11.3 - Refrigerant Family and Environmental Comparison
Module: Standalone Reference Appendices and Instructor Resources
Purpose: Consolidated family-level reference for refrigerant composition, ozone impact, climate impact, typical applications, pure/blend behavior, and major service cautions
Project integration review date: August 14, 2026
Regulatory/scientific verification basis: Current project Modules 2–3 plus current EPA ozone-protection, HFC/AIM Act, SNAP, and refrigerant-safety information
Scope note: This file compares refrigerant families. Detailed refrigerant-by-refrigerant lookup information is reserved for11.17 - Common Refrigerant Quick Reference.md.
How to Use This Reference
Use this file when you need to answer questions such as:
- Is this refrigerant a CFC, HCFC, HFC, HFO, hydrocarbon, or natural refrigerant?
- Does the family contain chlorine?
- Does the family have ozone-depletion potential?
- Does zero ODP also mean low climate impact?
- Is the refrigerant normally a pure fluid or a blend?
- What applications are commonly associated with the family?
- What major service or safety issue should be remembered first?
For rapid identification:
CFC
→ carbon + chlorine + fluorine
HCFC
→ hydrogen + carbon + chlorine + fluorine
HFC
→ hydrogen + fluorine + carbon
→ no chlorine
HFO
→ hydrogen + fluorine + carbon
→ carbon-carbon double bond
→ no chlorine
HYDROCARBON
→ hydrogen + carbon
The three most important environmental reminders are:
CHLORINE IN CFC / HCFC
→ NONZERO ODP
ZERO ODP
≠
ZERO GWP
LOW GWP
≠
AUTOMATICALLY SAFE, LEGAL, OR SUITABLE
1. Master Refrigerant-Family Comparison
| Family / Group | Elements or Identity | Ozone-Depletion Behavior | Climate-Impact Concept | Common Examples | Typical Historical or Current Use | Pure / Blend Status | High-Priority Service Warning |
|---|---|---|---|---|---|---|---|
| CFC | Carbon + chlorine + fluorine | Nonzero ODP; generally high ozone impact | Many have high or very high GWP and long atmospheric lifetimes | CFC-11 / R-11, CFC-12 / R-12 | Historical chillers, refrigeration, air conditioning, and older MVAC applications | Individual CFCs such as R-11 and R-12 are pure compounds | ODS: recover properly; do not intentionally vent; legacy equipment may still contain CFC charge |
| HCFC | Hydrogen + carbon + chlorine + fluorine | Nonzero ODP, generally lower than CFCs but not zero | Climate impact varies; several important HCFCs also have significant GWP | HCFC-22 / R-22, HCFC-123 / R-123 | Legacy residential/commercial A/C, refrigeration, and low-pressure chiller applications | Individual HCFCs such as R-22 and R-123 are pure compounds; HCFCs can also appear as blend components | Contains ozone-depleting chlorine; production/import phaseout does not mean existing equipment may simply be vented or discarded |
| HFC | Hydrogen + fluorine + carbon; no chlorine | ODP = 0 | Many HFCs have significant to high GWP; HFC production/consumption is being phased down under the AIM Act | R-32, R-134a, R-125; HFC blends such as R-404A, R-407C, R-410A, R-507A | Widely installed in refrigeration, A/C, heat pumps, chillers, and historical/current MVAC applications depending on refrigerant and end use | Can be pure fluids or blend components; many common 400/500-series refrigerants are HFC blends | Zero ODP does not create permission to vent; verify current end-use restrictions, recovery requirements, pressure, safety class, and equipment compatibility |
| HFO | Hydrogen + fluorine + carbon with a carbon-carbon double bond; no chlorine | ODP = 0 | Generally very low GWP because many HFOs have short atmospheric lifetimes | HFO-1234yf, HFO-1234ze(E) | Current lower-GWP applications including MVAC, chillers, specialty refrigeration, and blend components | May be pure refrigerants or components of HFC/HFO blends | Many HFO-containing refrigerants have different flammability characteristics from older A1 refrigerants; never infer safety class from “HFO” alone |
