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11.2 - Acronyms Symbols Units and Conversions

Module: Standalone Reference Appendices and Instructor Resources
Purpose: Fast reference for the abbreviations, symbols, pressure/vacuum scales, units, and conversions used throughout the EPA Section 608 course
Project integration review date: August 14, 2026
Source-status note: This file consolidates terminology and numerical relationships already used in Modules 1–10. It does not replace the controlling regulatory tables in the applicable instructional sections.

How to Use This Reference

Use this file when an abbreviation, symbol, or unit appears unfamiliar, or when two pressure or vacuum scales seem to conflict.

For exam preparation, remember:

NUMBER
+
UNIT
+
REFERENCE
+
CONDITION

A numerical value without its unit and reference can be misleading.

Examples:

25 mm Hg absolute
≠
25 in. Hg vacuum
0 psig
≠
0 psia
4 in. Hg vacuum
≠
4 in. Hg absolute

The most important pressure/vacuum rule is:

Always identify what the zero point of the scale represents before comparing two readings.


1. Master Acronym and Abbreviation Reference

1.1 Federal Regulatory and Program Terms

AbbreviationFull TermCourse Use
EPAU.S. Environmental Protection AgencyFederal agency administering Section 608 refrigerant-management requirements
CAAClean Air ActFederal law containing Section 608 and Section 609
CFRCode of Federal RegulationsCodified federal regulations; Section 608 rules are primarily in 40 CFR Part 82, Subpart F
ODSOzone-Depleting SubstanceGeneral term for substances that can deplete stratospheric ozone
AIM ActAmerican Innovation and Manufacturing ActSeparate federal framework addressing regulated HFCs and related current requirements
IPRIndustrial Process RefrigerationEnd-use category used in current refrigerant leak-repair requirements
MVACMotor Vehicle Air ConditionerVehicle passenger-compartment air-conditioning equipment primarily addressed under Section 609
MVAC-likeMotor-vehicle-air-conditioner-like applianceDefined off-road equipment category that can involve Section 608 Type II or Section 609 certification pathways

High-Priority Distinction

SECTION 608
→ primarily stationary refrigeration and air conditioning
SECTION 609
→ MVAC service for consideration

1.2 Refrigerant-Family and Environmental Terms

AbbreviationFull TermMain Meaning
CFCChlorofluorocarbonRefrigerant family containing carbon, chlorine, and fluorine
HCFCHydrochlorofluorocarbonRefrigerant family containing hydrogen, chlorine, fluorine, and carbon
HFCHydrofluorocarbonRefrigerant family containing hydrogen, fluorine, and carbon but no chlorine
HFOHydrofluoroolefinUnsaturated fluorinated refrigerant family used in several lower-GWP refrigerants and blends
HCHydrocarbonRefrigerant family including substances such as propane and isobutane
ODPOzone Depletion PotentialRelative measure of a substance’s ability to deplete stratospheric ozone
GWPGlobal Warming PotentialRelative climate-impact metric over a stated time horizon
P-TPressure-TemperatureSaturation pressure-temperature relationship used for refrigerants

Family Memory Aid

CFC / HCFC
→ chlorine present
→ nonzero ODP
HFC / HFO
→ no chlorine
→ zero ODP

Zero ODP does not mean zero GWP, zero flammability, zero toxicity, or permission to vent.


