Matches in SemOpenAlex for { <https://semopenalex.org/work/W2005914903> ?p ?o ?g. }
- W2005914903 endingPage "558" @default.
- W2005914903 startingPage "554" @default.
- W2005914903 abstract "The macerals in bituminous coals with varying organic sulfur content from the Early Permian Greta Coal Measures at three locations (Southland Colliery, Drayton Colliery and the Cranky Corner Basin), in and around the Sydney Basin (Australia), have been studied using light-element electron microprobe (EMP) analysis and micro-ATR–FTIR. Electron microprobe analysis of individual macerals reveals that the vitrinite in both the Cranky Corner Basin and Drayton Colliery (Puxtrees seam) samples have similar carbon contents (ca. 78% C in telocollinite), suggesting that they are of equivalent rank. However, the Cranky Corner coals have anomalously low vitrinite reflectance (down to 0.45%) vs. the Drayton materials (ca. 0.7%). They also have very high organic S content (3–6.5%) and lower O content (ca. 10%) than the equivalent macerals in the Drayton sample (0.7% S and 15.6% O). A study was carried out to investigate the impacts of the high organic S on the functional groups of the macerals in these two otherwise iso-rank, stratigraphically-equivalent seams. An iso-rank low-S coal from the overlying Wittingham Coal Measures near Muswellbrook and coals of slightly higher rank from the Greta Coal Measures at Southland Colliery near Cessnock were also evaluated using the same techniques to extend the data set. Although the telocollinite in the Drayton and Cranky Corner coals have very similar carbon content (ca.78% C), the ATR–FTIR spectra of the vitrinite and inertinite macerals in these respectively low S and high S coals show some distinct differences in IR absorbance from various aliphatic and aromatic functional groups. The differences in absorbance of the aliphatic stretching bands (2800–3000 cm−1) and the aromatic carbon (CC) peak at 1606 cm−1 are very obvious. Compared to that of the Drayton sample (0.7% S and 15% O), the telocollinite of the Cranky Corner coal (6% S and 10% O) clearly shows: (i) less absorbance from OH groups, represented by a broad region around 3553 cm−1, (ii) much stronger aliphatic C–H absorbance (stretching modes around 3000–2800 cm−1 and bending modes around 1442 cm−1) and (iii) less absorbance from aromatic carbon functional groups (peaking at 1606 cm−1). Evaluation of the iso-rank Drayton and Cranky Corner coals shows that: (i) the aliphatic C–H absorbances decrease with increasing oxygen content but increase with increasing organic S content and (ii) the aromatic H to aliphatic H ratio (Har/Hali) for the telocollinite increases with (organic) O%, but decreases progressively with increasing organic S. The high organic S content in the maceral appears to be accompanied by a greater proportion of aliphatic functional groups, possibly as a result of some of the O within maceral ring structures in the high S coal samples being replaced." @default.
- W2005914903 created "2016-06-24" @default.
- W2005914903 creator A5017189049 @default.
- W2005914903 creator A5036627039 @default.
- W2005914903 creator A5042738629 @default.
- W2005914903 creator A5091810973 @default.
- W2005914903 date "2010-06-01" @default.
- W2005914903 modified "2023-10-16" @default.
- W2005914903 title "Chemical functionalities of high and low sulfur Australian coals: A case study using micro attenuated total reflectance–Fourier transform infrared (ATR–FTIR) spectrometry" @default.
- W2005914903 cites W1538744519 @default.
- W2005914903 cites W1984400928 @default.
- W2005914903 cites W1984712639 @default.
- W2005914903 cites W2004495215 @default.
- W2005914903 cites W2006913341 @default.
- W2005914903 cites W2020958496 @default.
- W2005914903 cites W2022553826 @default.
- W2005914903 cites W2022707285 @default.
- W2005914903 cites W2066979624 @default.
- W2005914903 cites W2070680501 @default.
- W2005914903 cites W2072683319 @default.
- W2005914903 cites W2072760250 @default.
- W2005914903 cites W2082337504 @default.
- W2005914903 cites W2086235186 @default.
- W2005914903 cites W2088976499 @default.
- W2005914903 cites W2090090213 @default.
- W2005914903 cites W2341169972 @default.
- W2005914903 cites W260506558 @default.
- W2005914903 cites W98647744 @default.
