Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity

Temperature is an important parameter for many medical and biological applications. It is key to measuring the temperature of acoustofluidics devices for controlling the device’s temperature. In this paper, Rhodamine B was used to measure the temperature change of the microchannel induced by the SSA...

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Main Authors: Yiqing Li, Shoupeng Wei, Tengfei Zheng
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/12/8/934
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spelling doaj-28cfddb4fae249cc9860501babd3d13e2021-08-26T14:05:02ZengMDPI AGMicromachines2072-666X2021-08-011293493410.3390/mi12080934Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence IntensityYiqing Li0Shoupeng Wei1Tengfei Zheng2School of Mechatronic Engineering, Xi’an Technological University, Xi’an 710021, ChinaSchool of Mechanical Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaSchool of Mechanical Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaTemperature is an important parameter for many medical and biological applications. It is key to measuring the temperature of acoustofluidics devices for controlling the device’s temperature. In this paper, Rhodamine B was used to measure the temperature change of the microchannel induced by the SSAWs’ thermal effect in microfluidics. A thermocouple was integrated into the microfluidics device to calibrate the relationship between the fluorescent intensity ratios of Rhodamine B and the temperature. Then, the fluid temperature in the microchannel heated by the SSAWs was measured by the fluorescent signal intensity ratio in the acoustofluidics device. The fluid temperature with different input voltages and different flow rates was measured. The results show that SSAWs can heat the still fluid rapidly to 80 °c, and the flow rates will influence the temperature of the fluid. The results will be useful for precisely controlling the temperature of acoustofluidics devices.https://www.mdpi.com/2072-666X/12/8/934standing surface acoustic waves (SSAWs)fluorescent intensity ratiostemperature
collection DOAJ
language English
format Article
sources DOAJ
author Yiqing Li
Shoupeng Wei
Tengfei Zheng
spellingShingle Yiqing Li
Shoupeng Wei
Tengfei Zheng
Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
Micromachines
standing surface acoustic waves (SSAWs)
fluorescent intensity ratios
temperature
author_facet Yiqing Li
Shoupeng Wei
Tengfei Zheng
author_sort Yiqing Li
title Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
title_short Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
title_full Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
title_fullStr Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
title_full_unstemmed Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity
title_sort measurement of the thermal effect of standing surface acoustic waves in microchannel by fluoresence intensity
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2021-08-01
description Temperature is an important parameter for many medical and biological applications. It is key to measuring the temperature of acoustofluidics devices for controlling the device’s temperature. In this paper, Rhodamine B was used to measure the temperature change of the microchannel induced by the SSAWs’ thermal effect in microfluidics. A thermocouple was integrated into the microfluidics device to calibrate the relationship between the fluorescent intensity ratios of Rhodamine B and the temperature. Then, the fluid temperature in the microchannel heated by the SSAWs was measured by the fluorescent signal intensity ratio in the acoustofluidics device. The fluid temperature with different input voltages and different flow rates was measured. The results show that SSAWs can heat the still fluid rapidly to 80 °c, and the flow rates will influence the temperature of the fluid. The results will be useful for precisely controlling the temperature of acoustofluidics devices.
topic standing surface acoustic waves (SSAWs)
fluorescent intensity ratios
temperature
url https://www.mdpi.com/2072-666X/12/8/934
work_keys_str_mv AT yiqingli measurementofthethermaleffectofstandingsurfaceacousticwavesinmicrochannelbyfluoresenceintensity
AT shoupengwei measurementofthethermaleffectofstandingsurfaceacousticwavesinmicrochannelbyfluoresenceintensity
AT tengfeizheng measurementofthethermaleffectofstandingsurfaceacousticwavesinmicrochannelbyfluoresenceintensity
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