Desktop 3D Printers
Welcome to part 2 of this topic- Desktop 3D Printers
Like 3D scanners, 3D printers have already reached the small business market and are now just entering the individual consumer marketplace. Their build envelopes are limited but what could be cooler than printing your own action figures, robot parts, or 3D portraits?
* The RepRap project is an open-source project aimed at creating self replication rapid manufacturing machines. Based out of Bath University, the project shares its plans and the RepRap community can build as is or make their own improvements, which they can then share.
* At the other end of the Desktop 3D printer spectrum comes the V Flash from 3D Systems. Rather than making your 3D printer from scratch you can buy this smaller version of traditional additive manufacturing technology. It is priced for small businesses and schools.
* In the same market space as the V Flash, Solido bills their SolidPro300 as the “world's most cost efficient and flexible 3D printer”. In the US the SolidPro300 is distributed by Enser.
* Between RepRap, the V Flash, and SolidPro300 comes the Makerbot Cupcake CNC. Makerbot sells a kit for the Cupcake CNC but the customer puts it together. Like RepRap, they also host a community called Thingverse. Though their community revolves more around the 3D models than the machine itself. They are also working on a 3D scanning kit.
* HP has also recently announced that they are entering the market in an agreement with Stratysis who will produce mainstream 3D printers using Fused Deposition Modeling technology.
The above examples are just a small selection from a quickly developing marketplace, but they are a good indication of what home scanning technologies are just around the corner. Thanks for reading “Everything you always wanted to know about 3D scanning”, we hope it is has been an informative series!
If you have any questions feel free to contact us at info@dirdim.com.
Tuesday, December 28, 2010
Everything You Always Wanted to Know . . . Desktop Manufacturing
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Monday, December 20, 2010
Everything You Always Wanted to Know . . . Desktop Scanning and Manufacturing
Chapter 10, Part 1: The Future - Desktop Scanning and Manufacturing
Before we finish our series “Everything you always wanted to know about 3D scanning” we wanted to take a moment to talk about what we think is the immediate future in 3D scanning and manufacturing: the technology is going Desktop.
In the last few years, companies have been creating more products with smaller footprints, at much lower price points, making the technology a viable tool for schools and medium to small businesses. In addition to these new products, students and hobbyists have been creating (and sharing) do-it-yourself versions of 3D scanning and rapid manufacturing products. Soon we could see 3D scanners and printers in home offices!
Coming in the near future – to a home workshop near you!
Commercial Desktop and Handheld Scanners:
There are a few digitizers and scanners out there that are sized and priced for the small business. The price points are not yet for your everyday consumer, but it is getting closer all of the time.
* One of our favorite desktop digitizer/scanners is the Microscribe. It is a miniature articulating arm that is easily portable, is compatible with most popular reverse engineering and metrology packages, and offers near metrology level accuracy in a small package. Obviously you are not going to digitize an airplane with this – but we consider it the first major desktop digitizer (an attachable scanner is also available).
* 3D metrology has also entered the realm of handheld and wireless. eMicroscibe also now offer the MobiGage, the first handheld 3D metrology app. You don’t even need a computer, just a Microscribe and an iPhone or iPod Touch, to take measurements.
* Next Engine also offers a desk top 3D laser scanner. Its compact size, ease of use, customer support and price point are quickly making it a popular choice for small businesses and individuals.
Open Source, Consumer and Up-Coming Scanning Technologies:
While they don’t come close to offering the same kind of accuracy as current available scanning systems, there is a burgeoning community of small businesses, hobbyists and students who are working to bring 3D scanners into the home. New products are rapidly developing.
* Qi Pan, a student at Cambridge University has created ProFORMA, which uses a web cam to collect data and create a color 3D model.
* David Laser Scanner offers a kit to build your own basic scanning system using every day objects like a web cam and hand held laser pointer.
* Perhaps the ultimate in DIY scanners, Friederich Kirschner used Legos, a webcam and some milk to create 3D models.
Stay tuned for part 2 of this chapter- Desktop Manufacturing. If you have any questions about desktop scanning equipment, like the Microscribe, feel free to contact Direct Dimensions. We're happy to answer any questions.
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Tuesday, November 9, 2010
Everything You Always Wanted to Know . . . Additive Manufacturing
Chapter 9: From Digital to Physical – Rapid Prototyping and Milling
Up to now we’ve been discussing putting physical objects into the realm of the digital, but before we finish this series we need to talk about another common application for our 3D scanning and modeling processes. Chapter Nine focuses on creating physical objects from digital data.
