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| 1 | Large-scale destress blasting for seismicity control in hard rock mines:A case study显示文摘Destress blasting is a rockburst control technique where highly stressed rock is blasted to reduce the local stress and stiffness of the rock,thereby reducing its burst proneness.The technique is commonly practiced in deep hard rock mines in burst prone developments,as well as in sill or crown pillars which become burst-prone as the orebody is extracted.Large-scale destressing is a variant of destress blasting where panels are created parallel to the orebody strike with a longhole,fanning blast pattern from cross cut drifts situated in the host rock.The aim of panel destressing is to reduce the stress concentration in the ore blocks or pillars to be mined.This paper focuses on the large-scale destress blasting program conducted at Vale's Copper Cliff Mine(CCM)in Ontario,Canada.The merits of panel destressing are examined through field measurements of mining induced stress changes in the pillar.The destressing mechanism is simulated with a rock fragmentation factor(a)and stress reduction/dissipation factor(b).A 3D model is built and validated with measured induced stress changes.It is shown that the best correlation between the numerical model and field measurements is obtained when the combination of a and b indicates that the blast causes high fragmentation(a=0.05)and high stress release(b=0.95)in the destress panel.It is demonstrated that the burst proneness of the ore blocks in the panel stress shadow is reduced in terms of the brittle shear ratio(BSR)and the burst potential index(BPI). | Isaac Vennes Hani Mitri Damodara Reddy Chinnasane Mike Yao | 2020 | International Journal of Mining Science and Technology2020,30,2: | 5 |
| 2 | Fungal diversity notes 1–110:taxonomic and phylogenetic contributions to fungal species显示文摘This paper is a compilation of notes on 110 fungal taxa,including one new family,10 new genera,and 76 new species,representing a wide taxonomic and geographic range.The new family,Paradictyoarthriniaceae is introduced based on its distinct lineage in Dothideomycetes and its unique morphology.The family is sister to Biatriosporaceae and Roussoellaceae.The new genera are Allophaeosphaeria(Phaeosphaeriaceae),Amphibambusa(Amphisphaeriaceae),Brunneomycosphaerella(Capnodiales genera incertae cedis),Chaetocapnodium(Capnodiaceae),Flammeascoma(Anteagloniaceae),Multiseptospora(Pleosporales genera incertae cedis),Neogaeumannomyces(Magnaporthaceae),Palmiascoma(Bambusicolaceae),Paralecia(Squamarinaceae)and Sarimanas(Melanommataceae).The newly described species are the Ascomycota Aliquandostipite manochii,Allophaeosphaeria dactylidis,A.muriformia,Alternaria cesenica,Amphibambusa bambusicola,Amphisphaeria sorbi,Annulohypoxylon thailandicum,Atrotorquata spartii,Brunneomycosphaerella laburni,Byssosphaeria musae,Camarosporium aborescentis,C.aureum,C.frutexensis,Chaetocapnodium siamensis,Chaetothyrium agathis,Colletotrichum sedi,Conicomyces pseudotransvaalensis,Cytospora berberidis,C.sibiraeae,Diaporthe thunbergiicola,Diatrype palmicola,Dictyosporium aquaticum,D.meiosporum,D.thailandicum,Didymella cirsii,Dinemasporium nelloi,Flammeascoma bambusae,Kalmusia italica,K.spartii,Keissleriella sparticola,Lauriomyces synnematicus,Leptosphaeria ebuli,Lophiostoma pseudodictyosporium,L.ravennicum,Lophiotrema eburnoides,Montagnula graminicola,Multiseptospora thailandica,Myrothecium macrosporum,Natantispora unipolaris,Neogaeumannomyces bambusicola,Neosetophoma clematidis,N.italica,Oxydothis atypica,Palmiascoma gregariascomum,Paraconiothyrium nelloi,P.thysanolaenae,Paradictyoarthrinium