Showing posts with label timber inspection wood inspection. Show all posts
Showing posts with label timber inspection wood inspection. Show all posts

Saturday, July 27, 2019

Terahertz Imaging Technique Reveals Subsurface Insect Damage in Wood


Caption: Researchers detected insect damage in wood samples using time-domain terahertz tomography performed with a robotic arm. Here, Kirsti Krügener is acquiring a reflection terahertz tomographic image measurement.Credit: HAWK University of Applied Science and Arts
New technique could catch insect infestation in individual trees at early stages

https://www.osa.org/en-us/about_osa/newsroom/news_releases/2019/terahertz_imaging_technique_reveals_subsurface_ins/

WASHINGTON — Insect infestation is becoming an increasingly costly problem to the forestry industry, especially in areas experiencing increased droughts and hot spells related to climate change. A new terahertz imaging technique could help slow the spread of these infestations by detecting insect damage inside wood before it becomes visible on the outside.

“Our approach could be used to detect early-stage insect infestation on the trunks of trees, in imported wood or on wood products in an early infestation stage,” said research team member Kirsti Krügener, from HAWK University of Applied Science and Arts in Germany. “This could help keep out damaging insects from other countries and stop infestation before it spreads throughout a forest.”
Caption: Using their terahertz tomography approach, the researchers produced surface models of wood samples that were insect infested (a) and not infested (b). The cross sections on the bottom were reconstructed from the areas marked with a white dashed line in (a) and (b). Credit:  HAWK University of Applied Science and Arts

In the Optical Society journal Applied Optics, the researchers report how they used terahertz time-of-flight tomography to noninvasively identify wood samples with otherwise invisible damage from the typographer beetle, which infects spruce and other coniferous trees in Europe. They were also able to reconstruct the internal structure of wood samples.
“Detecting the boreholes of wood-destroying insects is typically done by manually inspecting the wood, and the infected area of the forest to be removed is then estimated,” said Krügener. “To our knowledge, this is the first time a technical method has been used to detect insect boreholes.”
Incorporating the new approach into a portable instrument could allow assessment of individual trees in a forest so that only infested trees would need to be removed. Because it does not damage the sample being imaged, the technique might also be useful for investigating mummies, studying and restoring art or for quality control in industry

Seeing beneath the surface
The terahertz region of the electromagnetic spectrum lies between microwave and infrared regions. It is used for applications such as the full-body scanners found in many airports because it doesn’t harm people or materials being examined and can see through materials such as clothing, plastics and plant material.
 Terahertz time-of-flight tomography  works much like ultrasonic measurement in that each interface within the wood sample reflects a certain amount of the terahertz radiation that is detected and analyzed in respect to its time-dependent order. Each subsurface tunnel made by the insects leads to a new interface on which the radiation is reflected.“An infested sample will reflect more terahertz radiation than one that is not infected because there will be fewer interfaces,” said Krügener. “In addition, the individual reflected terahertz signals can be used to form a picture of an entire area so that the inner structure of infested wood can be visualized.”

Beyond flat surfaces
Although terahertz time-of-flight tomography has been used for almost 20 years, until recently it could only be applied to flat samples. Two years ago, the researchers developed new procedures to use a robotic arm to scan an arbitrarily shaped sample point by point while keeping the emitter-receiver-head perpendicular to, and at defined distance from, the sample surface.
 The researchers applied those methods to image wood samples with both known and unknown inner structures. They compared the results to conventional tomographic techniques and found that the inner structure reconstructed from terahertz signals matched well with what can be achieved with X-ray or computed tomography. They were able to distinguish between infested and non-infested samples by detecting typographer beetle burrows that were up to 1 centimeter beneath the wood’s surface.
“The depth resolution of the terahertz measurements is higher than that of conventional x-ray techniques and comparable to micro-CT,” said Krügener. “However, unlike micro-CT, the terahertz system can be used with any size sample.”
The researchers are now working to improve the speed of the measurement and data analysis and also develop more complex data analysis to make the method more practical for detecting infested wood. They also want to develop a portable instrument that could be used in the field.
Paper: K. Krügener, E.-M. Stübling, R. Jachim, B. Kietz, M. Koch, W. Viöl, “THz tomography for detecting damages on wood caused by insects,” Applied Optics, 58, 22, 6063-6066 (2019).
DOI: https://doi.org/10.1364/AO.58.006063

Wednesday, February 26, 2014

Abstract & Presentation-From NMR to Terahertz Probing Wood-Water Interactions

http://www.unbc.ca/events/11492/nmr-terahertz-probing-wood-water-interactions

Date:
28 Feb 2014 - 2:30pm to 3:30pm
Location:
5-174 (UNBC Library Building)
Campus:
Prince George
Presented by:
Dr. Ian Hartley, Professor ESM/Physics (UNBC)
Sponsored by:
UNBC Department of Physics and IEEE Northern BC subsection
Abstract
The structure of wood is one of the most complex natural biomaterials to study. Many physical properties are modified with the presence of water at the anatomical level that influences its behavior as a building material or as a musical instrument component. Most wood products are in environments of low and/or high humidities, and, therefore,  to completely understand the role water plays, it is important to investigate the interaction of water with the wood material at the molecular level. This can be accomplished with several experimental techniques, including proton nuclear magnetic resonance (NMR) and terahertz (THz)spectroscopy among others. In this talk, results will be presented of experiments that use those techniques that help to tell the story of the mechanisms of wood-water interaction, namely of the different types of water present in wood.
Bio
Dr. Ian Hartley is Professor in the Ecosystem and Science Program, with joint appointment in Department of Physics. He holds a BSc in Physics and MScF in Wood Science from the University of New Brunswick and a PhD in Wood Physics from the University of British Columbia. Prior to coming to UNBC, he was an Assistant Professor of Forest Products at Mississippi State University. He is a Fellow of the Institute of Materials, Metals and Mining (Britain) and held Adjunct Professor appointment in the Department of Physics at the University of Waterloo. At UNBC, Dr. Hartley teaches forest products and wood science courses, and supervises graduate students in the of wood-water interaction at a molecular level for solid wood and composite materials. Dr. Hartley has published over 50 journal and technical articles and has made over 50 presentations at conferences and other technical sessions. He has research collaborations with UBC, FPInnovations (CT Imaging Centre; Evalutree), University of Waterloo, University of Tennessee, Auburn State University and Louisiana State University. At the UNBC 2007 Convocation, Dr. Hartley was awarded the Excellence in Teaching Award.

Contact Information

Dr. Matthew Reid
Phone: 250-960-6622
- See more at: http://www.unbc.ca/events/11492/nmr-terahertz-probing-wood-water-interactions#sthash.DncDbMoB.dpufhttp://www.unbc.ca/events/11492/nmr-terahertz-probing-wood-water-interactions