REFRIGERANT LINE SETS IN SPLIT SYSTEMS

Oil Return, Vertical Risers, and Refrigerant Line Support

Refrigerant piping must do more than carry refrigerant between the indoor and outdoor equipment. The suction line must also allow compressor oil that circulates through the refrigeration system to return reliably to the compressor.

Tubing size, refrigerant velocity, vertical risers, oil traps, support spacing, and line routing all affect oil return. Good installation practice therefore requires both correct refrigerant piping design and proper mechanical support.

What You Will Learn

By the end of this lesson you should be able to:

1

Explain why compressor oil circulates through the refrigeration system.

Describe how a portion of the compressor oil travels with the refrigerant and must eventually return to the compressor.

2

Explain the importance of refrigerant velocity.

Describe why sufficient vapor velocity is especially important for carrying oil upward through vertical suction risers.

3

Explain the difference between horizontal runs and vertical risers.

Recognize why oil return becomes more difficult when suction vapor must carry oil upward against gravity.

4

Understand the correct use of oil traps.

Explain why oil traps should not be added automatically and why manufacturer piping instructions must be followed.

5

Apply proper refrigerant-line support practices.

Understand the 2024 IMC maximum support intervals for copper tubing and why closer support may still be necessary.

6

Recognize harmful sagging and unintended low spots.

Explain how poor support can create oil pockets, vibration, rubbing, and other line-set problems.

Oil Does Not Stay Entirely Inside the Compressor

The compressor requires oil to lubricate bearings, moving surfaces, and other internal components. Although most of the oil remains in the compressor, some oil is carried out of the compressor with the discharged refrigerant vapor.

That oil travels through the refrigeration circuit and must eventually return to the compressor.

COMPRESSOROil lubricates internal components
REFRIGERANT CIRCUITA small amount of oil circulates with refrigerant
SUCTION LINEReturning vapor carries oil back to compressor
Oil Return Is Part of Refrigerant Piping Design

A suction line must be large enough to avoid excessive pressure drop but small enough to maintain sufficient refrigerant velocity for reliable oil return. This is one reason refrigerant-line sizing should follow the equipment manufacturer’s requirements rather than being changed by rule of thumb.

The Refrigerant Must Carry the Oil

Oil does not normally flow through the suction line independently of the refrigerant. Returning refrigerant vapor provides the velocity needed to sweep oil through the tubing and back toward the compressor.

VELOCITY TOO LOW

Oil Return Can Become Difficult

Oil may collect in low areas of the piping or remain in the evaporator and suction line instead of returning efficiently to the compressor.

CORRECT VELOCITY

Oil Is Carried With the Vapor

Properly sized tubing provides enough refrigerant velocity for oil return while maintaining acceptable suction-line pressure drop.

EXCESSIVE RESTRICTION

Pressure Drop Becomes Excessive

Using tubing that is too small may increase velocity, but excessive suction-line pressure drop can reduce capacity and efficiency.

There Is a Balance

The goal is not simply maximum refrigerant velocity or minimum pressure drop. Correct suction-line sizing balances pressure drop, refrigerant velocity, system capacity, and oil return.

Gravity Changes the Oil-Return Problem

Refrigerant suction-line diagram showing oil return through horizontal piping and a vertical suction riser.
Figure 4. Refrigerant vapor must carry circulating compressor oil through horizontal piping and upward through vertical suction risers.

Oil return through a reasonably routed horizontal suction line is generally easier because the refrigerant does not have to lift the oil vertically over a long distance.

A vertical suction riser creates a more demanding condition. Refrigerant vapor must move fast enough to carry oil upward against gravity.

HORIZONTAL RUN

Oil Moves Along the Tubing

Proper routing and support help oil continue moving toward the compressor without collecting in unintended low spots.

VERTICAL RISER

Oil Must Be Lifted Upward

Refrigerant vapor must maintain enough velocity to entrain oil and carry it upward through the riser.

Vertical Rise and Total Length Are Different Design Concerns

A system can have a relatively short total line length but still have a demanding vertical rise. Manufacturer instructions often place separate limits on total tubing length and vertical separation.

Oil Return Becomes More Challenging at Low Capacity

Variable-speed and inverter-driven compressors can operate at much lower refrigerant mass flow than a conventional fixed-capacity compressor.

When compressor capacity decreases, refrigerant velocity in the suction line also decreases. A piping arrangement that returns oil well at full capacity may not necessarily provide the same oil-carrying velocity at minimum capacity.

HIGH COMPRESSOR CAPACITY
Higher refrigerant mass flow
Higher suction-line velocity
LOW COMPRESSOR CAPACITY
Lower refrigerant mass flow
Lower suction-line velocity
Modern Equipment Makes Manufacturer Piping Requirements Even More Important

Do not apply older fixed-capacity piping rules automatically to variable-capacity systems. Manufacturers may specify different tubing sizes, riser arrangements, maximum vertical lifts, or other oil-return provisions.

A Trap Is Not Automatically Required at Every Vertical Riser

An oil trap is a piping configuration designed to collect a small quantity of oil so refrigerant velocity can periodically sweep that oil upward through a vertical suction riser.

