Skip to Main Content
Skip Nav Destination
ASTM Selected Technical Papers
Heat-Air-Moisture Transport, 2nd Volume: Measurements and Implications in BuildingsAvailable to Purchase
By
Phalguni Mukhopadhyaya
Phalguni Mukhopadhyaya
1
The National Research Council
,
Ottawa, ON,
Canada
Search for other works by this author on:
Mavinkal K. Kumaran
Mavinkal K. Kumaran
2
The National Research Council
,
Ottawa, ON,
Canada
Search for other works by this author on:
ISBN:
978-0-8031-7505-1
No. of Pages:
442
Publisher:
ASTM International
Publication date:
2010

As part of a research program to establish the hygrothermal response of wood-frame wall assemblies to varying climate conditions, a series of drying experiments was performed in a programmable environmental chamber used to replicate exterior climatic conditions. In these experiments, bulk moisture content of the assembly was measured using a weighing system, and as well, measurements of local moisture content of oriented strand board (OSB) sheathing were taken with the use of electrical resistance moisture pin pairs. The local moisture content of the OSB was based on the relationship between moisture content and electrical resistance determined from a series of controlled laboratory experiments on OSB specimens of the same type and thickness. This paper reports on the results from experimental tests on seven small-size OSB specimens to establish the correlation between electrical resistance and the moisture content of the OSB. The process required the installation of several moisture pin pairs at different locations on and depths in the OSB. The weights of specimens together with resistance measurements taken across each pair of moisture pins were continuously monitored and results captured on a data acquisition unit. Details are provided in regard to electrical resistance measurements, the data acquisition unit, and method of weighing specimens. The results of the tests provided a simple equation to correlate moisture content of OSB to electrical resistance measurements using moisture pins pairs and as well correlation to moisture measurements using commercially available moisture metre. Given that moisture reading results obtained from commercially available moisture metres typically correlate to a specific wood species, the work completed in these experimental tests can be used to determine moisture contents in OSB from moisture metre readings.

1.
Maref
,
W.
, and
Lacasse
,
M. A.
, “
Drying Response of Wood-Frame Construction: Laboratory and Modelling
,”
Second Symposium on Heat-Air-Moisture Transport: Measurement and Implication in Buildings
,
Vancouver, B.C., Canada
, April 19–20, 2009, submitted.
2.
Maref
,
W.
,
Lacasse
,
M. A.
, and
Booth
,
D. G.
, “
Benchmarking of IRC's Advanced Hygrothermal Model—hygIRC Using Mid- and Large-Scale Experiments
,” Research Report No. RR-126,
Institute for Research in Construction, National Research Council Canada
, Ottawa, Canada,
12
2002
, p. 38.
3.
Maref
,
W.
,
Lacasse
,
M. A.
, and
Booth
,
D. G.
, “
Executive Summary of Research Contributions Related to Moisture Management of Exterior Wall Systems (MEWS)—Modeling, Experiments, and Benchmarking
,” Research Report No. RR-127,
Institute for Research in Construction, National Research Council Canada
, Ottawa, Canada,
12
2002
, p. 15.
4.
Maref
,
W.
,
Lacasse
,
M. A.
, and
Booth
,
D. G.
, “
Assessing the Hygrothermal Response of Wood Sheathing and Combined Membrane-Sheathing Assemblies to Steady-State Environmental Conditions
,”
Proceedings of the Second International Conference on Research in Building Physics (NRCC-46103)
,
14
09
2003
,
Catholic University of Leuven
,
Leuven, Belgium
,
2003
, pp. 1–10.
5.
Maref
,
W.
,
Lacasse
,
M. A.
,
Kumaran
,
M. K.
,
Swinton
,
M. C.
, and
van Reenen
D.
Laboratory Measurements and Benchmarking of an Advanced Hygrothermal Model
,”
Proceeding of the 12th International Heat Transfer Conference
,
Grenoble, France
, August 18–23, 2002.
6.
Maref
,
W.
,
Lacasse
,
M. A.
,
Booth
,
D.
,
Nicholls
,
M.
, and
O'Connor
,
T.
, “
Automated Weighing and Moisture Sensor System to Assess the Hygrothermal Response of Wood-Sheathing and Combined Membrane Sheathing Wall Components
,”
Proceedings of the 11th Symposium for Building Physics
,
2002
,
University of Dresden
,
Dresden, Germany
, pp. 595–604.
7.
Maref
,
W.
,
Lacasse
,
M. A.
,
Kumaran
,
M. K.
, and
Swinton
,
M. C.
, “
Benchmarking of the Advanced Hygrothermal Model—hygIRC with Mid Scale Experiments
,”
Proceedings of the eSim Conference
, September 12–13, 2002,
International Building Performance Simulation Association-Canada, Concordia University
,
Montreal, Canada
, pp. 171–176.
8.
Maref
,
W.
,
Lacasse
,
M. A.
, and
Booth
,
D. G.
, “
An Approach to Validating Computational Models for Hygrothermal Analysis—Full Scale Experiments
,”
Proceedings of the Third International Conference on Computational Heat and Mass Transfer
,
26
05
2003
,
University of Calgary
,
Banff, Canada
, pp. 243–251.
9.
Maref
,
W.
,
Lacasse
,
M. A.
, and
Booth
,
D. G.
, “
Large-Scale Laboratory Measurements and Benchmarking of an Advanced Hygrothermal Model
,”
CIB World Building Congress
, May 2–7, 2004,
National Research Council Canada
,
Ottawa, Canada
, pp. 1–11.
This content is only available via PDF.
You do not currently have access to this chapter.

or Create an Account

Close Modal
Close Modal