Showing posts with label CO2 terahertz laser system. Show all posts
Showing posts with label CO2 terahertz laser system. Show all posts

Monday, December 27, 2010

Terahertz Tools Advance Imaging for Security, Industry

A close-up camera view shows Space Shuttle Col...Image via Wikipedia
MY NOTE: Thanks to bucktailjig on the IV board for sharing this story.

On January 16, 2003, the Space Shuttle Columbia launched on mission STS-107. At T plus 82 seconds, with the orbiter rocketing upwards at 1,870 miles per hour, a briefcase-sized chunk of insulating foam broke off from the external fuel tank and struck Columbia’s left wing. During reentry on February 1, hot gasses entered the wing through the damaged area of the orbiter’s thermal protection system, causing devastating structural failure that led to the destruction of Columbia and the deaths of the seven crew members onboard.
After the Columbia disaster, NASA grounded the space shuttles for more than a year as it worked on new safety protocols to ensure that such a tragedy would not happen again. As part of the preparations for the Return to Flight mission, the Agency required a method for detecting potentially hazardous defects in the external tank’s sprayed-on insulating foam prior to launch.
Partnership
NASA Langley Research Center scientists suspected that a new imaging technology called terahertz imaging had the potential to accurately find flaws in the foam on the external tank. Terahertz radiation—lying between microwaves and far infrared on the electromagnetic spectrum—offers imaging capabilities similar to X-rays, but unlike X-rays, terahertz radiation is non-ionizing and thus safe for frequent human use. Terahertz wavelengths can be used to see through many materials and reveal defects like cracks, voids, and density variations. They can be used to image or as an anomaly detector, or both at the same time.
Terahertz can
be employed
as a safer, more
precise security measure than
X-rays.
Picometrix, of Ann Arbor, Michigan, was at the forefront of the emerging field of terahertz imaging. In 2000, Picometrix introduced the world’s first commercial terahertz system, the T-Ray 2000. The T-Ray 2000 was based upon the company’s patented fiber coupling system, but was a non-integrated, workbench-mounted system, which rendered it fine for the research market but impractical for NASA’s manufacturing quality control needs. Langley researchers asked the company via Small Business Innovation Research (SBIR) agreements to quickly redesign the terahertz systems to be more integrated and deployable into a manufacturing environment.
Based on the success of that new prototype system, the company was next asked to deliver a more compact, self-contained terahertz system, the T-Ray QA-1000, and NASA purchased five of the systems for inspecting the external fuel tanks as they were being manufactured by Lockheed Martin. The QA-1000’s long, optical fiber umbilicals enabled the system’s terahertz sensors to scan the tank from top to bottom. The systems were deployed at NASA’s Michoud Assembly Facility and at Marshall Space Flight Center. Langley’s original unit was later retrofitted with a similar higher speed delay stage that was also capable of imaging thicker foam.
“This was significant. In addition to the company’s patented fiber coupling system that makes Picometrix systems unique, they can also inspect thicker material at substantially higher speed with our T-Ray systems versus others terahertz systems,” says Irl Duling III, company director of terahertz business development.
Picometrix became a wholly owned subsidiary of Advanced Photonix Inc. (API), also of Ann Arbor, Michigan, in 2005. The company’s terahertz systems—including its latest, highly compact and rugged T-Ray 4000 systems—were later adopted by Kennedy Space Center as a diagnostic tool for scanning the orbiter’s thermal tiles for the remaining shuttle flights. The systems offered an effective way of not only inspecting the tiles for hidden damage, but also of precisely locating components underneath the tiles that were in need of attention—without the costly removal and replacement of extra tiles which often happened before the use of the T-Ray 4000.
“With this technology, NASA could scan and see the precise location of wires and antennas and remove only the necessary tiles,” says Picometrix engineer Greg Stuk. “In one example, it saved the Agency hundreds of thousands of dollars.”
Product Outcome
Terahertz System
The T-Ray 4000 Time-Domain Terahertz System, capable of generating high-speed terahertz pulses and equipped with fiber-coupled sensor heads, is a versatile and user-friendly instrument for use in the laboratory and in real-world applications.
The imaging capabilities of terahertz make it useful for a wide range of applications. It can be employed as a safer, more precise security measure than X-rays in airports and other buildings, revealing concealed weapons and the contents of packages. Since numerous materials have specific spectral signatures revealed by terahertz radiation, it provides spectroscopic and other unique identification information useful for chemical analysis, pharmaceuticals, and explosives detection. Not only can terahertz see through an opaque pill bottle, for example, it can also reveal the chemical makeup of the pills inside. It can also provide high-resolution imaging down to 200 microns. The industrial possibilities of terahertz range from determining the uniformity of coating thickness to detecting hidden defects to ensure product quality.
The company now offers the T-Ray 4000 Time-Domain Terahertz System commercially. Featuring its patented fiber-pigtailed transmitter and receiver modules, the T-Ray 4000 is designed for both the research laboratory and the industrial setting. The T-Ray 4000 takes the next step beyond the NASA-inspired T-Ray QA-1000 system. While the QA-1000 is about the size of a small refrigerator, the T-Ray 4000 is an easily portable, rugged, briefcase-size system weighing only about 50 pounds. As a time-domain terahertz system, the T-Ray 4000 generates high-speed picosecond (one-trillionth of a second) duration terahertz pulses for scanned spectroscopy or imaging. These qualities, along with the patented fiber-coupled sensor heads that can scan objects of almost any size, make the T-Ray 4000 an easy-to-use tool for terahertz applications beyond the laboratory—though it is useful there as well.
“As far as having a product that you can deploy onto a manufacturing floor, this is the first of its kind,” says Duling. He credits the company’s NASA work with helping drive this industry-leading advancement.
“The rest of the industry is trying to figure out how to generate terahertz, how to detect it, how to build a complete system that can be fielded,” he says. “In part through NASA’s motivation, we’ve been able to complete that full-system integration and turn it into something we can take out into the field and use as a tool.”
“Our systems’ features now allow terahertz to access the most obscure places,” says Steve Williamson, the company’s chief technology officer. “It’s a powerful benefit to our customers.”
API’s terahertz systems can be used for thickness measurements of roofing material, paper and paper coatings, and coatings on films. They also can be employed for pharmaceutical applications like aseptic packaging and tablet production. Art conservationists from prestigious institutions like the Uffizi Gallery and the Louvre have used API systems to date paintings, look for pigment concentrations, and reveal frescos on walls that have been painted over. The technology has been even applied to examine the structure of pagodas in Japan, providing guidance for renovations. These are only a few examples of the benefits of this still developing field, says API CEO Richard Kurtz.
“Terahertz has huge market potential. We estimate there are over $200 million in opportunities for our terahertz systems over the next 7 years,” he says. To help API stay at the forefront of the terahertz industry, the company is continuing work with NASA through SBIR contracts with Glenn Research Center. The goal of this partnership is a computed axial tomography time-domain terahertz system capable of creating three-dimensional images.
“There has been great collaboration between API and NASA,” says Williamson. “NASA has helped us push the envelope.”
T-Ray®, T-Ray 2000®, and T-Ray 4000® are registered trademarks of Advanced Photonix Inc.


