23 resultados para Conductive Nitrile Rubber

em Doria (National Library of Finland DSpace Services) - National Library of Finland, Finland


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Tämä tutkimus tehtiin osana Vapo Oy:n uuden turvetuotantotekniikan kehitystä. Kihniön Aitonevalle on rakennettu uuden turvetuotantotekniikan tutkimusalue, johon kuuluu muun muassa yksi lämmittämätön kuivatuskenttä sekä yksi aurinkolämmöllä lämmitetty kuivatuskenttä aurinkokeräimineen ja putkistoineen. Työn tavoitteena oli selvittää aurinkolämmöllä lämmitetyn kuivatuskentän tuotannon teho verrattuna lämmittämättömään kenttään. Toinen tavoite oli selvittää Aitonevan tutkimusalueella käytössä olevista aurinkokeräimistä turpeen kuivaustarkoitukseen parhaiten soveltuva keräin. Tuotantoa uudella menetelmällä tehtiin vuoden 2005 kesän ajan. Tuotantotehon ero pyrittiin selvittämään seuraamalla yksittäisten turvetuotantoerien eli satokiertojen kuivumista kosteusnäyttein ja toisaalta vertaamalla koko kesän aikana saatua tuotantoa. Aurinkokeräimien vertailu toteutettiin energiamäärä- ja hyötysuhdemittauksin. Lisäksi kuivatuskenttien lämpötiloja mitattiin kentässä tapahtuvan lämmönsiirron selvittämiseksi. Mittausten perusteella havaittiin, ettälämmitetyn ja lämmittämättömän kentän välillä on tutkimuksen aikaisella kenttärakenteella 6-8 % ero satokierron aikana haihdutetussa vesimäärässä. Tätä voidaanpitää odotuksia pienempänä. Kenttien lämpötilamittausten perusteella osoittautui, että kentän pintarakenne tulisi eristää maaperästä, koska kentän alle siirrettyä lämpöä siirtyy häviöinä kylmään pohjamaahan. Käytössä olleista aurinkokeräimistä parhaaksi osoittautui katettu kumimattokeräin niin hyötysuhteen kuin tehokkuudenkin puolesta. Työn aikana todettiin, että tutkimusta keräimien ja varsinkinkenttärakenteen suhteen tulee jatkaa tulevaisuudessa ennen aurinkokeräinkentän laajamittaisen käytön aloittamista.

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Työssä on tutkittu eri kumilaatujen soveltuvuutta viherlipeäympäristöön laboratoriomittausten avulla. Kumia tultaisiin käyttämään viherlipeälinjan letkuventtiilissä. Suomalaisista sellutehtaista saaduista viherlipeänäytteistä mitattiin alkali- ja vierasainepitoisuudet. Kumitestauksissa viherlipeässä pyrittiin selvittämään kumien kesto prosessiolosuhteita vastaavissa olosuhteissa. Kumit asetettiin kuumaan viherlipeään jännitettynä ja pidettiin siinä kolme vuorokautta. Kumista tutkittavia ominaisuuksia olivat kumin massan muutos, kovuus, vetolujuus sekä murtovenymä. Kolmen vuorokauden testien tulosten perusteella valittiin kolme kumilaatua tuhannen tunnin kestotestiin, joissa seurattiin kumin massan käyttäytymistä sekä kumin pitkäaikaisen altistamisen viherlipeässä vaikutusta lujuusominaisuuksiin. Kokeissa havaittiin osan testatuista kumeista sitovan viherlipeää itseensä, mikä aiheuttaisi viherlipeän pääsyn letkun vahvikkeisiin ja aiheuttaisi letkun hajoamisen. Osa kumeista kului kemiallisesti, mikä taas aiheuttaisi letkun rasitustilanteissa repeämiä letkun pinnassa ja lopulta letkun hajoamisen. Kuitenkin suuressa osassa testatuissa kumimateriaaleissa ei ollut suuria massanmuutoksia. Tällöin lujuusmittaukset kertoivat muilta osin kumin kestosta. Muutamilla kumeilla massanmuutokset olivat alhaisia, mutta lujuusarvot olivat romahtaneet. Kuitenkin laboratoriomittausten tulosten perusteella pystyttiin löytämään kumimateriaali, joka kestäisi paremmin viherlipeäprosessissa kuin teollisuudessa käytössä ollut kumimateriaali. Kuitenkin lopullinen varmuus tästä voidaan saada teollisuudessa tehtyjen testausten avulla.

