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Applied Sciences
  • Retraction
  • Open Access

11 November 2020

RETRACTED: Nebhen et al. Constant Temperature Anemometer with Self-Calibration Closed Loop Circuit. Appl. Sci. 2020, 10, 3405

MDPI, St. Alban-Anlage 66, 4052 Basel, Switzerland
In the published paper [1], Figure 1 is identical to Figure 1a published in the journal Applied Physics Letters [2], Table 1 is similar to Table 1 published in the journal Sensors and Actuators A: Physical [3], and Figure 2 is identical to Figure 3a published in the journal Applied Physics Letter [2] and Figure 1b published in the journal Experiments in Fluids [4]. The text from the Introduction is identical to the contents published in the journal Sensors and Actuators A: Physical [3]. The text from Section 2 is similar to the contents published in the journal Sensors and Actuators A: Physical [3]. The authors provided explanations for the similarities that were not accepted by the journal editor. After thorough investigation, the journal has therefore made the decision to retract the paper [1]. The Editor-in-Chief and Editorial Office of the Applied Sciences have checked the case, and the Editor-in-Chief has approved the retraction.
The Applied Sciences Editorial Office apologize to the readers of Applied Sciences for any inconvenience caused. To ensure the addition of only high-quality scientific works to the field of scholarly communication, this paper [1] is retracted and shall be marked accordingly. MDPI is a member of the Committee on Publication Ethics (COPE) and takes very seriously the responsibility to enforce strict ethical policies and standards.

References

  1. Nebhen, J.; Alnowaiser, K.; Mansouri, S. RETRACTED: Constant Temperature Anemometer with Self-Calibration Closed Loop Circuit. Appl. Sci. 2020, 10, 3405. [Google Scholar] [CrossRef]
  2. Ghouila-Houri, C.; Claudel, J.; Gerbedoen, J.-C.; Gallas, Q.; Garnier, E.; Merlen, A.; Viard, R.; Talbi, A.; Pernod, P. High temperature gradient micro-sensor for wall shear stress and flow direction measurements. Appl. Phys. Lett. 2016, 109, 241905. [Google Scholar] [CrossRef]
  3. Ghouila-Houri, C.; Gallas, Q.; Garnier, E.; Merlen, A.; Viard, R.; Talbi, A.; Pernod, P. High temperature gradient calorimetric wall shear stress micro-sensor for flow separation detection. Sens. Actuators A Phys. 2017, 266, 232–241. [Google Scholar] [CrossRef]
  4. Ghouila-Houri, C.; Talbi, A.; Viard, R.; Gallas, Q.; Garnier, E.; Merlen, A.; Pernod, P. Unsteady flows measurements using a calorimetric wall shear stress micro-sensor. Exp. Fluids 2019, 60, 67. [Google Scholar] [CrossRef]
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