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Wednesday, December 8, 2010

Using terahertz imaging to seek quirks in corks at NJIT

New Jersey Institute of TechnologyImage via Wikipedia

As the holidays approach and you're buying wine, ever wonder what's really in a cork? Ask NJIT's John Federici, who has a new use for Terahertz imaging: searching for divots and cracks in wine corks to insure quality.
Using Federici's laboratory, which is devoted to sub-millimeter or Terahertz waves, the project, in collaboration with Amorim & Irmãos S.A. Portugal, the world's largest natural cork producer, and sponsored by QREN, a Portuguese national program for development and innovation, is focused on detecting defects such as cracks and voids in the cork.
THz-imaging is fast proving itself easier and better to use in non-destructive evaluation of objects because it can easily penetrate through most non-metallic materials and it can achieve better resolution than millimeter wave imaging.
"Terahertz imaging is an up-and-coming technology for quality control inspection of materials and components," Federici said. "THz imaging of corks can be simply viewed as analogous to imaging cavities in a tooth. In the case of cork, variations in the structure of the cork – a cavity – lead to contrast in the THz image."
For example, rather than classifying corks based on how they look on the outside, THz imaging will enable classification of corks based on their internal structure. Another advantage is that Terahertz imaging is safer to use on people and products.
The research interests of Federici, a distinguished professor of physics at NJIT, span Terahertz or sub-millimeter wave imaging, spectroscopy, and sub-millimeter wireless communication to ink-jet printed sensors and devices.
Federici has been the lead writer on upwards of 70 publications in scholarly journals and holds 7 patents. His most recent patents emphasize Terahertz synthetic aperture imaging. Federici and his research team have received a U.S. Patent for a Terahertz imaging system and method. Since 1995, Terahertz imaging has grown in importance as new and sophisticated devices and equipment have empowered scientists to understand its potential.
###
NJIT, New Jersey's science and technology university, enrolls more than 8,900 students pursuing bachelor's, master's and doctoral degrees in 120 programs. The university consists of six colleges: Newark College of Engineering, College of Architecture and Design, College of Science and Liberal Arts, School of Management, College of Computing Sciences and Albert Dorman Honors College. U.S. News & World Report's 2009 Annual Guide to America's Best Colleges ranked NJIT in the top tier of national research universities. NJIT is internationally recognized for being at the edge in knowledge in architecture, applied mathematics, wireless communications and networking, solar physics, advanced engineered particulate materials, nanotechnology, neural engineering and e-learning. Many courses and certificate programs, as well as graduate degrees, are available online through the Office of Continuing Professional Education.
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POSTSCRIPT- Abe on the IV board has reminded me, of the longstanding connection between NJIT and API, as reflected in this news release from 2005.