Important Terminology
Additive Manufacturing – the process of making a physical object from 3D digital data by layering materials; also known as rapid prototyping and 3D printing.
Milling – a subtractive process of removing material to create a physical object directly from 3D digital data by the cutting away from existing solid material.
Applications
You may be asking, why do I need a physical replication of my digital model? After all, we just spent a series of entries talking about turning your physical parts into various digital formats. But there are many good reasons to create new physical models of your data. Here are a few:
* Scaling: Making enlargements, reductions, or even exact size replicas...we can do it all. After a Digital Model has been created, there are few boundaries as to how big or how small we can replicate your object or part.
* Restoration: Our technology enables us to capture accurate 3D data that can be used for manufacturing to completely restore any object that has been damaged by weather, neglect, natural disasters, etc. such as historical monuments and artifacts or aged aircraft and automotive parts.
* Manufacturing Prototype: With a digital model, Direct Dimensions can create a physical prototype that can be used for testing or to manufacture final pieces, such as milling a foam sculpture for a bronze casting pattern or creating a finished prototype as a concept model for a new consumer product.
And now we can talk about the best ways to create the physical models.
Additive Manufacturing (AM)
There are a variety of additive manufacturing equipment manufacturers and processes on the market. Regardless of the type of AM, the various machines read the 3D data most typically in an STL file format. We discussed this format in earlier editions. The software within the machines then generates the layering instructions and directs the deposition of successive layers of material needed to build up the physical part. Essentially this part is created from cross sectional layers. The layers are fused together automatically and ultimately create the final shape, an exact physical replica of the 3D model. Additive manufacturing is an umbrella term that covers many of the following processes.
* One of the earliest and most common types of AM is called Stereolithography (also known as SLA). SLA builds pieces using a laser and a vat of UV-curable liquid resin. Each thin layer of resin is solidified and secured to the layer below with every pass of the UV laser. SLA is good for producing models, patterns, and prototypes. A downside to SLA is that it generally requires support structures to be included in the build, which is part of the SLA process.
* Another AM process is Selective Laser Sintering (also known as SLS). Unlike SLA, SLS can utilize a wide variety of materials such as plastics, metals, and ceramics although post processing may be required. SLS does not require support material while building since it is built and incased within the raw material. SLS uses these materials in a powder format and, by fusing the powder together, creates the layers needed to build the part. SLS is increasingly being used to create final parts for when mass scale production isn’t necessary.
* Similar to Stereolithography is Fused Deposition Modeling (also known as FDM). FDM, trademarked and marketed by Stratasys, also uses the additive platform build concept. Rather than raw liquid or powder, FDM uses thermoplastic materials which are applied through a heated nozzle that places a single thermoplastic bead at a time. These beads fuse together and harden as cooled. The plastics used in FDM are known for their strength and high heat resistance, making them good for product testing.
* Perhaps the most similar to regular 2D printing is the concept of 3D Inkjet Printing. The only rapid prototyping technique that can print in multiple colors, 3D printing also uses a powder base material, but rather than sintering the powder, an inkjet releases a dot of adhesive mixed with coloring, allowing the layers to be built with colors. While the final model is not generally as strong as the other three techniques it is usually cheaper and faster and the colored prints allow for good representation of final concepts. Recently 3D printing has been used commercially to create personalized figurines from World of Warcraft and Rock Band avatar characters.
The primary advantage to additive fabrication is its ability to create almost any shape or geometric feature relatively quickly and inexpensively. We generally say that for a small part, you can’t beat the price to complexity ratio. However the overall volume within a single build is generally limited for AM and for larger parts we recommend milling.
Milling
Milling is best described as a subtractive manufacturing technique. Most often used in the creation of metal production parts, tools, and molds for virtually any industry, an engineer, or even an artist, counts this as a well-tested valuable method. More advanced Computer Numerical Control (CNC) milling machines, like the various additive manufacturing machines, use a 3D CAD file to create a physical reproduction of the digital model. Unlike AM, CNC milling machines can utilize an extremely diverse range of materials including:
* Metals
* Stones
* Woods
* Waxes
* Plastics
* Even Glasses!
Milling steel or aluminum is a common option to make durable tooling. And stone and wood are common for sculpture and historical restoration projects.
Where is this all going?
We are almost done with our “Almost Everything You Always Wanted to Know About 3D Scanning” series. Don’t be surprised if we add additional chapters now and then; the field is constantly changing and growing. We wrap up this series next with talking about the immediate future of these technologies, including desktop (or home) scanning and manufacturing.
