RAPID
PROTOTYPING TECHNOLOGY AND ITS APPLICATIONS
Vinay.K
v STUDENT
OF FINAL YEAR B.E
Govt.
Engineering College, Kushalnagar-571234
ABSTRACT
Rapid
Prototyping (RP) technology and methods have been around for over twenty years.
As this technology has matured the base price of these units has decreased as
well. RP are now cost effective in graduate schools, technical schools,
secondary and primary educational facilities. New improvements in the
technology have made RP units available to almost any school in our country.
This paper evaluates some of the current low cost RP units available and
provides recommendations for those schools seeking to implement such technology
in the class room.
INTRODUCTION
Prototyping
or model making is one of the important steps to finalize a product design. It
helps in conceptualization of a design. Before the start of full production a
prototype is usually fabricated and tested. Manual prototyping by a skilled
craftsman has been an age old practice for many centuries. Second phase of
prototyping started around mid-1970s, when a soft prototype modeled by 3D
curves and surfaces could be stressed in virtual environment, simulated and
tested with exact material and other properties. Third and the latest trend of
prototyping, i.e., Rapid Prototyping (RP) by layer-by-layer material
deposition, started during early 1980s with the enormous growth in Computer
Aided Design and Manufacturing (CAD/CAM) technologies when almost unambiguous
solid models with knitted information of edges and surfaces could define a
product and also manufacture it by CNC machining.
RP
technology and systems have been around for a number of years. This technology
has found application in industry, governmental engineering laboratories,
manufacturing facilities and all types of schools. As the sophistication of
this technology has increased the base price of these units has decreased. RP
are now cost effective in graduate schools, technical schools and secondary and
primary educational facilities. New improvements in the technology have made RP
units available to almost any school in our country.
The historical development of RP and related
technologies is presented in table 1.
Table.1
|
Year of inception
|
Technology
|
|
1770
|
Mechanization
|
|
1946
|
First
computer
|
|
1952
|
First
Numerical Control (NC) machine tool
|
|
1960
|
First
commercial laser
|
|
1961
|
First
commercial Robot
|
|
1963
|
First
interactive graphics system (early version of Computer
Aided
Design)
|
|
1988
|
First
commercial Rapid Prototyping system
|
Table 1:
Historical development of Rapid Prototyping and related technologies
BASIC PRINCIPLE OF RAPID PROTOTYPING
PROCESSES
RP
process belong to the generative (or additive) production processes unlike
subtractive or forming processes such as lathing, milling, grinding or coining
etc. in which form is shaped by material
removal or plastic deformation. In all commercial RP processes, the part is
fabricated by deposition of layers contoured in a (x-y) plane two
dimensionally. The third dimension (z) results from single layers being stacked
up on top of each other, but not as a continuous z-coordinate. Therefore, the
prototypes are very exact on the x-y plane but have stair-stepping effect in
z-direction. If model is deposited with very fine layers, i.e., smaller
z-stepping, model looks like original. RP can be classified into two
fundamental process steps namely generation of mathematical layer information
and generation of physical layer model. Typical process chain of various RP
systems is shown in figure 1.
The
terminology used in the rapid prototyping industry is not completely
consistent. Some differentiate “RP” from “3D Printing” Theoretically RP
includes more expensive machines and manufacturing staff. “3D printing” is thus
focused on lower-cost systems and technologies.
Figure 1:-
RP process chain showing fundamental process steps
In
a RP process an object or model is first created electronically in a CAD file.
The CAD file is then converted to a STL file format. The RP machine or some
intermediate computer slices the STL file to generate the object electronically
in layers. Finally the RP machine physically produces the model in layers from
the layered “slice” file. The layers may be produced by build material in
filaments, droplets, or laminates.
RP build materials include paper laminates,
powders, thermo-plastics, photopolymers, and other special materials. All of
these materials are solidified, joined, melted, welded, or hardened by one of a
number of specific methods.
