Ford Develops Advanced Technology to Revolutionize Prototyping, Personalization, Low-Volume Production

DEARBORN, Mich., July 3, 2013 — (PRNewswire) —
  • Ford engineers are developing a highly flexible, first-of-its-kind, patented technology to rapidly form sheet metal parts for low-volume production applications
  • Once fully developed, the technology will allow for lower costs and ultrafast delivery times for prototypes – within three business days versus conventional methods that take anywhere from two to six months
  • Automotive applications include prototyping, concept vehicles and vehicle personalization; other applications include aerospace, defense, transportation and appliance industries

Continuing to lead the way in technology and advanced manufacturing, Ford Motor Company is developing a new form of manufacturing technology that has the potential to reduce costs and delivery time for sheet metal parts needed in smaller quantities.

The development is based on Ford Freeform Fabrication Technology (F3T), a unique, patented manufacturing process developed at the Ford Research and Innovation Center. Through this process, a piece of sheet metal is clamped around its edges and formed into a 3D shape by two stylus-type tools working in unison on opposite sides of the sheet metal blank. Similar to a digital printer, after the CAD data of a part are received, computer-generated tool paths control the F3T machine to form the sheet metal part into its final shape to the required dimensional tolerances and surface finish.

"The technology behind F3T is yet another example of Ford leading in the advanced manufacturing space," said John Fleming, executive vice president, global manufacturing and labor affairs. "As we forge ahead with cutting-edge technologies in manufacturing like flexible body shops, robotics, 3D printing, virtual reality and others, we want to push the envelope with new innovations like F3T to make ourselves more efficient and build even better products."

Currently, traditional stamping processes are energy-intensive, and it often takes several months for the first part to move from concept to production. While traditional processes remain the most efficient method for high-volume stamping, efficiencies for low-volume production can be achieved with the flexibility F3T provides. Benefits of F3T include:

  • Low cost: Geometric-specific forming dies are completely eliminated, along with the high cost and long lead time associated with die engineering, construction and machining
  • Fast delivery time: The technology aims to enable the delivery of a sheet metal part within three business days from the time the CAD model of the part is received. With the current technology, parts are delivered anywhere from two to six months using conventional methods – up to approximately 60 times longer than the potential turnaround time for F3T
  • More flexibility: Once fully developed, F3T will help to improve the vehicle research and development process, allowing for more flexibility in quickly creating parts for prototypes and concept cars. Currently, creating a prototype die can take six to eight weeks, and developing a full prototype vehicle usually takes several months and up to hundreds of thousands of dollars. F3T could produce sheet metal parts for prototypes in just days for essentially no cost

F3T has the potential to allow for greater personalization options, adding the ability for buyers to customize vehicle bodywork. F3T is also expected to have broad applications outside of the automotive industry, including use in the aerospace, defense, transportation and appliance industries.

The project is part of a three-year, $7.04 million U.S. Department of Energy grant to advance next-generation, energy-efficient manufacturing processes. Led by Ford, other collaborators include Northwestern University, The Boeing Company, Massachusetts Institute of Technology and Penn State Erie. Five innovative manufacturing projects were awarded a total of $23.5 million by the Department of Energy in March to advance clean manufacturing and help U.S. companies increase their competitiveness.

"The F3T sheet metal forming process is one of many advanced manufacturing technologies under development at Ford," said Randy Visintainer, director of Ford Research and Innovation. "We developed this process during the past four years for small-scale applications in a laboratory setting, and the DOE award enables us to scale the process for larger applications and a full prove-out for manufacturing feasibility."

About Ford Motor Company
Ford Motor Company (NYSE: F), a global automotive industry leader based in Dearborn, Mich., manufactures or distributes automobiles across six continents. With about 175,000 employees and 65 plants worldwide, the company's automotive brands include Ford and Lincoln. The company provides financial services through Ford Motor Credit Company. For more information regarding Ford and its products worldwide, please visit http://corporate.ford.com.

SOURCE Ford Motor Company

Contact:
Ford Motor Company
Kristina Adamski, 313.588.0849
Email Contact Craig Daitch, 313.594.7903
Email Contact
Web: http://www.ford.com

Featured Video
Jobs
Senior Firmware Architect - Server Manageability for Nvidia at Santa Clara, California
GPU Design Verification Engineer for AMD at Santa Clara, California
CAD Engineer for Nvidia at Santa Clara, California
Sr. Silicon Design Engineer for AMD at Santa Clara, California
Design Verification Engineer for Blockwork IT at Milpitas, California
Senior Platform Software Engineer, AI Server - GPU for Nvidia at Santa Clara, California
Upcoming Events
Phil Kaufman Award Ceremony and Banquet to be held November 6 at Hayes Mansion at Hayes Mansion 200 Edenvale Ave San Jose CA - Nov 6, 2024
SEMICON Europa 2024 at Messe München München Germany - Nov 12 - 15, 2024
DVCon Europe 2023 at Holiday Inn Munich – City Centre Munich Germany - Nov 14 - 15, 2024
SEMI MEMS & Imaging Sensors Summit, at International Conference Center Munich Germany - Nov 14, 2024



© 2024 Internet Business Systems, Inc.
670 Aberdeen Way, Milpitas, CA 95035
+1 (408) 882-6554 — Contact Us, or visit our other sites:
AECCafe - Architectural Design and Engineering TechJobsCafe - Technical Jobs and Resumes GISCafe - Geographical Information Services  MCADCafe - Mechanical Design and Engineering ShareCG - Share Computer Graphic (CG) Animation, 3D Art and 3D Models
  Privacy PolicyAdvertise