from 94 Finnish river sites of contrasting catchment properties. According to regression analysis focusing on TOC alone, on average 84% of the mean TOC consisted of COC, while 16% was non-colored or below the color-detection limit. COC and Fe were much more important sources of color than phytoplankton (chlorophyll a as a proxy) or non-algal particles (suspended solids as a proxy). When COC and Fe were consid…

Chlorophyll aEnvironmental EngineeringhiiliIronta1172vesirautaAbsorption coefficientWater colorRiver waterchemistry.chemical_compoundAquatic plantSuomiPhytoplanktonEnvironmental ChemistryWaste Management and DisposalTotal organic carbonSuspended solidsväriTotal organic carbonPollution6. Clean waterabsorptiochemistryWater colorEnvironmental chemistryChlorophyllorgaaninen hiiliorgaaninen ainesjoetThe Science of the total environment
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Iron-based metal-organic framework: Synthesis, structure and current technologies for water reclamation with deep insight into framework integrity.

2021

Water is a supreme requirement for the existence of life, the contamination from the point and non-point sources are creating a great threat to the water ecosystem. Advance tools and techniques are required to restore the water quality and metal-organic framework (MOFs) with a tunable porous structure, striking physical and chemical properties are an excellent candidate for it. Fe-based MOFs, which developed rapidly in recent years, are foreseen as most promising to overcome the disadvantages of traditional water depolluting practices. Fe-MOFs with low toxicity and preferable stability possess excellent performance potential for almost all water remedying techniques in contrast to other MOF…

Environmental EngineeringsynthesisHealth Toxicology and MutagenesisIron0208 environmental biotechnologyGroundwater remediationrauta02 engineering and technology010501 environmental sciencesHeterogeneous catalysis01 natural sciencesCommercializationrakenne (ominaisuudet)Water PurificationEnvironmental Chemistrystructurepolymeeritiron-based metal-organic frameworkEcosystemMetal-Organic Frameworks0105 earth and related environmental sciencesPollutantkemiallinen synteesifenton degradationvedenpuhdistusPublic Health Environmental and Occupational HealthWaterGeneral MedicineGeneral Chemistrywater treatmentkompleksiyhdisteetPollution6. Clean water020801 environmental engineering13. Climate actionadsorptionPhotocatalysisEnvironmental scienceMetal-organic frameworkWater treatmentWater qualityBiochemical engineeringadsorptioChemosphere
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Successive alkalinity producing system for the treatment of acid sulphate soil runoff: preliminary results of a field trial

2005

A successive alkalinity producing system (SAPS) has been investigated as a potential passive treatment option for acid, metal containing runoff from acid sulphate soil. A pilot-scale system was installed at an agricultural land site in Rintala embankment area in mid-western Finland. The experimental layout consists of three parallel treatment units: two different SAPS cells and one limestone-filled cell for comparison of performance. The SAPS cells are composed of a bottom layer of limestone and a top layer of compost supplemented with sand. One of the SAPS cells contains sulphate-rich, waste gypsum mixed with the compost layer in order to enhance the metal reduction by sulphate reducing-ba…

GypsumNatural resource economicsAlkalinitychemistry.chemical_elementsuccessive alkalinity producing systemrautaManganeseengineering.materiallcsh:AgricultureMetalAluminiumlcsh:Agriculture (General)DrainagealumiiniSAPSCompostlcsh:Sacid sulphate soilsArticlesmangaanivedenkäsittelylcsh:S1-972chemistryhappamat sulfaattimaatvisual_artEnvironmental chemistryvisual_art.visual_art_mediumengineeringSurface runoffveden käsittelyFood Science
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States of Division: Border and Boundary Formation in Cold War Rural Germany, by Sagi Schaefer

2017

HistoryHistoryrautaesirippubook reviewshistoriaDivision (mathematics)SaksaEuropekirja-arvostelutGermanyCold warEconomic historyEthnologyta615iron curtainBoundary formationEuroopparajakiistatThe English Historical Review
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Development of iron oxide/activated carbon nanoparticle composite for the removal of Cr(VI), Cu(II) and Cd(II) ions from aqueous solution

