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Strain Rate Research Papers - Academia.edu

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class="summarized">The yield behaviour of poly(methylmethacrylate) (PMMA) has been investigated in tension and compression over a range of testing temperatures and strain-rates. Both tensile and compressive yield stresses were found to increase... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_63695582" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The yield behaviour of poly(methylmethacrylate) (PMMA) has been investigated in tension and compression over a range of testing temperatures and strain-rates. Both tensile and compressive yield stresses were found to increase monotonically with increasing strainrate and decreasing temperatures. Compressive yield stresses were in general found to be more dependent on strain-rate.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/63695582" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="f5bb47684848a57647a0c9cda60624b8" rel="nofollow" data-download="{&quot;attachment_id&quot;:76040131,&quot;asset_id&quot;:63695582,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/76040131/download_file?st=MTczMjQwMDI0NCw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="141627853" href="https://yale.academia.edu/SimonRabinowitz">Simon Rabinowitz</a><script data-card-contents-for-user="141627853" type="text/json">{"id":141627853,"first_name":"Simon","last_name":"Rabinowitz","domain_name":"yale","page_name":"SimonRabinowitz","display_name":"Simon Rabinowitz","profile_url":"https://yale.academia.edu/SimonRabinowitz?f_ri=39606","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_63695582 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="63695582"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 63695582, container: ".js-paper-rank-work_63695582", }); 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Compressive yield stresses were in general found to be more dependent on strain-rate.","downloadable_attachments":[{"id":76040131,"asset_id":63695582,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":141627853,"first_name":"Simon","last_name":"Rabinowitz","domain_name":"yale","page_name":"SimonRabinowitz","display_name":"Simon Rabinowitz","profile_url":"https://yale.academia.edu/SimonRabinowitz?f_ri=39606","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=39606","nofollow":false},{"id":511,"name":"Materials Science","url":"https://www.academia.edu/Documents/in/Materials_Science?f_ri=39606","nofollow":false},{"id":39606,"name":"Strain Rate","url":"https://www.academia.edu/Documents/in/Strain_Rate?f_ri=39606","nofollow":false},{"id":260118,"name":"CHEMICAL 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href="https://www.academia.edu/28185521/Quantifying_Seismic_Hazard_in_the_Southern_Rocky_Mountains_Through_GPS_Measurements_of_Crustal_Deformation">Quantifying Seismic Hazard in the Southern Rocky Mountains Through GPS Measurements of Crustal Deformation</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Using repeated high precision GPS measurements on existing monuments, we hope to accurately determine the present day crustal strain rates in the State of Colorado on a regional and/or local scale. We will provide the first modern,... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_28185521" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Using repeated high precision GPS measurements on existing monuments, we hope to accurately determine the present day crustal strain rates in the State of Colorado on a regional and/or local scale. We will provide the first modern, space-based crustal strain and surface velocity estimates for the southern Rocky Mountain region, including the Front Range and Rio Grande Rift. In addition,</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/28185521" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="4482d04ebd76c5e5c6b4cf55b783c852" rel="nofollow" data-download="{&quot;attachment_id&quot;:48496074,&quot;asset_id&quot;:28185521,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/48496074/download_file?st=MTczMjQwMDI0NCw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="32308411" href="https://independent.academia.edu/FrederickBlume">Frederick Blume</a><script data-card-contents-for-user="32308411" type="text/json">{"id":32308411,"first_name":"Frederick","last_name":"Blume","domain_name":"independent","page_name":"FrederickBlume","display_name":"Frederick Blume","profile_url":"https://independent.academia.edu/FrederickBlume?f_ri=39606","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_28185521 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="28185521"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 28185521, container: ".js-paper-rank-work_28185521", }); 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$(".js-view-count[data-work-id=28185521]").text(description); $(".js-view-count-work_28185521").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_28185521").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="28185521"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">5</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl9x"><a class="InlineList-item-text" data-has-card-for-ri="3157" href="https://www.academia.edu/Documents/in/Seismic_Hazard">Seismic Hazard</a>,&nbsp;<script data-card-contents-for-ri="3157" type="text/json">{"id":3157,"name":"Seismic Hazard","url":"https://www.academia.edu/Documents/in/Seismic_Hazard?f_ri=39606","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="39606" href="https://www.academia.edu/Documents/in/Strain_Rate">Strain Rate</a>,&nbsp;<script data-card-contents-for-ri="39606" type="text/json">{"id":39606,"name":"Strain Rate","url":"https://www.academia.edu/Documents/in/Strain_Rate?f_ri=39606","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="189371" href="https://www.academia.edu/Documents/in/Velocity_Estimation">Velocity Estimation</a>,&nbsp;<script data-card-contents-for-ri="189371" type="text/json">{"id":189371,"name":"Velocity Estimation","url":"https://www.academia.edu/Documents/in/Velocity_Estimation?f_ri=39606","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="304602" href="https://www.academia.edu/Documents/in/Rocky_Mountains">Rocky Mountains</a><script data-card-contents-for-ri="304602" type="text/json">{"id":304602,"name":"Rocky Mountains","url":"https://www.academia.edu/Documents/in/Rocky_Mountains?f_ri=39606","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=28185521]'), work: {"id":28185521,"title":"Quantifying Seismic Hazard in the