IP Library Granted Patent US 9,726,740
Granted Patent B2
US 9,726,740 · App. 14/321,836 · Granted Aug 8, 2017

Magnetic resonance apparatus and method for operation thereof with an accelerated progression of a repeating pulse sequence with an optimized gradient curve

Inventors: David Grodzki (Erlangen, DE); Bjoern Heismann (Erlangen, DE)
Assignee: Siemens Aktiengesellschaft
G01R33/543G01R33/546G01R33/56518
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,726,740
App. No.
14/321,836
Granted
Aug 8, 2017
Kind
B2
Abstract

In a method for an accelerated progression of a repeating pulse sequence with an optimized gradient curve (that has at least one pulse) for a magnetic resonance examination by operation of a magnetic resonance apparatus, boundary conditions for a first gradient pulse of a first progression of the pulse sequence are detected, and the boundary conditions of the first gradient pulse of the first progression of the pulse sequence are compared with boundary conditions of a previous gradient pulse of a previous progression of the pulse sequence. An optimized gradient curve of the first gradient pulse of the first progression of the pulse sequence is determined from the gradient curve of the previous gradient pulse when agreement of the boundary conditions of the first gradient pulse with the boundary conditions of the previous gradient pulse exists.

Claims (23)

1. A method for operating a magnetic resonance apparatus comprising a gradient system, with a repeating pulse sequence in which said gradient system is operated to activate an optimized gradient curve for a magnetic resonance data acquisition, said method comprising:

detecting boundary conditions for a first gradient pulse of a first repetition of said pulse sequence;

in a processor, comparing the boundary conditions of the first gradient pulse of the first repetition of the pulse sequence with boundary conditions of a previous gradient pulse activated during a previous repetition of the pulse sequence;

in said processor, if agreement exists between the boundary conditions of the first gradient pulse and the boundary conditions of the previous gradient pulse, determining an optimized gradient curve for the first gradient pulse of the first repetition of the pulse sequence from an optimized gradient curve of said previous gradient pulse; and

operating said gradient system of said magnetic resonance apparatus in said first repetition of said pulse sequence by activating said first gradient pulse with said optimized gradient curve.

2. A method as claimed in claim 1 comprising developing the optimized gradient curve of the first gradient pulse from the optimized gradient curve of the previous gradient pulse upon agreement of said boundary conditions of the first gradient pulse with the boundary conditions of the previous gradient pulse.

3. A method as claimed in claim 1 comprising using at least one boundary condition of said first gradient pulse and said previous gradient pulse selected from the group consisting of a duration of the respective gradient pulse, a gradient moment of the respective gradient pulse, a starting point in time of the respective gradient pulse, and an end point in time of the respective gradient pulse.

4. A method as claimed in claim 1 comprising storing the optimized gradient curve of the previous gradient pulse in a memory that is accessible by said processor when determining said optimized gradient curve of said first gradient pulse in said first repetition of said pulse sequence.

5. A method as claimed in claim 4 comprising storing the boundary conditions of the pervious gradient pulse in said memory together with said optimized gradient curve of the previous gradient pulse.

6. A method as claimed in claim 1 comprising calculating the optimized gradient curve of the first gradient pulse independently of the optimized gradient curve of the previous gradient pulse if the comparison of the boundary conditions of the first gradient pulse and the boundary condition of the previous gradient pulse shows a dissimilarity between the boundary conditions of the first gradient pulse and the boundary conditions of the previous gradient pulse.

7. A method as claimed in claim 6 comprising storing the optimized gradient curve of the first gradient pulse together with the boundary conditions of the first gradient pulse in a memory.

8. A method as claimed in claim 6 comprising calculating the optimized gradient curve of the first gradient pulse by a spline interpolation.

9. A magnetic resonance apparatus comprising:

a magnetic resonance data acquisition unit comprising a gradient system;

a processor configured to detect boundary conditions for a first gradient pulse of a first repetition of said pulse sequence;

said processor being configured to compare the boundary conditions of the first gradient pulse of the first repetition of the pulse sequence with boundary conditions of a previous gradient pulse activated during a previous repetition of the pulse sequence;

said processor being configured, if agreement exists between the boundary conditions of the first gradient pulse and the boundary conditions of the previous gradient pulse, to determine an optimized gradient curve for the first gradient pulse of the first repetition of the pulse sequence from an optimized gradient curve of said previous gradient pulse; and

said processing being configured to operate said gradient system of said magnetic resonance apparatus in said first repetition of said pulse sequence by activating said first gradient pulse with said optimized gradient curve.

10. A non-transitory, computer-readable data storage medium encoded with programming instructions, said storage medium being loaded into a control and processing system of a magnetic resonance apparatus, that also comprises a gradient system, said programming instructions causing said computerized control and processing system to:

detect boundary conditions for a first gradient pulse of a first repetition of said pulse sequence;

compare the boundary conditions of the first gradient pulse of the first repetition of the pulse sequence with boundary conditions of a previous gradient pulse activated during a previous repetition of the pulse sequence;

if agreement exists between the boundary conditions of the first gradient pulse and the boundary conditions of the previous gradient pulse, determine an optimized gradient curve for the first gradient pulse of the first repetition of the pulse sequence from an optimized gradient curve of said previous gradient pulse; and

operate said gradient system of said magnetic resonance apparatus in said first repetition of said pulse sequence by activating said first gradient pulse with said optimized gradient curve.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE PREVIOUSLY RECORDED AT REEL: 066088 FRAME: 0256. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jan 17, 2024
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 071178/0246 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2023
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 066088/0256 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2017
From: SIEMENS AKTIENGESELLSCHAFT
To: SIEMENS HEALTHCARE GMBH
Reel/Frame 043895/0748 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 16, 2014
From: GRODZKI, DAVID; HEISMANN, BJOERN
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 033751/0400 →
Priority Claims (1)
DE 10 2013 213 255 · Jul 5, 2013 · national
Continuity (1)
Related Publication 20150008919A1 · Jan 8, 2015