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Nokian Renkaat Oyj:ssä on suuntaus päivittäin valmistettavien kumisekoitusten määrien lisäämiseen. Sekoitusmäärien kasvaessa myös laadunvalvontamittauksien kapasiteettia pitää nostaa tai vaihtoehtoisesti vähentää näytteiden tutkimiseen kuluvaa aikaa tai tutkittavien näytteiden määrää. On mietitty, voitaisiinko näytteenottopaikkaa vaihtamalla saada edustavampi näyte. Aikaistamalla näytteenottopaikkaa näytteet saataisiin tutkittua aikaisemmin ja siten sekoitukset saataisiin käyttöön entistä nopeammin. Teoriaosassa käsitellään kumisekoitusprosessia ja tutustutaan käytettävään prosessilaitteistoon ja prosessin eri vaiheisiin. Lisäksi tutustutaan prosessin ohjaukseen, prosessimittauksiin, prosessin säätöihin ja hälytyksiin. Työssä käsitellään myös laatuun vaikuttavia tekijöitä ja perehdytään käytössä oleviin laadunvalvontamittauksiin ja näytteiden analysointiin. Kokeellisessa osassa tutkitaan, mikä olisi paras näytteenottokohta, mietitään mittausten ja mittausajan vähentämisen vaikutuksia sekä sitä, miten näytteet tulisi merkitä. Lisäksi kokeellisessa osassa tehdään neuroverkkomalli viskositeetin ennustamiseksi.

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The transport of macromolecules, such as low-density lipoprotein (LDL), and their accumulation in the layers of the arterial wall play a critical role in the creation and development of atherosclerosis. Atherosclerosis is a disease of large arteries e.g., the aorta, coronary, carotid, and other proximal arteries that involves a distinctive accumulation of LDL and other lipid-bearing materials in the arterial wall. Over time, plaque hardens and narrows the arteries. The flow of oxygen-rich blood to organs and other parts of the body is reduced. This can lead to serious problems, including heart attack, stroke, or even death. It has been proven that the accumulation of macromolecules in the arterial wall depends not only on the ease with which materials enter the wall, but also on the hindrance to the passage of materials out of the wall posed by underlying layers. Therefore, attention was drawn to the fact that the wall structure of large arteries is different than other vessels which are disease-resistant. Atherosclerosis tends to be localized in regions of curvature and branching in arteries where fluid shear stress (shear rate) and other fluid mechanical characteristics deviate from their normal spatial and temporal distribution patterns in straight vessels. On the other hand, the smooth muscle cells (SMCs) residing in the media layer of the arterial wall respond to mechanical stimuli, such as shear stress. Shear stress may affect SMC proliferation and migration from the media layer to intima. This occurs in atherosclerosis and intimal hyperplasia. The study of blood flow and other body fluids and of heat transport through the arterial wall is one of the advanced applications of porous media in recent years. The arterial wall may be modeled in both macroscopic (as a continuous porous medium) and microscopic scales (as a heterogeneous porous medium). In the present study, the governing equations of mass, heat and momentum transport have been solved for different species and interstitial fluid within the arterial wall by means of computational fluid dynamics (CFD). Simulation models are based on the finite element (FE) and finite volume (FV) methods. The wall structure has been modeled by assuming the wall layers as porous media with different properties. In order to study the heat transport through human tissues, the simulations have been carried out for a non-homogeneous model of porous media. The tissue is composed of blood vessels, cells, and an interstitium. The interstitium consists of interstitial fluid and extracellular fibers. Numerical simulations are performed in a two-dimensional (2D) model to realize the effect of the shape and configuration of the discrete phase on the convective and conductive features of heat transfer, e.g. the interstitium of biological tissues. On the other hand, the governing equations of momentum and mass transport have been solved in the heterogeneous porous media model of the media layer, which has a major role in the transport and accumulation of solutes across the arterial wall. The transport of Adenosine 5´-triphosphate (ATP) is simulated across the media layer as a benchmark to observe how SMCs affect on the species mass transport. In addition, the transport of interstitial fluid has been simulated while the deformation of the media layer (due to high blood pressure) and its constituents such as SMCs are also involved in the model. In this context, the effect of pressure variation on shear stress is investigated over SMCs induced by the interstitial flow both in 2D and three-dimensional (3D) geometries for the media layer. The influence of hypertension (high pressure) on the transport of lowdensity lipoprotein (LDL) through deformable arterial wall layers is also studied. This is due to the pressure-driven convective flow across the arterial wall. The intima and media layers are assumed as homogeneous porous media. The results of the present study reveal that ATP concentration over the surface of SMCs and within the bulk of the media layer is significantly dependent on the distribution of cells. Moreover, the shear stress magnitude and distribution over the SMC surface are affected by transmural pressure and the deformation of the media layer of the aorta wall. This work reflects the fact that the second or even subsequent layers of SMCs may bear shear stresses of the same order of magnitude as the first layer does if cells are arranged in an arbitrary manner. This study has brought new insights into the simulation of the arterial wall, as the previous simplifications have been ignored. The configurations of SMCs used here with elliptic cross sections of SMCs closely resemble the physiological conditions of cells. Moreover, the deformation of SMCs with high transmural pressure which follows the media layer compaction has been studied for the first time. On the other hand, results demonstrate that LDL concentration through the intima and media layers changes significantly as wall layers compress with transmural pressure. It was also noticed that the fraction of leaky junctions across the endothelial cells and the area fraction of fenestral pores over the internal elastic lamina affect the LDL distribution dramatically through the thoracic aorta wall. The simulation techniques introduced in this work can also trigger new ideas for simulating porous media involved in any biomedical, biomechanical, chemical, and environmental engineering applications.