tectonicola,Paralecia pratorum,Paraphaeosphaeria spartii,Pestalotiopsis digitalis,P.dracontomelon,P.italiana,Phaeoisaria pseudoclematidis,Phragmocapnias philippinensis,Pseudocamarosporium cotinae,Pseudocercospora tamarindi,Pseudotrichia rubriostiolata,P.thailandica,Psiloglonium multiseptatum,Saagaromyces mangrovei,Sarimanas pseudofluviatile,S.shirakamiense,Tothia spartii,Trichomerium siamensis,Wojnowicia dactylidicola,W.dactylidis and W.lonicerae.The Basidiomycota Agaricus flavicentrus,A.hanthanaensis,A.parvibicolor,A.sodalis,Cantharellus luteostipitatus,Lactarius atrobrunneus,L.politus,Phylloporia dependens and Russula cortinarioides are also introduced.Epitypifications or reference specimens are designated for Hapalocystis berkeleyi,Meliola tamarindi,Pallidocercospora acaciigena,Phaeosphaeria musae,Plenodomus agnitus,Psiloglonium colihuae,P.sasicola and Zasmidium musae while notes and/or new sequence data are provided for Annulohypoxylon leptascum,A.nitens,A.stygium,Biscogniauxia marginata,Fasciatispora nypae,Hypoxylon fendleri,H.monticulosum,Leptosphaeria doliolum,Microsphaeropsis olivacea,Neomicrothyrium,Paraleptosphaeria nitschkei,Phoma medicaginis and Saccotheciaceae.A full description of each species is provided with light micrographs(or drawings).Molecular data is provided for 90 taxa and used to generate phylogenetic trees to establish a natural classification for species. | Jian Kui Liu Kevin D.Hyde E.B.Gareth Jones Hiran A.Ariyawansa Darbhe J.Bhat Saranyaphat Boonmee Sajeewa S.N.Maharachchikumbura Eric H.C.McKenzie Rungtiwa Phookamsak Chayanard Phukhamsakda Belle Damodara Shenoy Mohamed A,Abdel-Wahab Bart Buyck Jie Chen K.W.Thilini Chethana Chonticha Singtripop Dong Qin Dai Yu Cheng Dai Dinushani ADaranagama Asha J.Dissanayake Mingkwan Doilom Melvina J.D’souza Xin Lei Fan Ishani DGoonasekara Kazuyuki Hirayama Sinang Hongsanan Subashini C.Jayasiri Ruvishika S.Jayawardena Samantha C.Karunarathna Wen Jing Li Ausana Mapook Chada Norphanphoun Ka Lai Pang Rekhani H.Perera Derek Peršoh Umpava Pinruan Indunil CSenanayake Sayanh Somrithipol Satinee Suetrong Kazuaki Tanaka Kasun M.Thambugala Qing Tian Saowaluck Tibpromma Danushka Udayanga Nalin N.Wijayawardene Dhanuska Wanasinghe Komsit Wisitrassameewong Xiang Yu Zeng Faten AAbdel-Aziz Slavomir Adamčík Ali H.Bahkali Nattawut Boonyuen Timur Bulgakov Philippe Callac Putarak Chomnunti Katrin Greiner Akira Hashimoto Valerie Hofstetter Ji Chuan Kang David Lewis Xing Hong Li Xing Zhong Liu Zuo Yi Liu Misato Matsumura Peter E.Mortimer Gerhard Rambold Emile Randrianjohany Genki Sato Veera Sri-Indrasutdhi Cheng Ming Tian Annemieke Verbeken Wolfgang von Brackel Yong Wang Ting Chi Wen Jian Chu Xu Ji Ye Yan Rui Lin Zhao Erio Camporesi | 2015 | Fungal Diversity2015,,3: | 3 |
| 3 | The ApMat marker can resolve Colletotrichum species: a case study with Mangifera indica显示文摘Anthracnose disease caused by the Colletotrichum gloeosporioides species complex is a major problem worldwide.In this study,we investigated the phylogenetic diversity of 207 Indian Colletotrichum isolates,associated with symptomatic and asymptomatic tissues of mango,belonging to this species complex.Phylogenetic analyses were performed based on a 6-gene dataset(act,cal,chs1,gapdh,ITS and tub2),followed by ApMat sequence-analysis.The ApMat-based phylogeny was found to be superior as it provided finer resolution in most of the species-level clades.Importantly,the ApMat marker identified seven lineages within C.siamense sensu lato,including C.jasmini-sambac,C.hymenocallidis,C.melanocaulon,C.siamense sensu stricto and three undesignated,potentially novel lineages.In this study,C.fragariae sensu stricto,C.fructicola,C.jasmini-sambac,C.melanocaulon and five undesignated,potentially novel lineages were found to be associated with mango tissues.There is a need to develop a consensus among mycologists as to which genes should be used to define and delimit a Colletotrichum species and in the mean time mycologists should voluntarily restrain from describing new species based on inadequate datasets. | Gunjan Sharma Navinder Kumar Bevan S.Weir Kevin D.Hyde Belle Damodara Shenoy | 2013 | Fungal Diversity2013,,4: | 3 |
