
Alain Merlen
Émérite
CNU : SECTION 60 - MECANIQUE, GENIE MECANIQUE, GENIE CIVIL
Laboratoire / équipe
Publications
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"title_s":["Subsonic cavity flow control with Micro-Magneto-Mechanical Systems (MMMS) microvalves"],
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"title_s":["Open-loop cavity flow control with Micro-Magneto-Mechanical Systems (MMMS) microvalves"],
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"title_s":["High temperature gradient Pirani micro-sensor designed and tested for aerodynamic wall pressure measurement"],
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"citationFull_s":"Thomas Arnoult, Cécile Ghouila-Houri, Colin Leclercq, Aurélien Mazzamurro, Romain Viard, et al.. Cavity flow controlled with an array of magneto-mechanical micro-valves. <i>2021 IEEE Sensors</i>, Oct 2021, Sydney, Australia. pp.1-4, <a target=\"_blank\" href=\"https://dx.doi.org/10.1109/SENSORS47087.2021.9639871\">⟨10.1109/SENSORS47087.2021.9639871⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-03501259v1\">⟨hal-03501259⟩</a>",
"title_s":["Cavity flow controlled with an array of magneto-mechanical micro-valves"],
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"citationFull_s":"Cécile Ghouila-Houri, Manon Benedito, Eric Garnier, Abdelkrim Talbi, Aurélien Mazzamurro, et al.. High temperature gradient micro-sensors for skin-friction measurement in flow control applications. <i>2021 Symposium on Design, Test, Integration and Packaging of MEMS and MOEMS, DTIP 2021</i>, Aug 2021, Paris, France. <a target=\"_blank\" href=\"https://dx.doi.org/10.1109/DTIP54218.2021.9568681\">⟨10.1109/DTIP54218.2021.9568681⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-03541940v1\">⟨hal-03541940⟩</a>",
"title_s":["High temperature gradient micro-sensors for skin-friction measurement in flow control applications"],
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"citationFull_s":"Amir Modarreszadeh, Evgeny Timofeev, Alain Merlen, Philippe Pernod. Numerical simulation of the interaction of wave phase conjugation with bubble clouds. <i>International Journal of Multiphase Flow</i>, 2021, 141, pp.103638. <a target=\"_blank\" href=\"https://dx.doi.org/10.1016/j.ijmultiphaseflow.2021.103638\">⟨10.1016/j.ijmultiphaseflow.2021.103638⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-03310456v1\">⟨hal-03310456⟩</a>",
"title_s":["Numerical simulation of the interaction of wave phase conjugation with bubble clouds"],
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"title_s":["MEMS High Temperature Gradient Sensor for Skin-Friction Measurements in Highly Turbulent Flows"],
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"citationFull_s":"Romain Viard, Abdelkrim Talbi, Cécile Ghouila-Houri, Azeddine Kourta, Alain Merlen, et al.. Magneto-mechanical micro-valve for active flow control. <i>Sensors and Actuators A: Physical </i>, 2020, 316, pp.112387. <a target=\"_blank\" href=\"https://dx.doi.org/10.1016/j.sna.2020.112387\">⟨10.1016/j.sna.2020.112387⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-03103973v1\">⟨hal-03103973⟩</a>",
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"title_s":["Aerodynamic wall pressure measurement using a high temperature gradient Pirani micro-sensor"],
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"citationRef_s":"<i>Smart Materials and Structures</i>, 2019, 28 (125003), pp.1-9. <a target=\"_blank\" href=\"https://dx.doi.org/10.1088/1361-665X/ab4be4\">⟨10.1088/1361-665X/ab4be4⟩</a>",
"citationFull_s":"Cécile Ghouila-Houri, Abdelkrim Talbi, Romain Viard, Quentin Gallas, Eric Garnier, et al.. High temperature gradient micro-sensors array for flow separation detection and control. <i>Smart Materials and Structures</i>, 2019, 28 (125003), pp.1-9. <a target=\"_blank\" href=\"https://dx.doi.org/10.1088/1361-665X/ab4be4\">⟨10.1088/1361-665X/ab4be4⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-02476042v1\">⟨hal-02476042⟩</a>",
"title_s":["High temperature gradient micro-sensors array for flow separation detection and control","Bande de micro-capteurs à fort gradient thermique pour la détection du décollemen et son contrôle"],