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The main purpose of this work was to study different kinds of metal-based tunnel junctions at low temperatures. The problem which had to be solved was creating a junction with appropriate properties at these temperatures. The materials for junctions were found experimentally. The goal was to find an alloy material that can provide a high quality tunnel junction, which remains in the normal conductive state at low temperatures without applying magnetic field. The fabrication technology of such a device, based on an alloy of aluminium and manganese, is described in detail. In this thesis theoretical properties of tunnel junctions are considered and results of experiments with tunnel junctions are described and quantitative properties of the junctions are analyzed based on the experimental data.

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The human genome comprises roughly 20 000 protein coding genes. Proteins are the building material for cells and tissues, and proteins are functional compounds having an important role in many cellular responses, such as cell signalling. In multicellular organisms such as humans, cells need to communicate with each other in order to maintain a normal function of the tissues within the body. This complex signalling between and within cells is transferred by proteins and their post-translational modifications, one of the most important being phosphorylation. The work presented here concerns the development and use of tools for phosphorylation analysis. Mass spectrometers have become essential tools to study proteins and proteomes. In mass spectrometry oriented proteomics, proteins can be identified and their post-translational modifications can be studied. In this Ph.D. thesis the objectives were to improve the robustness of sample handling methods prior to mass spectrometry analysis for peptides and their phosphorylation status. The focus was to develop strategies that enable acquisition of more MS measurements per sample, higher quality MS spectra and simplified and rapid enrichment procedures for phosphopeptides. Furthermore, an objective was to apply these methods to characterize phosphorylation sites of phosphopeptides. In these studies a new MALDI matrix was developed which allowed more homogenous, intense and durable signals to be acquired when compared to traditional CHCA matrix. This new matrix along with other matrices was subsequently used to develop a new method that combines multiple spectra from different matrises from identical peptides. With this approach it was possible to identify more phosphopeptides than with conventional LC/ESI-MS/MS methods, and to use 5 times less sample. Also, phosphopeptide affinity MALDI target was prepared to capture and immobilise phosphopeptides from a standard peptide mixture while maintaining their spatial orientation. In addition a new protocol utilizing commercially available conductive glass slides was developed that enabled fast and sensitive phosphopeptide purification. This protocol was applied to characterize the in vivo phosphorylation of a signalling protein, NFATc1. Evidence for 12 phosphorylation sites were found, and many of those were found in multiply phosphorylated peptides

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Tässä kirjallisuustyössä tutkittiin atomikerroskasvatuksen (ALD) soveltamista kemiantekniikassa. Työn alussa kerrottiin atomikerroskasvatuksesta, sen toimintaperiaatteista ja prosessitekniikasta. Tämän jälkeen tutkittiin viittä eri kemiantekniikan sovellusta, jotka olivat polymeerien pinnoittaminen, heterogeenisten katalyyttien syntetisointi, membraanien modifiointi, korroosionesto ja kaasunilmaisimet. ALD on ohutkalvotekniikka, jolla voidaan valmistaa nanometrin tai jopa Ångströmin (1 Å = 0.1 nm) tarkkuudella epäorgaanisia materiaalikerroksia, jotka yleensä ovat metallioksideja, kuten alumiinioksidi. ALD perustuu kaasu-kiintoainereaktioihin, joissa kaasumaiset kemialliset prekursorit reagoivat vuorotellen kasvualustan kanssa. Tyypilliset prekursorit ovat metalliligandi ja vesi, joka on yleisin hapen lähde ALD-reaktioissa. ALD−reaktiot suoritetaan yleensä matalassa paineessa (100−200 Pa) ja korkeassa lämpötilassa (200–400 °C) suljetussa reaktorikammiossa. ALD-prosesseissa voidaan hyödyntää myös plasmaa alentamaan reaktiolämpötiloja. Plasman avulla prekursoreista luodaan hyvin reaktiivisia radikaaleja, jotka voivat reagoida jopa huoneenlämmössä. Lämpöherkkiä polymeerejä voidaan pinnoittaa ohutkalvoilla, joilla voidaan lisätä esimerkiksi pakkausmateriaalien suojaa happea ja vesihöyryä vastaan. ALD:llä voidaan syntetisoida tarkasti nanomittakaavan heterogeenisiä katalyyttejä, joilla on korkea dispersio tukimateriaalin pinnalla. ALD:n avulla voidaan säästää katalyyttimateriaalia menettämättä katalyytin aktiivisuutta, mikä on tärkeää monien katalyyttisovellusten taloudellisuuden kannalta, esimerkiksi polttokennot. ALD soveltuu hyvin membraanien modifiointiin, koska kaasumaiset prekursorit leviävät tasaisesti membraanin huokosiin. Membraanien pinnoittamisella pyritään vaikuttamaan, selektiivisyyteen, hydrofiilisyyteen, liuotinkestävyyteen, huokoskokoon ja sen jakaumaan. Lisäksi membraaneja voidaan pinnoittaa katalyyttisillä ohutkalvoilla, mikä on tärkeää nanoreaktoreiden kehityksen kannalta. ALD:llä voidaan pinnoittaa esimerkiksi terästä, ja vähentää täten teräksen korroosiota. Puolijohtavia metallioksideja voidaan käyttää kaasunilmaisimina, joiden valmistuksessa ALD:n tarkkuudesta on suurta hyötyä.