1.3 HVAC/R Organizations, Standards, and Safety Terms

AbbreviationFull TermCourse Relevance
AHRIAir-Conditioning, Heating, and Refrigeration InstituteCurrent industry organization associated with performance standards and certification programs referenced in HVAC/R
ARIAir-Conditioning and Refrigeration InstituteHistorical organization name encountered in older EPA 608 material and older equipment references; now AHRI terminology is used
ASHRAEAmerican Society of Heating, Refrigerating and Air-Conditioning EngineersRefrigerant safety classifications and HVAC/R technical standards
ULUnderwriters Laboratories / UL certification terminologyEquipment testing, listing, and certification terminology encountered in recovery-equipment and safety discussions
DOTU.S. Department of TransportationCylinder markings, qualification, transportation, and hazardous-material requirements
OSHAOccupational Safety and Health AdministrationWorkplace safety framework, including respiratory, electrical, and confined-space considerations
SAESAE InternationalStandards used particularly in motor-vehicle air-conditioning equipment and Section 609 context
PPEPersonal Protective EquipmentEye, skin, hand, respiratory, and other protection selected for the hazard
SCBASelf-Contained Breathing ApparatusPositive-pressure respiratory protection for specified hazardous-atmosphere situations
SDSSafety Data SheetRefrigerant/product hazard, handling, first-aid, storage, and exposure information
IDLHImmediately Dangerous to Life or HealthAtmosphere posing an immediate threat to life, irreversible health effects, or escape capability

Historical terminology warning: Older EPA 608 materials may use ARI where current material uses AHRI. Treat this as a terminology change, not as two unrelated organizations.


1.4 Common Equipment and Application Abbreviations

AbbreviationFull TermCourse Use
HVACHeating, Ventilation, and Air ConditioningGeneral building comfort-system field
HVAC/RHeating, Ventilation, Air Conditioning, and RefrigerationBroader field including refrigeration
PTACPackaged Terminal Air ConditionerListed small-appliance example when the complete regulatory definition is satisfied
PTHPPackaged Terminal Heat PumpListed small-appliance example when the complete regulatory definition is satisfied
A/CAir ConditioningGeneral air-conditioning abbreviation
R-xxxRefrigerant designationStandard refrigerant identifier such as R-22, R-134a, R-410A, or R-123

2. Symbols Used Throughout the Course

2.1 Pressure Symbols

SymbolMeaningTypical Unit
Pressurepsi, psig, psia, mm Hg, in. Hg
Absolute pressurepsia, mm Hg absolute, microns
Gauge pressurepsig
Local atmospheric pressurepsia or equivalent barometric unit
Saturation pressurepsig or psia, depending on table/reference

The fundamental relationship is:

At approximately standard atmospheric pressure:

The 14.7 psi value is an approximation for standard atmospheric pressure, not a universal local atmospheric pressure.


2.2 Temperature Symbols

SymbolMeaning
Temperature
Saturation temperature
Dew-point / saturated-vapor temperature for a blend
Bubble-point / saturated-liquid temperature for a blend
Temperature difference

For zeotropic blends:

SUPERHEAT
→ use DEW temperature
SUBCOOLING
→ use BUBBLE temperature

2.3 Superheat and Subcooling Shorthand

Symbol / ShorthandMeaning
SHSuperheat
SCSubcooling

Superheat:

For a zeotropic blend:

Subcooling:

For a zeotropic blend:


2.4 Recovery-Cylinder Symbols

SymbolMeaningCourse Use
TWTare weightEmpty-cylinder weight
WCWater capacity by weightCylinder marking used in the project’s standard 80% training calculation
Gross cylinder weightCylinder plus contents
Maximum gross weight under the selected calculationUsed to determine remaining capacity

For the standard project 80% training calculation:

A lower applicable manufacturer or transportation filling limit controls if it is more restrictive than the project’s 80% training calculation.


2.5 Comparison and Mathematical Symbols

SymbolMeaningExample
=Equal to1 lb = 16 oz
≈Approximately equal to1 atm ≈ 14.7 psia
<Less thanLow-pressure refrigerant: <45 psia at 104°F
>Greater thanSystem-dependent restriction: full charge >15 lb
≤Less than or equal toSmall-appliance charge: ≤5 lb
≥Greater than or equal toODS leak-repair threshold: ≥50 lb when the rule applies
%PercentType I recovery percentages and leak-rate percentages
ΔDifference / change
°Degree°F or °C
in²Square inchesArea used in the major-repair numerical criterion