Oil traps have long been associated with vertical suction risers, but the technician should not automatically add a trap every time a suction line rises vertically.

CORRECT APPROACH

Follow the Equipment Piping Instructions

Install traps, double risers, inverted traps, or other oil-management piping only where the manufacturer specifies them or where the engineered piping design requires them.

AVOID

Rule-of-Thumb Traps Everywhere

An unnecessary trap adds refrigerant-line volume, resistance, oil storage, fittings, and brazed joints without necessarily improving system operation.

Why Old Rules of Thumb Can Be Misleading

Oil return depends on refrigerant type, tubing size, refrigerant velocity, compressor capacity range, vertical rise, equipment design, and system operating conditions. A universal trap rule cannot account for all of these variables.

Sagging Tubing Can Create Its Own Trap

Even when the manufacturer does not require an intentional oil trap, poorly supported refrigerant piping can create unintended low spots.

Oil can collect in these sags rather than continuing toward the compressor. Enough sagging can also create additional vibration, stress, and movement in the piping.

PROPERLY SUPPORTED

Line remains properly routed and oil continues toward the compressor.

POORLY SUPPORTED

A low spot can collect oil and become an unintended trap.

Support Is a Refrigeration Issue, Not Just a Mechanical Issue

Proper supports do more than make an installation look neat. They help maintain the intended refrigerant path and prevent sagging locations where oil can accumulate.

Supports Prevent Sagging, Vibration, and Damage

Correct and incorrect refrigerant-line support showing properly supported tubing and sagging tubing that can collect compressor oil.
Figure 5. Proper refrigerant-line support prevents sagging, unwanted low spots, vibration, and mechanical damage.

Refrigerant tubing must be supported so it does not sag excessively, move during compressor operation, rub against surrounding materials, or place unnecessary stress on fittings and equipment connections.

Prevent Sagging

Supports maintain the intended tubing path and help prevent low areas where compressor oil can collect.

Control Vibration

Proper support reduces excessive tubing movement and limits vibration transfer into building materials.

Prevent Abrasion

Refrigerant lines should not rub against framing, sheet metal, concrete, or other surfaces that could wear through the tubing.

Protect Connections

Supporting the line set prevents the weight of long tubing runs from being carried by service valves, coils, fittings, or brazed joints.

Maximum Support Intervals for Copper Tubing

The 2024 International Mechanical Code Table 305.4 establishes maximum support intervals for copper or copper-alloy tubing.

8 ft

Maximum Horizontal Interval

Copper tubing must be horizontally supported at intervals not exceeding 8 feet unless an approved alternative support method applies.

10 ft

Maximum Vertical Interval

Copper tubing must be vertically supported at intervals not exceeding 10 feet unless an approved alternative support method applies.

Maximum Does Not Mean Recommended for Every Installation

An 8-foot horizontal interval is the code maximum for copper tubing, not a requirement to place every support exactly 8 feet apart. Closer support may be necessary to prevent sagging, vibration, abrasion, or oil collection and to comply with the equipment manufacturer’s installation instructions.

The IMC Maximum Is the Same Across Common ACR Tubing Sizes

For the common copper ACR tubing sizes used in refrigerant piping, the 2024 IMC Table 305.4 does not change the basic support interval according to tubing diameter.

ACR Tubing OD Maximum Horizontal Support Interval Maximum Vertical Support Interval
3/8 in. 8 ft 10 ft
1/2 in. 8 ft 10 ft
5/8 in. 8 ft 10 ft
3/4 in. 8 ft 10 ft
7/8 in. 8 ft 10 ft
1 in. 8 ft 10 ft
1-1/8 in. 8 ft 10 ft
1-3/8 in. 8 ft 10 ft
1-5/8 in. 8 ft 10 ft
2 in. 8 ft 10 ft
Code Is the Minimum Installation Standard

If an installation begins to sag with supports spaced at the maximum permitted interval, additional supports are needed. Good workmanship may require significantly closer spacing than the code maximum.

Place Supports Where the Tubing Needs Them

Regular spacing is important, but support location also matters.

1

Near Direction Changes

Bends can concentrate tubing weight and vibration. Support the piping so the bend is not carrying unnecessary mechanical stress.

2

Near Equipment Connections

Do not allow long tubing runs to hang from service valves or indoor coil connections.

3

At Building Penetrations

Support and protect tubing where it enters or leaves walls, roofs, floors, or equipment spaces.

4

Where Sagging Begins

If the tubing visibly sags between existing supports, the installation needs additional support regardless of whether the code maximum has technically been exceeded.

The Compressor Causes Refrigerant Lines to Move

Compressors create vibration and pressure pulsations that can travel through refrigerant piping. Proper installation allows normal movement without allowing the tubing to rub, fatigue, or transmit excessive noise into the building.

Allow Controlled Movement

Refrigerant tubing should not be clamped so rigidly that normal thermal expansion and compressor vibration place excessive stress on the copper.

Prevent Rubbing

Use suitable supports or isolation so vibrating tubing cannot rub against sheet metal, framing, masonry, or another refrigerant line.

