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3.8 - Quick Reference

Module: Refrigerants Blends and Lubricants
Covers: Sections 3.1–3.7
Technical and regulatory verification date: August 7, 2026
Use: Rapid review before the Module 3 practice questions and later Core/Universal certification review

1. Refrigerant Properties and Phase Change

Heat-Transfer Role

ItemQuick Reference
RefrigerantWorking fluid used to transfer heat
EvaporationLiquid → vapor; refrigerant absorbs heat
CondensationVapor → liquid; refrigerant rejects heat
Sensible heatChanges temperature without changing phase
Latent heatAssociated with phase change
Saturation temperatureBoiling/condensing temperature corresponding to a specified pressure
Saturation pressurePressure corresponding to a specified saturation temperature

Pressure and Saturation

For a given refrigerant:

Higher saturation pressure
→ higher saturation temperature

Lower saturation pressure
→ lower saturation temperature

Reducing pressure can cause a liquid refrigerant to boil because its saturation temperature decreases.

Phase Identification

ConditionRefrigerant State
Liquid temperature below saturation temperatureSubcooled liquid
At saturation conditionSaturated liquid, saturated vapor, or liquid-vapor mixture may exist
Vapor temperature above saturation temperatureSuperheated vapor

At saturation, pressure and temperature alone do not tell whether the refrigerant is saturated liquid, saturated vapor, or a two-phase mixture.

High-Priority Memory Aid

Evaporator → refrigerant absorbs heat
Condenser  → refrigerant rejects heat

2. Pure Refrigerants and Refrigerant Blends

Refrigerant / Blend Type Summary

TypeComposition and BehaviorExam Reminder
Pure refrigerantOne chemical compoundNo component fractionation
Zeotropic blendTwo or more components; liquid and vapor compositions can differUsually 400 series; can have glide and fractionation
Near-azeotropic blendZeotropic blend with small glideStill a 400-series zeotrope
Azeotropic blendMultiple components behaving essentially like one substance at the azeotropic compositionUsually 500 series; essentially no glide at that condition

Series Reminder

400 series → zeotropic blends
500 series → azeotropic blends

Do not overgeneralize:

  • A 400-series blend does not necessarily have a large glide.
  • A near-azeotropic blend does not become a 500-series refrigerant because its glide is small.
  • An azeotrope is still a blend containing multiple chemical components.

Fractionation

Fractionation is a change in blend composition caused by preferential separation or loss of components.

Fractionation can occur because:

  • Liquid and vapor phases of a zeotrope can have different compositions.
  • A leak can preferentially remove one phase or component.
  • Vapor withdrawal from a supply cylinder can change the remaining blend composition.

Fractionation is not the same as temperature glide.

TermMeaning
Temperature glideTemperature range through two-phase change at a given pressure
FractionationChange in refrigerant composition

3. Bubble Point Dew Point and Temperature Glide

Core Definitions

TermCorrect Meaning
Bubble pointSaturated-liquid boundary
Dew pointSaturated-vapor boundary
Temperature glideDifference between dew-point and bubble-point temperature at the same pressure

For a typical zeotropic blend at one pressure:

and:

Tdew > Tbubble

Evaporation and Condensation

During evaporation:

Bubble point
→ two-phase region
→ Dew point

During condensation:

Dew point
→ two-phase region
→ Bubble point

Technician Reference

Superheat  → use Dew
Subcooling → use Bubble

Memory aid:

Dew    = vapor side
Bubble = liquid side

Important Limits

  • Do not automatically average bubble and dew temperatures.
  • Use the correct P-T data for the specific refrigerant.
  • Confirm whether the table uses gauge pressure or absolute pressure.
  • Pressure alone does not identify an unknown refrigerant.
  • Small glide does not mean zero glide.

4. Liquid-Charging Reminder for Refrigerant Blends

Zeotropic Supply-Cylinder Withdrawal

Withdraw a zeotropic refrigerant blend from the supply cylinder as liquid to help preserve its specified composition.

Reason:

Zeotropic liquid and vapor compositions can differ
→ vapor-only withdrawal can change composition
→ liquid withdrawal helps preserve the intended blend

Liquid Withdrawal Does Not Mean Liquid Slugging

Do not confuse:

Withdraw blend from supply cylinder as liquid

with:

Allow uncontrolled liquid into a running compressor

When charging through the low side of an operating system:

  • Meter the refrigerant as required.
  • Allow it to vaporize before reaching the compressor when the approved procedure requires it.
  • Follow the equipment and refrigerant charging procedure.

