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Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image...

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Thoracic Ultrasound: Physics and General Principles Pen Li, MD, FRCPC Interventional Pulmonology
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Page 1: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Thoracic Ultrasound: Physics and General Principles

Pen Li, MD, FRCPC

Interventional Pulmonology

Page 2: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Acknowledgements

• Thank you Brian Buchanan for helping out with the development of this presentation

• Thank you Ashley Gillson for organizing the course

Page 3: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Objectives

1. Learn basic ultrasound physics

2. Probe selection

3. Orientation

4. Knobology

5. Image optimization

Page 4: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive
Page 5: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Why learn thoracic ultrasound

• No radiation

• Fast bedside imaging

• Inexpensive

• Better for pleural disease than chest x-rays and often times CT if characterizing pleural fluid

• Standard of care for thoracic procedures

• “A picture is worth a thousand words”

Page 6: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics

Page 7: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Producing ultrasound

• “Ultrasound” waves (~2-15MHz) are soundwaves with frequencies higher than the human upper audible limit (~2-20 kHz)

• Electrical pulses deforms/excites the piezoelectric crystals

• Ultrasound vibrations are produced by piezoelectric crystals in the transducer probe

Page 8: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Producing ultrasound

• Ultrasound waves interact with the medium and then some reflect back

• Echo waves reflected back to the transducer crystals

• Data is translated by machine into an image

• Longer time for waves to return to transducer = increased depth (deeper)

Page 9: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Other technologies: IQ probe

Micromachines act as drums to produce Ultrasound

Process data through a semiconductor chip

Permits portability with low price range

Page 10: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Interactions with tissue

Page 11: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Sound wave physicsHigher frequency

1. Higher resolution2. Reduced penetration

Lower frequency

1. Lower resolution2. Increased penetration

Page 12: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Acoustic impedence

• Acoustic impedance (AI) is dependent on the density of the material in which sound is propagated

• - the greater the impedance the denser the material.

• Reflections comes from the interface of different AI’s

• greater change/difference of the AI = more signal reflected

• works both ways (send and receive directions)

Medium 1 Medium 2 Medium 3Tra

ns

du

cer

Page 13: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Acoustic impedence

Page 14: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Physics of ultrasound: Air causes scatter

• Air causes high scatter of ultrasound waves

• Ultrasound gel is used as a coupling agent

Page 15: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Echogenicity terminology

Isoechoic

Hyperechoic

Hypoechoic

Anechoic

Page 16: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Common ultrasound artifacts

Page 17: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Reverberation – Long path (A-lines)

Pleural line

A - line

A - line

A - line

Page 18: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Reverberation – Short path (B-lines)

More B lines = less air, and more lung density

Page 19: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Reverberation – Short path (B-lines)

Page 20: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Acoustic shadowing

Page 21: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Posterior acoustic enhancement

Acoustic enhancement(by time gain compensation)

• May mask free fluid

Page 22: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Artifact: Mirror Images

Page 23: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Ultrasound technique:

• Beam comes out as a 1mm slice

• Image produced is “2D”

• Be sure to scan the general area to better understand all the adjacent structures

• Don’t be afraid to move it around

Page 24: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Ultrasound technique: Transducer probes

Page 25: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Ultrasound technique: Probe orientation

(conventionally left)

Page 26: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Freeze

IMAGING TYPES

AUTO-GAIN

TIME GAIN COMPENSATION

DEPTH

Page 27: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Adjustments: Gain, the “brightness knob”• Degree of amplification of the returning sound

• Increasing the gain, increases the strength of the returning echoes and results in a lighter image

Page 28: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Adjustments: Time gain compensation

FAR FIELD

NEAR FIELD

Page 29: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Adjustments: Depth, the “zoom knob”

Center the area of interest

Page 30: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Ultrasound modes

• B mode (brightness mode, 2D mode): • The default mode• “brightness” depends on the intensity/amplitude of the

received signals

• M mode (motion mode)• Displays time motion display of ultrasound wave along a

chosen line

• Color mode• Assess flow• Red = towards transducer• Blue = away from transducer

Page 31: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

M mode

Normal Seashore sign Barcode sign (pneumothorax)

Waves

Sand

Page 32: Thoracic Ultrasound: Physics and General Principles · 2018-06-28 · Knobology 5. Image optimization. Why learn thoracic ultrasound •No radiation •Fast bedside imaging •Inexpensive

Thanks for listening!

• Understanding physics helps to understand your image

• Play with the knobs and buttons on the machine


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