Enthalpy-Sensing Microsystem Effective in Continuous Flow

A new microsystem designed to detect and measure in real time the enthalpy of mixing of two fluid constituents is presented. A preliminary approach to quantify the enthalpy of dilution values or mixing is first discussed. Then, a coherent rationale leading to structure devices operating in real time...

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Main Authors: Taoufik Mhammedi, Lionel Camberlein, Frédéric Polet, Bruno Bêche, Etienne Gaviot
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/3/566
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spelling doaj-1ada4403489f4d4a826492f09850182b2020-11-25T00:11:32ZengMDPI AGSensors1424-82202019-01-0119356610.3390/s19030566s19030566Enthalpy-Sensing Microsystem Effective in Continuous FlowTaoufik Mhammedi0Lionel Camberlein1Frédéric Polet2Bruno Bêche3Etienne Gaviot4Laboratoire d’Acoustique de l’Université du Mans, LAUM, UMR CNRS 6613, 72085 Le Mans, FranceLaboratoire d’Acoustique de l’Université du Mans, LAUM, UMR CNRS 6613, 72085 Le Mans, FranceLaboratoire d’Acoustique de l’Université du Mans, LAUM, UMR CNRS 6613, 72085 Le Mans, FranceInstitut de Physique de Rennes, IPR, UMR CNRS 6251, 35042 Rennes, FranceLaboratoire d’Acoustique de l’Université du Mans, LAUM, UMR CNRS 6613, 72085 Le Mans, FranceA new microsystem designed to detect and measure in real time the enthalpy of mixing of two fluid constituents is presented. A preliminary approach to quantify the enthalpy of dilution values or mixing is first discussed. Then, a coherent rationale leading to structure devices operating in real time is formulated, considering the straightforward assessment of heat-flux transducers (HFTs) capability. Basic thermodynamic observations regarding the analogy between thermal and electrical systems are highlighted prior consideration of practical examples involving mixing water and alcohols. Fundamentals about HFT design are highlighted before presenting an adequate way to integrate both functions of mixing and measuring the entailed heat exchange as two continuously flowing fluids interact with one another. Thereby, the development of a relevant prototype of such a dedicated microsystem is discussed. Its design, fabrication and implementation under real operating conditions are presented together with its assessed performance and limits so as to highlight the advantages and shortcomings of the concept.https://www.mdpi.com/1424-8220/19/3/566heat flux transducerplanar thermopileenthalpy of mixingconjugated variables3D-printed mixing chamberSU8 channelsthermal differential and common modes
collection DOAJ
language English
format Article
sources DOAJ
author Taoufik Mhammedi
Lionel Camberlein
Frédéric Polet
Bruno Bêche
Etienne Gaviot
spellingShingle Taoufik Mhammedi
Lionel Camberlein
Frédéric Polet
Bruno Bêche
Etienne Gaviot
Enthalpy-Sensing Microsystem Effective in Continuous Flow
Sensors
heat flux transducer
planar thermopile
enthalpy of mixing
conjugated variables
3D-printed mixing chamber
SU8 channels
thermal differential and common modes
author_facet Taoufik Mhammedi
Lionel Camberlein
Frédéric Polet
Bruno Bêche
Etienne Gaviot
author_sort Taoufik Mhammedi
title Enthalpy-Sensing Microsystem Effective in Continuous Flow
title_short Enthalpy-Sensing Microsystem Effective in Continuous Flow
title_full Enthalpy-Sensing Microsystem Effective in Continuous Flow
title_fullStr Enthalpy-Sensing Microsystem Effective in Continuous Flow
title_full_unstemmed Enthalpy-Sensing Microsystem Effective in Continuous Flow
title_sort enthalpy-sensing microsystem effective in continuous flow
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-01-01
description A new microsystem designed to detect and measure in real time the enthalpy of mixing of two fluid constituents is presented. A preliminary approach to quantify the enthalpy of dilution values or mixing is first discussed. Then, a coherent rationale leading to structure devices operating in real time is formulated, considering the straightforward assessment of heat-flux transducers (HFTs) capability. Basic thermodynamic observations regarding the analogy between thermal and electrical systems are highlighted prior consideration of practical examples involving mixing water and alcohols. Fundamentals about HFT design are highlighted before presenting an adequate way to integrate both functions of mixing and measuring the entailed heat exchange as two continuously flowing fluids interact with one another. Thereby, the development of a relevant prototype of such a dedicated microsystem is discussed. Its design, fabrication and implementation under real operating conditions are presented together with its assessed performance and limits so as to highlight the advantages and shortcomings of the concept.
topic heat flux transducer
planar thermopile
enthalpy of mixing
conjugated variables
3D-printed mixing chamber
SU8 channels
thermal differential and common modes
url https://www.mdpi.com/1424-8220/19/3/566
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AT lionelcamberlein enthalpysensingmicrosystemeffectiveincontinuousflow
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AT brunobeche enthalpysensingmicrosystemeffectiveincontinuousflow
AT etiennegaviot enthalpysensingmicrosystemeffectiveincontinuousflow
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