Academic literature on the topic 'Gas stopping cell'

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Journal articles on the topic "Gas stopping cell"

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Droese, C., S. Eliseev, K. Blaum, et al. "The cryogenic gas stopping cell of SHIPTRAP." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 338 (November 2014): 126–38. http://dx.doi.org/10.1016/j.nimb.2014.08.004.

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Wense, L. v. d., B. Seiferle, M. Laatiaoui, and P. G. Thirolf. "The extraction of 229Th3+ from a buffer-gas stopping cell." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 376 (June 2016): 260–64. http://dx.doi.org/10.1016/j.nimb.2015.12.049.

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Sytema, A., J. E. van den Berg, O. Böll, et al. "A gas cell for stopping, storing and polarizing radioactive particles." Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 822 (June 2016): 77–81. http://dx.doi.org/10.1016/j.nima.2016.03.086.

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Novoselov, A. S., A. M. Rodin, A. M. Abakumov, et al. "Cryogenic gas stopping cell warm tests with 223Ra alpha source." Journal of Physics: Conference Series 2984, no. 1 (2025): 012024. https://doi.org/10.1088/1742-6596/2984/1/012024.

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Abstract This paper contains information about new setup named as Cryogenic gas stopping cell developed at the Flerov laboratory of nuclear reactions at the Joint institute for nuclear research. The main task of the Cryogenic gas stopping cell (CGSC) is the transformation of the secondary rare ion beams produced in nuclear reactions. These high energy and large emittance beams are converted into low-energy ones with small emittance and low energy spread. Today this setup is under testing stage. The aim of these tests was to obtain the information about optimal technical parameters of the setup
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Kaleja, O., B. Anđelić, K. Blaum, et al. "The performance of the cryogenic buffer-gas stopping cell of SHIPTRAP." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 463 (January 2020): 280–85. http://dx.doi.org/10.1016/j.nimb.2019.05.009.

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Eliseev, S. A., M. Block, A. Chaudhuri, et al. "Extraction efficiency and extraction time of the SHIPTRAP gas-filled stopping cell." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 258, no. 2 (2007): 479–84. http://dx.doi.org/10.1016/j.nimb.2007.01.291.

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Ranjan, M., S. Purushothaman, T. Dickel, et al. "New stopping cell capabilities: RF carpet performance at high gas density and cryogenic operation." EPL (Europhysics Letters) 96, no. 5 (2011): 52001. http://dx.doi.org/10.1209/0295-5075/96/52001.

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Huyse, Mark, Marius Facina, Yuri Kudryavtsev, Piet Van Duppen, and ISOLDE collaboration. "Intensity limitations of a gas cell for stopping, storing and guiding of radioactive ions." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 187, no. 4 (2002): 535–47. http://dx.doi.org/10.1016/s0168-583x(01)01152-1.

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Matsuda, Yoshiyuki, Takahiro Shimizu, and Daichi Imamura. "Effect of Formic Acid on Fuel Cell Performance for Automobile Applications." ECS Transactions 114, no. 5 (2024): 403–13. http://dx.doi.org/10.1149/11405.0403ecst.

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Single-cell tests and exhaust gas analyses were conducted to understand the reaction behavior of formic acid (HCOOH) and its effect on fuel cell performance, as specified in the hydrogen quality standard for fuel cell vehicles. HCOOH decreased the voltage with increasing concentration, but the effect was smaller than that of carbon monoxide and performance was recovered by stopping the HCOOH supply. Exhaust gas analysis during the fuel cell operation and electrochemical measurements with HCOOH adsorbed on the electrocatalyst showed that the HCOOH supplied to the anode should permeate the elect
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Matsuda, Yoshiyuki, Takahiro Shimizu, and Daichi Imamura. "Effect of Formic Acid on Fuel Cell Performance for Automobile Applications." ECS Transactions 114, no. 5 (2024): 389–99. http://dx.doi.org/10.1149/11405.0389ecst.

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Single-cell tests and exhaust gas analyses were conducted to understand the reaction behavior of formic acid (HCOOH) and its effect on fuel cell performance, as specified in the hydrogen quality standard for fuel cell vehicles. HCOOH decreased the voltage with increasing concentration, but the effect was smaller than that of carbon monoxide and performance was recovered by stopping the HCOOH supply. Exhaust gas analysis during the fuel cell operation and electrochemical measurements with HCOOH adsorbed on the electrocatalyst showed that the HCOOH supplied to the anode should permeate the elect
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Dissertations / Theses on the topic "Gas stopping cell"

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Reiter, Moritz Pascal [Verfasser]. "Pilot experiments with relativistic uranium projectile and fission fragments thermalized in a cryogenic gas-filled stopping cell / Moritz Pascal Reiter." Gießen : Universitätsbibliothek, 2015. http://d-nb.info/1080475966/34.

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Dong, Wenling. "Developments for the laser spectroscopy of exotic nuclei with the S³ Low Energy Branch and the FRIENDS³ project." Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPASP149.

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Cette thèse présente une série de développements visant à réaliser la spectroscopie laser à ionisation résonante sur des isotopes à vie courte produits par le Spectromètre Super Séparateur (S³) et stoppés dans la cellule à gaz de sa branche basse énergie (S³-LEB). Cette recherche se concentre sur deux sujets. Tout d'abord, des mesures de spectroscopie laser hors ligne ont été réalisées sur des isotopes stables d'erbium, l'élément de choix pour la mise en service en ligne de S³-LEB. Ces mesures ont été réalisées en utilisant la configuration complète de S³-LEB ainsi que la gamme de systèmes las
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Conference papers on the topic "Gas stopping cell"

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Omeke, J., S. Misra, and A. Retnanto. "Fusing Data-Driven Insights with Physics for Underground Hydrogen Storage." In ADIPEC. SPE, 2024. http://dx.doi.org/10.2118/222710-ms.

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Abstract Underground Hydrogen Storage (UHS) in aquifer reservoirs is pivotal for stabilizing the supply of renewable energy, addressing its inherent variability. As UHS technology evolves, the need for analyses that capture the complex interactions of hydrogen within subsurface environments becomes increasingly critical. To meet this requirement, we utilize the Eclipse 300 compositional simulator with the GASWAT option to generate high-fidelity datasets, which model the intricate gas-aqueous phase equilibria essential for understanding hydrogen behavior underground. These datasets, while funda
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