| Hydrocarbon (HC) | Hydrogen + carbon | ODP = 0 | Very low direct GWP for common refrigerant hydrocarbons | R-290 propane, R-600a isobutane | Domestic refrigeration, small commercial refrigeration, and selected current HVAC/R applications where permitted | Common examples such as R-290 and R-600a are pure compounds; hydrocarbon blends also exist | Flammability is the major service concern; charge limits, ignition control, equipment approval, codes, and end-use acceptability matter |
| Carbon dioxide | CO₂ | ODP = 0 | GWP = 1 by definition as the GWP reference gas | R-744 | Commercial refrigeration, supermarket systems, refrigerated transport, heat pumps, and other specialized applications | Pure compound | Very high operating pressures and asphyxiation/exposure concerns require equipment and procedures designed specifically for R-744 |
| Ammonia | NH₃ | ODP = 0 | Very low direct climate impact in the course comparison framework | R-717 | Industrial refrigeration, cold storage, food processing, and large industrial systems | Pure compound | Toxicity is a major hazard; system design, ventilation, detection, PPE, emergency procedures, and material compatibility are critical |
| Water | H₂O | ODP = 0 | GWP shown as 0 under the EPA refrigerant-table convention used by this course | R-718 | Specialized absorption refrigeration and other low-pressure/vacuum applications | Pure compound | Specialized system design is required; water as a refrigerant does not behave like a conventional high-pressure halocarbon system |
Do not use this table to determine the ASHRAE safety class or Section 608 pressure category of a specific refrigerant. Those are refrigerant-specific properties and are developed in
11.4 - Refrigerant Pressure and Safety Classification Reference.md.
2. Environmental Metrics
2.1 Ozone-Depletion Potential
Ozone-depletion potential (ODP) compares the ability of a substance to deplete stratospheric ozone with the impact of CFC-11.
The project reference is:
CFC-11
→ ODP = 1.0
A larger ODP means greater ozone-depletion impact per unit mass relative to the reference.
Family-Level ODP Pattern
| Family / Group | General ODP Pattern | Why |
|---|---|---|
| CFC | Nonzero; often significant | Contains chlorine and is sufficiently stable for significant stratospheric transport |
| HCFC | Nonzero but generally lower than CFC | Contains chlorine, but the added hydrogen generally makes the molecule less atmospherically persistent than comparable CFCs |
| HFC | 0 | Contains no chlorine |
| HFO | 0 | Contains no chlorine |
| Hydrocarbon | 0 | Contains no chlorine or bromine |
| CO₂ | 0 | Does not contain ozone-depleting chlorine or bromine |
| Ammonia | 0 | Does not contain ozone-depleting chlorine or bromine |
| Water | 0 | Does not contain ozone-depleting chlorine or bromine |
Exam Memory Rule
CFC / HCFC
→ CHLORINE
→ ODP > 0
HFC / HFO
→ NO CHLORINE
→ ODP = 0
2.2 Global-Warming Potential
Global-warming potential (GWP) compares the climate effect of a greenhouse gas with carbon dioxide over a stated time horizon.
The project reference is:
CO₂
→ GWP = 1
GWP values must be interpreted with their:
- Time horizon.
- Scientific assessment.
- Regulatory source.
- Refrigerant composition if a blend is involved.
Therefore:
A GWP number is not complete unless its basis is known.
Two technically credible sources can report different GWP values for the same refrigerant because they may rely on different scientific assessment reports or regulatory conventions.
2.3 Zero ODP Does Not Mean Zero Climate Impact
A refrigerant can have:
ODP = 0
and still have:
HIGH GWP
HFCs are the most important course example.
The absence of chlorine prevents ozone-depletion behavior associated with CFCs and HCFCs, but it does not determine atmospheric heat-trapping effect.
Therefore:
OZONE PROTECTION
and
CLIMATE PROTECTION
→ RELATED BUT DIFFERENT QUESTIONS
2.4 Direct and Indirect Climate Effects
Direct Climate Effect
A direct climate effect occurs when refrigerant is released and the refrigerant itself contributes to greenhouse forcing.
Important factors include:
- Refrigerant GWP.
- Charge size.
- Leakage.
- Service emissions.
- End-of-life recovery.
- Refrigerant losses during equipment life.
Indirect Climate Effect
An indirect climate effect can arise from the energy required to operate the equipment.
