| name | smart-composites |
| description | Smart composites — embedded sensors/actuators, SHM with Lamb waves, piezoelectric PZT/MFC, shape memory alloy actuation, embedded fiber optic (FBG), self-healing composites, electro-active polymers. |
| metadata | {"priority":7,"promptSignals":{"phrases":["smart composite","smart material","embedded sensor composite","piezoelectric composite","structural health monitoring composite","self-healing composite","MFC actuator"],"minScore":3}} |
Smart Composites — Complete Skill
Smart Material Taxonomy
Sensing: converts mechanical/thermal/chemical input → electrical output
Actuation: converts electrical/thermal input → mechanical output
Multifunctional: both sensing and actuation simultaneously
Piezoelectric Materials in Composites
PZT (Lead Zirconate Titanate) — PZT-4, PZT-5A, PZT-5H
d₃₁ piezo coefficient: strain/field in direction perpendicular to poling
d₃₃: strain/field parallel to poling
Typical PZT-5H: d₃₃ = 593 pm/V; d₃₁ = -274 pm/V; coupling k₃₁ = 0.39; k₃₃ = 0.75
Actuation force and displacement:
δ = d₃₁ × L × E_field [m; L = actuator length]
F_block = d₃₁ × E_field × E_pzt × A_pzt [N; blocking force at zero displacement]
Sensing:
V_open = g₃₁ × σ × t [V; g₃₁ = voltage output coefficient = d₃₁/(ε₃₃ ε₀); t = PZT thickness]
Embedding in CFRP:
Wafer PZT (0.2–0.5 mm thick) embedded between prepreg plies
Electrical leads brought out through ply edges
Cure temperature: PZT-5H T_Curie = 195°C → limits cure to < 180°C (below Curie)
PZT-5A: T_Curie = 365°C → compatible with 120°C cure, marginal at 180°C epoxy cure
MFC (Macro Fiber Composite) — Smart Material Corp.
Structure: rectangular PZT fibers in epoxy matrix + interdigitated electrode
Advantage: flexible; conformable to curved surfaces; can be bonded to outside of composite structure
d₃₃ mode: fibers poled along fiber axis; high actuation strain in fiber direction
Strain output: ε_free ≈ 0.1–0.2% (600 V actuation at full field)
PVDF (Polyvinylidene Fluoride) Piezoelectric Film
Very thin (9–110 μm); flexible; used as sensor
d₃₁ = 23 pm/V; g₃₁ = 216 × 10⁻³ V·m/N (high voltage output → good sensor)
Used for: impact detection, vibration sensing, acoustic emission pickup
Disadvantage: low actuation force; brittle (depoling under large strains)
Shape Memory Alloy (SMA) Actuators in Composites
NiTi (Nitinol) Wires in Composites
Shape memory effect: low T → martensite → deformed; high T → austenite → recovers to trained shape
One-way SMA: actuates on heating; bias spring/stressed composite resets
Two-way SMA: actuates both ways (requires training)
Key parameters:
M_f, M_s, A_s, A_f = transformation temperatures (finish/start martensite/austenite)
Design: A_f < operating temperature < M_s (to ensure full recovery)
Recovery stress: σ_recovery = 100–400 MPa (significant)
Embedding NiTi wires:
0.1–0.5 mm diameter wires in laminate; heated by Joule heating (resistance wire)
Used for: morphing structures, vibration control, shape adaptation
Bias composite: SMA wire contracts on heating; compressed laminate straightens
Effective stiffness change ΔK: 10–50% with SMA activation → tunes structural frequency
Fiber Optic Sensors (FBG) in Composites
Fiber Bragg Grating (FBG)
Grating written into single-mode optical fiber; reflects narrow wavelength band
Bragg wavelength: λ_B = 2 n_eff Λ [n_eff = effective refractive index; Λ = grating period]
Strain sensing:
Δλ_B / λ_B = (1 - p_e) × ε_axial [p_e = photoelastic constant ≈ 0.22 for silica; ε = mechanical strain]
Typical sensitivity: 1.2 pm/με at 1550 nm wavelength
Temperature sensing:
Δλ_B / λ_B = (α_Λ + ξ) × ΔT [α_Λ + ξ ≈ 6.7 × 10⁻⁶ /°C for silica at 1550 nm]
Sensitivity: ~10 pm/°C
Simultaneous T and ε: use two FBGs at different wavelengths + deconvolution matrix
Embedding in CFRP:
Fiber (125 μm OD) between plies; coating stripped in embedded section; routed to edge for connection
Integration with WDM (wavelength division multiplexing) → 50+ sensors on one fiber
Distributed sensing (BOTDR/BOTDA):
Brillouin scattering along entire fiber length → temperature/strain profile at 1 m spatial resolution
100–10,000 m sensing range; structural monitoring of bridges, wind turbines, pipelines
Lamb Wave SHM in Composites
Lamb waves: guided waves in plate structures; S₀ (symmetric) and A₀ (antisymmetric) modes
Generation and sensing: PZT wafer actuators/sensors in pitch-catch or pulse-echo modes
Damage detection:
Baseline subtracted signal: DI (damage index) = ∫|u_damage - u_baseline|dt / ∫|u_baseline|dt
Damage imaging: delay-and-sum beamforming → localization
Design of SHM system:
PZT spacing: < λ_min/2 (Nyquist spatial sampling; λ = 10–50 mm for 100–500 kHz in CFRP)
Actuation frequency: 100–500 kHz typical for CFRP SHM
Coverage: overlap at 3 dB level from each actuator
Mode selection:
S₀ at low frequency: near non-dispersive; good for long-range
A₀: higher sensitivity to surface damage; more dispersive
Self-Healing Composites
Microencapsulated Healing Agents (White-Sottos, 2001)
Dicyclopentadiene (DCPD) microcapsules (50–300 μm) + Grubbs catalyst dispersed in matrix
On crack: capsules rupture → monomer released → catalyst contact → polymerization → healing
Healing efficiency:
η_heal = K_IC_healed / K_IC_virgin × 100% [fracture toughness recovery]
Reported: 75–90% for first heal cycle; decreasing for repeated healing
Vascular Networks
3D-printed or sacrificial fiber vascular channels in composite
Healing agent pumped on demand or by capillary action
Advantage: multiple healing cycles (external reservoir); controllable delivery
Challenge: network must not compromise structural performance
Ionomers (Self-Healing Polymers)
Poly(ethylene-co-methacrylic acid) → ionic crosslinks reform after damage
Limited to low-level damage (not fiber fracture)
Used for: ballistic impact self-sealing (NASA JSC, US Army programs)
Electro-Active Polymers (EAP)
Dielectric Elastomers (DEA):
Soft polymer sandwiched between compliant electrodes
Applied voltage → Maxwell stress → in-plane expansion, thickness reduction
Actuation strain: 10–300% (very large!); force limited
Applications: soft robotics, haptics, artificial muscle
Ionic EAP (IPMC):
Nafion + Pt electrodes; bending on low voltage (< 5V) from ion migration
Low blocking force; fast response; requires moisture
Applications: underwater robots, biomedical actuators
Output
Provide: smart material type (PZT/MFC/SMA/FBG/self-healing), actuation output (δ [μm], F_block [N], ε_free [%]), sensing output (voltage sensitivity [mV/με] or wavelength shift [pm/με]), embedding method (prepreg ply, surface bond, channel), SHM system design (PZT spacing, frequency [kHz], mode, DI threshold for damage alert), healing efficiency η_heal [%] and healing agent type, operational temperature range [°C], and power/voltage requirements for actuation (V_actuation, current/power [W]).