3. Master Unit Reference

3.1 Pressure and Vacuum Units

UnitMeaningReference PointDirection Toward Deeper Vacuum
psigPounds per square inch gaugeLocal atmosphereGauge pressure decreases; may become negative on a compound gauge
psiaPounds per square inch absolutePerfect vacuumSmaller number
in. Hg vacuumInches of mercury vacuumLocal atmosphereLarger number
mm Hg absoluteMillimeters of mercury absolutePerfect vacuumSmaller number
micronsMicrons of mercury absolutePerfect vacuumSmaller number

Direction Memory Aid

in. Hg VACUUM
DEEPER VACUUM
→ NUMBER GOES UP
psia / mm Hg absolute / microns
DEEPER VACUUM
→ NUMBER GOES DOWN

3.2 Mass and Weight Units

UnitMeaningCourse Use
lbPoundRefrigerant charge, cylinder TW/WC, recovery mass
ozOunceSmall refrigerant quantities and charge amounts

Exact course conversion:

Therefore:


3.3 Temperature Units

UnitMeaningCourse Use
Degrees FahrenheitPrimary U.S. HVAC/R temperature unit used throughout the course
Degrees CelsiusSI temperature scale used in technical references and refrigerant data

Temperature conversion:

For temperature differences, do not add or subtract 32:


3.4 Time and Area Units Used in Regulatory Conditions

UnitMeaningExample Course Use
minMinuteMajor-repair opening-duration criterion
dayDayRepair and verification timing
yrYearLeak-rate and record-retention contexts
in²Square inchRefrigerant-flow-area criterion

No additional area conversion is required for the EPA 608 questions in this course.


4. Gauge Pressure, Absolute Pressure, and Atmospheric Pressure

4.1 Gauge Pressure

Gauge pressure uses the surrounding atmosphere as zero.

Therefore:

0 psig
→ pressure equal to local atmosphere

It does not mean there is no pressure.

At standard atmospheric conditions:

0 psig
≈ 14.7 psia

A pressure gauge attached to an appliance and open to atmosphere normally reads approximately:

0 psig

because the pressure inside and outside the gauge sensing element is the same.


4.2 Absolute Pressure

Absolute pressure uses perfect vacuum as zero.

Therefore:

0 psia
→ theoretical perfect vacuum

Absolute pressure cannot be negative.

The relationship is:

At standard atmosphere, a gauge reading of corresponds approximately to:


4.3 Atmospheric Pressure

Atmospheric pressure is the pressure exerted by the surrounding atmosphere.

A commonly used standard-atmosphere approximation is:

1 standard atmosphere
≈ 14.696 psia
≈ 760 mm Hg absolute
≈ 29.92 in. Hg absolute
≈ 760,000 microns

For routine EPA 608 calculations, the course commonly rounds:

14.696 psia
→ 14.7 psia

Actual local atmospheric pressure changes with:

  • Elevation.
  • Weather.
  • Barometric conditions.

Therefore, atmospheric-referenced vacuum values should not be treated as exact absolute-pressure conversions unless the atmospheric pressure is known or a standard-atmosphere approximation is explicitly being used.


5. Vacuum Scales

5.1 Inches of Mercury Vacuum

An in. Hg vacuum reading normally tells how far pressure has fallen below local atmospheric pressure.

At local atmospheric pressure:

0 in. Hg vacuum

As the vacuum becomes deeper:

4 in. Hg vacuum
10 in. Hg vacuum
15 in. Hg vacuum
...

the number increases.

Under a standard atmosphere, the theoretical limit is approximately:

29.92 in. Hg vacuum

Real field readings are affected by local barometric pressure.


5.2 Millimeters of Mercury Absolute

mm Hg absolute is referenced to perfect vacuum.

Therefore:

760 mm Hg absolute
≈ standard atmosphere

and:

25 mm Hg absolute
→ much lower absolute pressure
→ deeper vacuum than atmospheric pressure

As the vacuum becomes deeper:

mm Hg absolute goes DOWN

The current Type III Table 1 endpoint emphasized throughout this course is:

25 mm Hg absolute

5.3 Microns

A micron in HVAC vacuum work means one micrometer of mercury column on an absolute-pressure basis.

