DIAGNOSTIC RADIOGRAPHY · NTA LEVEL 4 · SEMESTER ONE
X-ray Production, Spectrum and Radiation Protection
CRT04106 · Radiation Sciences
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X-ray Production, Spectrum and Radiation Protection
RADIATION SCIENCE
CHAPTER 4
- X ray production
- X-ray spectrum
- Radiation quantity, quality and intensity
- Control of scatter
- Radiation protection and personnel monitoring
✓ X-Ray Production
- X-rays are produced in an X-ray tube when high-speed
- electrons (kinetic energy) interact with a metal target (usually
- tungsten). ➢ Electrons traveling from cathode to anode constitute the
- x-ray tube current and are sometimes called projectile
- electrons.
- When these projectile electrons hit the heavy metal atoms
- of the x-ray tube target, they transfer their kinetic energy
- to the target atoms.
- The projectile electron interacts with the orbital electrons
- to produce characteristic x-rays or the nuclear field to
- produce Bremsstrahlung x-rays of target atoms.
- These interactions result in the conversion of electron
kinetic energy into thermal energy (heat) and x-rays.
Anode Heat
- Most of the kinetic energy of projectile electrons is
- converted into heat.
- Approximately 99% of the kinetic energy of projectile
- electrons is converted to heat.
- Only approximately 1% of projectile electron kinetic
- energy is used for the production of x-radiation.Two major mechanisms create X-rays:
- Bremsstrahlung Radiation (Braking Radiation)
- Bremsstrahlung x-rays are produced when a projectile
- electron is slowed by the nuclear field of a target atom
nucleus.
- Bremsstrahlung is a German word that means “sloweddown radiation.” ➢ Bremsstrahlung x-rays can be considered radiation that
- results from the braking of projectile electrons by the
- nucleus.
- Produces a continuous spectrum of photon energies.
- Is the major source of diagnostic X-rays.
- Characteristic Radiation
- Characteristic x-rays are emitted when an outer-shell
- electron fills an inner-shell void.
- An outer electron fills the vacancy and releases energy
- as an X-ray photon.
- Produces discrete (monochromatic) peaks at specific
- energies characteristic to tungsten (e.g., 59 and 67 keV).✓ X-Ray Spectrum
- The word spectrum refers to the range of values of any
- quantity such as x-rays.
- The X-ray spectrum displays the distribution of photon
- energies produced by the tube.Components
- a)Continuous spectrum
- A continuous spectrum contains all possible values.
- Bremsstrahlung radiation; ranges from 0 keV to a
- maximum equal to the kVp.b)Characteristic/discrete spectrum
- A discrete spectrum contains only specific values.
- Sharp spikes at the energies unique to tungsten.
- Factors influencing the spectrum
- 1.kVp (peak kilovoltage)
- Increases maximum photon energy.
- Shifts the entire spectrum to the right (higher
- energies).
- Increases beam quality and quantity.2.mA or mAs (tube current )
- Linearly increases the number (quantity) of photons.
- Does not change maximum energy or beam quality.
- 3.Filtration
- Removes low-energy photons.
- Decreases quantity but increases average energy.
- 4.Target material
- Higher atomic number → higher energy photons and
- more efficient production.
- 5.Generator type
- (single-phase, three-phase, high-frequency)
- More consistent voltage increases beam quantity and
average energy.
✓ Radiation Quantity
- Also known as beam output or radiation intensity.
- Refers to number of photons produced.
- Depends primarily on mAs.
- Higher mAs = more electrons = more X-rays produced.
- Quantity is directly proportional to mAs.✓ Radiation Quality
- Quality describes the penetrating ability of the X-ray
- beam.
- It is determined mainly by kVp and filtration.
- Higher kVp → higher energy photons → more penetrating
- beam.
- More filtration increases average beam energy (hardens
- the beam).
- Quality is often measured using half-value layer (HVL) —
- the thickness of a material needed to reduce intensity by
- half.✓ Radiation Intensity
- Intensity refers to the rate of energy fluence at a given
- distance.
- Depends on mAs, kVp², filtration, target material,
- distance.
- Follows the inverse square law:
- “Radiation intensity decreases proportionally to
- the square of the distance from its point source.”✓ Control of Scatter Radiation
- Scatter radiation mainly results from Compton
- interactions in the patient.Methods to reduce or control scatter
- Collimation
- Reduces field size → less tissue irradiated → less scatter.
- Most effective method.
- Grids
- Absorb scatter before reaching the detector.
- Used for body parts > 10 cm thickness.
- Improve image contrast but increase patient dose.
- Air Gap Technique
- Increasing distance between patient and detector
- reduces scatter reaching the detector.
- Beam Filtration
- Removes low-energy photons, slightly reducing scatter
- production.
- Optimal kVp Selection
- Lower kVp produces less Compton scatter, but must
- balance with adequate penetration.
- Compression
- Reduces tissue thickness → less scatter.Radiation Protection and Personnel Monitoring
- These are key components of radiation safety, especially
- in medical, industrial, and research environments where
ionizing radiation is used.
A. Radiation Protection
- Radiation protection aims to protect people and the
- environment from the harmful effects of ionizing radiation
- while allowing its beneficial uses.
- Objectives
- Prevent deterministic effects (e.g., skin burns, radiation
- sickness)
- Reduce the probability of stochastic effects (e.g., cancer,
- genetic effects)
- Fundamental Principles (ICRP)
- 1.Justification – Any activity involving radiation must
- provide more benefit than harm.
- 2.Optimization (ALARA) – Radiation exposure should be
- kept As Low As Reasonably Achievable.
- 3.Dose Limitation – Individual doses must not exceed
- recommended limits.