- W2005914903 doi "https://doi.org/10.1016/j.orggeochem.2010.02.016" @default.
- W2005914903 hasPublicationYear "2010" @default.
- W2005914903 type Work @default.
- W2005914903 sameAs 2005914903 @default.
- W2005914903 citedByCount "18" @default.
- W2005914903 countsByYear W20059149032012 @default.
- W2005914903 countsByYear W20059149032013 @default.
- W2005914903 countsByYear W20059149032014 @default.
- W2005914903 countsByYear W20059149032015 @default.
- W2005914903 countsByYear W20059149032017 @default.
- W2005914903 countsByYear W20059149032018 @default.
- W2005914903 countsByYear W20059149032019 @default.
- W2005914903 countsByYear W20059149032020 @default.
- W2005914903 countsByYear W20059149032022 @default.
- W2005914903 countsByYear W20059149032023 @default.
- W2005914903 crossrefType "journal-article" @default.
- W2005914903 hasAuthorship W2005914903A5017189049 @default.
- W2005914903 hasAuthorship W2005914903A5036627039 @default.
- W2005914903 hasAuthorship W2005914903A5042738629 @default.
- W2005914903 hasAuthorship W2005914903A5091810973 @default.
- W2005914903 hasConcept C107872376 @default.
- W2005914903 hasConcept C108615695 @default.
- W2005914903 hasConcept C113196181 @default.
- W2005914903 hasConcept C121332964 @default.
- W2005914903 hasConcept C127313418 @default.
- W2005914903 hasConcept C138411078 @default.
- W2005914903 hasConcept C160892712 @default.
- W2005914903 hasConcept C178790620 @default.
- W2005914903 hasConcept C185592680 @default.
- W2005914903 hasConcept C199289684 @default.
- W2005914903 hasConcept C2777069839 @default.
- W2005914903 hasConcept C2777101687 @default.
- W2005914903 hasConcept C2911204943 @default.
- W2005914903 hasConcept C30370900 @default.
- W2005914903 hasConcept C518851703 @default.
- W2005914903 hasConcept C518881349 @default.
- W2005914903 hasConcept C59235061 @default.
- W2005914903 hasConcept C62520636 @default.
- W2005914903 hasConceptScore W2005914903C107872376 @default.
- W2005914903 hasConceptScore W2005914903C108615695 @default.
- W2005914903 hasConceptScore W2005914903C113196181 @default.
- W2005914903 hasConceptScore W2005914903C121332964 @default.
- W2005914903 hasConceptScore W2005914903C127313418 @default.
- W2005914903 hasConceptScore W2005914903C138411078 @default.
- W2005914903 hasConceptScore W2005914903C160892712 @default.
- W2005914903 hasConceptScore W2005914903C178790620 @default.
- W2005914903 hasConceptScore W2005914903C185592680 @default.
- W2005914903 hasConceptScore W2005914903C199289684 @default.
- W2005914903 hasConceptScore W2005914903C2777069839 @default.
- W2005914903 hasConceptScore W2005914903C2777101687 @default.
- W2005914903 hasConceptScore W2005914903C2911204943 @default.
- W2005914903 hasConceptScore W2005914903C30370900 @default.
- W2005914903 hasConceptScore W2005914903C518851703 @default.
- W2005914903 hasConceptScore W2005914903C518881349 @default.
- W2005914903 hasConceptScore W2005914903C59235061 @default.
- W2005914903 hasConceptScore W2005914903C62520636 @default.
- W2005914903 hasIssue "6" @default.
- W2005914903 hasLocation W20059149031 @default.
- W2005914903 hasOpenAccess W2005914903 @default.
- W2005914903 hasPrimaryLocation W20059149031 @default.
- W2005914903 hasRelatedWork W1258624047 @default.
- W2005914903 hasRelatedWork W1972090196 @default.
- W2005914903 hasRelatedWork W2070331578 @default.
- W2005914903 hasRelatedWork W216594404 @default.
- W2005914903 hasRelatedWork W2243718152 @default.
- W2005914903 hasRelatedWork W2390698809 @default.
- W2005914903 hasRelatedWork W2495645683 @default.
- W2005914903 hasRelatedWork W4255770966 @default.
- W2005914903 hasRelatedWork W4310803509 @default.
- W2005914903 hasRelatedWork W89945633 @default.