The course relationship is:

Therefore:

and:

Why This Matters

The regulatory low-pressure refrigerant-removal endpoint:

25 mm Hg absolute
=
25,000 microns

is not the same as a deep-dehydration target such as:

500 microns

The two values represent very different absolute pressures and different purposes.


6. Why Unlike Vacuum Units Cannot Be Compared Directly

Consider the values:

10 in. Hg vacuum

and:

10 mm Hg absolute

The fact that both numbers are 10 does not make the pressures similar.

The scales use different:

  • Units.
  • Zero points.
  • Directions.

Inches Hg Vacuum

ZERO
→ atmosphere
DEEPER VACUUM
→ larger number

Millimeters Hg Absolute

ZERO
→ perfect vacuum
DEEPER VACUUM
→ smaller number

Therefore:

Never compare vacuum readings by the numerical value alone. First identify the unit and whether the scale is atmospheric-referenced or absolute.


7. Standard-Atmosphere Vacuum Interpretation Table

The following table is a teaching conversion based on a standard atmosphere of approximately 29.92 in. Hg absolute and 14.696 psia.

It is useful for understanding the scales. It should not be treated as an exact local field conversion when barometric pressure differs from standard atmosphere.

Vacuum ReadingApprox. Absolute Pressure, in. HgApprox. Absolute Pressure, psia
0 in. Hg vacuum29.9214.70
4 in. Hg vacuum25.9212.73
10 in. Hg vacuum19.929.78
15 in. Hg vacuum14.927.33
25 in. Hg vacuum4.922.42
29.92 in. Hg vacuum00

For a standard-atmosphere approximation:

For actual field conversion, use the actual local atmospheric/barometric pressure instead of automatically using 29.92.


8. High-Priority Course Conversions

8.1 Pounds and Ounces

PoundsOunces
0.25 lb4 oz
0.50 lb8 oz
0.75 lb12 oz
1 lb16 oz
2 lb32 oz
5 lb80 oz

The 5 lb value is important because the complete small-appliance definition includes a charge of 5 lb or less.

Charge alone does not determine Type I classification.


8.2 Fahrenheit and Celsius

°F°CCourse Connection
32°F0°CWater freezing point
68°F20°CConvenient room-temperature reference
77°F25°CCommon technical reference temperature
86°F30°CCommon technical reference
104°F40°CRefrigerant pressure-classification reference temperature
130°F54.4°CTraditional Type III oil-heating examination value
212°F100°CWater boiling point at standard atmosphere

104°F = 40°C exactly under the standard conversion equation.


8.3 mm Hg Absolute and Microns

mm Hg AbsoluteMicrons
760 mm Hg760,000 microns
25 mm Hg25,000 microns
5 mm Hg5,000 microns
1 mm Hg1,000 microns
0.5 mm Hg500 microns

This table is especially useful for separating:

  • Regulatory refrigerant-removal vacuum levels.
  • Deep system dehydration measurements.

9. Pressure and Vacuum Examples

Example 1 - Gauge to Absolute Pressure

Given:

  • Gauge pressure =
  • Standard atmospheric pressure approximation =

Relationship:

Substitute:

Result:

Exam Concept

Do not treat psig and psia as interchangeable.


Example 2 - 0 psig

A refrigerant section is at:

0 psig

Using standard atmospheric pressure for interpretation:

Therefore:

0 psig
≠
perfect vacuum

Example 3 - Type III Endpoint in Microns

Given:

Use:

Then:

Therefore:

Exam Concept

25 mm Hg absolute is not a typical deep-dehydration endpoint such as 500 microns.


Example 4 - Temperature Conversion

Convert to Celsius.

This matters because the refrigerant pressure categories used in the course are defined using saturation pressure at:

104°F
=
40°C

Example 5 - Pounds and Ounces

A small appliance contains:

Convert the ounces:

Total charge:

The charge is below the 5 lb Type I charge limit, but the appliance must still satisfy the other factory-manufacture, factory-charge, and factory-hermetic-sealing requirements before it qualifies as a small appliance.


