Design Rules for Sintered Parts
Sag Effect:
Horizontal features sag due to gravity
-> Avoid long horizontal part sections
-> use self supporting geometrie,
Drag Effect:
deformation from friction between part and support plate
-> minimize contact with the support plate
-> avoid large flat bottom surface
-> thicker & shorter walls
Which steps are repeated in Binder Jetting?
Material Preparation of the powder
Printing (Poweder Coating, Binder printing, heating)
Curing (Drying, better greenpart strenght)
Steps done only once
Debinding (burn out mainbinder)
Sintering (Densification, Shrinkage, material particles joined)
What are the post-processing steps in Binder Jetting?
Curing
Depowdering
Debinding
Sintering
Machining to achieve required dimension
How is the saturation of the liquid in the powder bed calculated?
Satuation = Fraction of binder in available volume of voids between powders
How can shrinkage be addressed during the design of the part to still meet dimensional requirements?
Scaling factor:
calculate the shrinkage factor
shrinkageV= density final part/ density cured part
shrinkageL=(shrinkageV)^(1/3)
dimensionate part length with this factor
Shrinkage prediction models
use uniform wall thickness
include post processing allowance
add more material then needed
remove material in an addtional machining step
How should parts be designed for the Binder Jetting process?
avoid long horizontal part sections (Sag Effect)
Use Self supporting Geometries
Avoid thin walls -> prone to fail during depowdering
uniform cross-sections/ wall thickness for homogenious shrinkage
minimize contact area to baseplate (Drag Effect)
Beam Quality
Defintion
Formula
Defintion:
How well a Laser can be focused
PBF-LB/M - Process Window
Microstructure in PBF-LM/M:
Effects
reason
Effects:
growth of grains in direction of temperature gradient (z-direction)
growth over multiple layers
Reason:
high cooling rates (1-40*10^6 K/s
temperature gradient (1-50 K/micrometer)
Anisotropy
Directional dependence of a property
Archiving good surface finish rule
minimizing support structures & residual material
support structures -> rough contact surface
Which steps are repeated in powder bed fusion processes?
Apply Powder Layer (Coating)
Exposure with laser beam
Lowering the build platform and dose new powder
Why do we need an overdosing factor?
density of the powder is lower then of the bulk material
powder layer height is not the real layer height
Why are fiber lasers the standard laser in PBF-LB/M systems?
good beam qualities at high power (up to 1kW)
Wavelength near infrared (λ=1064nm-1080nm)
good absorption for metallic materials
What limits the process window in powder bed fusion?
mainly given by Scanning speed and Laserpower are defects which limitate the process window:
occuring errors are:
to high scan speed & to low laser power
Lack of fusion:
Balling:
no metling
sintering
to high laser power combined with low scan speed:
keyhole formation
Gas pores
What is the difference between conduction mode and keyhole mode?
conduction mode I~10^5W/cm^2:
mostly gets absorped at surface
keyhole mode I>10^6W/cm^2
deep penetration of the material
meltpool is deep (multiple layers)
high dynamic meltpool
What kind of grain structure can be expected with PBF-LB/M?
fine grains due to high cooling rates
elongated grains in z-direction, because groth is in direction of temperature gradient
Post-Process-Quality Assurance
Metallographic Test Method
definition
Metallographic Test Method:
process of preparing a material sample so that its microstructure can be observed under a microscope
Steps
Cutting:
cut material specimen in representative area
Embedding:
embedding of specimen in resin (Harz) to provide
stable orientation
standardized size
for automatic handling
Grinding & Polishing:
provide of smooth surface to observe the structure
Etching (Ätzen):
reveals microstructure by using difference between crystals (orientation, compositon, chemical resistance)
Metallographic Test Methods:
Process Specific Characteristics
PBF-LB/M
BJM
MEX
DED
PBF-LB/M:
Track, hatch and layer pattern clearly visible in the microstructure
BJM:
particles and their bounds clearly visible in the microstructure
MEX:
particles anf their bounds clearly visible in the microstructure
DED:
drastically varying microstructure between different DED-Processes
Density
Optical Method
Prepared specimens are photographed using a light microscope.
Images are getting binarized:
Each pixel is assigned to either material or pore
Ratio of material pixel and all pixel = density
Ratio of pore pixel and all pixel = porosity
Advantage: Information about size, shape and pore distribution
Limitation: Other defects can be mistaken for pores
Archimedean Method
Part is weighted in air
Part is weighted in liquid
Calculated part density
Advantage: Simple, entire volume range of the sample
Limitation: No information about type, distribution and shape of strutural porosities
Density - Process Specific Characteristics
BJT
with suitable process parameters high densities >99% can be achieved
with suitable process parameters high densities ~99% can be achieved
Debinding step leads to highly porous part (density 50-60%)
Sintering decreases porosity significant ~97%
BJT:
Debinding step leads to highly porous part (density> 50-60%)
Sintering/ Infiltration decreases porosity significant ~96%
portion of pores remains
Surface Quality
comparabiltiy only given with same measurement technique
Methods are:
optical areal surface measurement
Confocal Laser Scanning Microscopy
Focus Variation
Fringe Projection
Pofilometer
Post Process-Quality Assurance
Surface quality measurement methods
Advantages
Limitations
Profilometer
+ well established, standardized
- surface can be changed by the touch of the probe tip
Optical Areal surface measurement:
+contacless
- optical disturbance of the environment
Post-Process - Quality Assurance
mechanical properties - tensile test
specimen out of massiv cylinder d=10mm, length=62mm
spcimen is loaded in tension until fracture to determine mechanical properties
tests need to be performed under realistic conditions to their future deployment for valuable data
Main Factors Affecting Dimensional Tolerances in AM Processes
highest dimensional accuracy due to scanner system, no sintering
Binder Jetting:
largest tolerance influence from sintering shrinkage
Material Extrusion:
Tolerances influeced by Nozzle diameter and sintering
Directed Energy Deposition:
Tolerance mainly limited by robot/ positioning accuracy & large meltpool, no sintering
In the process of PBF-LB/M temperature gradients of 10^6 K/m with cooling rates of 10^6 K/s appear.
What kind of a microstructure (qualitatively) do you expect to be established and how can it be adapted?
fine grain size due to high cooling rate
elongated grains in z-direction, grown over multiple layers, cause of growing in temperature gradient direction
heat treatment enlarges grain structure and delivers adapted mechanical behaviour
What kind of fractures do you expect during tensile testing?
fine grains lead to Brittle fractures (Sprödbruch)
heat treatment leads to more ductility
Sketch qualitatively a stress-strain-diagram of PBF-LB/M manufactured specimens.
How can the mechanical behavior of the specimens be adapted?
Post heat treatment
decreasing surface roughness (machining)
optimized build direction
How does a post heat treatment influence the tensile strength on PBF-LB/M-manufactured specimens?
better ductility
higher elongation (Bruchdehnung)
no longe brittle fractures
A client commissions an AM specialized engineering team to design a process to produce a part as close to the net shape as possible in order to minimize the required machining as a post process.
Based on this requirement, what AM process will the engineering team most likely choose for this assignment?
PBF:
product with smallest form, dimensional, positional tolerance
Scanner system provides high accuracy
Small spot size & layer height produces minimal stairstepping effect
no sintering (shrinkage)
Besides the AM process characteristics, are there other influences on form and dimensional tolerances? If there are other influences, name examples.
Process Parameters
Variables of the feed material
Last changed12 days ago