Download presentation
Presentation is loading. Please wait.
Published byRoberta Norman Modified over 9 years ago
1
Progressive Energy Dynamics: Key to Low Standoff Cleaning The Science of Cleaning PED
2
Space under components is shrinking Interconnect densities are increasing Performance requirements are increasing Lead-free & no-clean are harder to clean Fluxes are fully filling small gaps 1. What’s the Problem ?
3
1.Physical properties of the cleaning agent (surface tension, density and viscosity) 2. Higher energy fluid delivery (flow rate and impact velocity) Energy Delivered is dependent on equation for Kinetic Energy Kinetic Energy @ the surface = mass x velosity 2 @ the surface 2.Fluid Flow Theory – Cleaning Small Gaps Depends on 2 things - - -
4
Δp = 2γ cosθ / R Interfacial pressure differential calculation γ = surface tension R = radius meniscus Θ = contact angle of liquid at surface 2.How much energy does it take to clean tight spaces? Δp = γ cosθ / R planar cylinder NOTE: if θ is greater than 90˚, as with water on waxy surface, the force becomes negative or repulsive. If surface is wetted, force pulls the fluid into the gap.
5
Relationship between gap size and capillary force for water on glass Planar: Cylinder: 2. Fluid Flow Theory – Small unfilled Gaps Interfacial pressure difference at equilibrium 10 1 psi 0.1 0.01 0 20 40 60 Gap/diameter, mils
6
Surface effects in tight spaces retard fluid flow (computer model of flow in 50 micron gap) Component
7
And that’s the easy stuff!
8
(Resistors, Capacitors, LCC’s, QFN’s) Flux around 0603 Cap Flux under cap 3. Fully Filled Gaps are Much Harder
9
3 steps are required to remove a fully blocked gap: 1 Outer solvent depleted zone softened 2 Liquid jet with sufficient energy forms flow channels 3 Bulk residue is eroded & dissolved by fluid flow Steps 2 & 3 require substantial Energy 3. Fluid Flow Theory – Filled Gaps
10
Research leading to PED
11
PED Works in a standard in-line configuration Treatment system 2 13456 Pre- Wash Chemical Isolation Rinse Final Rinsing Dryer Wash 4. Inline Progressive Energy Dynamics Approach (PED)
12
New approach to design in-line cleaner Involves a manifold design with increasing energy at each manifold 4. Inline Progressive Energy Dynamics Approach Low Energy Jet Medium Energy Jet High Energy Jet Highest Energy Jets Pre-wash Wash 1 Wash 2 Wash 3 Heat & wet penetrate form flow erode surfaces outer layer channels flux
13
Wash section equipped with progressive energy dynamics 4. Inline Progressive Energy Dynamics Approach Soften Outer Shell Create Flow Channels Erode Flux Residue
14
A Progressive Energy Design is: A fluid delivery system Recognizes the 3-step process required to clean flux-filled spaces Delivers only what is needed at each step: 4. Inline Progressive Energy Dynamics Approach 961 I/O “glass on glass” Flip Chip
Similar presentations
© 2025 SlidePlayer.com. Inc.
All rights reserved.