| name | ultrasonic-welding |
| description | Ultrasonic welding — energy director design, joint types, frequency (20-40 kHz), amplitude, weld force, energy/time/distance modes, thermoplastic selection, amorphous vs. semi-crystalline, AWS/AWS standards. |
| metadata | {"priority":7,"promptSignals":{"phrases":["ultrasonic welding","ultrasonic plastic welding","energy director","ultrasonic weld","sonotrode","horn welding","thermoplastic ultrasonic"],"minScore":3}} |
Ultrasonic Welding — Complete Skill
Process Overview
Ultrasonic welding joins thermoplastics using high-frequency mechanical vibration (20–40 kHz)
Vibration → frictional and viscoelastic heating at interface → melting → solidification under pressure
Components:
- Power supply: converts 50/60 Hz to high-frequency electrical signal
- Converter/transducer: piezoelectric ceramics → electrical to mechanical vibration
- Booster: amplifies or attenuates amplitude (step-up/down ratios)
- Horn/sonotrode: amplifies and transmits vibration to part
- Fixture: supports and locates lower part; transfers welding force
Frequencies:
20 kHz: most common; larger parts; higher power; more robust
30 kHz: medium parts
40 kHz: delicate/thin parts; higher frequency → lower amplitude → less marking
Energy Director (ED) Design
Purpose: concentrate vibration energy at joint interface → initiates and controls melt front
Standard energy director (triangular cross-section):
Height h: 0.2–0.5 mm (rule: h ≈ 0.25–0.30 × wall thickness)
Apex angle: 60–90°; sharper → more energy concentration; more aggressive
Width at base b: 2h (for 90° angle); h (for 60°)
Location: on one mating surface; vibrating horn presses onto flat mating surface
Multiple EDs:
Longer joints → multiple parallel EDs; spacing ≈ 2–4 mm
Hermetic sealing: serpentine or dual ED configuration
Shear Joint (Alternate to ED)
Telescoping fit; tight clearance (0.2–0.4 mm)
Vibration → part moves laterally → melt forms at shear interface → locks when cooled
Advantages: stronger; hermetic easier; lower residual stress
Requires: better fixturing; tight tolerances
Scarf and Other Joints
Tongue-and-groove (butt joint): contains melt flash; cleaner appearance
Stepped joint (lap): for thin film/sheet; requires intimate contact
Weld Process Parameters
Frequency (f)
20 kHz standard; horn length = λ/2 = c/f = 6350/(2×20,000) = 0.159 m for aluminum
Higher frequency → shorter horn → smaller parts → less amplitude
Amplitude (A)
Peak-to-peak displacement at horn face
Range: 15–120 μm peak-to-peak (0.5× to 2× base amplitude from converter + booster gain)
Semi-crystalline polymers: higher amplitude required (50–120 μm)
Amorphous: lower amplitude (15–60 μm)
Gain (amplitude ratio) = Booster ratio × Horn ratio
Horn ratio from node-to-antinode design; stepped horn: gain = (D₁/D₂)²
Weld Force (Pressure)
Pneumatic actuator delivers constant force during welding
Trigger pressure (initial squeeze): 20–100% of weld pressure
Weld pressure: depends on material and joint area; typical: 0.2–2.0 MPa
Hold pressure: same or lower than weld; maintains joint during solidification
Weld Time/Energy/Distance Control Modes
Time mode: fixed weld time → variable joint quality (less preferred)
Energy mode: weld until set energy [J] delivered → more consistent
Distance mode (collapse): weld until part collapses specified distance → most consistent
Collapse = ED height × 0.5–0.9 (partial to full ED collapse)
Material Selection
Amorphous Thermoplastics (Most Weldable)
ABS, PC, PS, SAN, PMMA, PVC, PEI (Ultem):
No discrete melting point; broad melt range → slower heat buildup → easier to control
Low amplitude (15–50 μm); lower energy input required
Excellent ultrasonic weldability
Semi-Crystalline Thermoplastics (More Difficult)
PP, PE, PA (nylon), POM (Delrin), PET, PBT:
Sharp melting point; energy must raise T quickly above T_m
Higher amplitude required (50–120 μm)
PP: lowest weldability in class; high amplitude, short distance, near-field only
PA (nylon): hygroscopic; must be DRY before welding (< 0.2% moisture); moisture → voids
Compatible Material Pairs
Both materials must be chemically compatible (similar structure) + compatible T_melt
ABS + PC: compatible; PC/ABS alloys
ABS + PMMA: compatible
PP + PP: good; PP + PE: marginal
PA6 + PA66: compatible; PA + POM: NOT compatible
Weldability Index
Product of acoustic impedance Z = ρ × c_sound and loss tangent (viscoelastic damping)
High Z, high damping → weld energy generated close to surface ("near field" region > 6 mm from horn)
Low Z, low damping → energy penetrates to joint without much absorption ("far field"; most favorable)
Far field weldable (excellent): ABS, PS, PC
Near field only: PA, PP, PE, POM
Joint Strength Factors
Joint efficiency: S_weld / S_parent_material × 100%
Excellent: ABS joints = 80–100% tensile parent strength
Good: PC = 70–90%; Nylon = 50–75%
Weld failure modes:
Cohesive failure (within weld): desired; shows good fusion
Adhesive failure (at interface): poor fusion; increase amplitude or collapse
Parent material failure: weld stronger than parent; over-welded
Fixturing
Nest/fixture material:
Aluminum: standard; easy to machine; reflects ultrasound
Delrin/nylon: absorbs vibration → reduces marking; used for delicate cosmetic surfaces
Teflon-coated: release of part; for adhesive materials
Fixture design:
Support as close to weld plane as possible
Contact area: maximize to prevent part deformation
Locate from features away from weld zone
Inspection and Quality Control
Destructive: peel test, tensile shear, burst test
Non-destructive: vision inspection (surface quality); dimensional (collapse distance)
Process monitoring: energy, time, distance, force logged by machine → SPC control charts
Advanced: in-line ultrasonic inspection; thermal imaging during weld
Applications
Electronic enclosures (ABS); automotive lighting (PC/PMMA); medical devices (PS/ABS/PP); IV bags; toy assemblies; fluid filters; automotive fuel systems (PA)
Output
Provide: material weldability assessment (amorphous/semi-crystalline), energy director geometry (height h [mm], apex angle [°], spacing [mm] for multiple EDs), amplitude A [μm], weld force F [N], weld energy E [J] or collapse distance d [mm], frequency [kHz], material compatibility check, expected joint efficiency [%], hold time [s], critical process parameter recommendation (energy or distance mode), and failure mode prediction (cohesive/adhesive).