Advanced Photonix, Inc.(R) Receives Orders for Terahertz Systems from Major Development Labs


CAMARILLO, Calif., Nov 15, 2005 (BUSINESS WIRE) -- Advanced Photonix, Inc.(R) (AMEX: API) ("API") announced today that Picometrix LLC ("Picometrix"), a wholly-owned subsidiary of API, has received orders for its T-Ray(TM) 2000 terahertz (THz) system from four major defense and leading university application development labs around the world. The New Jersey Institute of Technology ("NJIT"), the University of Adelaide, a major U.S. defense contractor, and a major foreign national lab have each placed orders for the T-Ray(TM) 2000 terahertz systems, with the combined orders totaling slightly over $1,000,000 to be fulfilled over the next two quarters. The T-Ray(TM) 2000 is capable of both THz spectroscopy and imaging and is used for application development. It was introduced in 2001 as the world's first commercially available THz instrument. Picometrix also offers the QA1000 THz system for on-line process control applications.
NJIT is a major public university with a worldwide reputation in THz development applications, headed by Dr. John Federici. Picometrix has had an on-going technical partnership with the Physics Department at NJIT for the development of THz applications for defense and homeland security markets.
The University of Adelaide located in Adelaide, Australia is a leader in many research and development fields. The THz Group at the University has received a major grant to develop Australia's first THz user facility, and Picometrix is proud to be a strategic supplier of the equipment enabling them to conduct THz development for a variety of applications.
The foreign national lab focuses on applied R&D, ranging from equipment for medical and pharmaceutical diagnostics to non-destructive testing for detecting contraband and security-threats.
Richard (Rick) Kurtz, Chairman of the Board and CEO, said, "These orders build on our existing relationships with various application development laboratories around the world in investigating the possible applications of THz technology. By creating and leveraging these relationships we will help drive the transition of THz application development from the research lab using the T-Ray(TM) 2000 to on-line process control solutions using our QA1000 THz system."
The information contained herein includes forward looking statements that are based on assumptions that management believes to be reasonable but are subject to inherent uncertainties and risks including, but not limited to, unforeseen technological obstacles which may prevent or slow the development and/or manufacture of new products; potential problems with the integration of the acquired company and its technology and possible inability to achieve expected synergies; obstacles to successfully combining product offerings and lack of customer acceptance of such offerings; limited (or slower than anticipated) customer acceptance of new products which have been and are being developed by the Company; and a decline in the general demand for optoelectronic products.
Advanced Photonix, Inc.(R) (AMEX: API) is a leading supplier of opto-electronic solutions and THz instrumentation to a global OEM customer base. Products include the patented high-speed optical receivers in APD and PIN configurations and silicon Large Area Avalanche Photodiode (LAAPD), PIN photodiode and FILTRODE(R) detectors. Picometrix is a world-leading supplier of high-speed optical receivers and THz equipment for the scientific, industrial, medical, military, and homeland security markets. More information on Advanced Photonix can be found at http://www.advancedphotonix.com.
SOURCE: Advanced Photonix, Inc.
Advanced Photonix, Inc.
Richard Kurtz, 805/987-0146
 or
Cameron Associates
Richard Moyer, 212/554-5466
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Tuesday, October 12, 2010

ConverTec Corp. releases TeraLaz CO2 terahertz laser system

Laser beamsImage by Kevin Grocki via Flickr



Oct 11, 2010
ConverTec Corp., Newtown, Penn., has released its TeraLaz CO2 terahertz laser system that is designed to provide economic solutions in certain laser beam applications. The system has the capability to cut, drill, score, stitch, and weld thin film materials for packaging and converting applications. The company claims perfect material edge quality at in-line processing speeds and that the system will eliminate costly knives and dies.

Terahertz radiation is non-ionizing sub-millimeter microwave radiation and shares with microwaves the capability to penetrate a wide variety of non-conductive materials. Terahertz radiation can pass through clothing, paper, cardboard, wood, masonry, plastic and ceramics. It can also penetrate fog and clouds, but cannot penetrate metal or water. Much of the recent interest in terahertz radiation stems from its ability to penetrate deep into many organic materials without the damage associated with ionizing radiation such as X-rays.

There are many theoretical and technological uses under development in the fields of medical imaging, security, scientific imaging, communications, and manufacturing. Manufacturing also has many possible uses for terahertz laser sensing and imaging. The developer states that these applications are in direct manufacturing, such as quality control, characterization, verification, validation, and process monitoring. These generally exploit the trait of plastics and cardboard being transparent to terrahertz radiation, making it possible to inspect packaged goods.

The small compact system can be adapted to most installed manufacturing, converting, packaging, and processing lines. The company provides design engineering and manufacturing services for upgrades, modification, automation, and material handling requirements.
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