| 4 | Determination of levetiracetam in human plasma/serum/saliva by liquid chromatography-electrospray tandem mass spectrometry显示文摘 | Tiedong Guo Lisa M Oswald Damodara Rao Mendu | 2007 | Clinica Chimica Acta2007,375,: | 1 |
| 5 | Purification of α-amylase from Bacillus licheniformis by chromatogram using and gel filtration chromatography显示文摘 | DAMODARA M R PUMIMA A RAMESH D V | 2002 | World Journal of Microbiology & Biotcchnology2002,18,3: | 1 |
| 6 | Chaperone activity of recombinant maize chloroplast protein synthesis elongation factor, EF-Tu Eur显示文摘 | Damodara R Ivana M Satoru K | 2004 | Biochem2004,271,: | 1 |
| 7 | Optimization of fermentation conditions for the production of ethanol fi'om sago starch by co-immobilized amyloglucosidase and cells of Zymomonas mobilis using response surface methodology显示文摘 | Veera Venkata Ratnam Bandaru Subba Rao Somalanka Damodara Rao Mendu | 2006 | Enzyme and Microbial Technology2006,38,12: | 1 |
| 8 | Fe3O4@mesoporouspolyaniline:A highly efficient and magnetically separable catalyst for cross-coupling of aryl chlorides and phenols显示文摘 | Arundhathi R Damodara D Likhar P R | 2011 | Advanced Synthesis&Catalysis2011,353,: | 1 |
| 9 | Synthesis and X-ray powder structure of three novel titanium phosphate compounds显示文摘 | Poojary Damodara M Bortun Anatoly I Bortun Lyudmila N | 1997 | Journal of Solid State Chemistry1997,132,: | 1 |
| 10 | Combustion mechanism development and CFD simulation for the prediction of soot emission during flaring显示文摘 | Anan Wang Helen H. Lou Daniel Chen Anfeng Yu Wenyi Dang Xianchang Li Christopher Martin Vijaya Damodara Ajit Patki | 2016 | Frontiers of Chemical Science and Engineering2016,10,4: | 1 |
| 11 | Purificationof a-amylasefromBacilluslicheniformis by Chromatofocusing and Gel Filtration Chromatography显示文摘 | DAMODARA R M PURNIMA A RAMESH D V | 2002 | World Journal of Microbiology and Biotechnology2002,18,: | 1 |
| 12 | Synthesis and X-ray powder structures of three novel titanium phosphate compounds显示文摘 | Damodara M Poojary Anatoly I Bortun Lyudmila N Bortun | 1997 | Journal of Solid State Chemistry1997,132,: | 1 |
| 13 | Thermal gelation of globular proteins: influence of protein conformation on gel strength显示文摘 | WANG Chenghsin DAMODARA N S | 1991 | Jourllal of Agricultural and Food Chemistry1991,39,3: | 1 |
| 14 | 显示文摘 | Damodara Das V Ramesh Chandra Mallik | 2003 | Thin Solid Films2003,424,: | 1 |
| 15 | Optimization of fermentation conditions for the production of ethanol from sago starch by co-immobilized amyloglucosidase and cells of Zymomonas mobilis using response surface methodology显示文摘 | Veera V R B Subba R S Damodara R M | 2006 | Enzvme and Microbial TechnolomL2006,38,12: | 1 |
