← Programming & Analysis

Sheet E-108
PPDPDD PACE

Lightingconcept

Lighting controls and design strategies: occupancy sensors, dimmers, daylight harvesting

One-line orientation

Lighting controls save energy by matching electric light output to actual need.

Key points

Lighting-HVAC energy interaction

  • Electric lighting converts most input energy to heat, which becomes a cooling load.
  • Rule of thumb: ~3 W lighting saved ≈ 1 W HVAC energy saved.
  • This means energy-efficient lighting (LED, controls) has a compounding benefit:
    • Direct: fewer watts consumed at the panel.
    • Indirect: reduced internal heat gain → smaller/less-run cooling equipment.
  • Lighting is one of the largest internal load contributors in commercial buildings; it directly affects HVAC sizing in internal-load-dominated buildings.

Control tools

Control typeMechanismBest applicationEnergy benefit
Occupancy sensorPIR (passive infrared), ultrasonic, or dual-tech detects presence; auto on/offPrivate offices, restrooms, storage, conference roomsEliminates waste in intermittently occupied spaces
DimmerReduces light output (and wattage) from 0–100%; wall-mounted or automatedResidential, hospitality, conference rooms, retailSaves energy when full output is not needed; extends lamp life
Daylight harvestingPhotosensor measures ambient light; dims/switches electric lights near windowsPerimeter zones of offices, classrooms, atriumsOffsets electric load with free natural light
Demand responseAutomated load shedding on schedule or utility signalCommercial / institutional buildingsReduces peak demand charges; supports grid stability

Occupancy sensor types

  • Passive Infrared (PIR): detects changes in heat signature (motion of warm bodies). Requires line-of-sight. Good for open spaces; misses occupants who are still (e.g., reading at desk).
  • Ultrasonic: emits sound waves, detects reflection changes. Works around corners and partitions. Can false-trigger from HVAC air movement.
  • Dual-technology: combines both — requires both to confirm occupancy (ON) but either to maintain (reduces false offs). Most reliable; higher cost.

Daylight harvesting strategy

  • Photosensors placed near windows or skylights measure the combined (daylight + electric) illuminance at the work plane.
  • Controls dim electric fixtures when natural light provides sufficient illuminance; restore output when daylight decreases.
  • Works in zones: perimeter rows of fixtures respond to changing daylight; interior rows remain at design level.
  • Paired with motorized blinds or shades for glare control (glare control and daylight harvesting must be coordinated — blocking glare should not defeat the daylight sensor).

Demand response

  • Lighting connected to a Building Automation System (BAS)
  • Non-essential areas (storage, service corridors) dimmed or switched off.
  • Critical areas (egress, safety, occupied workspaces) are protected from shedding.

Confusions / comparison

StrategyResponds toSaves energy byDoes NOT address
Occupancy sensorPresence / absenceTurning off lights in empty roomsOverlighting when occupied
DimmerUser input or sensor signalReducing output when less is neededEmpty-room waste (needs occupancy sensor)
Daylight harvestingAvailable natural lightTrimming electric light when daylight is sufficientHeat from occupants and equipment
Demand responseTime / utility demand signalShedding load at peak demand periodsOngoing baseline efficiency

→ Lighting: Lighting metrics (fc levels that controls must maintain) · Illuminance & daylight (DF and daylight harvesting interaction) · Systems: HVAC (internal load from lighting, cooling load calculation) · Thermal: Building load types (internal-load-dominated buildings).