Saturday, March 1, 2014

3D Printing Market by Technology

The Market has been evolving as a technique to create 3D models and prototypes, in many industries, namely, automotive, aerospace, healthcare, and consumer products- in order to investigate the possibility of completing a project in lesser time and with few resources. However, in the last two decades, 3D printing has made a radical shift from rapid prototyping to rapid manufacturing”, mainly, because of its advantages over traditional manufacturing practices such as injection molding, CNC machining, and vacuum casting. These advantages include innovative designing, high adaptability levels, less time to market, and less tooling requirements. 3D printing manufacturing is also found to be quicker and less expensive. The ability of 3D printing to print almost any geometry with a variety of materials makes this technology a preferred choice, especially, in those markets which are characterized by high individualization, low volume, and high value; such as aerospace and healthcare. The major driving factors that support the exponential growth of the market include - the development of new and improved technologies, financial support from governments, large application areas, rapid product development at a low cost, and ease in development of custom products.
In this report, the global market is segmented on the basis of technology, material, application, and geography. The technology segment comprises of Stereo lithography (SLA), Laser Sintering, Electron Beam Melting (EBM), Fused Disposition Modeling (FDM), Laminated Object manufacturing (LOM), Three Dimensional Inkjet printing (3DP), and other proprietary technologies. The global market by material comprises polymers, metals/alloys, and others (ceramics, sand, and paper). The application segment includes aerospace industry, automotive consumer products, healthcare, government and defense, industrial/business machines, education & research, and others (arts, architecture). Health care and aerospace are the two fastest growing application areas for this market. The stringent requirements such as light weight and accurate & precise design requirements for airplanes parts are the major driving factors behind the growth of 3D printing in the aerospace industry, over traditional manufacturing methods. However, the increasing medical procedures’ volumes due to the growing population, rising income levels, low labor costs, and increasing health awareness are responsible for the tremendous growth of 3D printing in healthcare sector, as well.
The market is also categorized into four major geographic regions, namely Americas, Europe, Asia-Pacific, and Rest of the World. Developing economies such as China and India provide tremendous growth opportunities for the market manufacturing technologies, majorly, due to the rise in lifestyle and general income levels. For instance, China is aggressively taking initiatives such as huge investment and government funding in R&D, to promote 3D printing technology as a manufacturing technique.
This report also presents a detailed overview of the overall market by enveloping all the major market segments with a detailed qualitative analysis at each and every aspect of the segmentation. All the numbers are forecast from 2013 till 2020, to give a glimpse of the possible revenue potential in this market within this period.
The competitive landscape segment in the report covers all the key growth strategies of several major players as well as startups in the global market; including 3D Systems (U.S.), Stratasys (U.S.), Renishaw (U.K.), EnvisionTEC (Germany), Optomec (U.S.), SLM Solutions (Germany), LayerWise (Belgium), ExOne (U.S.), EOS GmbH (Germany), Organovo Holdings (U.S.), and Arcam (Sweden), among others.
Scope of the report

This research report categorizes the market based on various applications, technology, materials, and geography; it also covers the revenue foretold from 2013 to 2020. It describes the demand for 3D printing technology in various regions. The report describes the applications mapping in the market with respect to the growth potential.

On the basis of the applications

It is used for various applications such as in the automotive, aerospace, consumer, healthcare, government & defense, industrial, and education and research sectors.

On the basis of the Technologies

In this research report, the market technology is segregated into Stereo lithography (SLA), Laser Sintering, Electron Beam Melting (EBM), Fused Disposition Modeling (FDM), Laminated Object manufacturing (LOM), Three Dimensional Inkjet printing (3DP), and the likes.
On the basis of the Materials

The materials used in 3D Printer are polymers, metals & alloys, powder, and others. The ‘metals’ based 3D printing technology holds the future prospect of the market.