For example, two refrigerants with different direct GWPs can also produce different system efficiencies depending on:
- Equipment design.
- Operating conditions.
- Heat-exchanger design.
- Compressor design.
- Controls.
- Application.
Therefore:
A refrigerant comparison should not be reduced to a single GWP number when evaluating overall environmental performance.
For EPA 608 examination preparation, however, the high-priority distinction remains:
ODP
→ ozone-depletion comparison
GWP
→ climate-impact comparison
3. CFC Refrigerants
3.1 Family Definition
A chlorofluorocarbon (CFC) contains:
- Carbon.
- Chlorine.
- Fluorine.
It does not contain hydrogen.
Examples used throughout the course include:
- CFC-11 / R-11
- CFC-12 / R-12
Other historical CFC refrigerants include R-113, R-114, and R-115.
3.2 Environmental Behavior
CFCs are important historically because they combine:
- Significant ozone-depletion potential.
- Long atmospheric lifetime.
- Often substantial GWP.
When a CFC reaches the stratosphere, ultraviolet radiation can break the molecule apart and release chlorine. The chlorine can participate in catalytic ozone-destruction reactions.
The course reference substance for ODP is:
CFC-11
→ ODP = 1.0
3.3 Typical Historical Use
Representative historical uses include:
| Refrigerant | Representative Historical Association |
|---|---|
| R-11 | Low-pressure centrifugal chillers and other historical low-pressure applications |
| R-12 | Household/commercial refrigeration, older air-conditioning applications, and older MVAC systems |
| R-113 | Historical specialty refrigeration/cleaning and other industrial uses |
CFCs remain important for EPA 608 study because technicians may encounter:
- Legacy equipment.
- Recovered refrigerant.
- Reclaimed refrigerant.
- Historical records.
- Older study-guide questions.
- Regulatory phaseout history.
3.4 Service Reminder
PHASED OUT PRODUCTION / IMPORT
≠
PERMISSION TO VENT
A legacy appliance containing CFC refrigerant must still be serviced, recovered, and disposed of under the applicable current refrigerant-management requirements.
Do not mix recovered CFC refrigerant with other refrigerants.
4. HCFC Refrigerants
4.1 Family Definition
A hydrochlorofluorocarbon (HCFC) contains:
- Hydrogen.
- Carbon.
- Chlorine.
- Fluorine.
Common course examples:
- HCFC-22 / R-22
- HCFC-123 / R-123
4.2 Why HCFC ODP Is Lower Than CFC ODP
HCFCs still contain ozone-depleting chlorine.
However, the presence of hydrogen makes many HCFCs more likely to break down in the lower atmosphere before reaching the stratosphere.
Therefore:
HCFC ODP
→ generally LOWER than comparable CFC ODP
but:
HCFC ODP
≠ 0
4.3 Typical Historical and Legacy Use
| Refrigerant | Representative Association |
|---|---|
| R-22 | Residential and commercial A/C, heat pumps, refrigeration, and other legacy high-pressure applications |
| R-123 | Low-pressure centrifugal chillers and other legacy chiller applications |
The U.S. HCFC production/import phaseout is staged. The project already distinguishes:
- R-22/HCFC-142b production/import ending in 2020.
- Remaining U.S. HCFC production/import scheduled to end in 2030.
This does not automatically prohibit continued operation of every existing HCFC appliance.
4.4 Service Reminder
Technicians working on HCFC equipment must remember:
- HCFC refrigerant remains an ozone-depleting substance.
- Refrigerant must be recovered when required.
- Existing equipment may continue to contain legacy charge.
- Recovered/recycled/reclaimed refrigerant may remain relevant where permitted.
- Do not treat an old installed system as exempt simply because new production/import is phased down or phased out.
- Do not use obsolete historical leak-rate values merely because the equipment uses R-22.
5. HFC Refrigerants
5.1 Family Definition
A hydrofluorocarbon (HFC) contains:
- Hydrogen.
- Fluorine.
- Carbon.
HFCs contain no chlorine.
Therefore:
HFC
→ ODP = 0
Common examples include:
- R-32.
- R-125.
- R-134a.
- R-143a.
