Imaging fluid flow into a region of interest

US11089970B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11089970-B2
Application numberUS-201615172204-A
CountryUS
Kind codeB2
Filing dateJun 3, 2016
Priority dateJun 12, 2015
Publication dateAug 17, 2021
Grant dateAug 17, 2021

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A magnetic resonance imaging system ( 100 ) for acquiring magnetic resonance data ( 141 ) from an imaging zone ( 108 ) includes a memory ( 134, 136 ) for storing machine executable instructions ( 150, 152, 154, 156 ) and pulse sequence commands ( 140 ). The pulse sequence commands cause the magnetic resonance imaging system to provide at least one spatially selective saturation pulse ( 408, 410 ) to at least one selected volume ( 124, 124 ′) that is at least partially outside of a region of interest ( 123 ) and within the imaging zone. The magnetic resonance imaging system performs a non-selective inversion ( 412 ) of spins in the region of interest followed by a readout ( 414 ) of the magnetic resonance data which is reconstructed ( 202 ) into an image ( 142 ).

First claim

Opening claim text (preview).

The invention claimed is: 1. A magnetic resonance imaging system for acquiring magnetic resonance data from an imaging zone, the magnetic resonance imaging system comprising: a memory including machine executable instructions and pulse sequence commands stored therein, wherein the pulse sequence commands cause a processor to control the magnetic resonance imaging system to: perform a non-selective pre-saturation of a region of interest, provide a first spatially selective saturation pulse for a first selected volume and a second spatially selective saturation pulse for a second selected volume, wherein the first and second spatially selective saturation pulses each include any one of: a multidimensional RF pulse, a cylindrical saturation pulse, a sombrero pulse, a donut pulse, a stalagmite pulse, a two dimensional pulse, and an egg carton pulse, and wherein the first and second selected volumes are at least partially outside of the region of interest, wherein the second selected volume is displaced from the first selected volume, wherein the first and second selected volumes are within the imaging zone, wherein the region of interest is within the imaging zone, and wherein the first and second spatially selective saturation pulses are provided sequentially, perform a non-selective inversion of spins in the region of interest, wherein the sequential first and second selective saturation pulses are temporally provided between the non-selective pre-saturation of the region of interest and the non-selective inversion of the region of interest, provide an additional spatially selective saturation pulses for each of the first and second selected volumes after the non-selective inversion of spins, acquire the magnetic resonance data after the additional spatially selective saturation pulses, and reconstruct a fluid flow map of fluid flow in the region of interest including fluids that flowed into the region of interest from the first and second selected volumes from the magnetic resonance data. 2. The magnetic resonance imaging system of claim 1 , wherein the additional spatially selective pulses sequentially suppress the first and second selected volumes. 3. The magnetic resonance imaging system of claim 1 , wherein the pulse sequence commands cause the magnetic resonance imaging system to perform lipid suppression of the region of interest before performing the readout of the magnetic resonance data for the region of interest. 4. The magnetic resonance imaging system of claim 3 , wherein the lipid suppression includes any one of: a spectral pre-saturation with inversion recovery protocol, a SPIR imaging protocol, a SPAIR imaging protocol, a ProSet imaging protocol, and a Dixon imaging protocol. 5. The magnetic resonance imaging system of claim 1 , wherein execution of the machine executable instructions causes the processor to: receive volume placement data, wherein the volume placement data is descriptive of a location for each of the first and second selected volumes; and adjust the pulse sequence data so that each of the first and second selected volumes is specified by the volume placement data. 6. The magnetic resonance imaging system of claim 1 , wherein execution of the machine executable instructions further cause the processor to control the magnetic resonance system to: acquire scouting magnetic resonance data by controlling the magnetic resonance imaging system with imaging pulse sequence commands, wherein the imaging pulse sequence commands specify an image volume, wherein the region of interest is within the image volume; and reconstruct a scouting magnetic resonance image from the scouting magnetic resonance data. 7. The magnetic resonance imaging system of claim 6 , wherein the scouting magnetic resonance image is descriptive of one or more veins or arteries connected with an anatomical volume within the region of interest. 