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ABS vs Polycarbonate (PC)

Both are common enclosure and housing plastics, both mold and machine well, and a part drawn for one will usually mold in the other without a redesign. The difference that actually decides between them is what the part has to survive after it ships: a drop, a hot environment, or the need to see through it. The numbers below are the same published datasheet values used on each material's own page, set side by side.

Typical properties, side by side
ABSPolycarbonate
Density1.04 g/cm³1.20 g/cm³
Tensile strength40–45 MPa60–70 MPa
Flexural modulus2.3 GPa2.3 GPa
Heat deflection (1.8 MPa)88 °C130 °C
Mold shrinkage0.4–0.7 %0.5–0.7 %
Optical clarityOpaque88 % transmission (clear)
Relative costLowMedium

Published values for unfilled grades at 23 °C unless stated, taken from each material's own datasheet page. Confirm against the supplier datasheet for the grade you specify.

What ABS is

ABS is a two-phase polymer: a rigid styrene-acrylonitrile matrix with butadiene rubber dispersed through it. The matrix gives stiffness and a hard surface, the rubber phase absorbs impact energy. It molds at low pressure, holds fine texture, takes paint and plating without primer, and solvent-welds cleanly with MEK or acetone. Its limits are heat and UV: it softens above roughly 90 °C and yellows outdoors without a stabilised grade.

What Polycarbonate is

Polycarbonate is the material to specify when a part has to survive being dropped, hit, or loaded near its limit without shattering. Notched Izod impact is roughly ten times that of acrylic, and it fails by yielding rather than cracking. It is optically clear, rated for continuous use around 115–125 °C, and holds tolerance across a wide temperature range. The trade-off is chemical sensitivity: many solvents, alkalis and some cleaning agents cause stress cracking, and it needs thorough drying before molding or it hydrolyses in the barrel and loses impact strength permanently.

ABS against Polycarbonate

ABSPolycarbonate
Impact resistanceGood, absorbs energy through the rubber phaseExcellent, the highest of the common enclosure plastics, fails by yielding not cracking
Heat resistanceSoftens above roughly 90 °CRated for continuous use to 115–125 °C
Optical clarityOpaque onlyClear or tinted, 88 % transmission
Chemical resistanceModerate, solvent-weldablePoor, stress-cracks with many solvents and alkalis
Finish and paintabilityExcellent, takes paint and plating without primerGood, but more prone to stress cracking under coating solvents
ProcessingForgiving: melt 220–250 °C, mold 50–70 °C, dries in 2–4 hoursDemanding: melt 280–320 °C, mold 80–110 °C, needs thorough drying or it degrades
Relative costLowMedium, typically 30–50 % more per kilo

Which one, for which part

  • Consumer enclosures and housings that need a good finish at low cost is ABS's case: it paints, plates, and textures well, and the tooling and material cost less.
  • Anything that has to survive an impact, a drop, or sustained load near its limit is polycarbonate's case: safety guards, machine windows, structural prototypes that get tested rather than just inspected.
  • A part that has to be seen through is polycarbonate by default among common thermoplastics; ABS is never optically clear.
  • A part that runs hot, near or above 90 °C in service, needs polycarbonate's higher heat deflection; ABS will visibly deform.
  • A part exposed to solvents, cleaning fluids, or alkalis favours ABS; polycarbonate is the more chemically sensitive of the two and can stress-crack in service.

The compromise: PC/ABS

Where a part needs ABS's finish and cost with more of polycarbonate's toughness and heat resistance than ABS alone provides, PC/ABS blends the two resins rather than forcing a choice. It is the material behind most automotive interior trim for exactly this reason. See the PC/ABS material page for its own datasheet values before assuming a blend is the answer; it does not match either parent resin on its strongest property.

Our status

Trumould molds both ABS and polycarbonate in-house across a 25 to 3,000 ton press range, and both also run through our CNC machining and 3D printing capabilities for prototypes and low volumes. Send the part, its service environment, and target volume, and the quote states which resin is recommended and why, not just a price for whichever one you asked about first.

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Send your CAD and target volumes. We come back with a price, a lead time, and any material or design notes that would reduce either.

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