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Real-time system based on FPGA applied to self-excited acoustical system for stress change measurement

Data publikacji: 28.03.2014

Czasopismo Techniczne, 2013, Mechanika Zeszyt 1-M (5) 2013 , s. 205 - 2012

https://doi.org/10.4467/2353737XCT.14.026.1952

Autorzy

,
Janusz Kwaśniewski
AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control
Wszystkie publikacje autora →
,
Ireneusz Dominik
AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control
Wszystkie publikacje autora →
Krzysztof Lalik
AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control
Wszystkie publikacje autora →

Tytuły

Real-time system based on FPGA applied to self-excited acoustical system for stress change measurement

Abstrakt

In the paper the real-time system based on FPGA applied to control the delay time in feedback loop of the Self-excited Acoustical System is presented. The system can be used for stress change measurement in elastic constructions. Stress changes manifest themselves in small but detectable variations of resonance frequency. This phenomenon can be used to indirect measure stress changes in the material. In the article the limits of the measurement system which occurred during research on the analogue version of the system were eliminated by applying FPGA technology.

Bibliografia

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Informacje

Informacje: Czasopismo Techniczne, 2013, Mechanika Zeszyt 1-M (5) 2013 , s. 205 - 2012

Typ artykułu: Oryginalny artykuł naukowy

Tytuły:

Polski:

Real-time system based on FPGA applied to self-excited acoustical system for stress change measurement

Angielski:

Real-time system based on FPGA applied to self-excited acoustical system for stress change measurement

Autorzy

AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control

AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control

AGH University of Science and Technology, Faculty of Mechanical Engineering and Robotics, Department of Process Control

Publikacja: 28.03.2014

Status artykułu: Otwarte __T_UNLOCK

Licencja: Żadna

Udział procentowy autorów:

Janusz Kwaśniewski (Autor) - 33%
Ireneusz Dominik (Autor) - 33%
Krzysztof Lalik (Autor) - 34%

Korekty artykułu:

-

Języki publikacji:

Angielski