On the basis of the geographical regions

Geographical analysis covers Americas, Europe, Asia-Pacific, and ROW. In accordance with this report, the Americas, currently, leads the market. European region is the fastest growing market, and it is believed that it will surpass Americas in the near future.
http://www.marketsandmarkets.com/

First 3D printed production vehicle to be built

Local Motors Inc., co-creator of vehicles and related components with a global community of designers, engineers, fabricators and enthusiasts, today announced that AMT - The Association For Manufacturing Technology, which supports and promotes the US manufacturing technology industry, will be the first customer for its previously announced 3D-printed production vehicle.

Local Motors will build and deliver the first direct digital manufactured vehicle at IMTS – The International Manufacturing Technology Show 2014 in Chicago, IL, on September 8-13, 2014. Designed by the company’s global community and built using the material science and advanced manufacturing techniques available at the Manufacturing Demonstration Facility (MDF) at Oak Ridge National Laboratory (ORNL), Local Motors will produce an electric vehicle purpose-built for the urban transportation needs of Chicago.

IMTS, a large, long-running manufacturing technology trade show, is held every two years at the McCormick Place Exhibition Center. At IMTS 2012, Local Motors built its flagship Rally Fighter from the ground up in 5 days over the course of the 6-day show. This year, AMT and Local Motors have partnered to demonstrate how sustainable green technologies, utilizing advanced manufacturing techniques that are both additive and subtractive, can deliver stronger, safer, faster, more efficient vehicles.

“IMTS is the perfect venue on which to showcase the next evolution of Local Motors’ World of Vehicle Innovations,” said Local Motors CEO Jay Rogers. “To deliver the first co-created, locally relevant, 3D-printed vehicle on an international stage dedicated to celebrating cutting-edge manufacturing technology is powerful reinforcement of our commitment to driving the Third Industrial Revolution.”

“Local Motors is undeniably the first disruptive entrant into the US automotive industry in decades,” said Bonnie Gurney, director, communications for AMT. “The innovations they are driving in the design, manufacture, and sale of vehicles has been empowering individual innovators since 2007. Partnering with them to deliver safer, more functional, lightweight, and efficient vehicles via new, innovative manufacturing technologies is core to our commitment to bring global technology advancements to the local level.”

The finished vehicle will be used as an example of how sustainable green technologies can reduce life-cycle energy and greenhouse gas emissions, lower production cost, and create new products and opportunities for high paying jobs.

Element Robot a 3-D printing company is gaining popularity in Moscow

A new start-up in Moscow is making a name for itself in the 3-D printing industry by making the futuristic technology more accessible.

Reporter Rachel Dubrovin introduces us to the University of Idaho graduate that created the company, and explains why printing in 3-D is more useful than you may think.

"I think additive manufacturing is, in a lot of ways, the future," said Element Robot Inc. CEO Chris Walker. 

Element Robot is a Moscow-based start-up that's out to prove "additive manufacturing" isn't just for engineers. 

"In other words… 3-D printing," said Walker.

"For me, I think the big reason behind why I think 3-D printing is so important is that it empowers people," said Element Robot Inc. Chief technical Officer John Feusi. "It allows anyone, anywhere to create whatever they want."

"I can make one, and it'll be just as expensive per-part as if I made a thousand, and I can give it all kinds of really complex features for free," said Walker.

So this is the 3-D printer. They call it 'Tritium,' and right now it's printing an iPhone case.

"That'll take about 45 minutes to an hour," said Element Robot Sales and Marketing Director James Prado.

"I built Element Robot to give as many people as possible access to 3-D printing because right now, only a very small portion of the population can really effectively use a 3-D printer," said Walker.

"Our main business right now is 3-D print vending machines," said Prado. 

Element Robot recently installed its first vending machine on the University of Idaho campus.

"Just go online, go to our website, upload whatever you want to print, pay for it there," said Feusi.

"Click on that machine, order your print, and the machine will tell you when it's complete, and you can go pick it up," said Prado. "So you don't have to have your computer tethered to the machine, or an SD card or anything."

"We want to give every student at the university access to a great 3-D printer," said Walker.

It’s still a small business with only three employees that rent office space from a motorcycle company, but they plan to sell more printers to universities and various companies as people learn about 3-D printing capabilities. 

"For people that, you know, they had a knob on their kitchen stove break, and they can replace it," said Feusi.

