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MUESTRA GRATIS · LEE EN LÍNEACapítulo 2

Installation of Warm-Air Heating and Cooling Systems

Este es el Capítulo 2 de CSLB C-20 HVAC Trade Exam Study Guide (2026) — un capítulo completo, gratis aquí mismo; sin descargas ni correo. Es el mismo texto del eBook. Al llegar al final, la guía completa está a un clic.

No te dimos la introducción fácil — este capítulo gratis abre en una de las partes más exigentes del libro, para que juzgues la enseñanza donde el examen se pone difícil.

This is the biggest chapter because it is the biggest block on the exam, and because it is where the code has the most to say about what you do with your hands. A furnace that fires beautifully in a closet with no combustion air is a carbon monoxide event waiting for a cold snap. A line set brazed without nitrogen runs fine for a season and then plugs a TXV.

2.1 Combustion Air

The purpose of combustion air is to supply oxygen for complete, safe combustion — not to cool the control board, not to raise supply temperature. Starve it and combustion goes incomplete, producing soot and carbon monoxide.

The code method sizes required air on the total BTU/hr input of the appliances in the space and the volume of the space, and on whether air comes from indoors or outdoors. Put a 100,000 BTU/hr furnace in a closet inside a tight modern house and the interior volume may simply not contain enough air to support combustion, no matter how good the flame looks when you light it. The remedy is engineered openings sized by the code method. This applies in existing work as much as new, and interior air being "dry" has nothing to do with it — the issue is oxygen quantity.

When the two-opening method brings combustion air from outdoors, the geometry is fixed: one opening within 12 inches of the top of the enclosure and one within 12 inches of the bottom. The high opening relieves warm buoyant air; the low opening supplies denser cool air. Two high openings leave the bottom without supply; two low openings give the buoyant air no path. A bedroom or bathroom is not an acceptable source.

The 12-inch dimension, the required opening areas, and the volume method are CMC values (the combustion-air chapter — Chapter 7 in the UMC/CMC organization) and are cycle-dependent. Verify in the adopted edition.

Direct-vent sealed-combustion appliances pipe their own air from outdoors, which is why one is well suited to a garage workshop: the burner never breathes garage air, which may carry gasoline or solvent vapors. It still condenses in most cases, still needs a drain, and still needs a disconnect. And it never licenses you to take return air from a garage.

2.2 Venting

Type B gas vent is double-wall metal vent listed for listed Category I gas appliances — natural-draft equipment with draft hoods producing relatively low-temperature, non-condensing flue gas. Not for oil appliances with barometric dampers, not for solid fuel, not for high-temperature incinerators.

Category IV condensing appliances are vented with listed plastic pipe such as PVC or CPVC. The reason is chemistry, not convenience: a condensing appliance cools flue gas below its dew point, and the acidic condensate that forms would destroy metal vent. Its flue temperature is low, not high — which is exactly why it condenses — and it vents under positive pressure, which Type B is not rated for.

Vent connectors on natural-draft equipment slope up. A single-wall connector running horizontally to the vertical vent must slope upward toward the vent, commonly at least 1/4 inch per foot (CMC figure — cycle-dependent). Buoyant flue gas needs continuous rise or it stalls and spills at the draft hood. A level run offers no rise; sloping toward the appliance sends flue gas and moisture back into the equipment; a "trap" in a connector would just pocket soot.

All flues and vents terminate outdoors, at listed heights and clearances from windows, doors, and air intakes. Never into an attic, a crawl space, or a return duct. On a sidewall-vented condensing furnace, the governing concern is exactly that separation. Concentric and two-pipe terminations follow the manufacturer's spacing, not a rule that both pipes sit at the same height; the vent slopes back toward the furnace so condensate drains to the appliance; and terminating below grade invites blockage by leaves, snow, and standing water.

The orphaned water heater. This scenario separates candidates who have thought about it from those who have not. You replace an 80% furnace with a condensing model. The old furnace shared a Type B vent with a natural-draft water heater. The condensing furnace leaves that vent entirely. What must be evaluated is whether the water heater alone can still vent safely in a vent sized for two appliances. A vent now grossly oversized for one small appliance may never establish draft, and the water heater spills flue gas into the building. That is the open question — not whether the B-vent can serve the condensing furnace, which it plainly cannot.

Key Numbers & Facts — Combustion Air and Venting - Combustion air sized on appliance input + space volume + indoor vs. outdoor source. - Two-opening outdoor method: one within 12 in of the top, one within 12 in of the bottom (cycle-dependent). Bedrooms/bathrooms are not acceptable sources. - Type B = Category I. Category IV condensing = listed PVC/CPVC (acidic condensate, low flue temperature, positive pressure). - Natural-draft connector slopes UP toward the vent (commonly ≥ 1/4 in per foot). - Terminate outdoors at listed clearances from openings and intakes. - Pulling a furnace off a common vent orphans the water heater — re-evaluate its draft.

2.3 Refrigerant Line Sets

Size the line set from the manufacturer's tables — system capacity, total line length, vertical rise — not by matching what was there, not by insulation color, not by breaker size. Undersizing the suction line is the classic long-run mistake: it adds pressure drop over the whole run, lowering pressure at the compressor and cutting mass flow and capacity.

Insulate the suction line; usually leave the liquid line bare. The suction line carries cold vapor below the dew point of surrounding air, so bare tubing sweats onto the building and picks up heat that raises superheat at the compressor. Insulation does not change velocity and does not "hold in" pressure.

Support horizontal runs at regular intervals with hangers that do not crush the insulation. Supporting only the ends allows sag, vibration fatigue and joint failure; resting tubing on framing lets it chafe and work-harden; taping it to the drain line supports nothing.

