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    Eltron Research

    企业EST. 1982
    90论文总数
    5,835引用总数

    论文量&引用量时间轴

    机构学者

    排序
    Af Sammells
    Af Sammells
    Eltron Res Inc
    论文:45引用:0H-index:0
    Rl Cook
    Rl Cook
    ELTRON RES INC
    论文:26引用:0H-index:0
    robert c macduff
    robert c macduff
    Eltron Research, Inc.
    论文:14引用:0H-index:0
    Kw Semkow
    Kw Semkow
    ELTRON RES INC
    论文:11引用:0H-index:0
    Michael T. Carter
    Michael T. Carter
    Space Science Division, Naval Research Laboratory
    论文:9引用:0H-index:0
    Anthony F. Sammells
    Anthony F. Sammells
    Eltron Research, Inc.
    论文:8引用:0H-index:0
    Michael V. Mundschau
    Michael V. Mundschau
    Bowling Green State University
    论文:3引用:0H-index:0
    Ross C. Thomas
    Ross C. Thomas
    Eltron Res Inc
    论文:3引用:0H-index:0
    E.F. Spiegel
    E.F. Spiegel
    Eltron Res Inc
    论文:3引用:0H-index:0

    论文(90)

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    1Investigation of Thermal and Catalytic Degradation of Polystyrene Waste into Styrene Monomer over Natural Volcanic Tuff and Florisil Catalysts
    Miuţa R. Filip,Aurelia Pop,Ioana Perhaiţa,Mărioara Moldovan,Roxana Truşcă

    Thermal and catalytic degradation of polystyrene waste over two different samples of natural volcanic tuff catalyst comparative with Florisil catalyst has been carried out in order to establish the conversion degree into styrene monomer. The polystyrene waste (PS) was subjected to a thermal degradation process in the range of 380–500°C in presence of studied catalysts in a ratio of 1/10 in mass, catalyst/PS. The catalysts were characterized by N 2 adsorption-desorption isotherms (BET), Scanning Electron Microscopy (SEM) and Fourier-transform infrared spectrometry (FTIR). Influences of temperature and type of catalysts on the yields and on the distribution of end-products obtained by thermal and catalytic degradation of polystyrene waste have been studied. The maximum yields of liquid products were obtained at 460°C degradation temperature and were calculated between 83.45% and 90.11%. The liquid products were characterized by gas chromatography mass spectrometry (GC-MS) and FTIR analytical techniques. The GC-MS results showed that the liquid products contained styrene monomer up to 55.62%. The FTIR spectra of liquid products indicated the specific vibration bands of the functional groups of compounds of liquid products. The amounts of styrene monomer obtained were influenced by structural and textural properties of studied catalyst and the contribution on product distribution is discussed.

    2013Central European Journal of Chemistry(2013)引用:19
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    2Dissolution/Deposition of Zinc in the Deionized Water (60 < T (°C) < 93.3)
    Jong-Hee Park,Peter Mast, Jeffery Poska
    2013ECS Meeting Abstracts(2013)
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    3Ocular Cytotoxic Potential Assessment of Contact Lens Care Solutions and Evidence for A Useful Rinse Step with Unpreserved Solution
    Mélody Dutot,Jacques Vincent,Isabelle Fabre,Christine Grasmick,Roxane Fagon,Patrice Rat
    2012引用:24
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    4Trzy Obudowy Do Zastosowania W Technice Testowania I Pomiarów
    M. Kowalski
    2012Napędy i Sterowanie(2012)
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    5Electrochemical Ultracapacitors Using Graphitic Nanostacks
    Christopher Marotta

    Electrochemical ultracapacitors (ECs) have been developed using graphitic nanostacks as the electrode material. The advantages of this technology will be the reduction of device size due to superior power densities and relative powers compared to traditional activated carbon electrodes. External testing showed that these materials display reduced discharge response times compared to state-of-the-art materials. Such applications are advantageous for pulsed power applications such as burst communications (satellites, cell phones), electromechanical actuators, and battery load leveling in electric vehicles. These carbon nanostructures are highly conductive and offer an ordered mesopore network. These attributes will provide more complete electrolyte wetting, and faster release of stored charge compared to activated carbon. Electrochemical capacitor (EC) electrode materials were developed using commercially available nanomaterials and modifying them to exploit their energy storage properties. These materials would be an improvement over current ECs that employ activated carbon as the electrode material. Commercially available graphite nanofibers (GNFs) are used as precursor materials for the synthesis of graphitic nanostacks (GNSs). These materials offer much greater surface area than graphite flakes. Additionally, these materials offer a superior electrical conductivity and a greater average pore size compared to activated carbon electrodes. The state of the art in EC development uses activated carbon (AC) as the electrode material. AC has a high surface area, but its small average pore size inhibits electrolyte ingress/egress. Additionally, AC has a higher resistivity, which generates parasitic heating in high-power applications. This work focuses on fabricating EC from carbon that has a very different structure by increasing the surface area of the GNF by intercalation or exfoliation of the graphitic basal planes. Additionally, various functionalities to the GNS surface will be added that can exhibit pseudocapacitance. This pseudocapacitance exhibits faradaic (charge transfer) properties that can further increase the overall relative and volumetric capacitance of the material. A process is also proposed to use GNF as a precursor material to fabricate GNS that will be used as EC electrodes. This results in much better electrical conductivity than activated carbon. This is advantageous for high-pulsed-power applications to reduce parasitic heating. Larger average pore size allows more complete electrolyte wetting (faster charge transfer kinetics). These properties contribute to a lowered equivalent series resistance (ESR), increased specific power, shorter charging times, and decreased parasitic heating. The high density of basal plane edges provides nucleation sites for activation (addition of hydrophilic functional groups) that facilitate electrolyte wetting, and will contribute to pseudocapacitance.

    2012
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    合作机构(17)

    巴贝什-博雅伊大学合作论文 1
    三星合作论文 1
    Agence Nationale de Sécurité du Médicament et des Produits de Santé合作论文 1
    Cryogenic Industries (United States)合作论文 1
    Edison International (United States)合作论文 1
    International Flavors & Fragrances Inc.合作论文 1
    查尔姆斯理工大学合作论文 1
    洛桑联邦理工学院合作论文 1
    肯塔基大学合作论文 1
    愛納康合作论文 1

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