| 16 | Towards a natural classification and backbone tree for Sordariomycetes显示文摘Sordariomycetes is one of the largest classes of Ascomycota and is characterised by perithecial ascomata and inoperculate unitunicate asci.The class includes many important plant pathogens,as well as endophytes,saprobes,epiphytes,and fungicolous,lichenized or lichenicolous taxa.The class includes freshwater,marine and terrestrial taxa and has a worldwide distribution.This paper provides an updated outline of the Sordariomycetes and a backbone tree incorporating asexual and sexual genera in the class.Based on phylogeny and morphology we introduced three subclasses;Diaporthomycetidae,Lulworthiomycetidae and Meliolomycetidae and five orders;Amplistromatales,Annulatascales,Falcocladiales,Jobellisiales and Togniniales.The outline is based on literature to the end of 2014 and the backbone tree published in this paper.Notes for 397 taxa with information,such as new family and genera novelties,novel molecular data published since the Outline of Ascomycota 2009,and new links between sexual and asexual genera and thus synonymies,are provided.The Sordariomycetes now comprises six subclasses,28 orders,90 families and 1344 genera.In addition a list of 829 genera with uncertain placement in Sordariomycetesis also provided. | Sajeewa S.N.Maharachchikumbura Kevin D.Hyde EBGareth Jones Eric H.C.McKenzie Shi-Ke Huang Mohamed A.Abdel-Wahab Dinushani A.Daranagama Monika Dayarathne Melvina J.D’souza Ishani D.Goonasekara Sinang Hongsanan Ruvishika S.Jayawardena Paul M.Kirk Sirinapa Konta Jian-Kui Liu Zuo-Yi Liu Chada Norphanphoun Ka-Lai Pang Rekhani H.Perera Indunil C.Senanayake Qiuju Shang Belle Damodara Shenoy Yuanpin Xiao Ali H.Bahkali Jichuan Kang Sayanh Somrothipol Satinee Suetrong Tingchi Wen Jianchu Xu | 2015 | Fungal Diversity2015,,3: | 1 |
| 17 | Aegle mar- melos fruit extract attenuates isoproterenol-induced oxidative stress in rats 显示文摘 | Krushna G Kareem M Damodara Reddy V | 2012 | J Clin Biochem Nutr2012,50,3: | 1 |
| 18 | Ther-moelectric properties of SnzCo8Sb24 skutterudites 显示文摘 | Mallik R C Jung J Y Damodara Das V | 2007 | Solid State Communications2007,141,4: | 1 |
| 19 | Resolving the Colletotrichum siamense species complex using ApMat marker显示文摘Colletotrichum gloeosporioides sensu lato has been associated with anthracnose in diverse commercial crops.It is now established that C.gloeosporioides sensu lato comprises 33 phylogenetic species and C.gloeosporioides sensu stricto is not a common pathogen of tropical fruits.In this study,we investigated the phylogenetic relationships of 85 Colletotrichum isolates associated with select tropical fruits and flowering plants from India.In the ApMat marker analysis,the 85 isolates clustered with 7 known Colletotrichum species(C.aotearoa,C.dianesei,C.endomangiferae,C.musae,C.siamense,C.theobromicola,Glomerella cingulata f.sp.camelliae)and six novel lineages.One of the novel lineages is described and illustrated in this paper as Colletotrichum communis sp.nov.,while new-host pathogen associations for C.aotearoa,C.endomangiferae,C.dianesei and C.theobromicola are reported from India.Out of the 85 isolates analysed in this paper,73 isolates clustered within the C.siamense species complex,indicating that C.siamense species complex,not C.gloeosporioides sensu stricto,is common on tropical fruits.In comparison with act,cal,gapdh,ITS and tub2 gene markers,we recommend the use of the ApMat marker for accurate identification of cryptic species within the C.siamense species complex.We believe that the ApMat marker,in combination with one or two similar‘phylogenetically superior’gene markers,is a better candidate for specieslevel classification of fungi that were traditionally identified as‘Colletotrichum gloeosporioides’. | Gunjan Sharma Anil Kumar Pinnaka Belle Damodara Shenoy | 2015 | Fungal Diversity2015,,2: | 1 |
| 20 | Chaperone activity of recom- binant maize chloroplast protein synthesis elongation factor, EF- Tu显示文摘 | Damodara R Ivana M Satorn K | 2004 | European Journal of Biochemistry2004,271,18: | 1 |