Common HFC blends include:
- R-404A.
- R-407A.
- R-407C.
- R-410A.
- R-507A.
5.2 Environmental Behavior
HFCs were widely adopted because they do not deplete stratospheric ozone.
However:
HFC
→ ZERO ODP
does not mean:
HFC
→ LOW GWP
Many widely used HFCs and HFC blends have substantial 100-year GWP values.
This is why HFC climate impacts are addressed separately from the ozone-depletion phaseout framework.
5.3 Current U.S. Climate-Regulatory Context
The American Innovation and Manufacturing Act provides a separate federal framework for HFCs.
At the family level, remember:
AIM ACT
→ HFC PRODUCTION / CONSUMPTION PHASEDOWN
→ REFRIGERANT MANAGEMENT
→ TECHNOLOGY TRANSITIONS
This should not be confused with the ozone-depleting-substance phaseout of CFCs and HCFCs.
CFC / HCFC PHASEOUT
→ OZONE PROTECTION
HFC PHASEDOWN
→ CLIMATE PROTECTION
5.4 Service Reminder
HFC refrigerants can still be subject to:
- Section 608 technician-certification requirements.
- Recovery requirements.
- Sales restrictions for non-exempt substitutes.
- Safe-disposal requirements.
- Venting restrictions unless a specific substitute/end use is exempt.
- Separate current HFC management and technology-transition provisions.
Do not assume that:
ODP = 0
→ venting allowed
or:
HFC
→ every HFC is interchangeable
6. HFO Refrigerants
6.1 Family Definition
A hydrofluoroolefin (HFO) contains:
- Hydrogen.
- Fluorine.
- Carbon.
- At least one carbon-carbon double bond.
The double bond makes the molecule unsaturated and generally less atmospherically persistent than a comparable saturated HFC.
Course examples include:
- HFO-1234yf.
- HFO-1234ze(E).
6.2 Environmental Behavior
HFOs contain no chlorine.
Therefore:
HFO
→ ODP = 0
Many HFOs also have very low GWP because their atmospheric lifetimes are comparatively short.
This makes HFO chemistry important in the transition toward lower-GWP refrigeration and air-conditioning technologies.
6.3 Pure HFO Versus HFO-Containing Blend
Do not assume every refrigerant marketed as part of a lower-GWP transition is a pure HFO.
Examples:
R-1234yf
→ pure HFO refrigerant
R-454B
→ blend containing HFC + HFO components
A blend must be identified by its actual designation and composition.
6.4 Service Reminder
Many HFOs and HFO-containing blends require special attention to:
- Flammability classification.
- Equipment approval.
- Charge limits.
- Ignition-source control.
- Service-tool suitability.
- Recovery-equipment suitability.
- Cylinder and storage requirements.
- Manufacturer procedures.
- Current SNAP/end-use status.
- Current building and mechanical codes.
Do not use the word HFO as a substitute for checking the specific refrigerant’s safety class.
7. Hydrocarbon Refrigerants
7.1 Family Definition
Hydrocarbon refrigerants contain only:
- Hydrogen.
- Carbon.
Important course examples:
- R-290 — propane
- R-600a — isobutane
7.2 Environmental Behavior
Common hydrocarbon refrigerants have:
ODP = 0
and very low direct GWP compared with many traditional fluorocarbon refrigerants.
Their environmental advantage does not eliminate the major safety issue:
HYDROCARBON
→ FLAMMABLE
7.3 Typical Use
Representative current applications include:
- Household refrigeration.
- Small self-contained commercial refrigeration.
- Selected heat-pump or HVAC/R applications where specifically permitted and designed for the refrigerant.
Application depends on:
- Equipment design.
- Charge amount.
- End-use acceptability.
- Codes and standards.
- Location.
- Ventilation.
- Ignition-source controls.
7.4 Service Reminder
Do not assume a hydrocarbon refrigerant may be used as a generic replacement for a nonflammable fluorocarbon.
A technician must verify:
- The appliance was designed or properly approved for the refrigerant.
- Applicable charge limits.
- Correct recovery equipment.
- Correct electrical/service practices.
- Ignition-source control.
- Ventilation.
- Leak-detection procedure.
- Current regulatory/end-use acceptability.