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Ion exchange membranes are indispensable for the separation of ionic species. They can discriminate between anions and cations depending on the type of fixed ionic group present in the membrane. These conventional ion exchange membranes (CIX) have exceptional ionic conductivity, which is advantageous in various electromembrane separation processes such as electrodialysis, electrodeionisation and electrochemical ion exchange. The main disadvantage of CIX membranes is their high electrical resistance owing to the fact that the membranes are electronically non conductive. An alternative can be electroactive ion exchange membranes, which are ionically and electronically conducting. Polypyrrole (PPy) is a type of electroactive ion exchange material as well as a commonly known conducting polymer. When PPy membranes are repeatedly reduced and oxidised, ions are pumped through the membrane. The main aim of this thesis was to develop electroactive cation transport membranes based on PPy for the selective transport of divalent cations. Membranes developed composed of PPy films deposited on commercially available support materials. To carry out this study, cation exchange membranes based on PPy doped with immobile anions were prepared. Two types of dopant anions known to interact with divalent metal ions were considered, namely 4-sulphonic calix[6]arene (C6S) and carboxylated multiwalled carbon nanotubes (CNT). The transport of ions across membranes containing PPy doped with polystyrene sulphonate (PSS) and PPy doped with para-toluene sulphonate (pTS) was also studied in order to understand the nature of ion transport and permeability across PPy(CNT) and PPy(C6S) membranes. In the course of these studies, membrane characterisation was performed using electrochemical quartz crystal microbalance (EQCM) and scanning electron microscopy (SEM). Permeability of the membranes towards divalent cations was explored using a two compartment transport cell. EQCM results demonstrated that the ion exchange behaviour of polypyrrole is dependent on a number of factors including the type of dopant anion present, the type of ions present in the surrounding medium, the scan rate used during the experiment and the previous history of the polymer film. The morphology of PPy films was found to change when the dopant anion was varied and even when the thickness of the film was altered in some cases. In nearly all cases the permeability of the membranes towards metal ions followed the order K+ > Ca2+ > Mn2+. The one exception was PPy(C6S), for which the permeability followed the order Ca2+ ≥ K+ > Mn2+ > Co2+ > Cr3+. The above permeability sequences show a strong dependence on the size of the metal ions with metal ions having the smallest hydrated radii exhibiting the highest flux. Another factor that affected the permeability towards metal ions was the thickness of the PPy films. Films with the least thickness showed higher metal ion fluxes. Electrochemical control over ion transport across PPy(CNT) membrane was obtained when films composed of the latter were deposited on track-etched Nucleopore® membranes as support material. In contrast, the flux of ions across the same film was concentration gradient dependent when the polymer was deposited on polyvinylidene difluoride membranes as support material. However, electrochemical control over metal ion transport was achieved with a bilayer type of PPy film consisting of PPy(pTS)/PPy(CNT), irrespective of the type of support material. In the course of studying macroscopic charge balance during transport experiments performed using a two compartment transport cell, it was observed that PPy films were non-permselective. A clear correlation between the change in pH in the receiving solution and the ions transported across the membrane was observed. A decrease in solution pH was detected when the polymer membrane acted primarily as an anion exchanger, while an increase in pH occurred when it functioned as a cation exchanger. When there was an approximately equal flux of anions and cations across the polymer membrane, the pH in the receiving solution was in the range 6 - 8. These observations suggest that macroscopic charge balance during the transport of cations and anions across polypyrrole membranes was maintained by introduction of anions (OH-) and cations (H+) produced via electrolysis of water.

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kuv., 11 x 16 cm

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kuv., 11 x 17 cm

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kuv., 11 x 16 cm

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kuv., 11 x 16 cm

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kuv., 11 x 15 cm

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kuv., 11 x 15 cm

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kuv., 12 x 15 cm