"So 3-D printing has gotten to the point where you can actually manufacture goods that are useable with a 3-D printer," said Walker. "They're accurate enough, they're strong enough, they're complex enough."

"You'll continue to see 3-D printing grow, and you'll see the materials and the styles and the uses grow as well," said Feusi.

Element Robot was created in 2012. Right now, you can find one of their 3-D printers on the U of I campus, and they hope to install one at Washington State University in the near future.

The 3D Printers Are Coming: Dig More Coal?

The 3D printers are coming.  And fast. The only debate is over how fast.
Velocity matters for stock pickers following the small world of pure-play public 3D printing companies.  It is also relevant for business analysts and, perhaps surprisingly, for energy forecasters.
3D printers will — as many have observed sometimes a tad too breathlessly — disrupt a lot of businesses.  They will enable and make more profitable many others, while also creating entirely new classes of businesses.  The 3D printing ecosystem will as well accelerate the new trend of rising foreign direct investment into the United States.  And 3D printing holds the potential to disrupt China.
Most importantly, 3D printing is yet another feature in the suite of new technologies promising rising productivity, and thus in due course both wealth and job creation.
And, contrary to the claims of Al Gore among others who believe that 3D printers will cause energy use to decline as a result of the “dematerialization” trope, energy use, electricity use in particular, will actually rise as the technology goes mainstream.
As a result coal use will increase too, perhaps by as much as one billion tons a year globally.  Print a toaster and burn ten pounds of coal.  Let me explain.
But first, we summarize the technology for those not familiar with the now maturing 25-year-old class of machines called 3D printers.  They work a lot like the 2D printers that render a PC’s words and pictures as images on paper.  A computer-generated image – in this case a detailed 3D map — of a product or object can be additively built up one thin layer at a time, right before your eyes.  Thus the original and still common alternative name of “additive manufacturing.”  The machine’s print head squirts and melts plastic or metal powders not only to specific dimensions and shapes but increasingly specific material compositions.  
Such a capability not only allows rapid prototyping from trial designs, but also extreme customization for complex components, and enables clever designs that are hard or impossible to produce with conventional machining, molding or casting.   And, just like the computers that they are symbiotically married to, all these machines get plugged into an electrical outlet. But more about energy in a moment.
We can parse the state of 3D printing today into three domains; niches, toys, and the promise of wildcards.  All applications emerge from the fact that 3D printing is a remarkably flexible and dynamic technology amenable to use on desktops and factory floors.
The first commercial applications are in niche markets using expensive machines.  Some applications are rapidly expanding, such as medical devices and implants from hip joints to entire titanium jaws.  A patient-specific scan allows the manufacture of a hyper-customized device. This is true as well for many niche industrial devices where small volumes can tolerate today’s machines very slow print speeds, such as rocket nozzles and some jet engine components.
You need to work in metal for nearly any serious mainstream application.  But today’s metal-capable 3D machines run $200 thousand to $1 million.  These are not the tools we see commonly touted in the press as the low-cost desktop manufacturing revolution.  World-disrupting potential comes when you can precisely print metal things at low-cost and high-speed.  That will happen, in due course, but the physics of metals and energy are stubborn.  Meanwhile, on average, 3D printing is still much slower, in some cases untenably slower, than conventional volume manufacturing (so far).
Most of the action today is around 3D plastic printers where we find what amounts to toys, mainly including hobbyists, experiments, designers, educators and artists.  This is the market that is currently driving the forecastthat 100,000 machines will ship in 2014.  Some of these plastic-printing machines sell for as little as $500, cheaper by far than first generation 2D paper printers.
Not to denigrate the utility of printing in plastic. In many cases fascinating and even life-saving uses are springing up everywhere from doctors printing a replica of a patients’ heart to better study a surgical procedure, to on-line computer gamers making physical models of their virtual ‘people’, to pregnant Japanese women offered life-size replicas of their unborn child from a high-res ultrasound scan.
The third domain is the promise for everything, from the untapped potential of high-speed low-cost metal printers, to using the technology to print organic things from food to human tissue, to complete printed products from guns (widely discussed) to bicycles and beyond.  (Though the latter really requires a hybrid of a 3D printer and 3D assembler.)