A product marketed with a name suggesting it is a direct replacement for R-22 or another refrigerant is not automatically an approved substitute.
8. Carbon Dioxide — R-744
8.1 Identity
R-744
→ carbon dioxide
→ CO₂
R-744 is treated as a natural refrigerant in HVAC/R discussions.
8.2 Environmental Behavior
R-744 has:
ODP = 0
and:
GWP = 1
because carbon dioxide is the reference gas for GWP.
Do not describe carbon dioxide as a zero-GWP refrigerant.
8.3 Typical Use
Representative applications include:
- Supermarket refrigeration.
- Commercial refrigeration.
- Refrigerated transport.
- Heat pumps.
- Specialized industrial systems.
8.4 Service Reminder
The low GWP does not imply low hazard.
R-744 systems can involve:
- Very high pressure.
- Rapid pressure rise in trapped liquid or warm isolated sections.
- Dry-ice formation under certain depressurization conditions.
- Oxygen-displacement/asphyxiation concerns in occupied or confined areas.
System components and service equipment must be rated for the applicable R-744 pressures.
Detailed pressure classification belongs in Section 11.4.
9. Ammonia — R-717
9.1 Identity
R-717
→ ammonia
→ NH₃
Ammonia is a natural refrigerant widely associated with industrial refrigeration.
9.2 Environmental Behavior
R-717 has:
ODP = 0
and a very low direct climate impact in the environmental comparison framework used by this course.
Its environmental characteristics do not remove its major safety hazards.
9.3 Typical Use
Representative applications include:
- Industrial refrigeration.
- Food processing.
- Cold storage.
- Ice plants.
- Large warehouse systems.
- Process refrigeration.
9.4 Service Reminder
Ammonia requires special attention to:
- Toxicity.
- Exposure response.
- Ventilation.
- Leak detection.
- Respiratory protection.
- Emergency planning.
- Material compatibility.
- System-specific operating procedures.
Do not generalize halocarbon service procedures to ammonia systems.
10. Water — R-718
10.1 Identity
R-718
→ water
→ H₂O
Water can serve as a refrigerant in specialized systems.
10.2 Environmental Behavior
Under the EPA refrigerant-table convention used in this course:
ODP = 0
and:
GWP = 0
for R-718 as a refrigerant entry.
This refrigerant-table convention should not be confused with atmospheric-science discussions of water vapor as a greenhouse constituent.
10.3 Typical Use
Representative uses include:
- Absorption refrigeration.
- Specialized vacuum/low-pressure refrigeration processes.
Water requires very low operating pressures to evaporate at common refrigeration temperatures.
10.4 Service Reminder
R-718 systems are specialized.
Do not assume that a water-refrigerant system uses the same:
- Pressure range.
- Compressor arrangement.
- Leak behavior.
- Recovery method.
- Charging procedure.
as a conventional halocarbon vapor-compression system.
11. Pure Refrigerants and Refrigerant Blends
Chemical family and blend behavior are different classifications.
A refrigerant may be:
- One pure compound.
- A blend of compounds from the same broad chemical family.
- A blend containing components from more than one family.
11.1 Pure Refrigerants
Examples used in the course:
| Refrigerant | Family | Status |
|---|---|---|
| R-11 | CFC | Pure compound |
| R-12 | CFC | Pure compound |
| R-22 | HCFC | Pure compound |
| R-123 | HCFC | Pure compound |
| R-32 | HFC | Pure compound |
| R-134a | HFC | Pure compound |
| R-1234yf | HFO | Pure compound |
| R-1234ze(E) | HFO | Pure compound |
| R-290 | Hydrocarbon | Pure compound |
| R-600a | Hydrocarbon | Pure compound |
| R-717 | Ammonia | Pure compound |
| R-744 | Carbon dioxide | Pure compound |
| R-718 | Water | Pure compound |
11.2 Zeotropic Blends
ASHRAE 400-series designations are generally associated with zeotropic blends.
Examples include:
- R-404A.
- R-407A.
- R-407C.
- R-410A as a near-azeotropic 400-series blend.
- R-448A.
- R-449A.
- R-454B.
A zeotropic blend can have:
- Different liquid and vapor compositions.
