System Comparisons
REFERENCE DOCUMENT #DS-04
REFERENCE DOCUMENT #DS-04
Zoning, Controls &
Electrical Load Design
Designing underfloor heating control architectures
for modern all-electric buildings
Applies to: Australia & New Zealand
Last reviewed: January 2026
Abstract (Executive Summary)
Modern buildings operate as integrated electrical systems — not as collections of independent appliances.
Underfloor heating must therefore be designed as part of a building’s electrical load architecture, with zoning, control logic and energy management considered from the earliest design stages.
This document explains how zoning, controls and electrical load design shape real-world heating performance, energy efficiency and long-term stability in contemporary Australian and New Zealand buildings.
1. Why zoning now defines performance
Modern homes have:
• Zoned living patterns
• Variable occupancy
• Solar generation and battery storage
• Dynamic energy tariffs
Heating must therefore be zoned to:
• Match real use patterns
• Reduce unnecessary heating
• Maintain surface temperature stability
• Improve integration with energy strategies
2. Control architecture principles
Effective control architectures must support:
• Independent zone control
• Floor sensor integration
• Maximum surface temperature limits
• Time scheduling
• Load prioritisation
Controls define how heat is actually delivered.
3. Electrical load design and circuit planning
Electrical design must consider:
• Zone wattage loads
• Circuit segmentation
• Phase balancing
• Switchgear capacity
• Protection devices
Underfloor heating should be treated as designed electrical infrastructure, not as a single appliance.
4. Integration with solar, battery and tariffs
Zoned electric underfloor heating can be:
• Scheduled during solar generation
• Balanced against battery discharge
• Optimised for time-of-use tariffs
• Dynamically managed
This makes electric underfloor heating a controllable thermal asset.
5. Commissioning and control calibration
Commissioning must verify:
• Zone response behaviour
• Surface temperature limits
• Control logic operation
• Load sequencing
Calibration protects both comfort and flooring materials.
Key Takeaways
• Zoning defines real-world performance
• Control architecture governs heating behaviour
• Electrical design must treat heating as infrastructure
• Solar and battery integration improves efficiency
• Commissioning protects long-term stability
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