铝基板与FR4 PCB的全面对比
| Parameter | Aluminum PCB | FR4 PCB | Winner |
|---|---|---|---|
| Thermal Conductivity | 1.0–3.0 W/m·K (typical) | 0.2–0.4 W/m·K | Aluminum |
| Max Operating Temperature | 130°C–150°C (with proper dielectric) | 130°C (standard FR4), 150°C (high-Tg) | Tie (with high-Tg FR4) |
| LED Junction Temperature (1W LED at 350mA) | ~85°C (with 1.5 W/m·K Al PCB) | ~115°C (with 0.3 W/m·K FR4) | Aluminum |
| Lumen Maintenance (L70 at 85°C junction) | >50,000 hours | ~25,000–35,000 hours | Aluminum |
| Dielectric Breakdown Voltage | 2–4 kV (typical dielectric layer) | 20–40 kV (standard FR4) | FR4 |
| Cost per Square Meter (1.6mm thick, qty 100) | $25–$45 | $8–$15 | FR4 |
| Weight (1.6mm, 100x100mm panel) | ~45 grams | ~30 grams | FR4 (lighter) |
| CTI (Comparative Tracking Index) | 175–250 V (standard) | 175–600 V (depending on grade) | FR4 |
| Flexural Strength | 250–350 MPa | 400–500 MPa | FR4 |
| Recyclability | Aluminum layer recyclable; dielectric not | Not easily recyclable (thermoset resin) | Aluminum |
Thermal performance is where aluminum PCBs absolutely dominate. A standard aluminum PCB with a 1.5 W/m·K dielectric layer can keep a 1W LED's junction temperature at roughly 85°C when dissipating 0.75W of heat. The same LED on FR4 — with its 0.3 W/m·K thermal conductivity — will run at 115°C or higher. That 30°C difference isn't academic; it directly impacts lifespan. Per the Arrhenius model and IES TM-21-19, every 10°C reduction in junction temperature roughly doubles LED life. So you're looking at 50,000+ hours to L70 on aluminum versus maybe 25,000–35,000 hours on FR4.
But here's where it gets tricky: FR4's dielectric strength is far superior. Standard FR4 handles 20–40 kV breakdown voltage, while aluminum PCBs typically manage only 2–4 kV across their thin dielectric layer. If you're designing for high-voltage isolation — say, a mains-connected driver on the same board — FR4 is safer. I've seen aluminum PCBs fail in field trials where the dielectric layer was too thin for 277V applications. Per IEC 60950-1, you need at least 0.4mm of dielectric for basic insulation at 250V, and many budget aluminum PCBs skimp on that.
Upfront, FR4 wins hands down. At $8–$15 per square meter for 1.6mm FR4 versus $25–$45 for aluminum, you're looking at 2–3x the material cost. For a simple 50x50mm board, that's about $0.03 for FR4 versus $0.08 for aluminum. On a 10,000-unit run, that's a $500 difference. But — and this is the catch — that's only if the LEDs survive.
Let's put numbers to this. A typical 10W LED module on FR4 might need 20% more LEDs to achieve the same light output because you have to derate current to keep junction temperatures under 105°C. That adds $0.15–$0.30 per module in LED cost alone. Plus, the shorter lifespan means replacement costs: if you're replacing a 30,000-hour FR4 fixture at year 3 versus a 50,000-hour aluminum fixture at year 5, the total cost of ownership flips. For a 100-fixture installation running 12 hours/day, that's roughly $1,200 in replacement labor and materials over 5 years for FR4 versus $0 for aluminum. Bottom line: for anything above 0.5W per LED, aluminum pays for itself within 18–24 months.
Aluminum PCBs are the default for high-bay lighting, streetlights, automotive headlamps, and any LED array running at 350mA or more per channel. They're also preferred in outdoor fixtures where thermal cycling is a concern — the metal core expands and contracts more uniformly than FR4, reducing solder joint stress per IPC-9701. FR4, on the other hand, shines in low-power indicators, control boards, and any application where electrical isolation matters more than thermal performance. Think LED strips running at 12V with 0.1W per chip, or driver circuits where you need 4kV isolation between primary and secondary sides.
Aluminum PCB Pros: Superior thermal management (1.0–3.0 W/m·K), extends LED lifespan by 40–60% versus FR4, mechanically rigid, and the aluminum layer is recyclable. Cons: Higher cost, limited dielectric strength (2–4 kV), heavier (about 50% more than FR4), and requires specialized etching processes that add 2–3 days to lead time.
FR4 PCB Pros: Low cost ($8–$15/m²), high dielectric strength (20–40 kV), lighter weight, widely available with 1–2 day lead times, and easier to prototype. Cons: Poor thermal conductivity (0.2–0.4 W/m·K) leads to higher LED junction temperatures, shorter LED lifespan, and requires derating or additional heatsinks for any LED above 0.5W.
| Use Case | Recommended | Reason |
|---|---|---|
| High-bay LED fixtures (100W+) | Aluminum PCB | Thermal load of 80–120W requires >1.5 W/m·K conductivity to keep junction temps under 105°C |
| Low-power indicator LEDs (<0.1W) | FR4 PCB | Heat is negligible; FR4 saves $0.05–$0.10 per board |
| Automotive headlamps (10–30W per module) | Aluminum PCB | Ambient temps of 85°C+ in engine bay demand aluminum's thermal margin |
| LED driver control boards | FR4 PCB | High-voltage isolation (3–4kV) needed per IEC 61347-2-13; FR4 handles it easily |
| Outdoor streetlights (50–150W) | Aluminum PCB | Thermal cycling from -40°C to +60°C; aluminum's CTE matches aluminum heatsinks better |
| Prototype runs (<100 boards) | FR4 PCB | Faster turnaround (1–2 days) and lower cost for design validation |
Use Compare2Best's comparison engine to compare products from verified manufacturers.
Start Comparing