10.6 - Type II Memorization Sheet
Module: Universal Review and Mock Examinations
Purpose: One-page-target rapid review of the highest-priority Type II facts before Universal mock examinations
Covers: Type II material consolidated from Sections 8.1–8.10
Regulatory verification basis: Current Module 8 material verified August 12, 2026
Use: Memorize the equipment scope, pressure categories, leak concepts, recovery sequence, evacuation table, major-repair rules, and Type II safety principles below; return to Module 8 when a condition or exception is unclear
1. Type II Scope
Type II certification covers covered:
MEDIUM-PRESSURE APPLIANCES
+
HIGH-PRESSURE APPLIANCES
+
VERY-HIGH-PRESSURE APPLIANCES
Common Type II Examples
- Residential central split-system air conditioners.
- Field-connected mini-splits and multi-splits.
- Residential and commercial heat pumps.
- Packaged rooftop units.
- Walk-in coolers and freezers.
- Remote commercial refrigeration systems.
- Supermarket compressor racks.
- Cold-storage systems.
- Many industrial-process refrigeration systems.
- Specialized very-high-pressure appliances.
Classification Boundaries
Small appliance
→ Type I
Low-pressure appliance
→ Type III
Passenger-compartment MVAC
→ Section 609
Qualifying MVAC-like appliance
→ Type II OR applicable Section 609 pathway
Medium / high / very high pressure
→ Type II
Exam Traps
Small charge
≠
automatically Type I
Large appliance
≠
automatically Type II
Commercial refrigeration
≠
automatically Type II
Pressure category and appliance definition control.
2. Refrigerant Pressure Categories
The current Section 608 pressure classifications use:
104°F
and:
psia
not psig.
| Pressure Category | Classification Basis | Type |
|---|---|---|
| Low pressure | Below 45 psia at 104°F | Type III |
| Medium pressure | 45 to 170 psia at 104°F | Type II |
| High pressure | 170 to 355 psia at 104°F | Type II |
| Very high pressure | Critical temperature below 104°F, or saturation pressure above 355 psia at 104°F | Type II |
Pressure Boundaries to Know Cold
45
→ low / medium boundary
170
→ medium / high boundary
355
→ high / very-high criterion
Important Distinction
HIGH SIDE
→ location in the refrigeration cycle
HIGH-PRESSURE APPLIANCE
→ regulatory refrigerant-pressure category
Do not confuse them.
3. Type II Leak Indicators and Leak Detection
Common Leak Clues
Possible leak indicators include:
- Repeated refrigerant additions.
- Oil residue around joints or components.
- Low refrigerant charge.
- Abnormal operating pressures or temperatures.
- Evidence around valves, fittings, service ports, or seals.
An oil stain is:
A CLUE
not:
PROOF OF THE EXACT LEAK LOCATION
Important Leak Locations
Check items such as:
- Service valves.
- Schrader-type access fittings.
- Flare and mechanical joints.
- Brazed joints.
- Coil connections.
- Compressor fittings.
- Receiver connections.
- Relief-device connections.
- Open-drive compressor shaft seals.
Leak-Location Methods
For refrigerant-containing systems, appropriate methods may include:
- Electronic refrigerant leak detector.
- Bubble solution.
- Ultrasonic method where appropriate.
- Manufacturer-approved methods.
For a recovered system safely pressurized with dry nitrogen:
BUBBLE SOLUTION
OR
ULTRASONIC METHOD
can help locate leakage.
A refrigerant-only electronic detector cannot detect pure nitrogen unless it is specifically designed to sense the test gas.
Standing Pressure Test
PRESSURE FALL
→ possible gas loss / leakage
but:
PRESSURE DECAY
≠
EXACT LEAK LOCATION
A separate locating method is required.
High Head Pressure Trap
High discharge/head pressure can result from:
- Poor condenser heat rejection.
- Noncondensables.
- Overcharge.
- Restricted discharge path.
- Incorrect valve position.
- High ambient conditions.
Therefore:
HIGH HEAD PRESSURE
≠
automatic proof of one specific problem
4. Current Section 608 Leak-Repair Rules
The current Section 608 leak-repair program applies to qualifying appliances with:
FULL CHARGE ≥50 lb
and an applicable:
CLASS I / CLASS II OZONE-DEPLETING REFRIGERANT
OR
ODS-CONTAINING BLEND
Current Trigger Rates
| End Use | Current Trigger Rate |
|---|---|
| Industrial process refrigeration | 30% |
| Commercial refrigeration | 20% |
| Comfort cooling | 10% |
| Other qualifying appliances | 10% |
Memorize
IPR
→ 30%
COMMERCIAL
→ 20%
COMFORT / OTHER
→ 10%
Historical Study-Guide Values
Older material may show:
35%
and:
15%
These are historical, not the current Section 608 table.
