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library:time_to_repeat [2025/04/01 14:11] – scott | library:time_to_repeat [2025/05/05 16:28] (current) – scott | ||
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=====Time to Repeat (TR)===== | =====Time to Repeat (TR)===== | ||
- | ====What is TR?==== | + | =====What is TR?===== |
Time to Repeat (TR) is the time between successive excitation pulses in the same slice. It is a user selectable parameter that primarily controls the amount of longitudinal relaxation allowed to occur within a pulse sequence. Appropriate TR's depend on the particular pulse sequence and contrast, so each will be addressed separately below. | Time to Repeat (TR) is the time between successive excitation pulses in the same slice. It is a user selectable parameter that primarily controls the amount of longitudinal relaxation allowed to occur within a pulse sequence. Appropriate TR's depend on the particular pulse sequence and contrast, so each will be addressed separately below. | ||
- | ===TR in Fast Spin Echo=== | + | ====TR in Fast Spin Echo==== |
In an FSE sequence TR primarily controls the amount of T1 weighting allowed to influence image contrast. Shorter TR's (400-700) will increase T1 contrast by saturating tissues with long T1 times, and long TR's (3000+) will reduce T1 weighting by allowing all tissues time to recover most of their longitudinal magnetization. Secondarily, | In an FSE sequence TR primarily controls the amount of T1 weighting allowed to influence image contrast. Shorter TR's (400-700) will increase T1 contrast by saturating tissues with long T1 times, and long TR's (3000+) will reduce T1 weighting by allowing all tissues time to recover most of their longitudinal magnetization. Secondarily, | ||
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* T1 weighting: 400-700ms | * T1 weighting: 400-700ms | ||
* Proton Density weighting: 3000ms+ | * Proton Density weighting: 3000ms+ | ||
- | * T2 weighting: 3000ms+ | + | * T2 weighting: 3000ms+ |
* T2 FLAIR: 9000ms+ | * T2 FLAIR: 9000ms+ | ||
- | * STIR: 3000ms+ | ||
* T1 FLAIR: 1800ms+ | * T1 FLAIR: 1800ms+ | ||
+ | * STIR: 3000ms+ | ||
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+ | ===Driven Equilibrium/ | ||
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+ | This technique is common in spine imaging, and is an option available on almost all scanner generations. At the end of the echo train, an additional -90 degree RF pulse is tacked on to force any remaining magnetization back toward equilibrium. This in effect replaces the the waiting period (the 3000+ TR) needed for T1 recovery, allowing much shorter TR's (Low 2000' | ||
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+ | ===TR in Fast Gradient Echo=== | ||
+ | When TR's become very short (<T1 and T2), a steady state can be achieved with the longitudinal magnetization. This means that after each TR, the same amount of longitudinal magnetization is recovered as is lost to RF excitation. To prevent total saturation of the signal, lower flip angles (5-15 degrees) are used. When utilizing these sequences, the TR may not be selectable and is no longer the primary parameter controlling image contrast, instead flip angle and sequence type will be most important. | ||
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