10. Recovery-Cylinder Calculation Example

A recovery cylinder is marked:

TW = 28.0 lb
WC = 47.5 lb

Using the standard project 80% training calculation:

Maximum gross scale weight:

If the current scale reading is :

This is the project’s standard 80% training method. An applicable lower manufacturer or transportation filling limit controls actual use.


11. Pressure-Temperature and Superheat/Subcooling Unit Rules

11.1 Pressure-Temperature Tables

Before using a P-T table, identify:

  1. Refrigerant.
  2. Pressure unit.
  3. Gauge or absolute pressure.
  4. Temperature unit.
  5. Pure/azeotropic or zeotropic refrigerant.
  6. Bubble or dew value when the blend has glide.

A pressure-temperature table must not be used correctly unless its pressure reference is understood.

For technician use:

SUPERHEAT
→ saturated vapor
→ DEW for zeotropic blends
SUBCOOLING
→ saturated liquid
→ BUBBLE for zeotropic blends

11.2 Temperature Difference Versus Temperature

A superheat value of:

12°F

means a temperature difference, not an absolute Fahrenheit temperature.

If converting that difference to Celsius:

Do not subtract 32 when converting a temperature difference.


12. EPA 608 High-Priority Unit Associations

The following table is not a substitute for the full regulatory tables. Its purpose is to prevent unit mistakes.

Course ValueUnit / ReferenceWhat the Unit Is Telling You
5 lbrefrigerant massSmall-appliance charge limit within the complete definition
>15 lbfull-charge massSystem-dependent recovery-equipment restriction
≥50 lbfull-charge massCurrent Section 608 ODS leak-repair applicability when other conditions are satisfied
200 lbfull-charge massType II evacuation-table boundary
45 / 170 / 355 psiaabsolute saturation pressure at 104°FRefrigerant pressure-category boundaries / criterion
4 in. Hg vacuumatmospheric-referenced vacuumType I alternative endpoint; also appears in historical/pre-1993 Table 1 context
10 in. Hg vacuumatmospheric-referenced vacuumCurrent Table 1 endpoint for specified Type II conditions
15 in. Hg vacuumatmospheric-referenced vacuumCurrent Table 1 endpoint for specified medium-pressure ≥200 lb condition
25 mm Hg absoluteabsolute pressureCurrent normal low-pressure Table 1 endpoint
500 micronsabsolute pressureExample deep-dehydration measurement used for technical comparison, not the Type III Table 1 endpoint
0 psiggauge pressureAtmospheric gauge pressure; used in specified service-opening provisions
5 psiggauge pressureCurrent special oil-change opening provision
10 psiggauge pressureTraditional Type III leak-test and recovery-unit-cutout exam values in their separate contexts
15 psiggauge pressureTraditional Type III recovery-vessel rupture-disc exam value
104°FtemperatureRefrigerant pressure-classification reference temperature
130°FtemperatureTraditional Type III oil-heating examination value
>4 in²areaPart of major-repair numerical definition
>15 mintimePart of major-repair numerical definition

Unit-Association Rule

Do not memorize:

15

Memorize:

15 lb
→ system-dependent recovery-equipment threshold context

or:

15 in. Hg vacuum
→ specified evacuation-table context

or:

15 psig
→ Type III recovery-vessel rupture-disc exam context

The number is the same.

The concept is not.


13. Common Unit and Symbol Mistakes

Mistake 1 - Treating 0 psig as Perfect Vacuum

Incorrect:

0 psig = 0 psia

Correct:

0 psig
→ local atmospheric pressure

At standard atmosphere:

0 psig
≈ 14.7 psia

Mistake 2 - Comparing 25 mm Hg Absolute With 25 in. Hg Vacuum

These are different scales with different zero references.

25 mm Hg absolute
→ absolute pressure
25 in. Hg vacuum
→ pressure reduction below atmosphere

Mistake 3 - Assuming a Larger Absolute-Pressure Number Means a Deeper Vacuum

For:

  • psia.
  • mm Hg absolute.
  • microns.

deeper vacuum means a smaller number.