The business model for 3D printers will be as diverse as their applications.  From home printers to high-end machines that are already starting to show up in the equivalent of a FedEx-Kinkos service model – and why wouldn’t FedEx do it?  — where you can take your design to be fabricated, or your scan, say of your daughter’s face to be printed, eerily, as an American Girl doll.  Expect 3D machines in automotive dealers or pretty much any repair shop where printing a part from a computer file will be cheaper than buying inventory.
Some claim 3D printers will soon be as common in homes as computers.  A better analogy would be the dishwasher or clothes washer since you only need one per house.   One analyst calculated a homeowner could save $300 to $2,000 a year, all costs considered, printing rather than buying stuff.  They calculated this for a basket of products that included an iPhone case, garlic press, razor, spoon holder and, strangely, a perogi mold.   You just have to buy cartridges of plastics and metals for your 3D printer, and download (one assumes, pay for) the digital code for a specific product.
Which business model wins?  Odds are all of them will thrive.  Eventually 3D printers will be found in every factory, classroom, hospital, restaurant, nearly every business, and maybe even most homes.  Will the number of 3D printers shipped ever match the 120 million 2D printers now sold each year globally?  Perhaps.  There was a time not so long ago that no one had a printer. But even if 3D printers only hit a fraction of that scale, it will change a lot of things. But it won’t change the laws of physics.
3D printers still use materials and energy.   In fact, they will use roughly the same amount of material, and likely more energy than the process they replace.  How so?
It would be wildly unrealistic to think that 3D printers will only replace one-for-one things that are currently manufactured the old way, from bicycle pedals, buckles, fuel nozzles and jewelry to iPhone cases and perogi molds.  Even the few examples noted earlier make it clear that printers will be used increasingly to fabricate things that one just never bothered to manufacture or build before – and thus a lot of material and energy will end up being consumed to make things that are completely new.  But such a constellation of future demand is impossible to guess.  Who thought smartphones would end up replacing cameras and generate an astronomically higher volume of photography – which in turns consumes vast amounts of hardware and energy?
So for now we can only reasonably explore the energy implications of producing with 3D printers what is already fabricated.  Let’s look at the $2 trillion manufacturing sector in the United States.
Electricity and natural gas supply nearly 90% of the primary energy used for U.S. manufacturing; 37% from gas and 51% from kilowatt-hours.  Switching to 3D printers means replacing gas with electricity.  3D printers no more burn gas than does your PC.  You plug them in to map out and then heat, melt, fuse, bond and build raw materials into a finished product using electric heaters, or lasers and even electron beams.
Consider, for the sake of a ranging estimate, what happens if everything made in America were fabricated instead using 3D printers.  Exclude the production of stuff you can’t 3D print like raw chemicals, refined fuels and paper, and you find manufacturers burn about 2 trillion cubic feet of natural gas.  You need at least the same amount of overall heat energy delivered into the raw materials inside the 3D printers (more on this in a minute) – but now it comes from electricity, about 600 billion kWh worth of it.  That amount would nearly double the quantity of electricity used for manufacturing today.  It would also, given the grid we have, lead to over 150 million tons more coal burned annually.
Extrapolate this result globally where total manufacturing output is 5-fold that of the U.S., and where coal’s share of the global grid is the same 40% as here (and will be in two decades still, according to the Energy Information Administration).  So if you were to 3D print everything that is today made conventionally, you increase the global coal burn by something approaching one billion tons a year.
Of course this is an overestimate since it is based on the zero chance we’ll see a 100% flip from conventional to 3D manufacturing.  But at the same time we are egregiously underestimating the actual electricity that will be needed when printing replaces burning, or incredibly efficient injection molding by assuming a one-for-one substation of heat energy.    3D printing a plasticobject uses 5 to 10 times more energy per pound compared to conventional industrial injection molding.  You have to make elliptical arguments about optimizing the utilization of 3D printers to offset that energy deficit.  Then there are the metals.
The energy needed to make a pound of metal into a product using a 3D printer can be as much as 100-fold greater than using conventional casting or machining. On average, printing metals requires 10 to 100 kWh per pound.  The world uses metals by the gigaton.  Do the math.
Nonetheless, 3D printing, when it is faster and cheaper, will be wildly embraced because it will be so productive for so many applications.  The extra electric cost for printing the perfect titanium hip joint is worth every dollar and kilowatt-hour.  So a lot more kilowatt-hours will get used when the technology spreads widely.
