Why Sheet Metal Scrap Matters
For sheet metal fabricators, material is one of the largest costs
of production. Even small improvements in material utilization can
translate into meaningful savings when multiplied across hundreds
or thousands of sheets processed each year.
Every unused area of a sheet represents material that was
purchased but did not become a finished part. Some scrap is
unavoidable, but the goal is to consistently make better use of
the material available.
Better material utilization can help manufacturers:
- Reduce material cost per part
- Produce more parts from the same amount of material
- Reduce the number of sheets required for production
- Generate fewer unusable remnants
- Make better use of existing inventory
- Reduce scrap handling and disposal
Nesting should be viewed as more than a programming function.
The decisions made before cutting begins can directly influence
the manufacturing cost of every finished part.
What Is CNC Laser Nesting?
CNC laser nesting is the process of arranging parts on sheet
material before those parts are cut on a CNC laser. Instead of
manually positioning every part, nesting software evaluates the
available geometry and determines how parts can be arranged
within the usable area of the sheet.
The objective is typically to maximize material utilization while
creating a layout that can be cut efficiently and reliably.
A production nest may need to account for:
- Large and small parts
- Irregular part geometry
- Different quantities
- Part rotation restrictions
- Grain-direction requirements
- Different materials and thicknesses
- Production priorities
- Remnant sheets
- Machine-specific cutting requirements
How Nesting Software Reduces Sheet Metal Waste
1. Improving Part Placement
One of the most direct ways nesting software reduces waste is by
finding better arrangements for parts. Small changes in
orientation or placement can create enough space for additional
parts that might otherwise require another sheet.
This becomes particularly important with irregular geometry.
Compatible shapes can often be rotated or positioned together in
ways that are difficult to recognize manually.
2. Using True Shape Nesting
True shape nesting considers the actual geometry of parts rather
than treating every component as a simple rectangular boundary.
Curved, angled, and irregular components can therefore use areas
of a sheet that might otherwise remain empty.
Better Part Placement Means Better Material Utilization
Even when the same sheet size is used, better positioning can
create room for additional parts and reduce unused material.
Basic Part Placement
Larger unused areas can become scrap or difficult-to-use
remnants.
Optimized Nest
Improved placement can fit more parts onto the same sheet.
3. Combining Different Parts on the Same Sheet
Production requirements do not always arrive in combinations that
naturally fill an entire sheet. Nesting software can combine
compatible parts from different jobs or assemblies onto the same
sheet when production requirements allow it.
This can be particularly valuable in high-mix manufacturing
environments where many different components are produced in
relatively small quantities.
4. Making Better Use of Remnants
A partially used sheet does not necessarily need to become scrap.
Usable material remaining after a cutting operation can
potentially be saved as a remnant and used for future production.
The challenge is keeping that material organized and making it
practical for programmers to reuse. An effective nesting workflow
can help manufacturers incorporate available remnants into future
nests instead of automatically starting with a new full sheet.
See How SS-NEST Optimizes Sheet Utilization
SS-NEST provides automatic true shape nesting for sheet
metal fabrication and integrates directly with Striker
Systems CAD/CAM workflows.
Explore SS-NEST
5. Evaluating More Nesting Possibilities
A programmer manually arranging parts may find a good solution.
Software can evaluate many potential arrangements in the time it
would take a person to create only a few.
This becomes especially valuable when working with large part
lists, irregular geometry, multiple sheet sizes, or changing
production requirements.
Material Utilization Is Only Part of the Equation
The nest with the highest theoretical material utilization is not
always the best nest for production. A layout must also be
practical to cut.
Cutting sequences, heat concentration, part movement, lead-ins,
common-line opportunities, machine capabilities, and unloading
requirements can all influence whether a nest performs well on
the shop floor.
The objective is not simply to create the densest possible sheet.
It is to create an efficient production plan that balances
material utilization with reliable CNC cutting.
Standardize Nesting Across Multiple CNC Machines
Material optimization can become more difficult when a fabrication
shop operates equipment from multiple manufacturers.
If every machine requires a separate programming environment,
nesting strategies, part data, and workflows can become
fragmented. A machine-independent CAD/CAM and nesting environment
can help manufacturers standardize programming across equipment.
Instead of optimizing material separately within isolated
machine-specific software systems, programmers can work from a
more consistent production workflow.
Measure Material Utilization Over Time
Improving nesting should not be treated as a one-time project.
Manufacturers should monitor how effectively material is being
used and look for patterns over time.
Useful questions include:
- What percentage of each sheet becomes finished parts?
- Which materials or thicknesses generate the most scrap?
- How much usable remnant material is being created?
- How frequently are remnants reused?
- Are programmers consistently achieving similar results?
- Are certain jobs particularly difficult to nest efficiently?
- Could different sheet sizes improve utilization?
How Much Can Better Nesting Save?
The financial impact depends on material volume, material cost,
current utilization, part geometry, and the amount of improvement
that can realistically be achieved.
The basic principle is straightforward: the more material a
manufacturer processes, the more valuable even small improvements
in utilization become.
$
Lower Material Cost
More finished parts can be produced from each purchased sheet.
%
Higher Utilization
Better placement reduces unused areas across production nests.
↻
Better Remnant Use
Usable material can remain productive instead of becoming
unnecessary scrap.
Reducing Scrap Starts Before the Laser Begins Cutting
Once the laser starts cutting, many of the decisions affecting
material utilization have already been made.
Part selection, quantities, sheet size, orientation, spacing,
remnant selection, and nest layout all influence how efficiently
material will be used.
Fabricators looking to reduce scrap should evaluate not only the
performance of their cutting machines but also the software and
workflows determining what those machines cut.
CNC Laser Nesting with Striker Systems
Striker Systems develops CAD/CAM and nesting software specifically
for sheet metal fabrication.
SS-NEST provides automatic true shape nesting
designed to help manufacturers efficiently arrange parts and
improve sheet utilization.
When combined with Striker Systems CAD/CAM solutions,
manufacturers can create a connected workflow from part
programming and nesting through CNC production.
For shops operating equipment from multiple manufacturers,
Striker's machine-independent approach can also provide a common
programming environment rather than requiring the entire
production workflow to revolve around a single machine brand.
Frequently Asked Questions
What is sheet metal nesting software?
Sheet metal nesting software arranges parts on sheets before
CNC cutting. Its goal is to create an efficient layout that
balances material utilization with practical production
requirements.
How does nesting software reduce sheet metal scrap?
Nesting software can reduce scrap by optimizing part
orientation and placement, combining compatible parts, using
irregular areas of the sheet, and incorporating usable
remnants into future production.
What is true shape nesting?
True shape nesting uses the actual geometry of parts when
determining placement. This allows irregular components to fit
around compatible shapes more efficiently than basic
rectangular nesting methods.
Can nesting software use remnant sheets?
Yes. Depending on the software and production workflow, usable
material remaining from previous jobs can be incorporated into
future nests rather than starting every job with a new full
sheet.
Does better nesting reduce laser cutting costs?
Better nesting can reduce the amount of material required to
produce the same number of parts. Because material represents
a significant manufacturing expense, improved utilization can
reduce the material cost associated with each finished part.
Can one nesting system support multiple laser brands?
Machine-independent CAD/CAM and nesting systems can support
workflows involving CNC equipment from different
manufacturers. This can help shops standardize programming and
nesting rather than maintaining completely separate workflows
for each machine.