3 resultados para Sediment-water Interface
em Doria (National Library of Finland DSpace Services) - National Library of Finland, Finland
Resumo:
Vesistöissä laivojen pintaan tarttuvat eliöt ovat sekä taloudellinen että kosmeettinen ongelma. Kontrolloimattoman eliöiden kiinnittymisen seurauksena aiheutuu kitkaa, joka puolestaan hidastaa laivan nopeutta ja aiheuttaa polttoaineen kulutuksen kasvua. Tavallisesti eliöiden kiinnittymistä ehkäistään kiinnittymisenestomaalien avulla. Niiden toiminta perustuu biosidien liukenemiseen, jolloin veden ja pinnoitteen väliselle rajapinnalle muodostuu korkea biosidipitoisuus, joka estää eliöiden kiinnittymistä pinnalle. Maailmanlaajuinen orgaanisten tinayhdisteiden käyttökielto kiinnittymisen-estomaaleissa tulee voimaan vuoden 2003 alusta. Tällä hetkellä 70 % maailman laivastoista on suojattu orgaanista tinayhdistettä sisältävällä kiinnittymisenestomaalilla. Nyt onkin kasvava tarve kehittää uusia ympäristöystävällisempiä kiinnittymisenesto-pinnoitteita. Todennäköisesti tinayhdisteet tullaan korvaamaan synteettisillä orgaanisilla yhdisteillä käytettyinä yhdessä kuparin kanssa. Työn tarkoituksena oli valmistaa ympäristöystävällisempi tyydyttämätön polyesteripinnoite, joka itsessään ehkäisisi eliöiden kiinnittymistä. Kirjallisuusosassa tutustuttiin markkinoilla oleviin biosideihin, niiden myrkyllisyyteen ja vaikutuksiin ympäristölle sekä muuttuvaan lainsäädäntöön. Työssä tarkasteltiin myös tällä hetkellä markkinoilla olevia pinnoitteita ja niiden toimintamekanismeja sekä myrkyttömiä vaihtoehtopinnoitteita kiinnittymisenestoon. Kokeellinen osa koostui kahdesta osasta. Ensimmäisessä osassa tutkittiin biosidien sopivuutta käytettäväksi yhdessä tyydyttymättömän polyesterin kanssa. Yhteensopivuutta määritettiin applikaatiotesteillä ja pinnoitteen käyttäytymisen perusteella. Toinen vaihe oli selvittää pinnoitteen tehokkuus leväntarttumista vastaan. Tyydyttymätön polyesteri gel coat kiinnittymisenesto-ominaisuuksilla valmistettiin dispergoimalla biosideja tyydyttymättömään polyesterigeeliin. Yhteensopivuustestien tulosten perusteella huomattiin, ettei biosidien lisääminen geeliin vaikuta mainittavasti applikaatio-ominaisuuksien huononemiseen. Brookfield viskositeetin stabiilisuus jopa paranee ja yksi työssä käytetyistä biosideista parantaa pinnoitteen säänkestoominaisuuksia. Tässä työssä ei pystytty määrittämään eri biosidien välisiä eroja tehokkuudessa levää vastaan.
Resumo:
The condensation rate has to be high in the safety pressure suppression pool systems of Boiling Water Reactors (BWR) in order to fulfill their safety function. The phenomena due to such a high direct contact condensation (DCC) rate turn out to be very challenging to be analysed either with experiments or numerical simulations. In this thesis, the suppression pool experiments carried out in the POOLEX facility of Lappeenranta University of Technology were simulated. Two different condensation modes were modelled by using the 2-phase CFD codes NEPTUNE CFD and TransAT. The DCC models applied were the typical ones to be used for separated flows in channels, and their applicability to the rapidly condensing flow in the condensation pool context had not been tested earlier. A low Reynolds number case was the first to be simulated. The POOLEX experiment STB-31 was operated near the conditions between the ’quasi-steady oscillatory interface condensation’ mode and the ’condensation within the blowdown pipe’ mode. The condensation models of Lakehal et al. and Coste & Lavi´eville predicted the condensation rate quite accurately, while the other tested ones overestimated it. It was possible to get the direct phase change solution to settle near to the measured values, but a very high resolution of calculation grid was needed. Secondly, a high Reynolds number case corresponding to the ’chugging’ mode was simulated. The POOLEX experiment STB-28 was chosen, because various standard and highspeed video samples of bubbles were recorded during it. In order to extract numerical information from the video material, a pattern recognition procedure was programmed. The bubble size distributions and the frequencies of chugging were calculated with this procedure. With the statistical data of the bubble sizes and temporal data of the bubble/jet appearance, it was possible to compare the condensation rates between the experiment and the CFD simulations. In the chugging simulations, a spherically curvilinear calculation grid at the blowdown pipe exit improved the convergence and decreased the required cell count. The compressible flow solver with complete steam-tables was beneficial for the numerical success of the simulations. The Hughes-Duffey model and, to some extent, the Coste & Lavi´eville model produced realistic chugging behavior. The initial level of the steam/water interface was an important factor to determine the initiation of the chugging. If the interface was initialized with a water level high enough inside the blowdown pipe, the vigorous penetration of a water plug into the pool created a turbulent wake which invoked the chugging that was self-sustaining. A 3D simulation with a suitable DCC model produced qualitatively very realistic shapes of the chugging bubbles and jets. The comparative FFT analysis of the bubble size data and the pool bottom pressure data gave useful information to distinguish the eigenmodes of chugging, bubbling, and pool structure oscillations.
Resumo:
Ceramides comprise a class of sphingolipids that exist only in small amounts in cellular membranes, but which have been associated with important roles in cellular signaling processes. The influences that ceramides have on the physical properties of bilayer membranes reach from altered thermodynamical behavior to significant impacts on the molecular order and lateral distribution of membrane lipids. Along with the idea that the membrane physical state could influence the physiological state of a cell, the membrane properties of ceramides have gained increasing interest. Therefore, membrane phenomena related to ceramides have become a subject of intense study both in cellular as well as in artificial membranes. Artificial bilayers, the so called model membranes, are substantially simpler in terms of contents and spatio-temporal variation than actual cellular membranes, and can be used to give detailed information about the properties of individual lipid species in different environments. This thesis focuses on investigating how the different parts of the ceramide molecule, i.e., the N-linked acyl chain, the long-chain sphingoid base and the membrane-water interface region, govern the interactions and lateral distribution of these lipids in bilayer membranes. With the emphasis on ceramide/sphingomyelin(SM)-interactions, the relevance of the size of the SMhead group for the interaction was also studied. Ceramides with methylbranched N-linked acyl chains, varying length sphingoid bases, or methylated 2N (amide-nitrogen) and 3O (C3-hydroxyl) at the interface region, as well as SMs with decreased head group size, were synthesized and their bilayer properties studied by calorimetric and fluorescence spectroscopic techniques. In brief, the results showed that the packing of the ceramide acyl chains was more sensitive to methyl-branching in the mid part than in the distal end of the N-linked chain, and that disrupting the interfacial structure at the amide-nitrogen, as opposed to the C3-hydroxyl, had greater effect on the interlipid interactions of ceramides. Interestingly, it appeared that the bilayer properties of ceramides could be more sensitive to small alterations in the length of the long-chain base than what was previously reported for the N-linked acyl chain. Furthermore, the data indicated that the SM-head group does not strongly influence the interactions between SMs and ceramides. The results in this thesis illustrate the pivotal role of some essential parts of the ceramide molecules in determining their bilayer properties. The thesis provides increased understanding of the molecular aspects of ceramides that possibly affect their functions in biological membranes, and could relate to distinct effects on cell physiology.