Critical Type II Distinction
TYPE II
≠
LEAK-RATE CATEGORY
The leak trigger depends on the appliance’s end use, refrigerant, charge, and current regulatory applicability.
A Type II appliance is not automatically subject to § 82.157 merely because it is Type II.
Separate Current HFC Framework
Module 8 also distinguishes the separate current AIM Act HFC leak-repair framework.
Do not combine:
SECTION 608 ODS LEAK RULE
with:
AIM ACT HFC LEAK RULE
They are separate current federal programs with different applicability conditions.
5. Type II Recovery Preparation
Before recovery:
IDENTIFY APPLIANCE + REFRIGERANT
→ SELECT COMPATIBLE RECOVERY EQUIPMENT
→ INSPECT MACHINE
→ CLEAR PREVIOUS REFRIGERANT AS REQUIRED
→ IDENTIFY RECEIVER + FLOW PATH
→ PREPARE CYLINDER ON SCALE
→ IDENTIFY ACCESS POINTS
→ CONNECT
→ CHECK VALVES
→ SAFETY CHECK
Prepare the Recovery Cylinder
Confirm:
- Correct refillable recovery cylinder.
- Known contents.
- Correct refrigerant stream.
- Adequate available capacity.
- Cylinder on a scale.
- Stable and protected from excessive heat.
Identify Useful Access
Know:
- High-side access.
- Low-side access.
- Liquid access.
- Vapor access.
- Receiver location.
- Isolation valves.
- Solenoids and check valves that may affect flow.
Exam trap: Not every receiver port necessarily contains liquid.
6. Type II Recovery Sequence
High-priority recovery logic:
RECOVER ACCESSIBLE BULK LIQUID FIRST
→ RECOVER REMAINING VAPOR
→ REACH REQUIRED ENDPOINT
→ ISOLATE + OBSERVE PRESSURE
→ RECOVER MORE IF PRESSURE REBOUNDS
Why Liquid First?
LIQUID RECOVERY
→ moves refrigerant mass faster
→ reduces total recovery time
when the appliance and recovery machine permit.
Vapor Completion
After accessible liquid is removed:
VAPOR RECOVERY
→ completes refrigerant removal
Vapor recovery also tends to reduce lubricant carryover compared with aggressively pulling liquid from oil-rich compressor regions.
Temperature Management
COOL RECOVERY CYLINDER SAFELY
→ lower cylinder pressure
→ lower recovery-machine back pressure
WARM APPLIANCE IN A CONTROLLED WAY
→ increase vapor pressure
→ help remaining refrigerant evaporate
Never use an open flame.
Do not heat the receiving recovery cylinder as a recovery-speed technique.
Pressure-Rebound Check
After reaching the apparent endpoint:
ISOLATE
→ OBSERVE PRESSURE
If pressure rises again, refrigerant may still be:
- Evaporating from cold components.
- Leaving compressor oil.
- Trapped in isolated sections.
Then:
CONTINUE RECOVERY AS REQUIRED
Do not memorize one universal pressure-rise hold time; use the applicable equipment/service procedure.
Parallel Compressors
An isolated parallel compressor can still contain refrigerant.
ISOLATED COMPRESSOR
≠
EMPTY COMPRESSOR
Check and recover isolated sections as required.
7. System-Dependent Recovery Limit
Current Type II exam rule:
FULL CHARGE >15 lb
→ ordinary system-dependent recovery equipment prohibited
Exception:
PERMANENTLY ATTACHED PUMP-OUT UNIT
Important
The rule uses:
FULL CHARGE
not the amount currently remaining after a leak.
Exam Trap
15 lb
→ system-dependent recovery-equipment rule
200 lb
→ evacuation-table boundary
They are different rules.
8. Type II Evacuation Requirements
For appliances other than small appliances, MVACs, and MVAC-like appliances, use the current Table 1 requirement unless an applicable exception controls.