Protect Insulation

Suction-line insulation should not be crushed or cut by supports. Damaged insulation can later cause condensation problems.

Avoid Noise Transmission

Improperly supported refrigerant tubing can transmit compressor vibration into walls, ceilings, floors, and structural framing.

Larger Soft Copper Requires Additional Attention

The 2024 IMC includes an additional mechanical-protection requirement for larger soft annealed copper refrigerant tubing.

Up to 1-3/8 in. OD

Normal refrigerant-piping support, routing, and protection requirements apply.

Larger Than 1-3/8 in. OD

Soft annealed copper tubing used for field-assembled refrigerant piping must be protected against mechanical damage where required by the applicable code.

Large Tubing Is Easier to Damage Than It Looks

A large-diameter soft copper tube can still be dented, flattened, or kinked. Mechanical damage changes the internal flow area and can create an unwanted refrigerant restriction.

What Should a Properly Supported Line Set Look Like?

Correct

Refrigerant lines follow a deliberate route with adequate supports, smooth elevation changes, no unnecessary low spots, protection from abrasion, and no excessive load on equipment connections.

Needs Correction

Lines visibly sag between supports, rub against building materials, hang from service valves, create accidental oil pockets, or move excessively when the compressor operates.

Good Refrigerant Piping Should Look Intentional

Properly installed refrigerant tubing should not wander, sag, rub, or depend on the equipment connections for support. Good mechanical workmanship supports reliable refrigeration performance.

Oil Return Is Equipment-Specific

The manufacturer determines the approved refrigerant-line sizes, maximum total length, maximum vertical separation, required oil traps, acceptable riser arrangements, and any special requirements for variable-capacity operation.

Line Size

Correct diameter provides the intended balance between pressure drop and refrigerant velocity.

Vertical Rise

Verify the permitted elevation difference between indoor and outdoor equipment.

Oil-Trap Requirements

Install intentional traps only where required by the manufacturer or engineered piping design.

Variable Capacity

Follow manufacturer requirements designed to maintain oil return across the equipment’s complete operating range.

Do Not Design Refrigerant Risers From Memory

Refrigerant piping practices have changed as compressors, refrigerants, oils, and capacity-control methods have changed. Always use the current installation instructions for the equipment being installed or serviced.

Oil Return and Support Work Together

1

A small amount of compressor oil circulates through the refrigeration system with the refrigerant.

2

Returning suction vapor must carry that oil back to the compressor.

3

Vertical suction risers require sufficient refrigerant velocity to lift oil upward against gravity.

4

Oil traps are application-specific and should not be installed automatically at every vertical riser.

5

Poorly supported tubing can sag and create unintended oil traps even when no intentional trap is required.

6

The 2024 IMC maximum support intervals for copper tubing are 8 feet horizontally and 10 feet vertically.

7

Closer support may be necessary to prevent sagging, vibration, abrasion, or stress on equipment connections.

8

Manufacturer piping requirements determine acceptable tubing size, vertical rise, oil-return provisions, and trap requirements for the specific equipment.

Can You Explain Oil Return and Line Support?

You should be able to answer these questions before continuing.

  1. Why does compressor oil circulate through the refrigeration system?
  2. How does oil return to the compressor?
  3. Why is refrigerant velocity important in a suction line?
  4. Why can vertical suction risers create a greater oil-return challenge than horizontal runs?
  5. Why can variable-capacity equipment make oil return more difficult at low capacity?
  6. Should an oil trap automatically be installed at every vertical suction riser?
  7. What should determine whether an intentional oil trap is required?
  8. How can sagging refrigerant tubing create an unintended oil trap?
  9. What is the 2024 IMC maximum horizontal support interval for copper tubing?
  10. What is the 2024 IMC maximum vertical support interval for copper tubing?
  11. Why might supports need to be installed closer together than the code maximum?
  12. Why should refrigerant tubing be supported near equipment connections?
  13. What problems can occur if refrigerant tubing rubs against building materials?
  14. Where should the technician obtain the piping requirements for vertical rise and oil return?

What You Should Have Learned

1

Some compressor oil circulates with refrigerant and must return to the compressor through the refrigeration piping.

2

Suction-line refrigerant velocity must be high enough to carry oil while pressure drop remains within acceptable limits.

3

Vertical suction risers require refrigerant vapor to carry oil upward against gravity, making proper tubing size and velocity especially important.

4

Oil traps are not universal requirements and should be installed only where required by the manufacturer or engineered piping design.

5

Sagging tubing can create unintended oil traps and should be prevented through proper line-set support.

6

The 2024 IMC maximum support intervals for copper tubing are 8 feet horizontally and 10 feet vertically.

7

Supports should also prevent vibration, abrasion, movement, insulation damage, and excessive stress on fittings and equipment connections.

8

Manufacturer requirements must be followed for line sizing, risers, vertical separation, oil-return provisions, and intentional oil traps.

NEXT LESSON

R-410A and A2L Refrigerant Piping Requirements

The next lesson examines refrigerant-piping requirements for R-410A and modern A2L refrigerants, including refrigerant identification, line labeling, safety classification, and the importance of following the locally adopted mechanical code and equipment manufacturer’s instructions.