There are those, as earlier noted Mr. Gore amongst them, who claim 3D printing will offer energy savings because of their precise use of materials, eliminating waste; hence the “dematerialization” legend.   There is a two-fold problem with this argument. It ignores the remarkable and improving material efficiency of existing manufacturing.  And it ignores the unavoidable waste in 3D printers too, given practicalities of machines.  In fact, one detailedstudy of inkjet type 3D printing found some 40% of the non-recyclable ‘ink’ is wasted.  No conventional manufacturer would tolerate that.
But we should make the reasonable assumption that the efficiency of raw material use by 3D printers will, in due course, be no worse than today’s methods.  This is not to say there are no material savings: some will arise from eliminating production of spare parts.  Again this will be a bigger deal in economic terms and in convenience for repairs and spare-parts-on-demand.  It will be a de minimis energy benefit because, for example, there’s a lot more material in your car than in the pro rata amount of spare parts kept in inventory.
Anyway, in accounting for energy in the total fuel cycle we find most is used in the production of the raw plastic or metals in the first place, not in their fabrication into a final product.  And that remains the case no matter whether you choose to fabricate a part or product with 3D or old tech machines.  For plastic products, about 80% of total energy costs are tied up in producing the raw plastic itself.  It is thus relevant to note that one reason you can expect the 3D printing ecosystem to blossom in America is that $100 billion of new chemical production facilities are planned here now, because of the huge cost savings from the hydrocarbon shale boom.  But that’s another subject.
We should also dispose of the third in the triad of tropes about 3D printing and energy: savings in transportation.  You may have heard the claim that energy is ostensibly saved in printing the part on-site instead of shipping it to you.  Well, until physicists figure out how to convert energy into matter (we can do the opposite in nuclear reactors) the weight of the raw feedstock transported to your 3D printer is the same as the weight of a finished product carried by UPS or air lifted by an Amazon drone.
Productivity, precision, speed, convenience, and stunning flexibility… these are the metrics that matter and why 3D printing is taking off.  These are metrics that, in the underlying physics, extract an energy cost.  Always and everywhere.  None of this is news to serious students of energetics.
The environmental implications of 3D printing, because of its explosive growth, is becoming a subject of some academic interest.  See for example Robert Olson’s fine summary in the Policy Journal of the Environmental Law Institute3-D Printing: A Boon or a Bane? and Kath Kovac’s article in Australia’s national science agency magazine ECOSHow Green Is 3D Printing.
The how-green debate will doubtless continue.  The more interesting debate is found on the investment pages of Seeking Alpha where analysts argue over which, if any, company will emerge as the HP of 3D printing.  HP [NYSE:HPQ] has a 30% market share of the 120 million printers shipped globally that print 2D words and pictures on paper. So, portentously, HP has promised to soon announce a 3D printer of their own, bringing a giant player into the game dominated now by a phalanx of small companies.  Will HP also pursue an acquisition of one of the comparatively tiny but hyper-valued 3D companies? It should get interesting.
And for the energy analysts, consider that a home 3D printer uses 3 to 10 times more energy than does a paper 2D printer.
The fact that 3D printers will continue the global electrification macro should be unsurprising.  These machines are built from a combination of electric motors, electric heaters and lasers, and electric-powered computers, connected to an electric-fueled Internet.
If you listen to the enthusiasts, we are mere years away from the 3D printer becoming a standard appliance in every home.   Some claim the adoption curve could look the same as it did for PCs.  But the bigger economic story will come from the transformation of the manufacturing ecosystem.   It is not hyperbolic to consider that the 3D revolution of mass customization will be ultimately as impactful as the century-old revolution from mass production.
Investor note
According to industry analysts at Wohlers Associates, 3D printing is a $2 billion industry today and will grow to over $10 billion by 2021.  For those interested in investing in 3D printer stocks I commend the commentators, on both sides of the enthusiasm chasm, at Seeking Alpha.  Companies that are publically traded in this space include: 3D Systems (NYSE:DDD),ExOne (NASDAQ:XONE), Stratasys (NASDAQ:SSYS),Voxeljet (NYSE:VJET), Organovo Holdings (NYSEMKT:ONVO), andArcam  (NASDAQOTH:AMAVF).
Some 3D stocks are starting to exhibit Tesla-class [NASDAQ:TSLA] valuations and expectations.  But there’s a difference.  Tesla is competing in a field where extraordinarily talented and successful companies with deep engineering skills have played for a century.  There is no comparable competition in the 3D printing space.  The 3D printing industry is at the same stage of development as the auto industry was in 1914.