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Wednesday, October 20, 2010
Everything You Always Wanted to Know . . 3D Visualizations
Chapter 8: Using 3D Data for Visualization
While we touched on visualization, one of several downstream applications in Chapter Six, the subject is so comprehensive that it deserves a discussion of its own.
As our lives become increasingly digital and interactive (via the web, video games, and even television and our cell phones), we have come to expect ever more realistic interpretations of real world objects within this virtual realm. One of the best ways to perfect the digital form is to actually copy the shape of objects into 3D via laser scanning and digital imaging.
Visualization applications generally fall into the following categories:
* Animations - 3D digital movies made from computer models
* Renderings - 2D images made from computer models
* Direct 3Dviews - real-time interactive web-based 3D visualizations
* ShapeShot™ - real-time interactive web-based 3D facial images
Animations
When most people think of computer animation they think of the neat special effects in blockbuster movies and the animated explanations of complex events on the nightly news, such as train accidents. Yes - 3D models are frequently used for those types of animations. But often these animations are pure visualizations where the dimensional accuracy of the objects is less important – as long as it looks good.
Our brand of 3D scanning and modeling is more valuable when the quality of the models is critical, such as for museum objects, or military simulations, or for animating highly recognizable objects for tv commercials such as cars. These situations require accuracy and authenticity, which scanning provides, so the objects in the animations look as real as possible. Often real colors and textures are captured and applied to provide that much more realism.
We have created numerous 3D animations from our 3D scanned models for a wide variety of applications including illustrating complex medical procedures, forensic analysis, describing historic preservation sites, and even for Hollywood movies and commercials.
Renderings
Rendering is the process of creating a still image from a 3D model. High quality 2D renderings are often created from an existing 3D model that was originally captured for other purposes. These renderings can be used for graphical presentations, marketing, and even websites. For instance, if a product designer has created a hand-carved physical model for reverse engineering purposes, he can also use that same digital file to create awesome 2D images of his product for marketing graphics. The great thing about a rendering created from a 3D model is that it is highly accurate and quick to render out multiple lighting and background states to create multiple renderings without staging new photography shoots.
Direct 3Dviews
A Direct 3Dview is a fully-interactive real-time 3D presentation of a digital model in a virtual environment. This 3D model visualization can be displayed via a website, a PowerPoint, or even in a stand-alone format. The Direct 3Dview of your object can be used to create an on-line 3D catalog to allow web visitors to fully experience the product - virtually. Another great application is for 3D proofs of concept for a new design or invention in a collaborative viewing environment.
Features of the Direct 3Dview include:
* Smallest viewer on the web - the one-time plug-in is only 130KB
* Smaller digital file sizes = faster download times
* Easily integrates into web sites
* Viewer supported in e-mail as well as PowerPoint
* View file in actual 3D, not a series of images
ShapeShot™
ShapeShots™ are high resolution 3D snapshots of faces that are incredibly life-like. ShapeShot™ enables online personal interaction with amazingly real 3D avatars of you, friends, and family for social networking, online gaming, virtual collaborative environments, and fabrication of personalized consumer products.
New advances in 3D imaging technology have made it to possible to capture faces in a split second and receive an interactive 3D model within minutes with almost no effort.
Direct Dimensions is currently developing the ShapeShot™ concept. See www.shapeshot.com for more information.
From the Virtual to the Physical
The above examples are just a drop in the bucket when it comes to visualization applications. But what happens if you want to take your 3D model and make a physical copy of it? For instance, can you take your Guitar Hero avatar and get a physical 3D copy made? You can, and that process is called Rapid Prototyping or RP. Rapid Prototyping is just one of many technologies that fall into the “3D Printing” category and we’ll be talking about that next.
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Thursday, September 9, 2010
Everything You Always Wanted to Know . . . Model Formats
Chapter 7: Digital Model Formats - The Many Flavors of 3D CAD
We’re going to take a little pause in our Everything You Always Wanted to Know About 3D discussion. We’ve talked about the many things you can do with a CAD model but that can lead to some questions. How can I use an OBJ file and how is it different from an STL? Can an IGES and a STEP file essentially be used for the same thing?
These are what we call the “Flavors” of CAD and we’re here to provide you with a short list to help clear up some details.
The Various CAD Flavors:
* ASCII (or ASC) – an X,Y,Z point cloud file in ascii text format.