CLASSIFICATION
OF RAPID PROTOTYPING
The
main RP types are:
Ø Selective
Laser Sintering [SLS]
Ø Laminated
Object Manufacturing [LOM]
Ø Stereolithography
[SLA]
Ø Fused
Deposition Modeling [FDM]
Table:-2
|
RAPID
PROTOTYPING METHODS
|
BUILD MATERIALS
|
|
Selective Laser Sintering [SLS]
|
Metal powers, Thermoplastics
|
|
Laminated
Object Manufacturing [LOM]
|
Special paper
|
|
Stereolithography
[SLA]
|
Photopolymer
|
|
Fused Deposition Modeling [FDM]
|
Thermoplastics
|
v Selective
Laser Sintering
Selective
Laser sintering [SLS] was developed at the University of Texas in the 1980s. In
this process a high power laser is used to fuse material (e.g. plastics, metal,
and ceramic) in layers. See Figure 2. The new backed bed of material for each
layer is deposited on the previous fused material from a roller and a bin of
unprocessed powder. Support material is not required in the SLS process. Due to
the materials used the final object built by this method can be stronger than
from other RP methods.
In
Selective Laser Sintering (SLS) process, fine polymeric powder like
polystyrene, polycarbonate or polyamide etc. (20 to 100 micrometer diameter) is
spread on the substrate using a roller. Before starting CO2 laser scanning for
sintering of a slice the temperature of the entire bed is raised just below its
melting point by infrared heating in order to minimize thermal distortion
(curling) and facilitate fusion to the previous layer. The laser is modulated
in such a way that only those grains, which are in direct contact with the
beam, are affected. Once laser scanning cures a slice, bed is lowered and
powder feed chamber is raised so that a covering of powder can be spread evenly
over the build area by counter rotating roller. In this process support
structures are not required as the unsintered powder remains at the places of
support structure. It is cleaned away and can be recycled once the model is
complete. The schematic diagram of a typical SLS apparatus is given in figure 2.
Fig:-2 Selective
Laser Sintering
v Laminated
Object Manufacturing (LOM)/Paper
systems
In
this method layered paper is first adhered to a moveable base. A CO2 laser cuts
out the outline of the first layer of the object, the support material is cut
in cross-hatch fashion. The table translated down and new paper (or plastic) is
adhered over the previous layer. See Figure 3. The laser then cuts out the next
layer of the object. After completion the support material can be removed with
a pick. The final object has the look and feel of wood. LOM may be less expensive
than other methods but the final object may be susceptible to shrinkage/warpage
if the exterior surfaces are not sealed.
Typical
system of Laminated Object Manufacturing (LOM) has been shown in figure 3. It can
be seen from the figure that the slices are cut in required contour from roll
of material by using a 25-50 watt CO2 laser beam. A new slice is bonded to
previously deposited slice by using a hot roller, which activates a heat
sensitive adhesive. Apart from the slice unwanted material is also hatched in
rectangles to facilitate its later removal but remains in place during the
build to act as supports. Once one slice is completed platform can be lowered
and roll of material can be advanced by winding this excess onto a second
roller until a fresh area of the sheet lies over the part. After completion of
the part they are sealed with a urethane lacquer, silicone fluid or epoxy resin
to prevent later distortion of the paper prototype through water absorption.
In
this process, materials that are relatively cheaper like paper, plastic roll
etc. can be used. Parts of
fiber-reinforced glass ceramics can be produced. Large models can be produced and
the building speed is 5-10 times as compared to other RP processes. The
limitation of the process included fabrication of hollow models with undercuts
and reentrant features. Large amount of
scrap is formed. There remains danger of fire hazards and drops of the molten
materials formed during the cutting also need to be removed.
Fig:-3 Laminated
Object Manufacturing (LOM)/Paper
systems
v Stereolithography
Stereolithography
(or SLA) was coined and developed by Chuck Hull in about 1985. This method is
widely used today. In this method a light – sensitive resin in a vat is
photo-cured by a UV laser. The table in the vat moves downward as each layer is
built. Each layer is about 0.001 to - 0.007 inch. Ventilation of the vat is
usually required due to the adverse resin vapors. Accuracy in the z-direction may suffer if
there is no milling in this direction.
In
this process photosensitive liquid resin which forms a solid polymer when
exposed to ultraviolet light is used as a fundamental concept. Due to the
absorption and scattering of beam, the reaction only takes place near the
surface and voxels of solid polymeric resin are formed. A SL machine consists
of a build platform (substrate), which is mounted in a vat of resin and a UV
Helium-Cadmium or Argon ion laser. The laser scans the first layer and platform is then lowered equal to one slice
thickness and left for short time (dip-delay) so that liquid polymer settles to a flat and even
surface and inhibit bubble formation. The new slice is then scanned. Schematic
diagram of a typical Stereolithography apparatus is shown in figure 4. In new SL systems, a blade spreads resin on
the part as the blade traverses the vat. This ensures smoother surface and
reduced recoating time. It also reduces trapped volumes which are sometimes
formed due to excessive polymerization at the ends of the slices and an island
of liquid resin having thickness more than slice thickness is formed. Once the
complete part is deposited, it is removed from the vat and then excess resin is
drained. It may take long time due to high viscosity of liquid resin. The green
part is then post-cured in an UV oven after removing support structures.
