Your English writing platform
Discover LudwigExact(60)
A polygonal mesh was computed for a frequency simulation using Finite Element Analyses.
The required rotor speed for a frequency of 60 hertz is then 1,800 revolutions per minute.
The filter, designed for a frequency band around 1 GHz, was fabricated and experimentally characterized.
We present a transceiver structure for a frequency selective channel that allows the introduction of reduced redundancy.
A relaxation peak superimposed on an exponential background has been observed at 1580 K for a frequency of 1 Hz.
An optimum value of 79.2% was obtained for a frequency of 574 kHz, a power density of 200 W/L, and a PT/ST ratio of 10.
The simulated and experimental results of stopband performances are better than 15 dB for a frequency range up to 25 GHz.
Utilizing analytical modeling, the loss factors of the core materials was determined based upon the measured structural loss factors for a frequency range up to 4000 Hz.
For a frequency of 400 Hz, the Young's modulus of the investigated viscoelastic materials is approximately 80% higher than for the static case (0 Hz).
In the case of PEEK, two relaxations are seen at −106°C and −73°C for a frequency of 1 kHz.
It is shown that vibrational power transmission by mechanical point excitation is predicted with an acceptable level of agreement for a frequency below half the ring frequency.
Write better and faster with AI suggestions while staying true to your unique style.
Since I tried Ludwig back in 2017, I have been constantly using it in both editing and translation. Ever since, I suggest it to my translators at ProSciEditing.

Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com