X-ray Production Flashcards

1
Q

Methods of X-ray production

A

Bremsstrahlung
Characteristic radiaton

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2
Q

Bremsstrahlung

A

Braking radiation - electron beam scattered, continuous x-rays given off

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3
Q

Characteristic radiation

A

Primary beam scatters inner shell electrons, characteristic radiation given off as electron moves down to inner shell

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4
Q

What will high energy electron interactions generate?

A

Bound electron interaction: characteristic
At nucleus: high energy brem.
Near nucleus: high energy brem
Further away: low energy brem.

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5
Q

How are most clinical x-rays generated?

A

Bremsstrahlung (~90%)
[except mammography which is roughly the opposite]

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6
Q

What do we need to generate x-rays?

A

A source of electrons (cathode)
A way to accelerate electrons (applied kv)
A way to convert electrons to x-rays
A way to cool the anode

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7
Q

Source of electrons?

A

Cathode containing multiple tungsten fibres (only one used at a time). Produced by thermionic emission.

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8
Q

How are electrons generated?

A

Thermionic emission - electrons ‘boil off’ and hover in ‘charge space’.

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9
Q

Rotating anode details

A

Stator is around glass envelope - windings on it are energised sequentially so induced magnetic field rotates on axis.
Tungsten focal point, high Z and high melting point. Molybdenum disc and graphite help dissipate heat.

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10
Q

Heel effect

A

Variation in x-ray intensity across field of view due to self absorption in target. May limit minimum target angle in certain circumstances - radiotherapy, worse with smaller angles.

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11
Q

Light beam diaphragm

A

Lead shutters control size and shape of beam, enables radiographer to visualise and control beam with light.

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12
Q

What is the maximum spectral energy?

A

The generating voltage

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13
Q

Why do we filter out lower energies

A

Contribute to skin dose but won’t penetrate enough to be useful.

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