<HashMap><database>biostudies-other</database><scores/><additional><omics_type>Unknown</omics_type><volume>9(6)</volume><submitter>Zhong Y</submitter><journal>Materials (Basel, Switzerland)</journal><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC5456768</full_dataset_link><abstract>The objective of this study was to investigate the compressive strength parallel to the grain of bamboo scrimber during and after exposure to various temperatures, in a range from 20 to 225 °C. These data were used to provide a basis for the evaluation of the fire performance of bamboo structures. A total of 152 specimens, assembled as group "during-fire" and "post-fire", were tested during and after exposure to high temperatures. The experimental results indicated that there were significant differences in compressive properties between the "during-fire" and "post-fire" groups. At one temperature level, the compressive strength and modulus of elasticity of the "post-fire" group were significantly higher than those properties of the "during fire" group, but the ductility coefficient was reversed. FTIR analysis results showed that 175 °C was a key turning point, at which thermal decomposition occurred in the cellulose of the bamboo and phenolic resin.</abstract><repository>biostudies-other</repository><data_source>Europe PMC</data_source><pubmed_authors>Ren HQ</pubmed_authors><pubmed_authors>Zhong Y</pubmed_authors><pubmed_authors>Jiang ZH</pubmed_authors></additional><is_claimable>false</is_claimable><name>Effects of Temperature on the Compressive Strength Parallel to the Grain of Bamboo Scrimbe.</name><description>The objective of this study was to investigate the compressive strength parallel to the grain of bamboo scrimber during and after exposure to various temperatures, in a range from 20 to 225 °C. These data were used to provide a basis for the evaluation of the fire performance of bamboo structures. A total of 152 specimens, assembled as group "during-fire" and "post-fire", were tested during and after exposure to high temperatures. The experimental results indicated that there were significant differences in compressive properties between the "during-fire" and "post-fire" groups. At one temperature level, the compressive strength and modulus of elasticity of the "post-fire" group were significantly higher than those properties of the "during fire" group, but the ductility coefficient was reversed. FTIR analysis results showed that 175 °C was a key turning point, at which thermal decomposition occurred in the cellulose of the bamboo and phenolic resin.</description><dates><release>2016-01-01T00:00:00Z</release><publication>2016 Jun</publication><modification>2019-08-04T08:15:48Z</modification><creation>2019-08-04T08:15:48Z</creation></dates><accession>S-EPMC5456768</accession><cross_references><DOI>10.3390/ma9060436 </DOI></cross_references></HashMap>