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"citationRef_s":"<i>2019 IEEE SENSORS</i>, Oct 2019, Montréal, Canada. <a target=\"_blank\" href=\"https://dx.doi.org/10.1109/SENSORS43011.2019.8956802\">⟨10.1109/SENSORS43011.2019.8956802⟩</a>",
"citationFull_s":"Cécile Ghouila-Houri, Abdelkrim Talbi, Romain Viard, Quentin Gallas, Eric Garnier, et al.. MEMS high temperature gradient sensor for skin-friction measurements in highly turbulent flows. <i>2019 IEEE SENSORS</i>, Oct 2019, Montréal, Canada. <a target=\"_blank\" href=\"https://dx.doi.org/10.1109/SENSORS43011.2019.8956802\">⟨10.1109/SENSORS43011.2019.8956802⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-02904476v1\">⟨hal-02904476⟩</a>",
"title_s":["MEMS high temperature gradient sensor for skin-friction measurements in highly turbulent flows","Capteur thermique MEMS pour la mesure du frottement dans les éouclements fortement turbulents"],
"authFullName_s":["Cécile Ghouila-Houri","Abdelkrim Talbi","Romain Viard","Quentin Gallas","Eric Garnier","Pascal Molton","Jérôme Delva","Alain Merlen","Philippe Pernod"],
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"title_s":["Thermal pressure high temperature gradient micro-sensor for aerodynamic measurements"],
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"citationFull_s":"Abdelkrim Talbi, Romain Viard, Cécile Ghouila-Houri, Éric Garnier, Quentin Gallas, et al.. IEMN/LEMAC-LICS Magneto-mechanical micro-actuators and active flow control: review of the last 15 years results. <i>EUCASS 2019</i>, Jul 2019, Madrid, Spain. <a target=\"_blank\" href=\"https://hal.science/hal-02907145v1\">⟨hal-02907145⟩</a>",
"title_s":["IEMN/LEMAC-LICS Magneto-mechanical micro-actuators and active flow control: review of the last 15 years results","Micro-actionneurs magnéto-mécanique IEMN/LEMAC-LICS pour le contrôle actif des écoulements : retour des 15 dernières années"],
"authFullName_s":["Abdelkrim Talbi","Romain Viard","Cécile Ghouila-Houri","Éric Garnier","Quentin Gallas","Azeddine Kourta","Denis Sipp","Alain Merlen","Philippe Pernod"],
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"title_s":["MEMS calorimetric transducers for flow separation detection and control"],
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"citationRef_s":"<i>Experiments in Fluids</i>, 2019, 60 (4), pp.1-10. <a target=\"_blank\" href=\"https://dx.doi.org/10.1007/s00348-019-2714-5\">⟨10.1007/s00348-019-2714-5⟩</a>",
"citationFull_s":"Cécile Ghouila-Houri, Abdelkrim Talbi, Romain Viard, Quentin Gallas, Eric Garnier, et al.. Unsteady flows measurements using a calorimetric wall shear stress micro-sensor. <i>Experiments in Fluids</i>, 2019, 60 (4), pp.1-10. <a target=\"_blank\" href=\"https://dx.doi.org/10.1007/s00348-019-2714-5\">⟨10.1007/s00348-019-2714-5⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-02476029v1\">⟨hal-02476029⟩</a>",
"title_s":["Unsteady flows measurements using a calorimetric wall shear stress micro-sensor"],
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"citationRef_s":"<i>Applied Physics Letters</i>, 2017, 111, pp.113502. <a target=\"_blank\" href=\"https://dx.doi.org/10.1063/1.4995364\">⟨10.1063/1.4995364⟩</a>",
"citationFull_s":"Cécile Ghouila-Houri, Abdelkrim Talbi, R. Viard, M. Moutaouekkil, O. Elmazria, et al.. High temperature gradient nanogap-Pirani micro-sensor with maximum sensitivity around atmospheric pressure. <i>Applied Physics Letters</i>, 2017, 111, pp.113502. <a target=\"_blank\" href=\"https://dx.doi.org/10.1063/1.4995364\">⟨10.1063/1.4995364⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-01635348v1\">⟨hal-01635348⟩</a>",
"title_s":["High temperature gradient nanogap-Pirani micro-sensor with maximum sensitivity around atmospheric pressure"],
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"citationFull_s":"Cécile Ghouila-Houri, Quentin Gallas, Eric Garnier, Alain Merlen, Romain Viard, et al.. High temperature gradient calorimetric wall shear stress micro-sensor for flow separation detection. <i>Sensors and Actuators A: Physical </i>, 2017, 266, pp.232-241. <a target=\"_blank\" href=\"https://dx.doi.org/10.1016/j.sna.2017.09.030\">⟨10.1016/j.sna.2017.09.030⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-01705613v1\">⟨hal-01705613⟩</a>",