- Temperature glide.
- Bubble-point and dew-point temperatures.
Technician memory rule:
ZEOTROPIC BLEND
→ normally withdraw from supply cylinder as LIQUID
to help maintain the intended composition.
11.3 Azeotropic Blends
ASHRAE 500-series designations are generally associated with azeotropic blends.
Example:
- R-507A.
At the azeotropic composition, the mixture behaves much more like a single substance during phase change.
11.4 Near-Azeotropic Blends
A near-azeotropic blend is technically a zeotropic blend with very small temperature glide.
A common course example is:
- R-410A.
Do not conclude that:
SMALL GLIDE
→ PURE REFRIGERANT
R-410A remains a blend.
12. Representative Environmental Values Already Used in the Course
The following values are carried forward from Section 2.3 so that Module 11 remains consistent with the existing course.
| Refrigerant | Family | ODP | Representative 100-Year GWP Used in Course |
|---|---|---|---|
| CFC-11 | CFC | 1.0 | 4,750 |
| CFC-12 | CFC | 1.0 | 10,900 |
| HCFC-22 | HCFC | 0.055 | 1,810 |
| HCFC-123 | HCFC | 0.02 | 77 |
| HFC-134a | HFC | 0 | 1,430 |
| HFC-32 | HFC | 0 | 675 |
| R-410A | HFC blend | 0 | 2,088 |
| HFO-1234yf | HFO | 0 | 1 |
| HFO-1234ze(E) | HFO | 0 | 1 |
| R-290 | Hydrocarbon | 0 | 3.3 |
| R-600a | Hydrocarbon | 0 | 1 |
| R-717 | Ammonia | 0 | 1 |
| R-744 | Carbon dioxide | 0 | 1 |
| R-718 | Water | 0 | 0 |
Important: These are the representative values already adopted in Section 2.3 for course consistency. GWP values can differ among scientific assessments and regulatory tables. Do not combine values from different source bases without identifying the assessment and time horizon.
For the future refrigerant-by-refrigerant quick-reference table in Section 11.17, every numeric environmental value should identify its source basis explicitly.
13. Historical and Current Family Transition
The broad refrigerant transition taught in the course can be summarized as:
CFC
→ high ozone impact
→ production/import phaseout
HCFC
→ lower but nonzero ozone impact
→ transitional family
→ staged production/import phaseout
HFC
→ zero ODP
→ widespread replacement family
→ climate concern / AIM Act phasedown
HFO + LOWER-GWP BLENDS + NATURAL REFRIGERANTS
→ expanding use where technically and legally appropriate
This sequence is a family-level teaching model, not a rule that every appliance must be converted from one family to the next.
A technician must not infer retrofit suitability from the transition sequence.
14. Phaseout, Phasedown, and Existing Equipment
These words must not be confused.
Phaseout
A phaseout generally reduces and ultimately ends specified production/import or consumption of a controlled substance according to the controlling program and schedule.
For CFCs and HCFCs, the course primarily discusses ozone-protection phaseout.
Phasedown
A phasedown reduces production and consumption without necessarily requiring the controlled substance to reach zero.
For regulated HFCs, the AIM Act uses a phasedown framework.
Existing Equipment
Neither word automatically means:
ALL EXISTING EQUIPMENT MUST BE IMMEDIATELY REMOVED
Existing-equipment treatment depends on the applicable:
- Regulation.
- Refrigerant.
- End use.
- Service rule.
- Technology-transition provision.
- Availability of recovered/reclaimed material.
- Manufacturer guidance.
- State/local requirements.
15. Environmental Property Is Not Safety Classification
Do not use ODP or GWP to infer toxicity or flammability.
Examples:
LOW GWP
→ may still be flammable
Hydrocarbon refrigerants demonstrate this clearly.
ZERO ODP
→ may still have toxicity concern
Ammonia demonstrates this clearly.
LOW GWP
→ may still operate at very high pressure
R-744 demonstrates this clearly.
Therefore:
ENVIRONMENTAL CLASSIFICATION
≠
SAFETY CLASSIFICATION
≠
PRESSURE CLASSIFICATION
See:
11.4 - Refrigerant Pressure and Safety Classification Reference.md11.17 - Common Refrigerant Quick Reference.md
for the corresponding specific-property lookups.