2018

Iron oxide (Fe3O4) and iron oxide/activated carbon (Fe3O4/AC) were fabricated by co-precipitation method for the removal of Cr(VI), Cu(II) and Cd(II) ions from aqueous solution in batch mode. These nanoparticles were characterized by BET, FTIR, XRD, SEM/TEM and VSM. The optimum conditions for the removal of ions were pH = 2 for Cr(VI) and 6 for Cu(II) and Cd(II), initial metal ion concentration = 50 mg L−1, nanoparticle dose = 50 mg/10 mL, temperature = 25 ± 1 °C, shaking speed = 180 rpm and contact time = 3 h. The equilibrium data of ions sorption were well described by Langmuir, Freundlich, Redlich-Peterson and Intraparticle Diffusion model. The R2 values obtained by Langmuir model were h…

Langmuirlcsh:Management. Industrial managementXRDActivated carbonGeography Planning and Development116 Chemical sciencesIron oxide215 Chemical engineering02 engineering and technology010501 environmental sciences01 natural scienceschemistry.chemical_compoundsymbols.namesakeAdsorptionINDUSTRIAL WASTE-WATERDesorptionEFFICIENT ADSORBENTSmedicinerautaoksiditFreundlich equationiron oxide nanoparticleta1160105 earth and related environmental sciencesWater Science and TechnologyAqueous solutionMODIFIED MAGNETIC NANOPARTICLESpHCHROMIUM VI REMOVALiron oxide nanoparticlesLangmuir adsorption model021001 nanoscience & nanotechnologyNANO-PARTICLESchemistrylcsh:HD28-70OXIDE COMPOSITEaktiivihiiliCOPPER IONSsymbolsTEMLEAD(II) REMOVALnanohiukkasetHEXAVALENT CHROMIUM0210 nano-technologyActivated carbonmedicine.drugNuclear chemistry
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Di- and Tetrairon(III) μ-Oxido Complexes of an N3S-Donor Ligand: Catalyst Precursors for Alkene Oxidations

2019

The new di- and tetranuclear Fe(III) μ-oxido complexes [Fe 4 (μ-O) 4 (PTEBIA) 4 ](CF 3 SO 3 ) 4 (CH 3 CN) 2 ] (1a), [Fe 2 (μ-O)Cl 2 (PTEBIA) 2 ](CF 3 SO 3 ) 2 (1b), and [Fe 2 (μ-O)(HCOO) 2 (PTEBIA) 2 ](ClO 4 ) 2 (MeOH) (2) were prepared from the sulfur-containing ligand (2-((2,4-dimethylphenyl)thio)-N,N-bis ((1-methyl-benzimidazol-2-yl)methyl)ethanamine (PTEBIA). The tetrairon complex 1a features four μ-oxido bridges, while in dinuclear 1b, the sulfur moiety of the ligand occupies one of the six coordination sites of each Fe(III) ion with a long Fe-S distance of 2.814(6) A. In 2, two Fe(III) centers are bridged by one oxido and two formate units, the latter likely formed by methanol oxidati…

MECHANISMFe-S interactionoxidation116 Chemical sciencesThio-rautaSULFURHomogeneous catalysis02 engineering and technology010402 general chemistry01 natural sciencesMedicinal chemistrythioetherCatalysislcsh:Chemistrychemistry.chemical_compoundThioetheriron-oxo complexAcetonitrileta116Fe-S interaction; homogeneous catalysis; iron-oxo complex; oxidation; thioetherOriginal Researchchemistry.chemical_classificationeetteritFUNCTIONAL-MODELCOORDINATIONPEROXIDEAlkeneLigandACTIVE-SITEhapettuminenGeneral Chemistrykompleksiyhdisteet021001 nanoscience & nanotechnology540COPPER-COMPLEXEShomogeneous catalysis0104 chemical sciencesChemistrychemistrylcsh:QD1-999katalyysiACIDOXO0210 nano-technologySelectivityNONHEME IRON CATALYSTSFrontiers in Chemistry
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Jämsä

PatalahtiNytkinenjärvivesireititIso RautavesiVirstajärviRautawesitietrajatKukkaroKukarosalotorpatVirstalammiatalvitietNytkymenjärviPatalaaxi
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Iisalmi

Pääskymäkitietrajattiluksetrautatietrautatieasemattorpattilusrajat
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