"title_s":["High temperature gradient calorimetric wall shear stress micro-sensor for flow separation detection"],
"authFullName_s":["Cécile Ghouila-Houri","Quentin Gallas","Eric Garnier","Alain Merlen","Romain Viard","Abdelkrim Talbi","Philippe Pernod"],
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"citationRef_s":"<i>Applied Physics Letters</i>, 2016, 109 (241905), 4 p. <a target=\"_blank\" href=\"https://dx.doi.org/10.1063/1.4972402\">⟨10.1063/1.4972402⟩</a>",
"citationFull_s":"Cécile Ghouila-Houri, J. Claudel, J.C. Gerbedoen, Q. Gallas, E. Garnier, et al.. High temperature gradient micro-sensor for wall shear stress and flow direction measurements. <i>Applied Physics Letters</i>, 2016, 109 (241905), 4 p. <a target=\"_blank\" href=\"https://dx.doi.org/10.1063/1.4972402\">⟨10.1063/1.4972402⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-01432220v1\">⟨hal-01432220⟩</a>",
"title_s":["High temperature gradient micro-sensor for wall shear stress and flow direction measurements","Micro-capteur à fort gradient de température pour des mesures de frottement pariétal et de direction de l'écoulement"],
"authFullName_s":["Cécile Ghouila-Houri","J. Claudel","J.C. Gerbedoen","Q. Gallas","E. Garnier","A. Merlen","R. Viard","Abdelkrim Talbi","Philippe Pernod"],
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"citationFull_s":"Cécile Ghouila-Houri, J. Claudel, J.C. Gerbedoen, Q. Gallas, E. Garnier, et al.. Very high aspect ratio hot-wire based MEMS thermal sensor for near wall turbulent flow measurement with high sensitivity and low power consumption. 2016. <a target=\"_blank\" href=\"https://hal.science/hal-01396294v1\">⟨hal-01396294⟩</a>",
"title_s":["Very high aspect ratio hot-wire based MEMS thermal sensor for near wall turbulent flow measurement with high sensitivity and low power consumption"],
"authFullName_s":["Cécile Ghouila-Houri","J. Claudel","J.C. Gerbedoen","Q. Gallas","E. Garnier","A. Merlen","R. Viard","Abdelkrim Talbi","Philippe Pernod"],
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"citationRef_s":"<i>Langmuir</i>, 2016, 32 (11), pp.2679-2686. <a target=\"_blank\" href=\"https://dx.doi.org/10.1021/acs.langmuir.6b00070\">⟨10.1021/acs.langmuir.6b00070⟩</a>",
"citationFull_s":"Damien Debuisson, Alain Merlen, Vincent Senez, S. Arscott. Stick–Jump (SJ) Evaporation of Strongly Pinned Nanoliter Volume Sessile Water Droplets on Quick Drying, Micropatterned Surfaces. <i>Langmuir</i>, 2016, 32 (11), pp.2679-2686. <a target=\"_blank\" href=\"https://dx.doi.org/10.1021/acs.langmuir.6b00070\">⟨10.1021/acs.langmuir.6b00070⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-02345462v1\">⟨hal-02345462⟩</a>",
"title_s":["Stick–Jump (SJ) Evaporation of Strongly Pinned Nanoliter Volume Sessile Water Droplets on Quick Drying, Micropatterned Surfaces"],
"authFullName_s":["Damien Debuisson","Alain Merlen","Vincent Senez","S. Arscott"],
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"citationRef_s":"<i>AIAA Journal</i>, 2015, 53 (5), p. 1146-1158. <a target=\"_blank\" href=\"https://dx.doi.org/10.2514/1.J053085\">⟨10.2514/1.J053085⟩</a>",
"citationFull_s":"M. Zeidler, E. Garnier, R. Cayzac, A. Merlen. Fluidic Control of a 155 Millimeter Spin-Stabilized Projectile Using Coanda Effect. <i>AIAA Journal</i>, 2015, 53 (5), p. 1146-1158. <a target=\"_blank\" href=\"https://dx.doi.org/10.2514/1.J053085\">⟨10.2514/1.J053085⟩</a>. <a target=\"_blank\" href=\"https://hal.science/hal-01226390v1\">⟨hal-01226390⟩</a>",
"title_s":["Fluidic Control of a 155 Millimeter Spin-Stabilized Projectile Using Coanda Effect"],
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"citationRef_s":"<i>AIAA AVIATION 2014</i>, Jun 2014, Atlanta, United States",
"citationFull_s":"A. Arntz, O. Atinault, D. Destarac, A. Merlen. Exergy-based Aircraft Aeropropulsive Performance Assessment: CFD Application to Boundary Layer Ingestion. <i>AIAA AVIATION 2014</i>, Jun 2014, Atlanta, United States. <a target=\"_blank\" href=\"https://onera.hal.science/hal-01068957v1\">⟨hal-01068957⟩</a>",
"title_s":["Exergy-based Aircraft Aeropropulsive Performance Assessment: CFD Application to Boundary Layer Ingestion"],
"authFullName_s":["A. Arntz","O. Atinault","D. Destarac","A. Merlen"],
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