Canonical Question
Ultrasound principles
Master answer
Ultrasonography Principles
- Definition
- A sound wave with a frequency > 20 kHz → higher than frequency range audible by human ear
- Used medically → typically involves frequency range of 2-15 MHz
- Piezoelectric and converse piezoelectric effect
- Change of polarization of molecules in a quartz crystal in response to
mechanical stress – Interconverts electrical and sound energy - Application of electrical field creates mechanical deformation in a crystal
- Change of polarization of molecules in a quartz crystal in response to
- US Generation: Piezoelectric crystal within probe is stimulated by electrical current to vibrate → produce sound wave
- US Detection: Sound wave reflected by medium causes same crystals to vibrate → produce electrical signal
- Piezoelectric transducers in US
- Electrical current converted into precise sound waves (1~20mHz)
- Sound waves reaches interface of two mediums of differing density (or acoustic impedance).
- Acoustic impedance = tissue density x acoustic velocity
- unique to tissue type (e.g. fat, bone, etc.)
- At interface:
- Reflection
- sound wave reflected directly back to transducer
- Amount of reflection depends of ratio of acoustic impedance (or density)
- Increased density ~ increased reflection
- Refraction
- sound wave is deflected within the medium
- based on Snell’s law
- Reflection
- Attenuation: Loss of energy or strength of an ultrasound wave as it travels through a medium. Occurs through:
- Absorption: The ultrasound wave energy is converted into heat as it interacts with the tissue.
- Reflection: The sound waves bounce off the boundaries between tissues with different acoustic impedances.
- sound wave reflected back to transducer
- Amount of reflection depends of ratio of acoustic impedance
- Increased density ~ increased reflection
- Scattering: The sound waves are deflected in various directions by irregularities in the tissue and do not reach transducer
- Refraction: bending of the sound wave as it travels from one tissue to another
- results in a change in the wave’s direction
- relationship between the angle of incidence (θi), the angle of refraction (θt), and the speeds of sound (c1 and c2) in the two media is described by Snell’s Law: sin(θi) / c1 = sin(θt) / c2
- Central Processor
- Electrical current generated by piezoelectric crystal signaled to CPU
- CPU calculates the distance between transducer and object according to
- Speed of sound (1540m/sec)
- Delay in echo return
- Information relayed to display for visualization
- Gain
- Sensitivity of CPU to signals received from transducer
- Time-Gain Compensation – selective sensitivity of CPU to different interval of sound delay
Resolution and Penetration
- Ultrasound Resolution:
- Defined as the ability to differentiate b/t structures that are closely related
- Resolution is ↑ with either:
- (i) ↑ frequency (or ↓ wavelength) of sound wave → but this ↓ tissue penetration
- (ii) ↑ amplitude of sound wave → but this ↑ artefact
- (iii) ↑ gain → but this ↑ noise
- Types of Resolution: Spatial (Axial, Lateral, Elevational), Temporal
- Spatial Resolution:
- Axial Resolution: The ability to distinguish two structures that are side-by-side and parallel to the ultrasound beam.
- Achieved with a higher frequency and shorter pulse length.
- Mathematically, it’s half the spatial pulse length.
- Lateral Resolution: The ability to distinguish two structures that are side-by-side to the ultrasound beam.
- Achieved with a narrower ultrasound beam, which is related to the width of the beam.
- Higher frequencies generally lead to narrower beams and better lateral resolution.
- Lateral resolution is roughly three times worse than axial resolution at the focal region of the beam.
- Elevational resolution (aka slice thickness resolution)
- refers to the ability to distinguish structures that are close together in the direction perpendicular to the imaging plane. (similar to lateral resolution, but in perpendicular plane)
- crucial for accurately visualizing the depth and thickness of tissues
- Temporal Resolution:
- The ability to distinguish between instantaneous events of rapidly moving structures.
- Achieved with a high frame rate.
- A higher frame rate means the ultrasound machine can capture and display more images per second, allowing for better visualization of movement.
- Axial Resolution: The ability to distinguish two structures that are side-by-side and parallel to the ultrasound beam.
- Ultrasound penetration:
- defined as the depth to which ultrasound waves can travel into tissue
- Primarily determined by the frequency of the ultrasound waves, with lower frequencies generally penetrating deeper than higher frequencies.
- Trade-off between Resolution and Penetration:
- There’s an inherent trade-off between image resolution and penetration depth.
- Higher resolution requires higher frequencies, which means less penetration, and vice versa.
Modes of Ultrasound
- A (amplitude scan): Amplitude of U/S signal plotted against time → provides information about tissue depth (BUT is no longer used)
- B (brightness): Depth recorded as bright spot (rather than a spike as in A-mode) →
amplitude of U/S signal is proportional to brightness - M (motion): B-mode plotted against time (Ie. assess heart valve movement over time)
- 2-D: Sequential B-mode across 90° (most commonly used) → requires an array of crystals
- Doppler: Uses “Doppler shift” to establish velocity of moving object which is reflecting sound waves → superimposed on 2D mode with colours representing direction of movement (red = towards, blue = away)
Doppler effect
- Change in apparent frequency of sound for an observer moving relative to its source
- Use in ultrasound
- Sound waves reflected off objects moving toward or away from transducer
(usually blood)- If object moving toward transducer, frequency appears increased – displayed as red (however this is not standardized across machines)
- If object moving away from transducer, frequency appears decreased –
displayed as blue
- Can be used to measure velocity of flow, as well as direction
- Sound waves reflected off objects moving toward or away from transducer
Sakurai 2016
Exam appearances
| Exam | Exact wording | Relationship | Success |
|---|---|---|---|
| 2007B Q04 | Describe the principles of ultrasound imaging – including the Doppler Effect. | historical_member | — |
| 2010A Q14 | Describe the basic principles of ultrasound imaging including the Doppler effect. | historical_member | — |
| 2022A Q17 | Write notes on: • The principles of ultrasound • Transducer properties and image resolution • The Doppler effect | historical_member | — |
| 2024B Q08 | Outline the following with respect to ultrasound: (a) The physical principles when used for tissue imaging using the following headings: i. generation and detection of the ultrasound; ii. reflection and scattering; iii. attenuation; iv. refraction. (35% of marks) (b) The relationship between transducer properties, image resolution and tissue penetration. (35% of marks). (c) The principles of the doppler effect and its applications. (30% of marks). | historical_member | — |