Recovery Is Different From Charging

During recovery:

  • Capture the complete remaining blend.
  • Do not intentionally separate blend components.
  • Do not recover different refrigerants into the same cylinder.
  • Recovery does not reverse fractionation that already occurred before recovery.

5. Refrigerant Identification

Identification Sequence

Equipment nameplate / retrofit label
→ cylinder label
→ service history
→ P-T consistency check
→ refrigerant analyzer if needed

Identification Sources

SourceWhat It Tells the Technician
Equipment nameplateRefrigerant the equipment was originally designed to use
Retrofit labelUpdated refrigerant information after a proper conversion
Cylinder labelRefrigerant assigned to the supply or recovery cylinder
P-T comparisonWhether observed behavior is consistent with the expected refrigerant
Refrigerant analyzerHelps identify an unknown or suspect refrigerant

Cylinder Color

Cylinder color alone is not sufficient refrigerant identification.

Color cannot prove:

  • Refrigerant identity.
  • Purity.
  • Whether the cylinder has been reused.
  • Whether refrigerants have been mixed.

Read the label.

P-T Identification Limitation

A meaningful P-T check requires:

  • Pressure.
  • Temperature.
  • Correct refrigerant P-T data.
  • Suitable equilibrium conditions.

A matching P-T point is supporting evidence, but:

P-T behavior does not prove refrigerant purity.

Pressure alone is not sufficient because:

  • Pressure changes with temperature.
  • Different refrigerants can have similar pressures.
  • Zeotropic blends require bubble/dew interpretation.
  • Noncondensables can alter pressure.
  • Operating pressure is not the same as a static equilibrium test.

Unknown or Mixed Refrigerant

If identity is uncertain:

Stop
→ verify
→ analyze if needed
→ isolate suspect refrigerant
→ do not mix with known refrigerant

Accidentally mixing two refrigerants does not create a properly formulated commercial blend.


6. Refrigerant Lubricants

Major Lubricant Families

LubricantAbbreviationCommon Exam AssociationHigh-Priority Reminder
Mineral oilMOMany older CFC systemsMany HFC retrofits require another approved lubricant
AlkylbenzeneABR-22 and selected applicationsVerify refrigerant/compressor approval
PolyolesterPOEMany HFC and newer stationary systemsHighly moisture sensitive
Polyalkylene glycolPAGR-134a MVAC applicationsHighly moisture sensitive; not universal stationary oil
PolyalphaolefinPAOR-717/ammonia associationFollow compressor/system specification

These are broad exam-preparation associations, not universal substitution rules.

Lubricant Properties

PropertyMeaning / Importance
ViscosityResistance to flow; affects oil-film strength and circulation
MiscibilityAbility of refrigerant and lubricant to remain mixed under specified conditions
SolubilityRefrigerant dissolving in oil can reduce effective oil viscosity
Dielectric strengthResistance to electrical breakdown; especially important in hermetic compressors
Chemical stabilityResistance to harmful chemical breakdown
Oxidation resistanceResistance to sludge and degradation

Oil Return

Poor refrigerant-lubricant behavior can cause:

Oil trapped in system
→ reduced oil return
→ compressor oil starvation
→ wear / failure

Excessive refrigerant dissolved in the oil can also thin the lubricant and weaken the oil film.

Moisture-Sensitive Oils

POE and PAG require special moisture control:

Keep sealed
Keep clean
Keep dry
Minimize exposure to air

Lubricant Selection Rule

Refrigerant
+
compressor
+
lubricant chemistry
+
viscosity grade
+
system design

must be compatible.

The compressor or equipment manufacturer’s specification controls actual lubricant selection.


7. Moisture Acid and Noncondensables

Contamination Effects

Contaminant / ConditionMajor Effect
MoistureIce, corrosion, acid formation, lubricant degradation
AcidCorrosion, winding damage, compressor damage
Copper platingCopper deposits on compressor surfaces; can affect clearances and lubrication
Air / noncondensablesIncreased head/discharge pressure and reduced condenser effectiveness
Dirt / particlesRestrictions and wear
Burnout residueAcid, carbon, sludge, damaged oil

Moisture Damage Sequence

Moisture
→ chemical degradation
→ acid / corrosion
→ copper movement or plating
→ compressor damage

Moisture can also freeze at:

  • Capillary tubes.
  • Expansion-valve passages.
  • Small orifices.

