Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties

Previous studies have shown that thermally modified wood (TMW) performs well in outdoor, above-ground conditions in terms of resistance to wood-decaying fungi. Yet, little is known about the development of defects such as checks and the corresponding mechanical properties of TMW in this condition. T...

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Main Authors: Joran van Blokland, Stergios Adamopoulos, Sheikh Ali Ahmed
Format: Article
Language:English
Published: MDPI AG 2020-06-01
Series:Applied Sciences
Subjects:
MOE
MOR
Online Access:https://www.mdpi.com/2076-3417/10/11/3975
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spelling doaj-496b3d85700741cca5fa777d81af4acf2020-11-25T03:54:20ZengMDPI AGApplied Sciences2076-34172020-06-01103975397510.3390/app10113975Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending PropertiesJoran van Blokland0Stergios Adamopoulos1Sheikh Ali Ahmed2Department of Forestry and Wood Technology, Linnaeus University, 351 95 Växjö, SwedenDepartment of Forestry and Wood Technology, Linnaeus University, 351 95 Växjö, SwedenDepartment of Forestry and Wood Technology, Linnaeus University, 351 95 Växjö, SwedenPrevious studies have shown that thermally modified wood (TMW) performs well in outdoor, above-ground conditions in terms of resistance to wood-decaying fungi. Yet, little is known about the development of defects such as checks and the corresponding mechanical properties of TMW in this condition. This experiment focused on the effect of 30 months outdoor above-ground exposure (weathering) on the degree of checking, dynamic stiffness and static bending properties of thermally modified timber (TMT) of Norway spruce. Two board pairs per log were cut from 190 logs; one board of each pair was thermally modified and the other used as control. Then, 90 board pairs were exposed to the weather in south Sweden. Surface checking and axial stiffness were monitored at six-month intervals by using digital photography and non-destructive tests (time-of-flight and resonance method) to monitor changes in the material upon weathering. Finally, all boards were tested destructively in a 4-point static bending test following EN 408 standard. Results showed that weathering had no significance influence on static bending properties of TMT even though the degree of checking was considerably higher in TMT than unmodified timber after weathering. In particular, checks along growth rings were deeper, longer and more common in TMT after weathering, especially on the pith side of boards. The maximum depth of these checks did not depend on board orientation (i.e., which side was exposed) and exceeded limits given in strength grading standards for 7% of the modified boards included. Axial dynamic stiffness determined at 6-month intervals was less influenced by fluctuations in moisture content for TMT compared to unmodified timber, but did not confirm the increase in the degree of checking of TMT. The presence of checks from weathering did influence failure modes in TMT; horizontal shear failure became more frequent and some boards failed in compression.https://www.mdpi.com/2076-3417/10/11/3975cracksMOEMORThermoWood®time-of-flightresonance method
collection DOAJ
language English
format Article
sources DOAJ
author Joran van Blokland
Stergios Adamopoulos
Sheikh Ali Ahmed
spellingShingle Joran van Blokland
Stergios Adamopoulos
Sheikh Ali Ahmed
Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
Applied Sciences
cracks
MOE
MOR
ThermoWood®
time-of-flight
resonance method
author_facet Joran van Blokland
Stergios Adamopoulos
Sheikh Ali Ahmed
author_sort Joran van Blokland
title Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
title_short Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
title_full Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
title_fullStr Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
title_full_unstemmed Performance of Thermally Modified Spruce Timber in Outdoor Above-Ground Conditions: Checking, Dynamic Stiffness and Static Bending Properties
title_sort performance of thermally modified spruce timber in outdoor above-ground conditions: checking, dynamic stiffness and static bending properties
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-06-01
description Previous studies have shown that thermally modified wood (TMW) performs well in outdoor, above-ground conditions in terms of resistance to wood-decaying fungi. Yet, little is known about the development of defects such as checks and the corresponding mechanical properties of TMW in this condition. This experiment focused on the effect of 30 months outdoor above-ground exposure (weathering) on the degree of checking, dynamic stiffness and static bending properties of thermally modified timber (TMT) of Norway spruce. Two board pairs per log were cut from 190 logs; one board of each pair was thermally modified and the other used as control. Then, 90 board pairs were exposed to the weather in south Sweden. Surface checking and axial stiffness were monitored at six-month intervals by using digital photography and non-destructive tests (time-of-flight and resonance method) to monitor changes in the material upon weathering. Finally, all boards were tested destructively in a 4-point static bending test following EN 408 standard. Results showed that weathering had no significance influence on static bending properties of TMT even though the degree of checking was considerably higher in TMT than unmodified timber after weathering. In particular, checks along growth rings were deeper, longer and more common in TMT after weathering, especially on the pith side of boards. The maximum depth of these checks did not depend on board orientation (i.e., which side was exposed) and exceeded limits given in strength grading standards for 7% of the modified boards included. Axial dynamic stiffness determined at 6-month intervals was less influenced by fluctuations in moisture content for TMT compared to unmodified timber, but did not confirm the increase in the degree of checking of TMT. The presence of checks from weathering did influence failure modes in TMT; horizontal shear failure became more frequent and some boards failed in compression.
topic cracks
MOE
MOR
ThermoWood®
time-of-flight
resonance method
url https://www.mdpi.com/2076-3417/10/11/3975
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AT stergiosadamopoulos performanceofthermallymodifiedsprucetimberinoutdoorabovegroundconditionscheckingdynamicstiffnessandstaticbendingproperties
AT sheikhaliahmed performanceofthermallymodifiedsprucetimberinoutdoorabovegroundconditionscheckingdynamicstiffnessandstaticbendingproperties
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