- NB; ICRP ~ International Commission on Radiological
- Protection
- Methods of Radiation Protection
- a)Time: Minimize time spent near radiation sources.
- b)Distance: Increase distance from the source (inverse
- square law).
- c)Shielding: Use appropriate materials (lead, concrete,
- water).
- d)Containment: Sealed sources and controlled areas.
- e)Administrative controls: Work procedures, training,
- signage.
- Personal protective equipment (PPE): Lead aprons,
- gloves, thyroid shields.
- Dose Limits (Typical ICRP Recommendations)
- Occupational workers:
- o 20 mSv/year (averaged over 5 years)
- o Maximum 50 mSv in any single year
- Public: 1 mSv/year
- Lens of the eye: 20 mSv/year (occupational)
- Skin & extremities: 500 mSv/year
✓ Personnel Monitoring
- Personnel monitoring is the measurement and
- assessment of radiation doses received by workers.
- Purpose
- Ensure compliance with dose limits
- Detect abnormal or accidental exposures
- Maintain dose records
- Improve radiation protection practicesPersonnel Monitoring Devices
Personal Dosimeters
- Personal dosimeters are devices worn by radiation
- workers to measure and record the dose of ionizing
- radiation received over a specific period.
- Purpose of Personal Dosimeters
- i ) Measure individual radiation exposure
- ii ) Ensure compliance with dose limits
- iii ) Detect abnormal or accidental exposures
- iv ) Maintain legal dose records
- v ) Improve radiation protection practices
- Types of Personal Dosimeters
- Film Badge Dosimeter
- Principle: Radiation darkens photographic film.
- Features
- Measures gamma, X-ray, and beta radiation
- Different filters help identify radiation type and energy
- Advantages
- Simple and inexpensive
- Permanent dose record
- Limitations
- Sensitive to heat and humidity
- Cannot be reused
- Less accurate at low doses
- Thermoluminescent Dosimeter (TLD)
- Principle: Certain crystals (LiF, CaSO₄) store energy from
- radiation and emit light when heated.Features
- Light output ∝ radiation dose
- Advantages
- High accuracy and sensitivity
- Reusable
- Wide dose range
- Limitations
- No immediate dose readout
- Requires special reader
- Optically Stimulated Luminescence (OSL)
- Principle: Stored energy is released as light when stimulated
- by a laser.
- Advantages
- More sensitive than TLD
- Can be reread multiple times
- Stable dose recordLimitations
- Requires specialized equipment
- Electronic Personal Dosimeter (EPD)
- Principle: Uses semiconductor detectors to measure dose
- electronically.
- Features
- Real-time dose and dose-rate display
- Audible and visual alarms
- Advantages
- Immediate feedback
- Useful in high-risk areasLimitations
- Expensive
- Requires battery and calibration
- Pocket Dosimeter
- Principle: Ionization of air in a small chamber.
- Advantages
- Instant dose reading
- Useful for short-term monitoringLimitations
- Fragile
- Limited accuracy
- Needs frequent recalibration
Special Dosimeters
- Ring dosimeters – monitor hand and finger exposure
- Neutron dosimeters – for neutron radiation fields
- Wearing and Handling Guidelines
- Wear at chest or waist level
- Outside lead apron (one under apron if double-badge
- method)
- Do not share dosimeters
- Store away from radiation when not in use
- Return for reading at scheduled intervalsArea Monitoring Devices
- Area monitoring devices are instruments used to
- measure radiation levels in workplaces.
- Purpose of Area Monitoring
- Detect presence and type of radiation
- Measure dose rate and contamination levels
- Identify radiation hazards and leakage
- Verify shielding effectiveness
- Ensure compliance with safety limits
- Types of Area Monitoring Devices
- Geiger–Müller (GM) Counter
- Principle: Gas ionization produces electrical pulses when
- radiation enters the tube.
- Detects: Alpha, beta, gamma.Advantages
- Highly sensitive
- Quick response
- Portable and easy to use
- Limitations
- Cannot accurately measure dose rate
- Saturates at high radiation levels
- Poor energy discrimination
- Uses
- Radiation surveys
- Contamination detection
- Ionization Chamber Survey Meter
- Principle: Radiation ionizes gas; collected charge is
- proportional to dose.
- Detects: X-rays, gamma raysAdvantages
- Accurate dose-rate measurement
- Wide energy response
- Suitable for high radiation levels
- Limitations
- Less sensitive at low doses
- Larger and more expensive
- Uses
- Area dose-rate monitoring
- Calibration and shielding verification
- Proportional Counter
- Principle: Gas amplification proportional to radiation energy.
- Detects: Alpha, beta, low-energy X-rays
- Advantages
- Can distinguish radiation types
- Good sensitivity
- Limitations
- Complex electronics
- Less portable
- Uses
- Surface contamination monitoring4. Scintillation Detector
- Principle: Radiation produces light flashes in a scintillator,
- converted to electrical signals.
- Detects: Alpha, beta, gamma (depending on scintillator)
- Advantages
- Very sensitive
- Fast response
- Good energy discrimination
- Limitations
- Expensive
- Requires calibration
- Uses
- Environmental and area monitoring
- Low-level radiation detection
- Area Radiation Monitors (Fixed Monitors)
- Description: Permanently installed detectors with alarms.Features
- Continuous monitoring
- Visual and audible alarms
- Data logging
- Uses
- Nuclear medicine labs
- Radiotherapy rooms
- Reactor facilities
- Placement of Area Monitors
- Near radiation sources
- At room entrances
- Controlled and supervised areas
- Waste storage areas
- Records and Responsibilities
- Maintain individual dose records
- Regular review by Radiation Safety Officer (RSO)
- Worker training and health surveillance
- Immediate investigation of overexposures