Current Type II Table 1
| Type II Appliance | Pre-Nov. 15, 1993 Recovery Equipment | On/After Nov. 15, 1993 Recovery Equipment |
|---|---|---|
| Very-high-pressure appliance | 0 in. Hg vacuum | 0 in. Hg vacuum |
| High-pressure, full charge <200 lb | 0 in. Hg vacuum | 0 in. Hg vacuum |
| High-pressure, full charge ≥200 lb | 4 in. Hg vacuum | 10 in. Hg vacuum |
| Medium-pressure, full charge <200 lb | 4 in. Hg vacuum | 10 in. Hg vacuum |
| Medium-pressure, full charge ≥200 lb | 4 in. Hg vacuum | 15 in. Hg vacuum |
Post-1993 Memory Pattern
VERY HIGH
→ 0
HIGH <200 lb
→ 0
HIGH ≥200 lb
→ 10
MEDIUM <200 lb
→ 10
MEDIUM ≥200 lb
→ 15
Units:
in. Hg vacuum
Date Trap
November 15, 1993
→ recovery/recycling equipment date
→ NOT appliance manufacture date
9. Major Repair and Special Conditions
Major Maintenance, Service, or Repair
Removal of any of the following is major:
- Compressor.
- Condenser.
- Evaporator.
- Auxiliary heat-exchange coil.
Also major:
OPENING >4 in² OF FLOW AREA
+
OPEN >15 min
Major-Repair Decision
REMOVE compressor / condenser / evaporator /
auxiliary heat-exchange coil?
→ YES → MAJOR
Otherwise:
OPENING >4 in²
AND
>15 min?
→ YES → MAJOR
Otherwise:
POTENTIALLY NON-MAJOR
→ CHECK CURRENT SERVICE-PRACTICE CONDITIONS
Normal Major Repair
MAJOR REPAIR
→ applicable TABLE 1 endpoint
Filter-Drier Trap
A filter-drier is not one of the four named major components.
FILTER-DRIER REPLACEMENT
≠
automatically major
The opening size/time and applicable service conditions still matter.
Qualifying Non-Major Type II Opening
When all current conditions are satisfied:
NO HIGHER THAN 0 psig
may be used before opening under the limited non-major provision.
Leaking System Prevents Table 1
Where possible:
ISOLATE LEAKING + NON-LEAKING PORTIONS
Then:
NON-LEAKING PORTION TO BE OPENED
→ TABLE 1
LEAKING PORTION TO BE OPENED
→ LOWEST ATTAINABLE PRESSURE
→ NOT ABOVE 0 psig
Oil Change
Current special oil-change provision:
NO HIGHER THAN 5 psig
Burnout
Compressor burnout can spread:
- Acid.
- Carbon.
- Moisture.
- Contaminated oil.
- Particulate contamination.
Burnout cleanup can include:
CONTAMINATION CONTROL
+
FILTER-DRIER SERVICE
+
PROPER EVACUATION
+
FOLLOW-UP EVALUATION
Moisture Indicator
READ MANUFACTURER'S COLOR LEGEND
Do not assume one universal moisture-indicator color.
10. Type II Safety
Reciprocating Compressor
DISCHARGE SERVICE VALVE CLOSED
→ DO NOT ENERGIZE
A reciprocating compressor is a positive-displacement machine. A closed discharge path can create a rapid, dangerous pressure rise.
Hermetic Compressor Under Vacuum
DEEP VACUUM
→ DO NOT ENERGIZE HERMETIC COMPRESSOR
Use an external vacuum pump for evacuation.
Deep-vacuum operation can create risk of internal electrical arcing and motor/terminal damage.
Crankcase Heater
COLD OFF-CYCLE COMPRESSOR
→ refrigerant migration into oil
→ oil dilution
→ startup foaming
→ lubrication risk
A crankcase heater can reduce off-cycle refrigerant migration when the system design requires one.
High Discharge Pressure
Possible causes:
- Poor condenser heat rejection.
- Noncondensables.
- Overcharge.
- Restricted discharge path.
- Incorrect valve positions.
- High ambient conditions.
Correct response:
DIAGNOSE + CORRECT
not:
BYPASS SAFETY CONTROL
Pressure Relief
RELIEF DEVICE
→ emergency overpressure protection
Do not defeat, isolate improperly, or bypass required protection.
Machinery Room
For EPA exam preparation:
REFRIGERANT RELEASE
→ DETECTION
→ ALARM / VENTILATION SAFETY
Actual field requirements depend on the currently adopted safety standard and local code.
Very-High-Pressure Appliances
Verify:
- Recovery-machine pressure rating.
- Hose rating.
- Gauge/manifold rating.
- Cylinder suitability.
- Refrigerant compatibility.
- Fitting/tool rating.