* DWG - This is a native AutoCad drawing file
* DXF – “Drawing Interchange File” - a neutral version of a DWG file
* IGES – “Initial Graphics Exchange Specification” - a neutral format for exchanging CAD data between many different software programs
* OBJ – an open data format that represents the vertices of polygons
* PRT – a native CAD format for Pro/ENGINEER and NX (Unigraphics)
* SLDPRT – a native CAD format for SolidWorks
* STEP – "Standard for the Exchange of Product model data," (ISO 10303) an advanced neutral format for exchanging CAD data between many different software programs.
* STL – “Standard Tessellation Language” - a polygonal model format similar to OBJ and several others
* WRL (VRML) – “Virtual Reality Modeling Language,” a polygonal file similar to OBJ, STL and several others and can include color
* X_T - a semi-neutral CAD format
Wikipedia also maintains an extensive list of CAD file formats that might be of further interest.
Neutral Formats:
From the list above you’ll notice that some CAD formats are considered neutral, specifically IGES and STEP formats. These two formats were specifically created to neutrally exchange 3D CAD data across different CAD packages.
IGES was created in 1979 by a group of users (including Boeing and GE) with support from the Department of Defense (DoD) and NIST to exchange data more easily. Since the late 80’s the DoD has required that all Digital Project Manufacturing Data (PMI) be deliverable in IGES format.
STEP is an ISO standard released in 1994 to be the “successor” to IGES. While widely used it has never totally replaced the IGES format.
Extra Flavors:
While the above examples are standard across CAD packages, many industries, such as Architecture and 3D modeling for computer graphics have their own packages and files types. We like to think of these as extra flavors, like CAD dessert.
3D Graphics – 3D graphics formats are generally proprietary according to package. Some popular graphics programs are, 3D Studio Max, Maya and Lightwave. Popular gaming companies such as Blizzard Entertainment and other film studios often develop their own in-house formats. However, many consumer 3D graphics packages can import OBJ files.
3D Modeling for Architecture – A new style of modeling for facilities, such as buildings and processing plants, is developing rapidly. This new CAD software contains a relational database component to store metadata for the design entities, such as the style and make of windows or doors, or the schedule of the I-beams and piping. This new class of software is termed BIM for Building Information Modeling and is working to combine facilities management into the database concept as well.
The above list is just a small taste when it comes to the variations of CAD, but they are the most common files used. If you have any questions you should just ask your 3D service provider and they will be happy to help. You can always ask us questions at info@dirdim.com.
The next post in this on-going series will feature a more in-depth discussion and examples of using 3D data for various types of visualization. Stay tuned!
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Friday, August 27, 2010
3D Scanning Downstream Applications: Visualization and Industry Specific Uses for 3D data
We wrap up this month's discussion of downstream applications with examples of visualization and industry specific uses of data.
Visualization/Animation
This application definitely falls into the realm of advertising and entertainment but also museum presentations, legal cases, and even high quality training simulations are also all great uses for 3D model visualizations and animations.
* Direct 3Dview of your object – can be used to create an on-line 3D catalog or proof of concept.
* FaceScan – scanning a person for animations, avatars, mass personalization of consumer products, or even simulation programs.
* Animation – recent scans of people, objects, and structures have been used to create commercials, films, music videos, and video games.
* Rendering – high quality 2D renderings using 3D models can be used for marketing purposes. Renderings of structures and viewpoints have also been used in legal cases to prove/disprove eyewitness accounts.
This animation is a great example of scan data used for a visualization:
Industry-specific Applications
While many types of industries can utilize the previously listed applications, there are a few 3D model apps that are very specific, but we feel we should list:
* Architecture/Construction: scanning facilities for BIM databases and creating traditional blueprint drawings
* Museum Research/Fine Art: investigative scanning for provenance and comparative research
* Virtual 3D Worlds: 3D scanning facilities, objects, and people specifically for use in virtual worlds and social networks, such as Second Life
Same 3D Data, Many Different Uses: Repurpose!
Often, with just a little bit of extra work, you can create different, valuable deliverables with the same basic scan data or 3D model. Some examples are:
* A consumer products company has an object scanned so that it can be prototyped. What they might not know is that with a little tweaking of the model they can also gather the measurements needed to create perfectly fitting packaging and also creating photorealistic models for subsequent advertising or a virtual catalogue.
* An aerospace company has a cockpit scanned for human factors analysis. If enough data was initially collected, that same data could be used to help create training simulations.
* A major museum has a sculpture in its collection that is rapidly deteriorating and they want to scan it for documentation. That data could be used to create high quality mini replications to be sold in the gift shop or for research (possibly comparing it to similar castings by the same artist).