Noncondensables

Common examples:

  • Air.
  • Nitrogen left after pressure testing.

In the condenser:

Noncondensable gas remains gaseous
→ adds pressure
→ interferes with condensation
→ head/discharge pressure can increase

High head pressure does not prove noncondensables. Dirty condensers, low airflow, high ambient temperature, overcharge, and other conditions can also raise head pressure.

Filter-Drier

A filter-drier:

  • Removes moisture.
  • Filters solid particles.
  • Uses a desiccant.
  • Has limited moisture capacity.

It does not remove air from the system.

Moisture Indicator

A moisture-indicating sight glass:

  • Indicates moisture condition.
  • Does not remove moisture.
  • Must be interpreted according to the manufacturer’s color legend.

Do not memorize one universal color code for every moisture indicator.

Deep Evacuation

Deep evacuation removes:

  • Air.
  • Other noncondensable gases.
  • Water vapor.

Vacuum lowers the boiling temperature of water:

Lower absolute pressure
→ lower water boiling temperature
→ water vaporizes
→ vacuum pump removes vapor

Deep-Vacuum Measurement

  • Use a micron gauge for deep-vacuum measurement.
  • A compound gauge in inches of mercury does not provide adequate resolution in the deep-vacuum range.
  • This course uses 500 microns as a common service/dehydration benchmark.
  • 500 microns is not the universal EPA refrigerant-recovery requirement for every appliance.

Important Vacuum Warnings

  • A filter-drier does not replace evacuation.
  • Evacuation does not replace a filter-drier.
  • A vacuum pump does not replace required refrigerant recovery.
  • Nitrogen left in the system becomes a noncondensable.
  • Do not energize a hermetic compressor under deep vacuum.
  • Large amounts of water can freeze during rapid evacuation and slow dehydration.

8. Retrofitting and Substitute Refrigerants

Central Rule

There is no universal drop-in refrigerant replacement.

Do not select a substitute only because:

  • Pressure appears similar.
  • The refrigerant is marketed as a replacement.
  • It has a lower GWP.
  • The original refrigerant is expensive or unavailable.

Retrofit Compatibility Checklist

Before charging a substitute, verify:

CheckWhy It Matters
Specific end-useSubstitute acceptability can be application specific
Applicable use conditionsMay impose mandatory safety or equipment requirements
Equipment/compressor approvalConfirms technical suitability
Pressure ratingPrevents operation above component limits
LubricantEnsures lubrication and oil return
Seals and materialsPrevents leakage and material damage
Metering deviceEnsures correct refrigerant flow
CapacityReplacement performance may differ
Discharge temperatureProtects compressor and lubricant
Safety classificationDetermines flammability/toxicity precautions
Codes and listingsFederal acceptability does not replace other safety requirements
Charging procedureCharge amount and phase can differ
Retrofit labelPrevents future identification and service errors

Retrofit Sequence

Identify existing refrigerant
→ verify substitute for the end-use
→ obtain approved retrofit procedure
→ check equipment / lubricant / materials / safety
→ recover original refrigerant
→ make required changes
→ repair leaks
→ pressure-test
→ evacuate
→ charge by measured mass
→ verify operation
→ leak-check
→ label the retrofit

Leak Testing

Dry nitrogen is commonly used for pressure testing.

Do not use:

  • Oxygen.
  • Ordinary compressed air.

After testing:

Remove nitrogen
→ evacuate
→ verify vacuum
→ charge refrigerant

Nitrogen left in the system becomes a noncondensable.

Charging After Retrofit

  • Do not assume the old refrigerant charge weight is correct.
  • Charge by measured mass.
  • Follow the approved replacement-refrigerant procedure.
  • Withdraw zeotropic blends from the supply cylinder as liquid.
  • Use the new refrigerant’s P-T data.
  • Verify superheat/subcooling with the correct bubble/dew reference where applicable.

Labeling

After retrofit, clearly identify:

  • New refrigerant.
  • New lubricant when applicable.
  • Charge information when required.
  • Date and relevant retrofit information.

Do not leave the original refrigerant nameplate as the only current identification.

Current-Rule Reminder

A restriction on refrigerant used in new equipment does not automatically require every existing system to be retrofitted.

Existing equipment can generally continue to be serviced with legally available refrigerant when current rules permit.

For major reconstruction or conversion projects, verify the current requirements before proceeding.


