<p>Vibrational performance for a structure, in majority of the cases, is estimated/ predicted using frequency domain solvers. Linearity and Time-invariance are imposed onto the structure for solving in frequency domain. In this research, vibrational performance of two mechanical mounting methods for a hot-swappable electronic PCB have been analyzed and experimented upon, in the range of 7 to 300&#xa0;Hz. Natural frequencies were first estimated using Linear Modal Analysis and the response up to 500&#xa0;Hz was obtained through Harmonic analysis. The resonance was predicted at 440.8&#xa0;Hz for both the mounting methods. Experiments were conducted on both the setups to determine the natural frequencies through a sinusoidal sweep. Resonance was observed at 110&#xa0;Hz and 193&#xa0;Hz for Setup-I &amp; II, respectively. These large deviations led to investigation on factors which played a major role in shifting the frequencies, arising out of both mounting methods. Limitations of linear modal analysis were highlighted. A method (computational + FFT) is devised for estimating the natural frequencies in which time domain response was coupled with Fast Fourier Transform (FFT). Validation against the testing showed that the suggested method predicted the non-linear natural frequencies with a significantly improved accuracy (Nominal deviation &lt; 2%) for both the setups.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Estimation of natural frequency for nonlinear mechanical retention of printed circuit board

  • Anurag Arjunan,
  • Arun Babu

摘要

Vibrational performance for a structure, in majority of the cases, is estimated/ predicted using frequency domain solvers. Linearity and Time-invariance are imposed onto the structure for solving in frequency domain. In this research, vibrational performance of two mechanical mounting methods for a hot-swappable electronic PCB have been analyzed and experimented upon, in the range of 7 to 300 Hz. Natural frequencies were first estimated using Linear Modal Analysis and the response up to 500 Hz was obtained through Harmonic analysis. The resonance was predicted at 440.8 Hz for both the mounting methods. Experiments were conducted on both the setups to determine the natural frequencies through a sinusoidal sweep. Resonance was observed at 110 Hz and 193 Hz for Setup-I & II, respectively. These large deviations led to investigation on factors which played a major role in shifting the frequencies, arising out of both mounting methods. Limitations of linear modal analysis were highlighted. A method (computational + FFT) is devised for estimating the natural frequencies in which time domain response was coupled with Fast Fourier Transform (FFT). Validation against the testing showed that the suggested method predicted the non-linear natural frequencies with a significantly improved accuracy (Nominal deviation < 2%) for both the setups.