8. A magnetic resonance imaging system for generating a fluid flow map of fluid flow in a region of interest within an imaging zone, the region of interest including a first blood vessel and a second blood vessel, the magnetic resonance imaging system including one or more processors configured to: a) perform a non-selective pre-saturation of the region of interest; b) applying at least a first spatially selective saturation pulse for a first selected volume, the first selected volume encompassing the first blood vessel at least partially outside of the region of interest and within an imaging zone; c) after the at least one first spatially selective saturation pulse, applying at least a second spatially selective saturation pulse for a second selected volume, the second selected volume encompassing the second blood vessel at least partially outside of the region of interest and within an imaging zone; d) after applying the second spatially selective saturation pulse, perform a non-selective inversion of spins in the region of interest; e) after the non-selective inversion of spins, applying at least a third spatially selective saturation pulse for the first selected volume; f) after the at least third spatially selective saturation pulse, applying at least a fourth spatially selective saturation pulse for the second selected region; g) after the fourth spatially selective saturation pulse, perform a lipid suppression in the region of interest; h) after the lipid suppression, read out magnetic resonance data from the imaging zone; and i) reconstruct the fluid flow map of fluid flow in the region of interest from the magnetic resonance data without image subtraction. 9. The magnetic resonance imaging system of claim 8 , wherein the first and second spatially selective saturation pulses are different from each other. 10. The magnetic resonance imaging system of claim 8 , wherein the third and fourth spatially selective saturation pulses are different from each other. 11. The magnetic resonance imaging system of claim 8 , wherein the first and third spatially selective saturation pulses overlay the first blood vessel and second and fourth spatially selective saturation pulses overlay the second blood vessel. 12. The magnetic resonance imaging system of claim 11 , further including repeating steps a)-i), wherein the first second, third, and fourth spatially selective saturation pulses have different lengths in each repetition. 13. The magnetic resonance imaging system of claim 12 , wherein the spatially selective saturation pulses are cylindrical pulses. 14. The magnetic resonance system of claim 11 , wherein the lipid suppression includes one of a spectral pre-saturation inversion recovery protocol or a Dixon protocol. 15. A non-transitory computer-readable medium carrying software instructions to control the one or more processors of the magnetic resonance imaging system of claim 8 to perform steps a)-i). 16. The magnetic resonance system of claim 8 , wherein the first and third spatially selective saturation pulses are distinct and wherein the second and fourth spatially selective saturation pulses are distinct. 17. A magnetic resonance imaging system for generating a fluid flow map of fluid flow in a region of interest including one or more processors configured to control the magnetic resonance imaging system to: a) perform a non-selective pre-saturation of the region of interest; b) after performing the non-selective pre-saturation of the region of interest, generate a first spatially selective saturation pulse in a first selected volume through which the fluid flows and a second spatially selective saturation pulse in a second

Assignees

Inventors

Classifications

  • Angiography, e.g. contrast-enhanced angiography [CE-MRA] or time-of-flight angiography [TOF-MRA] · CPC title

  • using spatially selective suppression or saturation of MR signals · CPC title

  • A61B5/0263Primary

    using NMR · CPC title

  • Characterization of motion or flow; Dynamic imaging · CPC title

  • Signal processing systems, e.g. using pulse sequences {; Generation or control of pulse sequences; Operator console} · CPC title

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What does patent US11089970B2 cover?
A magnetic resonance imaging system ( 100 ) for acquiring magnetic resonance data ( 141 ) from an imaging zone ( 108 ) includes a memory ( 134, 136 ) for storing machine executable instructions ( 150, 152, 154, 156 ) and pulse sequence commands ( 140 ). The pulse sequence commands cause the magnetic resonance imaging system to provide at least one spatially selective saturation pulse ( 408, 410…
Who is the assignee on this patent?
Koninklijke Philips Nv
What technology area does this patent fall under?
Primary CPC classification G01R33/5635. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Aug 17 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).