Raphex 18-21 Flashcards

1
Q

Why are there no naturally occurring isotopes w/ Z > 92?

A

Z > 92 isotopes can be produced artificially, but they are all radioactive and decay w/ short t1/2s 2/2 repulsive forces b/w protons

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2
Q

What and how does the e- interact with during bremsstrahlung production?

A
  • Interacts w/ atomic nucleus
  • Inelastic collision (energy lost as bremsstrahlung)
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3
Q

What’s 1 amu?

A
  • Def: 1/12th the mass of a C-12 atom
  • 1.66 × 10-27 kg
  • 931 MeV
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4
Q

What parameters of the gantry-mounted XR tube are automatically 𝛥 to produce the best brightness

A
  • mA
  • kVp
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5
Q

How do Linacs minimize MLC leakage?

A

By having the jaw track along w/ the MLCs

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6
Q

Beem-steering electronics in a Linac maintain which aspects of the beam?

A
  • These electronic monitor two halves of the monitor chamber and steer the beam to compensate for consistent output
  • Primarily:
    Symmetry
  • Secondarily:
    – Dose rate
    – Output
    – Quality
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7
Q

What’re the different functions of a Magnetron and a Klystron?

A
  • Magnetron: Generate RFs to accelerate e-s
  • Klystron: Requires an RF source, and amplifies the RFs to accelerate e-

Mnemonic: Make e- accelerate

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8
Q

For a Compton interaction, what’re all the possible scatter angles for the scattered photon?

A

0 (forward scatter) - 180 (backscatter)

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9
Q

If two LInac treatments deliver the same output (cGy/MU) but different dose rates (ΜU/min), how does the dose delivered differ?

A
  • For a Linac, the dose does not change with dose rate (Μ/min) as long as the output remains the same.
    – This is why dose rate is not a part of the Μ/Dose equation!
    – The Linac automatically adjusts the treatment time to accord w/ the dose rate
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10
Q

After exposure, how do the OSLDs fade?

A
  • Fade significantly in the first 10 mins
  • Stable afterwards
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11
Q

How does the energy of neutrons (photonuclear disintegration) from a Linac (>10 MV) depend on beam energy?

A
  • The energy of neutrons is independent of beam energy
  • The # of neutrons, however, increases w/ beam energy
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12
Q

How do TMR and PDD vary w/ increasing SSD?

A
  • TMR remains the same
  • PDD increases (takes into account i/r2)
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13
Q

How does penumbra vary with beam energy?

A
  • ≤ 6 MV: ↓ penumbra w/ ↑ energy
  • > 6 MV: ↑ penumbra w/ ↑ energy
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14
Q

What’s the main purpose of a Linac QA program?

A

To ensure that machine characteristics do not deviate from the baseline values determined during machine install

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15
Q

To send/share DICOM images, what do you need to know about the recipient computer?

A
  • IP address
  • Port number
  • application entity (AE)
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16
Q

What’s the utility of using a large focal spot for XR machines?

A
  • Helps w/ heat dissipation
  • Required when high mA is required
  • Has an inferior image quality as compared to a small focal spot
17
Q

How does T1 relaxation compare to T2 relaxation?

A
  • T1 ≥ T2
  • T1 relaxation is in the z-direction
  • T2 relaxation is in the x- y-direction
18
Q

For two plans for the same treatment, which plan would require more beam modulation based on its ΜUs?

A

The plan w/ more MUs → smaller aperture sizes → more modulation

19
Q

For castration-resistant prostate cancer, how is the dose for 223Ra calculated?

A
  • 1.49 μCi/kg
  • We use mass to calculate the dose
20
Q

After HDR source exchange, the activity of the source should be within what % of the manufacturer’s certificate?

A

±3%

21
Q

What’s the max allowable deviation between measured and intended dwell positions and step-size spacing b/w dwell positions?

A

±1mm

22
Q

For which 2 LDR sources does the inverse square (1/r2) law not hold within ± 5 cm?

A
  • Sources
    – Pd-103
    – I-125
  • Reason?
    – Due to their low energy, their attenuation is much larger than the scatter, so it does not cancel out.
    – For other sources, their attenuation (↓ dose) and scatter (↑ dose) are equal within the first 5 cm, so they follow the 1/r2 law
23
Q

How does the thickness of lead compare to water(tissue) for e- range calculations?

A

Thlead = 1/10 × Thmed

24
Q

How does the penumbra of a PBS proton beam compare to that of double scattered beam?

A

PBS has a less sharp penumbra 2/2 the absence of a physical aperture

25
Q

What phenomenon causes the formation of horns in an XR beam after it passes through the flattening filter?

A

FF attenuates the center of the beam a lot more, decreasing the central fluence more than the peripheral fluence → horns

26
Q

How does the mass attenuation coefficient of lead compare to that of water in the Compton range?

A

They are ~ equal

27
Q

Which instruments are the gold standard for measuring surface dose?

A

Extrapolation chambers

28
Q

How does the beam quality of FFF beams compare to flattened beams?

A

Flattened beams have a 5% higher quality 2/2 increased energy and penetration

29
Q

When you use lower photon energy, how do the MUs required to deliver the dose compared to the MUs used for a higher-energy beam?

A

More MUs are required for lower energies because lower energy beams are less penetrating.

30
Q

How often do you need to check light and radiation field coincidence for QA purposes?

A

Monthly

31
Q

Which regulatory authority oversees the sale of medical linacs?

A

FDA

32
Q

What property of a material determines US wave echoes or reflections?

A

Acoustic Impedance: Z × Speed of sound in the medium