Ogitsu T., Sasaki K., Sugano M., Tanaka K., Takahashi N., Nakamoto T., Kimura N., Higashi N., Iida M., Sugawara S., Todesco E., Okada R., Musso A., Okada N., Kawamata H., Enomoto S., Ohata H.
Ключевые слова: LHC, luminosity, coils model, fabrication, test results, magnets dipole, quench properties, LTS, NbTi, design, design parameters, mechanical properties, stress distribution, strain effects, training effect, upgrade
Bottura L., Rossi L., Verweij A., Willering G., Siemko A., Bajko M., Fessia P., Hagen P., Modena M., Todesco E., Tommasini D., Auchmann B., Schmidt R., Rijk G.d., Perez J.C., Naour S.L., Bruning O., Tock J.
Ключевые слова: LHC, dip coating technique, training effect, LTS, NbTi, quench properties
Bottura L., Bordini B., Bajko M., Savary F., Willering G.P., Feuvrier J., Rijk G.d., Bajas H., Karppinen M., Guinchard M., Smekens D., Fiscarelli L., Bermudez S.I., Loffler C., Perez J.-C.
Bottura L., Bajko M., Hagen P., Savary F., Todesco E., Willering G.P., Charifoulline Z., Prin H., Naour S.L., Charrondiere M., Dib G., D'Angelo G., Ditsch O.
Ключевые слова: LHC, magnets dipole, test long-term operation, quench properties, heater, quench current, training effect
Ключевые слова: NMR magnet, quench protection, training effect, LTS, NbTi, damage mechanisms
Bottura L., Feher S., Verweij A., Willering G., Siemko A., Hagen P., Modena M., Todesco E., Auchmann B., Wollmann D., Steckert J., Charifoulline Z., Naour S.L., Tock J.-Ph., Bednarek M., Romera I.
Ключевые слова: LHC, magnets dipole, training effect, quench protection, LTS, NbTi, Rutherford cables
Boffo C., Holubek T., Walter W., Casalbuoni S., Grau A., Turenne M., Gerstl S., Jauregui D.S., Glamann N., Voutta R., Gerhard T.
Ключевые слова: magnets, conduction cooled systems, Hall sensor, design, fabrication, quench protection, LTS, NbTi, coils, homogeneity, magnetic field distribution, cryocoolers, stress distribution, mechanical properties, cryogenic systems, cryostat, thermal loads, cooling technology, quench current, training effect
Abramian P., Calero J., Toral F., Vazquez C., Garcнa-Tabarйs L., Molina E., Gutierrez J.L., Iturbe R., Minguez L., Munilla J.
Ключевые слова: accelerator magnets, cyclotron, forced flow, cooling technology, heat exchanger, cryogenic systems, LTS, NbTi, coils, quench, training effect
Bottura L., Ferracin P., Bordini B., Bajko M., Feuvrier J., Rijk G.d., Bajas H., Perez J.C., Rochepault E., Chiuchiolo A., Juchno M., Rysti J., Sarasola X., Grosclaude P.
Ключевые слова: LTS, Nb3Sn, strands, cables, design parameters, coils racetrack, coils model, test results, magnets dipole, training effect, quench properties, inductance, quench current, high field magnets
Dimarco J., Ambrosio G., Anerella M., Bajas H., Chlachidze G., Borgnolutti F., Bossert R., Cheng D., Dietderich D., Felice H., Holik T., Pan H., Ferracin P., Ghosh A., Godeke A., Hafalia A.R., Marchevsky M., Orris D., Ravaioli E., Sabbi G., Salmi T., Schmalzle J., Stoynev S., Strauss T., Sylvester C., Tartaglia M., Todesco E., Wanderer P., Wang X., Yu M.
Bottura L., Bordini B., Willering G., Bajko M., Savary F., Rijk G.d., Perez J.C., Karppinen M., Fiscarelli L., Bermudez S.I., Loffler C.
Ключевые слова: LTS, Nb3Sn, LHC, magnets dipole, test results, cryogenic systems, quench properties, quench protection, quench current, training effect, coils, quench detection, resistance, flux jumps, upgrade
Andreev N., Tartaglia M., Yamamoto A., Dimarco J., Kashikhin V., Kimura N., Cheban S., Makarov A., Orlov Y., Poloubotko V.
Ключевые слова: magnetic systems, fabrication, test results, conduction cooled systems, hybrid systems, LTS, NbTi, HTS, Bi2223/Ag, coils insert, design parameters, cryostat, training effect
Bottura L., Feher S., Verweij A., Willering G., Siemko A., Hagen P., Modena M., Todesco E., Auchmann B., Wollmann D., Steckert J., Tock J.-P., Charifoulline Z., Naour S.L., Bednarek M., Romera I.
Ключевые слова: LHC, magnets dipole, training effect, quench current
Barzi E., Andreev N., Zlobin A.V., Tartaglia M., Rossi L., Dimarco J., Turrioni D., Bossert R., Novitski I., Nobrega F., Auchmann B., Apollinari G., Buehler M., Chlachidze G., Velev G., Karppinen M., Smekens D., Bermudez S.I., .
Ключевые слова: LHC, LTS, Nb3Sn, magnets dipole, design parameters, quench current, quench protection, training effect, quench propagation, experimental results, upgrade
Godeke A., Caspi S., Gourlay S., Dietderich D.R., Wang X., Felice H., Marchevsky M., Prestemon S., Rochepault E., Hafalia A., Brouwer L.N., Lipton T.
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