The Sky is the Limit!
The above examples are just a drop in the bucket when it comes to uses for 3D models. If you have a possible application that you think a 3D model would work for, you should just ask your 3D service provider if it can or has been done. If they are anything like us, they will either have already done it (or tried it) or be so intrigued by your application that they are willing to give it a shot! And if you can’t do it yet, check back often; new applications and methods are being invented every day.
The world of 3D imaging, modeling, and engineering continues to grow at such an incredible rate that older applications are always being improved upon and new ones are always being dreamed up.
If you have any questions, feel free to contact us!
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Labels: About 3D Scanning
Tuesday, August 24, 2010
3D Scanning Downstream Applications: Inspection and Replication
Inspection/Analysis
While we also covered this as a type of process, inspections are a great use for 3D data, particularly for any types of manufacturing. Using our advanced laser scanning and reverse engineering tools and processes, Direct Dimensions can inspect and analyze your part or object in a variety of ways:
* Compare a scanned part/object to a "nominal" or intended design model
* Compare a scanned part/object to 2D drawing dimensions
* Compare a scanned part/object to another scanned part/object
Replication/Reproduction
While this will be covered in depth at a later time, Replication is one of the earliest and still most important uses for a 3D file. Using either 3D printing or milling processes, your digital file can be created as a physical part. After you have laser scanned or reverse engineered your part, there are virtually limitless options for replicating that object. Replication can be used for:
* Scaling in either direction
* Restoration
* Manufacturing Prototypes
* Making Products
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Friday, August 13, 2010
Everything You Always Wanted to Know About 3D Scanning: Downstream Applications
Re-Engineering/Design
Yesterday we began discussing downstream applications for digital models. Today's downstream application is Reverse Engineering.
While Reverse Engineering as a process was covered in Chapter 4, it is also an application that is particularly useful in the Aerospace/Defense and Industrial Design industries. With a Reverse Engineered model you can make engineering and design changes of your part or object in a variety of ways or use it for specific types of analysis:
* Add or subtract design features to the existing part or object
* Use as a base model to design a new part or object
* Use model for FEA and similar analyses
A good example of this is an aging aircraft job that we worked on. For this job we laser scanned the existing pressure seals on the rear cargo door of several c-2 aircraft. The scan data was analyzed to re-design the seals based on the actual "as-is" door conditions. This process provided for accurate manufacturing and installation of the new seals. You can read more about this particular project on our website.
You can see an example of scanning an aircraft for FEA analysis below:
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Labels: About 3D Scanning
Thursday, August 12, 2010
Everything You Always Wanted to Know About 3D Scanning : Downstream Applications
Chapter 6: Downstream Applications for 3D Data
In our on-going series about 3D scanning, we’ve reached the fun part! What can you do with a 3D model? Practically anything!
In a world that is increasingly digital, most industries now utilize 3D files in some fashion. We’re seeing them show up in many different places lately.
At this point in the process (having read sections 1-5), you have your 3D model from your scanned original part. It has been either digitally modeled into a polygon format or reverse engineered into a CAD format, according to your needs. But, you can do so many things with your 3D data – things you might not have even thought of yet!
Section Six covers the different downstream applications for 3D data files and because there are so many different applications to talk about, we are going to break out the info into multiple posts.
Downstream applications generally fall into the followings categories:
* Documentation/Archival
* Re-Engineering/Design
* Inspection/Analysis
* Replication/Reproduction
* Visualization/Animation
* Various Industry-specific Applications
Documentation/Archival
After your part or object has been laser scanned and modeled you now have a digital "backup" of the object. Scan data for archival purposes is useful for a number of industries: Aerospace/Defense, Consumer Products/Industrial Design, Architecture/Historic preservation and Museum/Fine Art. At Direct Dimensions we’ve scanned many objects specifically for the purpose of creating a digital document. Archival scans have ranged from the Lincoln Memorial (post-9/11) to a huge rare meteorite to legacy aircraft parts that are no longer made.
This digital model will:
* Protect you from accidental part loss, almost like an insurance policy
* Provide you with a working "virtual" blueprint in order to rebuild, recreate, or remanufacture
* Give you the ability to start from a base model and create something new without having to start from scratch
A good example of something scanned for documentation purposes is the Lincoln Memorial.
You can read more about the Lincoln Memorial scan here or watch this animated fly-through we created using 3D laser scan data.
Check back soon because we'll be talking about more downstream applications including reverse engineering and inspection.
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Labels: About 3D Scanning