16. Refrigerant Family Does Not Determine Certification Type
EPA Section 608 certification is primarily based on the appliance category, not simply on refrigerant family.
Examples:
- R-134a can appear in more than one type of equipment.
- An HFC refrigerant does not automatically mean Type II.
- A low-pressure chiller can use a refrigerant from a different family than an older low-pressure chiller.
- A hydrocarbon refrigerant does not automatically define the certification type.
- Universal certification is not a refrigerant family.
The technician should determine:
APPLIANCE
→ SMALL APPLIANCE?
→ PRESSURE CATEGORY?
→ TYPE I / TYPE II / TYPE III
rather than:
REFRIGERANT FAMILY
→ ASSUME CERTIFICATION TYPE
17. Service and Retrofit Warnings by Family
| Family / Group | Do Not Assume | Technician Must Verify |
|---|---|---|
| CFC | Old equipment is exempt from recovery | Current recovery, reclamation, disposal, and service requirements |
| HCFC | Phaseout means the equipment must be vented or immediately scrapped | Current servicing options, refrigerant source, recovery, and retrofit requirements |
| HFC | Zero ODP means environmentally harmless or freely ventable | GWP, current AIM/Section 608 requirements, end-use restrictions |
| HFO | Low GWP means nonflammable | Actual ASHRAE safety class and equipment design |
| HFC/HFO blend | All lower-GWP blends are interchangeable | Composition, glide, lubricant, pressures, safety class, manufacturer approval |
| Hydrocarbon | “Natural” means safe in any appliance | Flammability, charge limits, codes, equipment listing, SNAP/end-use status |
| R-744 | GWP 1 means low-pressure system | Actual very-high operating pressures and equipment ratings |
| R-717 | Low environmental impact means low hazard | Toxicity, ventilation, emergency response, compatible materials |
| R-718 | Water means ordinary hydronic operation | Specialized refrigeration-cycle pressure and system design |
18. High-Priority EPA 608 Exam Associations
| Exam Clue | Best Association |
|---|---|
| Carbon + chlorine + fluorine | CFC |
| Hydrogen + carbon + chlorine + fluorine | HCFC |
| Hydrogen + fluorine + carbon; no chlorine | HFC |
| Carbon-carbon double bond in fluorinated refrigerant | HFO |
| CFC-11 | ODP reference = 1.0 |
| Carbon dioxide | GWP reference = 1 |
| Chlorine-containing common refrigerant families | CFC and HCFC |
| Zero ODP but potentially high GWP | HFC |
| Zero ODP and generally very low GWP, but flammability concern | Hydrocarbon |
| R-290 | Propane / hydrocarbon |
| R-600a | Isobutane / hydrocarbon |
| R-717 | Ammonia |
| R-744 | Carbon dioxide |
| R-718 | Water |
| 400 series | Generally zeotropic blend |
| 500 series | Generally azeotropic blend |
| Blend with significant glide | Bubble and dew points differ |
| Climate phasedown | Regulated HFCs / AIM Act context |
| Ozone-depleting phaseout | CFC / HCFC context |
19. Common Mistakes and Confusing Points
Mistake 1 - Assuming Every Fluorinated Refrigerant Depletes Ozone
Fluorine does not create the CFC/HCFC ozone-depletion mechanism by itself.
HFCs and HFOs:
contain fluorine
+
contain no chlorine
→ ODP = 0
Mistake 2 - Assuming HCFC Means Zero ODP
HCFCs contain chlorine.
Therefore:
HCFC
→ ODP > 0
even though the ODP is generally lower than for the CFCs they helped replace.
Mistake 3 - Assuming HFC Means Low GWP
Many HFCs and HFC blends have significant GWP.
HFC
→ ZERO ODP
does not imply:
HFC
→ LOW GWP
Mistake 4 - Treating HFC and HFO as the Same Family
HFOs contain a carbon-carbon double bond.
That structural difference generally gives HFOs shorter atmospheric lifetimes than conventional HFCs.
Mistake 5 - Assuming Zero ODP Means No Environmental Concern
A zero-ODP refrigerant can still have:
- Significant GWP.