Concise Analysis of the International 3D Printing Market

3D printing is a form of additive manufacturing, where a 3D object is created by layer-by-layer deposition of a printing material. The basic principles in 3D printing include flexibility of output, material cartridges and translation of code into a visible pattern. Various industries such as footwear, architecture and automotive among others use 3D printing. This technology is used for rapid prototyping, speedy manufacturing, mass customization and mass production. Manufacturers are increasing the use of this technology due to the ease of using this technology compared to the traditional methods. Thus, the demand for 3D printing is expected to experience robust growth in both commercial and personal printing applications in the coming years.
The global 3D printing market was worth USD 2,200 million in 2012 and is expected to grow at a CAGR of 16.8% from 2013 to 2019. The growth of this technology is driven by expanding application of 3D printing across various application sectors such as consumer products and electronics, automotive and medical. Additionally, consumers' access to 3D printing has increased due to rise in the number of 3D printing service centers. Furthermore, the availability of low-cost printers has increased the demand for 3D printing in personal use.
A major factor restraining the growth of this market is the inability of a 3D printer to produce in quick time. The production of large objects consumes more time with 3D printing as compared to traditional manufacturing methods. Moreover, infringement of intellectual property rights has increased the number of laws and regulations adding another restraint to the market.




Read more here: http://www.sacbee.com/2014/02/28/6197511/concise-analysis-of-the-international.html#storylink=cpy

Remote-Controlled 3-D Printed Aircrafts, Vehicles

Virginia Tech’s Design, Research, and Education for Additive Manufacturing Systems Lab Students, no matter their course of study, will have the opportunity to test their skills at building an operational, remotely piloted ground or air vehicle created via 3-D printing.
According to the university, hopes are that these students' work "will allow future deployed military or civilian engineers to fabricate remotely-piloted vehicles while in battlefield or austere environmental conditions, such as the site of a natural disaster to search for survivors or carry out reconnaissance missions."
Participants will be tasked with paving the way for a strong future partnership between additive manufacturing and robotic systems. Reason being that civilian and military organizations plan to design shipping containers that have several 3-D printers. The printers could be used by engineers to easily download and print replacement parts or to create mission-specific parts on-demand. This way military personnel will not need to wait for relief by rescue workers, they'll be able to make what they require in the field via 3-D printing.

Students will be judged on their vehicle's ability to navigate the course – time to finish the mission and number of obstacles cleared – their effective use of additive manufacturing, the amount of time it took to print and assemble, as well as the number of 3-D printed parts that make up the structure of their product.

Additive manufacturing is a potential game-changing manufacturing technology for military platforms.

The nature of services RPM Centers provide

3D Printing - 
  • Stereolithography
  • Full-Color 3D Printing
  • Selective Laser Sintering
  • Direct Metal Laser Sintering
  • MultiJet Plastic & Wax
Rapid Prototyping, Tooling & Manufacturing -
  • Reverse Engineering - Multiple 3D Scanning Capabilities
  • Casting Patterns & Tools
  • Trade Show Models
  • Mold Making – Wax/Plastic
  • Engineering Services
  • RTV Molding - Low Volume
  • Injection Molding
  • Rapid Tooling


    Samples -