RF pulse applying method with an MRI apparatus which reduces vertical magnetization
View Patent ↗The present invention aims to receive a signal of tissue long in T2 at a relatively high level and suppress artifacts. When a magnetic resonance frequency of a component intended for measurement is assumed to be Ω and the frequency corresponding to a repetition time TR is assumed to be ωo, an RF pulse obtained by modulating a chemical shift SAT pulse for reducing a signal of a frequency Ω with cos (ωo·t) is applied as a leading pulse Po and thereafter a pulse sequence of Balanced SSFP is applied. Since a signal leading to the occurrence of artifacts is reduced owing to the effect of the leading pulse, the artifacts can be suppressed. Since a transient state is long in the same manner as conventional, such a signal of tissue long in T2 can be received at the relatively high level and contrast can be kept high by executing data acquisition in the transient state.
1. A radio frequency (RF) pulse applying method in order to acquire magnetic resonance (MR) data, said method comprising:
applying a leading pulse for reducing a vertical magnetization of a signal at at least one of a frequency Ω+ωo and a frequency Ω−ωo, the signal having components at the frequencies Ω+ωo and Ω−ωo separated from each other by a frequency ωo, wherein Ω is a magnetic resonance frequency of a component intended for measurement and ωo is a repetition time TR when the magnetic resonance frequency of the component intended for measurement is Ω;
applying a pulse sequence of Balanced steady-state free precession (SSFP) after the leading pulse has been applied in order to reduce the vertical magnetization of the signal;
acquiring the MR data after applying the leading pulse; and
outputting an MR image using the MR data.
2. The RF pulse applying method according to claim 1 , wherein the leading pulse is an RF pulse obtained by modulating a chemical shift saturation (SAT) pulse with cos (ωo·t) in order to reduce a signal at a frequency Ω.
3. The RF pulse applying method according to claim 1 , wherein the leading pulse is a pulse train comprising:
a first RF pulse corresponding to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having a component at the frequency Ω+ωo; and
a second RF pulse corresponding to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having a component at the frequency Ω−ωo.
4. The RF pulse applying method according to claim 1 , wherein when said TR=5 ms, said ωo=100 Hz.
5. The RF pulse applying method according to claim 1 , wherein the component intended for measurement is water.
6. A magnetic resonance imaging (MRI apparatus comprising:
a leading pulse applying device that applies a leading pulse; and
an imaging pulse applying device that applies a pulse sequence of Balanced steady-state free precession (SSFP) after the leading pulse has been applied,
wherein the leading pulse applying device applies a leading pulse that reduces a vertical magnetization of a signal at least one of a frequency Ω+ωo and a frequency Ω−ωo, the signal having components at the frequencies Ω+ωo and Ω−ωo separated from each other by a frequency ωo, where Ω is a magnetic resonance frequency of a component intended for measurement and ωo is a repetition time TR when the magnetic resonance frequency of the component intended for measurement is Ω,
said MRI apparatus configured to:
acquire the MR data after applying the leading pulse; and
output an MR image using the MR data.
7. The MRI apparatus according to claim 6 , wherein the leading pulse is an RF pulse obtained by modulating a chemical shift saturation (SAT) pulse with cos (ωo·t) in order to reduce a vertical magnetization of a signal at a frequency Ω.
8. The MRI apparatus according to claim 6 , wherein the leading pulse is a pulse train comprising:
a first RF pulse corresponding to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having a component at the frequency Ω+ωo; and
a second RF pulse corresponding to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having a component at the frequency Ω−ωo.
9. The MRI apparatus according to claim 6 , wherein when said TR=5 ms, said ωo=100 Hz.
10. The MRI apparatus according to claim 6 , wherein the component intended for measurement is water.
11. A method for applying a radio frequency pulse in order to acquire magnetic resonance (MR) image data, said method comprising:
applying a leading pulse in order to reduce a vertical magnetization of a signal at at least one of a frequency greater than a frequency Ω and a frequency less than the frequency Ω, the signal having the frequency Ω that is the same as a magnetic resonance frequency Ω of a component intended for measurement;
applying a pulse sequence of Balanced steady-state free procession (SSFP) after reducing the vertical magnetization of the signal having the frequency Ω by applying the leading pulse;
acquiring the MR image data after applying, the leading pulse; and
outputting an MR image using the MR image data.
12. The method according to claim 11 , further comprising obtaining the leading pulse by modulating a chemical shift saturation (SAT) pulse in order to reduce the vertical magnetization of the signal having the frequency Ω.
13. The method according to claim 11 , further comprising applying the leading pulse as a pulse train having two RF pulses.
14. The method according to claim 13 , wherein applying the leading pulse as a pulse train having two RF pulses further comprises:
applying a first RF pulse that corresponds to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having the frequency greater than the frequency Ω; and
applying a second RF pulse that corresponds to a chemical shift SAT pulse that reduces a vertical magnetization of a signal having the frequency less than the frequency Ω.
15. The method according to claim 11 , wherein applying a leading pulse further comprises applying a leading pulse that includes components having frequencies that are separated from each other by a frequency that corresponds to a repetition time.
16. The method according to claim 11 , wherein applying a leading pulse in order to reduce a vertical magnetization of a signal further comprises applying a leading pulse in order to reduce the vertical magnetization of the signal having the frequency Ω, where Ω is a magnetic resonance frequency of water.
17. The method according to claim 11 , further comprising applying a killer pulse after the leading pulse and before the pulse sequence.
18. The method according to claim 11 , wherein applying a leading pulse further comprises applying a leading pulse in order to facilitate reducing artifacts in an image.
19. The method according to claim 11 , further comprising:
acquiring the MR image data during the pulse sequence; and
generating the MR image based on the acquired MR image data.
20. The method according to claim 12 , wherein obtaining the leading pulse by modulating a chemical shift SAT pulse further comprises obtaining the leading pulse by modulating the chemical shift SAT pulse with cos (ωo·t), wherein ωo is a frequency corresponding to a repetition time.