PHYSICAL CONNECTION
≠
ADEQUATE PRESSURE RATING
11. Type II Numbers to Know Cold
| Number / Date | Meaning |
|---|---|
| 45 psia @ 104°F | Low / medium pressure boundary |
| 170 psia @ 104°F | Medium / high pressure boundary |
| 355 psia @ 104°F | High / very-high pressure criterion |
| >15 lb full charge | Ordinary system-dependent recovery equipment prohibited unless permanent pump-out |
| November 15, 1993 | Recovery-equipment date boundary |
| 200 lb | Charge boundary changing several Type II evacuation rows |
| 0 / 4 / 10 / 15 in. Hg vacuum | Type II Table 1 values |
| 50 lb or more | Current Section 608 ODS leak-repair applicability threshold |
| 30% / 20% / 10% | Current Section 608 leak-rate triggers |
| >4 in² + >15 min | Numerical major-repair condition |
| 0 psig | Current qualifying non-major / leaking-section pressure concept |
| 5 psig | Current oil-change special provision |
12. Highest-Priority Type II Exam Traps
Trap 1
Type II = high pressure only
Wrong. Type II also includes medium and very-high pressure.
Trap 2
5 lb or less
→ Type I
Wrong. The complete small-appliance definition controls.
Trap 3
Every chiller
→ Type III
Wrong. Pressure classification controls.
Trap 4
15 lb
→ evacuation table boundary
Wrong. 15 lb is the system-dependent recovery-equipment limit.
Trap 5
50 lb
→ evacuation table boundary
Wrong. 50 lb is the current Section 608 ODS leak-repair applicability threshold.
Trap 6
200 lb
→ leak-repair threshold
Wrong. 200 lb changes certain Type II Table 1 rows.
Trap 7
Historical 35% / 15%
→ current leak rates
Wrong.
Current Section 608:
30% / 20% / 10%
Trap 8
First low pressure reading
→ recovery complete
Wrong. Check pressure rebound.
Trap 9
Pressure rebound
→ always an external leak
Wrong. Remaining refrigerant may be evaporating from oil or cold components.
Trap 10
Filter-drier replacement
→ automatically major
Wrong.
Trap 11
Hermetic compressor under deep vacuum
→ start it to help evacuation
Wrong.
Trap 12
High-pressure control trips
→ bypass control
Wrong. Diagnose and correct the cause.
13. Type II Final Memory Map
TYPE II
→ MEDIUM + HIGH + VERY HIGH PRESSURE
45 / 170 / 355 psia @ 104°F
→ pressure-category boundaries
LEAK DETECTION
→ clues locate AREA
→ detector / bubbles / ultrasonic locate LEAK
SECTION 608 ODS LEAK REPAIR
→ ≥50 lb
→ 30% / 20% / 10%
RECOVERY
→ LIQUID FIRST WHERE PRACTICAL
→ VAPOR FINISH
→ PRESSURE-REBOUND CHECK
>15 lb FULL CHARGE
→ no ordinary system-dependent recovery
→ unless permanent pump-out
POST-1993 TYPE II TABLE
→ 0 / 10 / 15 in. Hg vacuum
→ depends on pressure category + 200-lb boundary
MAJOR
→ compressor / condenser / evaporator /
auxiliary heat exchanger
OR
>4 in² + >15 min
QUALIFYING NON-MAJOR
→ ≤0 psig
OIL CHANGE
→ ≤5 psig
RECIPROCATING COMPRESSOR
+ CLOSED DISCHARGE
→ DO NOT ENERGIZE
HERMETIC COMPRESSOR
+ DEEP VACUUM
→ DO NOT ENERGIZE
CRANKCASE HEATER
→ reduces refrigerant migration into oil
HIGH HEAD PRESSURE
→ diagnose condenser / noncondensables /
overcharge / restriction
→ DO NOT bypass safety
References
Project Source Sections
- Section 8.1 - Type II Equipment and Scope
- Section 8.2 - Refrigerant Pressure Classifications
- Section 8.3 - Type II Components and Refrigerant States
- Section 8.4 - Leak Indicators and Leak Detection
- Section 8.5 - Leak Repair Requirements and Current Regulatory Updates
- Section 8.6 - Type II Recovery Preparation
- Section 8.7 - Type II Recovery Procedures
- Section 8.8 - Type II Evacuation Requirements
- Section 8.9 - Major Repair Special Conditions and Compressor Service
- Section 8.10 - Type II Safety
- Section 8.11 - Quick Reference
- Section 10.1 - Universal Certification Comparison Tables
- Section 10.2 - High-Priority Numbers and Thresholds
- Section 10.3 - Commonly Confused Terms