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Published: March 28, 2026
Last Modified:August 5, 2026
A Direct Expansion PVT (DX-PVT) heat pump system is one of the most integrated forms of photovoltaic thermal solar-assisted heat pump technology.
Unlike brine PVT systems, where a secondary heat transfer loop transfers energy between the collector and heat pump, a DX system directly connects the PVT collector with the refrigeration circuit.
In this architecture:
This creates a compact solar-assisted heat pump system with fewer intermediate thermal transfer stages.
Miglioli et al. identify Direct Expansion (DX) systems as configurations where the PVT collector is directly integrated into the refrigerant circuit and acts as the evaporator of the heat pump system.
The collector is not only a solar thermal component. It becomes:
A combined photovoltaic generator and heat pump evaporator.
Because there is no secondary fluid loop:
PVT Collector
↓
Refrigerant Evaporation
↓
CompressorPVT Collector
↓
Brine Loop
↓
Heat Exchanger
↓
Heat PumpThe direct coupling between collector and refrigerant circuit creates additional design challenges:
A DX PVT heat pump system is a direct expansion solar-assisted heat pump architecture.
The PVT collector performs three functions:
PV cells convert solar radiation into electrical energy.
The thermal absorber extracts heat from the collector.
The collector acts as the evaporator of the heat pump cycle.
The basic system concept:
Solar Radiation
↓
DX PVT Collector
↓
Refrigerant Evaporation
↓
Compressor
↓
Condenser
↓
Building Heating / DHW LoadMiglioli et al. describe DX-PVT-SAHP systems as architectures where the refrigerant directly exchanges heat inside the PVT collector.
The Solis DX 450W Reference Design follows the DX-PVT-SAHP architecture.
Solar Radiation
↓
Solis DX 450W
PVT Collector
↓
Refrigerant Evaporation
↓
Compressor
↓
Condenser
↓
Heating / Domestic Hot Water
↓
Building LoadThe DX PVT collector is the core component of the system.
It combines:
The collector must provide:
Unlike Brine PVT systems, the DX collector is directly connected to the refrigeration loop.
Main components include:
The operating principle:
Low Temperature Solar Heat
↓
Evaporation
↓
Compression
↓
High Temperature Heat
↓
Heating ApplicationThe heat pump increases the temperature level of renewable solar-derived heat so it can be used for building applications.
The main advantage of DX architecture is direct thermal coupling.
Compared with indirect systems:
No:
PVT
↓
Secondary Fluid
↓
Heat Exchangerexists.
Instead:
PVT
↓
Refrigerantdirectly transfers heat.
Potential benefits include:
A DX PVT collector is not an independent solar thermal collector.
It is part of the heat pump cycle.
The system is designed as one integrated energy conversion device.
Because the collector performs multiple functions, DX systems can be attractive for:
DX technology also introduces more demanding design requirements.
The refrigerant must:
The collector operating condition changes with:
The refrigeration system must respond to these changes.
The collector and heat pump cannot be designed independently.
Critical matching includes:
Collector
+
Evaporation Condition
+
Compressor
+
Expansion ControlMiglioli et al. highlight that DX systems face challenges related to refrigerant selection, collector design, and integration between PVT collectors and heat pump components.
A practical DX system design process:
Determine:
↓
Define:
↓
Evaluate:
↓
Evaluate:
↓
Evaluate:
| Item | DX 450W | Brine 450W |
|---|---|---|
| Architecture | Direct Expansion | Indirect Expansion |
| Heat Transfer Medium | Refrigerant | Brine / Secondary Fluid |
| Collector Role | Evaporator + PV source | Thermal collector |
| Circuit Separation | No | Yes |
| Integration Level | Higher | Lower |
| Hydraulic Flexibility | Lower | Higher |
| Refrigeration Complexity | Higher | Lower |
Choose DX 450W when:
Choose Brine 450W when:
Suitable where:
Suitable when:
can be designed together.
Suitable for projects emphasizing:
☐ Collector thermal performance
☐ Refrigerant circuit compatibility
☐ Installation conditions
☐ Refrigerant selection
☐ Evaporation control
☐ Compressor matching
☐ Expansion control
☐ Heating demand matching
☐ Control strategy
☐ Seasonal operation evaluation
The PVT collector testing layer supports evaluation of collector-level characteristics, including:
For a complete DX heat pump system evaluation, additional system-level parameters are required, including:
Therefore:
Collector testing validates the collector component.
System engineering determines the final heat pump performance.
A DX PVT system uses the PVT collector directly as the evaporator in the heat pump refrigeration cycle.
The main advantage is direct integration between collector and refrigeration cycle, reducing intermediate heat transfer stages.
Neither architecture is universally better.
DX provides higher integration, while Brine provides greater flexibility.
Because the collector becomes part of the refrigeration system and must operate reliably under changing environmental conditions.
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