Overhangs
or cantilever walls need support structures as a green layer has relatively low
stability and strength. These overhangs etc. are supported if they exceed a
certain size or angle, i.e., build orientation. The main functions of these
structures are to support projecting parts and also to pull other parts down
which due to shrinkage tends to curl up . These support structures are
generated during data processing and due to these data grows heavily specially
with STL files, as cuboid shaped support element need information about at
least twelve triangles. A solid support is very difficult to remove later and
may damage the model. Therefore a new support structure called fine point was developed
by 3D Systems and is company s trademark. Build strategies have been developed
to increase build speed and to decrease amount of resin by depositing the parts
with a higher proportion of hollow volume. These strategies are devised as
these models are used for making cavities for precision castings. Here walls are
designed hollow connected by rod-type bridging elements and skin is introduced that
close the model at the top and the bottom. These models require openings to drain
out uncured resin.
Fig:-4
Stereolithography
v Fused
Deposition Modeling (FDM).
This process was invented and developed by
Stratasys. In the FDM procedure a filament of thermoplastic is metered through
a heated injection head to lay down a cylinder of hardening plastic on a
build-plate. The heated head follows a tool path as prescribed by the software.
Support structure may be required. See Figure 5. This is much like a “hot glue gun”
technique.
In
Fused Deposition Modeling (FDM) process a movable (x-y movement) nozzle on to a
substrate deposits thread of molten polymeric material. The build material is
heated slightly above (approximately 0.5 C) its melting temperature so that it
solidifies within a very short time (approximately 0.1 s) after extrusion and
cold-welds to the previous layer as shown in figure 5. Various important factors
need to be considered and are steady nozzle and material extrusion rates,
addition of support structures for overhanging features and speed of the nozzle head, which affects
the slice thickness. More recent FDM systems include two nozzles, one for part material
and other for support material. The support material is relatively of poor
quality and can be broken easily once the complete part is deposited and is
removed from substrate. In more recent FDM technology, water-soluble support
structure material is used. Support structure can be deposited with lesser
density as compared to part density by providing air gaps between two
consecutive roads.
Fig:-5 Fused
Deposition Modeling (FDM)
APPLICATIONS OF RP TECHNOLOGIES
RP
technology has potential to reduce time required from conception to market up
to 10-50 percent as shown in figure 10. It has abilities of enhancing and improving
product development while at the same time reducing costs due to major breakthrough
in manufacturing. Although poor surface finish, limited strength and accuracy
are the limitations of RP models, it can deposit a part of any degree of
complexity theoretically. Therefore, RP technologies are successfully used by various
industries like aerospace, automotive, jewelry, coin making, tableware,
saddletrees, biomedical etc. It is used to fabricate concept models, functional
models, patterns for investment and vacuum casting, medical models and models
for engineering analysis. Various typical applications of RP are summarized in
figure 6.
Fig:-6
Application of Rapid Prototyping
SUMMARY
This
paper provides an overview of RP technology in brief and emphasizes on their ability
to shorten the product design and development process. Classification of RP processes
and details of few important processes is given. The description of various stages
of data preparation and model building has been presented. An attempt has been made
to include some important factors to be considered before starting part
deposition for proper utilization of potentials of RP processes.
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·
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·
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·
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(2003a) Slicing Procedures in Layered Manufacturing: A Review, Rapid
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·
Pandey, P.M., Reddy, N.V., Dhande, S.G.
(2003b) Real Time Adaptive Slicing for Fused
Deposition Modelling, International Journal of Machine Tools and Manufacture, 43(1), pp 61-71.
·
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International Conference on Advanced Manufacturing
Technology, pp. 907-912.
·
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N.V. (2004b) Optimal Part Deposition Orientation
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·
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N.V. (2004) Part Deposition Orientation in Fused Deposition Modeling, International
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