9. High-Priority Module 3 Comparison Tables

Phase and Blend Comparison

Exam ClueCorrect Concept
Liquid → vaporEvaporation; absorbs heat
Vapor → liquidCondensation; rejects heat
Liquid below saturationSubcooled
Vapor above saturationSuperheated
One chemical compoundPure refrigerant
400 seriesZeotropic blend
500 seriesAzeotropic blend
Small glide but still 400 seriesNear-azeotropic zeotrope
Composition changes through selective lossFractionation
Saturated-liquid boundaryBubble point
Saturated-vapor boundaryDew point
Superheat reference for zeotropeDew point
Subcooling reference for zeotropeBubble point

Identification and Service Comparison

Exam ClueCorrect Action / Concept
Intended equipment refrigerantNameplate / retrofit label
Supply-cylinder refrigerantRead cylinder label
Cylinder colorNot sufficient identification
P-T matchConsistency evidence, not proof of purity
Unknown refrigerantAnalyze and isolate before mixing
Zeotropic chargingWithdraw from supply cylinder as liquid
Recovery of blendCapture the complete remaining blend
Different known refrigerantsDo not mix

Lubricant and Contamination Comparison

Exam ClueCorrect Concept
HFC / many newer stationary systemsPOE association
R-134a MVACPAG association
Strong moisture sensitivityPOE / PAG
Resistance to flowViscosity
Refrigerant-oil mixing behaviorMiscibility
Electrical insulationDielectric strength
Resists sludge/degradationOxidation resistance
Ice at restrictionMoisture
Acid / copper platingMoisture and chemical contamination
High head pressureNoncondensables can be a cause
Removes moisture and particlesFilter-drier
Shows moisture conditionMoisture indicator
Removes air and water vaporDeep evacuation
Measures deep vacuumMicron gauge

10. Common Module 3 Exam Traps

TrapCorrect Interpretation
“Refrigerant creates cold”Refrigerant transfers heat
Evaporation rejects heatWrong — evaporation absorbs heat
Condensation absorbs heatWrong — condensation rejects heat
Every 400-series blend has large glideWrong
Near-azeotropic means 500 seriesWrong — it remains zeotropic
Bubble point is vapor sideWrong — bubble = saturated liquid
Dew point is liquid sideWrong — dew = saturated vapor
Superheat uses bubble pointWrong — superheat uses dew
Subcooling uses dew pointWrong — subcooling uses bubble
Fractionation and glide are the sameWrong
Zeotropic supply cylinder should be vapor-chargedWrong — withdraw as liquid
Liquid withdrawal means liquid slugging is acceptableWrong
Cylinder color identifies refrigerantWrong — read the label
Pressure alone identifies refrigerantWrong
Matching P-T proves purityWrong
Accidental refrigerant mixture is just another commercial blendWrong
All R-134a systems use PAGWrong
All HFC systems use the same POEWrong
Filter-drier removes airWrong
Moisture indicator removes waterWrong
500 microns is the EPA recovery level for every applianceWrong
High head pressure always proves noncondensablesWrong
Lower-GWP substitute is automatically drop-inWrong
Similar pressure proves retrofit compatibilityWrong
Original refrigerant P-T chart remains valid after retrofitWrong

11. Rapid Technician Decision Sequences

Refrigerant Identification

Nameplate / retrofit label
→ cylinder label
→ P-T consistency
→ analyzer if uncertain
→ isolate if suspect

Zeotropic Charging

Verify refrigerant
→ withdraw from cylinder as liquid
→ meter safely if charging low side
→ prevent liquid slugging

Contaminated System

Identify contamination
→ correct leak / source
→ replace required filter-drier
→ evacuate / dehydrate
→ verify vacuum
→ charge clean refrigerant

Retrofit

Verify substitute
→ verify equipment compatibility
→ recover old refrigerant
→ make required changes
→ leak-test
→ evacuate
→ charge by mass
→ verify operation
→ relabel

12. Important Module 3 Relationships

Temperature Glide

at the same pressure.

Saturation and Phase

For a given pure refrigerant:

Higher pressure ↔ higher saturation temperature
Lower pressure  ↔ lower saturation temperature

Technician Bubble/Dew Rule

Superheat  → Dew
Subcooling → Bubble

Moisture Control

Keep system closed
+ keep lubricant dry
+ use filter-drier
+ deep evacuate

Retrofit Compatibility

Refrigerant
+ lubricant
+ compressor
+ materials
+ pressure rating
+ safety class
+ approved procedure

must work together.