- High leakage impact.
- Energy-efficiency implications.
- End-of-life recovery requirements.
Mistake 6 - Assuming a Low-GWP Refrigerant Is Automatically Safe
A low-GWP refrigerant may be:
- Flammable.
- Toxic.
- High pressure.
- Subject to charge limits.
- Unacceptable for a specific end use.
Mistake 7 - Calling CO₂ a Zero-GWP Refrigerant
Carbon dioxide is the GWP reference gas.
R-744
→ GWP = 1
Mistake 8 - Assuming Every Natural Refrigerant Is Nonflammable and Nontoxic
Examples:
R-290
→ flammable
R-717
→ toxic
R-744
→ high pressure + asphyxiation concern
Mistake 9 - Treating a Family as a Blend Classification
HFC identifies chemical family.
Zeotropic or azeotropic identifies mixture phase behavior.
For example:
R-407C
→ HFC blend
→ zeotropic
Mistake 10 - Assuming All 400-Series Blends Have the Same Glide
The 400 series indicates zeotropic blend designation, but temperature glide varies by blend.
R-410A is near-azeotropic with small glide.
R-407C has more noticeable glide.
Mistake 11 - Assuming Phaseout Means Existing Equipment Is Automatically Illegal
A production/import phaseout does not automatically prohibit continued possession or operation of every installed appliance.
Check the current rule and the specific end use.
Mistake 12 - Assuming Phasedown Means Phaseout
The AIM Act HFC framework is a phasedown of production and consumption.
It is not the same ozone-protection phaseout framework used for CFCs and HCFCs.
20. Fast Family Memory Map
CFC
C + Cl + F
→ ODP > 0
→ legacy / phased-out production-import context
HCFC
H + C + Cl + F
→ ODP > 0 but generally lower than CFC
→ transitional / legacy
HFC
H + F + C
→ ODP = 0
→ GWP can be high
→ AIM Act climate context
HFO
H + F + C + C=C
→ ODP = 0
→ generally very low GWP
→ verify flammability
HYDROCARBON
H + C
→ ODP = 0
→ very low GWP
→ FLAMMABILITY
R-744
CO₂
→ ODP = 0
→ GWP = 1
→ VERY HIGH PRESSURE
R-717
NH₃
→ ODP = 0
→ very low direct climate impact
→ TOXICITY
R-718
H₂O
→ ODP = 0
→ specialized low-pressure use
21. Cross-Reference Guide
| Need | Use |
|---|---|
| Detailed ozone science and family environmental effects | 2.3 - Refrigerant Families ODP and GWP.md |
| CFC/HCFC regulatory history and phaseout | 2.4 - Clean Air Act and Montreal Protocol.md |
| Current vs historical regulatory distinctions | 2.8 - Current and Historical Regulation Comparison.md |
| Pure refrigerant vs blend | 3.2 - Pure Refrigerants and Refrigerant Blends.md |
| Bubble point, dew point, and glide | 3.3 - Temperature Glide Bubble Point and Dew Point.md |
| Refrigerant identification | 3.4 - Refrigerant Identification.md |
| Retrofit and substitute-refrigerant requirements | 3.7 - Retrofitting and Substitute Refrigerants.md |
| Safety classification | 6.4 - Refrigerant Safety Classifications.md |
| Pressure classification | 8.2 - Refrigerant Pressure Classifications.md |
| Master pressure and safety classification reference | 11.4 - Refrigerant Pressure and Safety Classification Reference.md |
| Refrigerant-by-refrigerant lookup | 11.17 - Common Refrigerant Quick Reference.md |
| Technician P-T tables | 11.18 - Common Refrigerant Pressure-Temperature Tables.md |
References
Current EPA Sources
-
U.S. Environmental Protection Agency, Ozone-Depleting Substances, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Phaseout of Class I Ozone-Depleting Substances, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Phaseout of Class II Ozone-Depleting Substances, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Background on HFCs and the AIM Act, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Frequent Questions on the Phasedown of Hydrofluorocarbons, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Questions and Answers About SNAP, current project verification August 14, 2026.
-
U.S. Environmental Protection Agency, Refrigerant Safety, current project verification August 14, 2026.