Mistake 4 - Assuming a Smaller in. Hg Vacuum Number Means a Deeper Vacuum

For in. Hg vacuum, the direction is reversed:

larger reading
→ deeper vacuum

Mistake 5 - Forgetting Local Atmospheric Pressure

The common relationship:

29.92 in. Hg

represents a standard atmosphere.

Actual local barometric pressure can differ.

Do not use 29.92 as an exact field value without understanding that assumption.


Mistake 6 - Converting a Temperature Difference Like an Absolute Temperature

For an absolute temperature:

°F ↔ °C
→ includes the 32°F offset

For a temperature difference:

Δ°F ↔ Δ°C
→ scale factor only

Mistake 7 - Confusing Pounds With Ounces

1 lb = 16 oz

not 10 oz.


Mistake 8 - Treating TW and WC as the Same Cylinder Quantity

TW
→ empty cylinder weight
WC
→ water capacity by weight

For the standard project 80% calculation, use:

0.80 × WC

not:

0.80 × TW

Mistake 9 - Comparing Refrigerant Pressure Categories in psig

The pressure classifications taught in this course use:

psia at 104°F

not psig.


Mistake 10 - Reading a Blend P-T Table Without Bubble/Dew Labels

For a zeotropic blend:

bubble
≠
dew

Use the phase-appropriate value.


14. Fast Exam Memory Sheet

Pressure

psig
→ zero at atmosphere
psia
→ zero at perfect vacuum
Pabs = Pgauge + Patm
standard atmosphere
≈ 14.7 psia

Vacuum

in. Hg vacuum
→ deeper = larger
mm Hg absolute
→ deeper = smaller
microns
→ deeper = smaller
1 mm Hg
=
1000 microns
25 mm Hg absolute
=
25,000 microns

Mass

1 lb
=
16 oz

Temperature

°C = (°F − 32) × 5/9
°F = °C × 9/5 + 32
104°F
=
40°C

Blend P-T Use

SUPERHEAT
→ DEW
SUBCOOLING
→ BUBBLE

Recovery Cylinder

TW
→ tare / empty weight
WC
→ water capacity
maximum refrigerant training weight
→ 0.80 × WC

15. Cross-Reference Guide

For more detail, review:

TopicCourse Section
Gauge pressure, absolute pressure, and vacuum4.6 - Gauge Pressure Absolute Pressure and Vacuum.md
Pressure-temperature relationships4.7 - Pressure-Temperature Relationships.md
Superheat and subcooling4.8 - Superheat and Subcooling.md
Recovery-cylinder calculations5.6 - Recovery Cylinders.md
Evacuation and micron measurements5.7 - Evacuation and Dehydration.md
Service-practice evacuation levels5.9 - Service-Practice Requirements and Exceptions.md
Safety organizations and classificationsModule 6
Type II pressure classifications8.2 - Refrigerant Pressure Classifications.md
Type II evacuation requirements8.8 - Type II Evacuation Requirements.md
Type III evacuation requirement9.9 - Type III Evacuation Requirements.md
High-priority numbers and thresholds10.2 - High-Priority Numbers and Thresholds.md
Master terminology11.1 - Master EPA 608 Glossary.md

References

Course Technical and Regulatory Foundations

  1. Section 4.6 - Gauge Pressure Absolute Pressure and Vacuum

  2. Section 4.7 - Pressure-Temperature Relationships

  3. Section 4.8 - Superheat and Subcooling

  4. Section 5.6 - Recovery Cylinders

  5. Section 5.7 - Evacuation and Dehydration

  6. Section 5.9 - Service-Practice Requirements and Exceptions

  7. Section 8.2 - Refrigerant Pressure Classifications

  8. Section 8.8 - Type II Evacuation Requirements

  9. Section 9.9 - Type III Evacuation Requirements

  10. Section 10.2 - High-Priority Numbers and Thresholds

  11. Section 11.1 - Master EPA 608 Glossary