A method to reduce the acoustic noise generated by gradient systems in MRI has been recently proposed; such a method is based on the linear response theory. Since the physical cause of MRI acoustic noise is the time derivative of the gradient current, a common trapezoid current shape produces an acoustic gradient coil response mainly during the rising and falling edge. In the falling edge, the coil acoustic response presents a 180 degrees phase difference compared to the rising edge. Therefore, by varying the width of the trapezoid and keeping the ramps constant, it is possible to suppress one selected frequency and its higher harmonics. This value is matched to one of the prominent resonance frequencies of the gradient coil system. The ide...
Purpose To analyze the difference between gradient fidelity and acoustic noise of the same MRI scan...
Lorentz-force-induced vibrations in MRI systems cause significant acoustic noise levels during scann...
The design of gradient coils within Magnetic Resonance Imaging equipment is considered. These coil...
A method to reduce the acoustic noise generated by gradient systems in MRI has been recently propose...
Large acoustic noise generated by magnetic resonance imaging (MRI) scanners pose significant problem...
An acoustic control scheme is proposed in this paper through the process of gradient coil design for...
We consider a mathematical method for minimizing the acoustic noise of self-shielded magnetic resona...
The acoustic problem of the split gradient coil is one challenge in a Magnetic Resonance Imaging and...
Functional magnetic resonance imaging (fMRI) enables sites of brain activation to be localized in hu...
With sound pressure levels reaching up to 130 dB, acoustic noise in Magnetic Resonance Imaging (MRI)...
Purpose: To quantify the acoustic noise characteristics of a 4 Tesla MRI scanner, and determine the ...
We consider the design of asymmetric gradient coils in a conventional cylindrical bore magnetic res...
We consider the design of asymmetric gradient coils in a conventional cylindrical bore magnetic reso...
Functional magnetic resonance imaging (fMRI) enables sites of brain activation to be localized in hu...
Purpose To analyze the difference between gradient fidelity and acoustic noise of the same MRI scan...
Lorentz-force-induced vibrations in MRI systems cause significant acoustic noise levels during scann...
The design of gradient coils within Magnetic Resonance Imaging equipment is considered. These coil...
A method to reduce the acoustic noise generated by gradient systems in MRI has been recently propose...
Large acoustic noise generated by magnetic resonance imaging (MRI) scanners pose significant problem...
An acoustic control scheme is proposed in this paper through the process of gradient coil design for...
We consider a mathematical method for minimizing the acoustic noise of self-shielded magnetic resona...
The acoustic problem of the split gradient coil is one challenge in a Magnetic Resonance Imaging and...
Functional magnetic resonance imaging (fMRI) enables sites of brain activation to be localized in hu...
With sound pressure levels reaching up to 130 dB, acoustic noise in Magnetic Resonance Imaging (MRI)...
Purpose: To quantify the acoustic noise characteristics of a 4 Tesla MRI scanner, and determine the ...
We consider the design of asymmetric gradient coils in a conventional cylindrical bore magnetic res...
We consider the design of asymmetric gradient coils in a conventional cylindrical bore magnetic reso...
Functional magnetic resonance imaging (fMRI) enables sites of brain activation to be localized in hu...
Purpose To analyze the difference between gradient fidelity and acoustic noise of the same MRI scan...
Lorentz-force-induced vibrations in MRI systems cause significant acoustic noise levels during scann...
The design of gradient coils within Magnetic Resonance Imaging equipment is considered. These coil...