Vertical lift changes the problem. Condenser 20 feet above the evaporator: lifting liquid costs static head, and that pressure drop consumes subcooling — enough of it and you get flash gas at the metering device. Evaporator above the condenser with a 25-foot suction riser: now the concern is oil, which must be carried up by vapor velocity. A properly formed trap at the base of the riser collects oil until velocity carries it up as a slug. Oversizing the riser lowers velocity and makes oil return worse.

Brazing. Flow dry nitrogen through the tubing at a low, steady trickle just sufficient to displace the air — not a high-pressure blast (which chills the joint and blows the filler out), not unregulated cylinder pressure (which can rupture thin-wall tubing), and not a purge afterward (by then the scale has formed). Without it, oxygen forms copper oxide scale inside the tube, and flakes break loose, plug the metering device and load the drier.

Pressure test, then evacuate — in that order. Leaks are found with pressure, because a vacuum cannot push anything out for a detector to find. Test with dry nitrogen through a regulator with a relief device — never shop air (moisture and oil even through a dryer), never oxygen (with oil residue it can ignite violently), never refrigerant mixed with air (unrecoverable and potentially combustible). Then pull the vacuum.

Evacuation target: 500 microns or lower, verified by isolating the pump and watching the gauge. Readings of 2,000 or 5,000 microns still leave water vapor; short hold times prove nothing; a compound manifold gauge cannot distinguish 29 inches of mercury from a genuinely deep vacuum. Follow the manufacturer's stated procedure.

Read the decay test, because it is a diagnosis in itself:

  • Rises then levels offmoisture still boiling off and reaching equilibrium. Keep pumping; break the vacuum with nitrogen and pump again.
  • Rises steadily toward atmospheric without levelinga leak, in the system or at your connections.
  • Barely moves → dry and tight. Charge it.

Use large-diameter hoses with both ports open and remove valve cores where permitted: at deep vacuum the gas is extremely thin, and small hoses and cores choke the flow badly enough to prevent reaching target at all. Put the micron gauge at the system, not at the pump.

Then open both service valves fully so the factory charge fills the circuit. Starting a compressor with the valves closed runs it into a vacuum and can damage the motor; opening only the liquid valve starves the compressor while flooding the low side.

Filter drier direction matters. The screen and media are arranged for one flow direction. Installed backwards on a cooling-only system, debris the drier already trapped washes off the outlet screen toward the metering device. The desiccant still adsorbs moisture either way — the failure is mechanical.

Flare connections on mini-splits: deburr, form a clean flare, and torque the nut to specification. Overtightening splits or extrudes the flare into a leak that shows up months later. Pipe dope is not a flare sealant. A previously compressed flare has work-hardened and will not reseal.

Refrigerant class changes the job. A system using R-454B — an A2L refrigerant — is mildly flammable, so the listed equipment carries charge limits, leak detection and mitigation provisions the installer must not defeat. (There is no blanket "ten feet from a window" setback, and brazing alloy is chosen for the joint and base metals, not the safety class.) More on A2Ls in Chapter 3.

Key Numbers & Facts — Line Sets - Size from manufacturer tables (capacity, length, rise). Insulate the suction line. Support at intervals. - Condenser above evaporator → static lift consumes subcooling. Evaporator above condenser → trap at the base of the suction riser. - Braze with a low, steady dry-nitrogen trickle or get copper oxide scale. - Pressure test FIRST (regulated dry nitrogen with relief), THEN evacuate. Never air, oxygen, or refrigerant-plus-air. - Evacuate to ≈ 500 microns, verified with the pump isolated. Decay: rise-then-level = moisture; steady climb = leak. - Open both service valves fully. Install the drier in the marked direction. - A2L: follow listed charge limits and mitigation features.

2.4 Condensate

Route condensate to an approved point of disposal — treated under the plumbing code as indirect waste to an approved receptor. Not into a plumbing vent (which obstructs it), not onto the ground under the unit, not into a crawl space (vapor barrier or no), not onto a roof.

Secondary protection where a leak would do damage. An air handler in an attic above a finished ceiling requires an auxiliary drain pan with its own drain, or a water-level shutoff device (float switch). A condensate pump can serve the primary drain but does not by itself satisfy the secondary requirement, and a single primary drain provides no backup when it clogs. (CMC requirements — verify the adopted edition.)

Draw-through coils need a trap. The pan sits on the suction side of the blower, so the drain outlet is under negative pressure and, without a water seal, the blower pulls air in through the drain instead of letting water out. The trap does not make the pan drain faster; it makes it drain at all. Depth is based on the unit's static pressure. (Refrigerant never reaches the condensate pan — it is inside sealed tubing.)

Slope and support the line. Sags across an attic hold water, restrict flow, and back water into the pan until the float switch trips. That symptom is the drain telling you something: clear the blockage and verify the trap and slope — do not remove the switch, wire it to an alarm, or fit one that lets water climb higher.

Condensing furnace condensate is acidic. A neutralizer raises its pH so it does not attack metallic drain piping. It does not filter particulate, reduce volume, or prevent freezing.

Key Numbers & Facts — Condensate - Indirect waste to an approved receptor. Never a plumbing vent, crawl space, roof, or the ground under the unit. - Attic above a finished ceiling → auxiliary pan with its own drain OR a water-level shutoff. - Draw-through coil → trap required (drain under negative pressure). Continuous fall, no sags. - Repeat float-switch trips = clear the drain, never defeat the switch. - Condensing-furnace condensate is acidic → neutralizer.

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Muestra gratis — un capítulo completo de la guía de CSLB C-20 HVAC. Resumen educativo, no asesoría profesional ni legal — confirma siempre las reglas vigentes con la fuente oficial. Última actualización: August 2026.

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