Southern Rocky Mountains Through GPS Measurements of Crustal Deformation","created_at":"2016-09-01T14:40:56.596-07:00","url":"https://www.academia.edu/28185521/Quantifying_Seismic_Hazard_in_the_Southern_Rocky_Mountains_Through_GPS_Measurements_of_Crustal_Deformation?f_ri=39606","dom_id":"work_28185521","summary":"Using repeated high precision GPS measurements on existing monuments, we hope to accurately determine the present day crustal strain rates in the State of Colorado on a regional and/or local scale. We will provide the first modern, space-based crustal strain and surface velocity estimates for the southern Rocky Mountain region, including the Front Range and Rio Grande Rift. In addition,","downloadable_attachments":[{"id":48496074,"asset_id":28185521,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":32308411,"first_name":"Frederick","last_name":"Blume","domain_name":"independent","page_name":"FrederickBlume","display_name":"Frederick Blume","profile_url":"https://independent.academia.edu/FrederickBlume?f_ri=39606","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":3157,"name":"Seismic Hazard","url":"https://www.academia.edu/Documents/in/Seismic_Hazard?f_ri=39606","nofollow":false},{"id":39606,"name":"Strain Rate","url":"https://www.academia.edu/Documents/in/Strain_Rate?f_ri=39606","nofollow":false},{"id":189371,"name":"Velocity Estimation","url":"https://www.academia.edu/Documents/in/Velocity_Estimation?f_ri=39606","nofollow":false},{"id":304602,"name":"Rocky Mountains","url":"https://www.academia.edu/Documents/in/Rocky_Mountains?f_ri=39606","nofollow":false},{"id":1260395,"name":"Crustal Deformation","url":"https://www.academia.edu/Documents/in/Crustal_Deformation?f_ri=39606"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_9367249" data-work_id="9367249" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/9367249/Dynamic_Mechanical_Properties_of_Body_Wall_Dermis_in_Various_Mechanical_States_and_Their_Implications_for_the_Behavior_of_Sea_Cucumbers">Dynamic Mechanical Properties of Body-Wall Dermis in Various Mechanical States and Their Implications for the Behavior of Sea Cucumbers</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue 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class="InlineList-item-text" data-has-card-for-ri="32927" href="https://www.academia.edu/Documents/in/Molecular_modeling">Molecular modeling</a>,&nbsp;<script data-card-contents-for-ri="32927" type="text/json">{"id":32927,"name":"Molecular modeling","url":"https://www.academia.edu/Documents/in/Molecular_modeling?f_ri=39606","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="39606" href="https://www.academia.edu/Documents/in/Strain_Rate">Strain Rate</a>,&nbsp;<script data-card-contents-for-ri="39606" type="text/json">{"id":39606,"name":"Strain Rate","url":"https://www.academia.edu/Documents/in/Strain_Rate?f_ri=39606","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="47884" href="https://www.academia.edu/Documents/in/Biological_Sciences">Biological Sciences</a>,&nbsp;<script data-card-contents-for-ri="47884" type="text/json">{"id":47884,"name":"Biological 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Cover","url":"https://www.academia.edu/Documents/in/Snow_Cover?f_ri=39606"},{"id":2246268,"name":"Cold Regions Science and Technology","url":"https://www.academia.edu/Documents/in/Cold_Regions_Science_and_Technology?f_ri=39606"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_1577845" data-work_id="1577845" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/1577845/Finite_difference_solution_of_steady_state_creep_deformations_in_a_short_fiber_composite_in_presence_of_fiber_matrix_debonding">Finite difference solution of steady state creep deformations in a short fiber composite in presence of fiber/matrix debonding</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">A finite difference technique is developed to predict the second stage creep displacement rates and stress analysis of a short fiber metal matrix composite subjecting to a constant axial load through a micromechanical approach. The... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_1577845" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">A finite difference technique is developed to predict the second stage creep displacement rates and stress analysis of a short fiber metal matrix composite subjecting to a constant axial load through a micromechanical approach. The technique is capable to take into account the presence of interfacial debonding as one of the main factors affecting the creep performance of short fiber composites. The exponential law is adopted to describe the matrix creep behavior. Also, a model for prediction of interfacial debonding at fiber/matrix interface is developed using a stress based method. The obtained results could greatly help to better understand the flow pattern of matrix material and the load transfer mechanism between fiber and matrix with and without the presence of interfacial debond. The predicted strain rate by the proposed approach exhibits good agreement with the experimental results.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/1577845" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="2ef7974ce35798440ea1a9d7643bef1f" rel="nofollow" data-download="{&quot;attachment_id&quot;:50922979,&quot;asset_id&quot;:1577845,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/50922979/download_file?st=MTczMjQwMDI0NCw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="1787912" href="https://rug.academia.edu/AliGhavami">Ali Ghavami</a><script data-card-contents-for-user="1787912" type="text/json">{"id":1787912,"first_name":"Ali","last_name":"Ghavami","domain_name":"rug","page_name":"AliGhavami","display_name":"Ali Ghavami","profile_url":"https://rug.academia.edu/AliGhavami?f_ri=39606","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_1577845 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="1577845"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 1577845, container: ".js-paper-rank-work_1577845", }); 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The technique is capable to take into account the presence of interfacial debonding as one of the main factors affecting the creep performance of short fiber composites. The exponential law is adopted to describe the matrix creep behavior. Also, a model for prediction of interfacial debonding at fiber/matrix interface is developed using a stress based method. The obtained results could greatly help to better understand the flow pattern of matrix material and the load transfer mechanism between fiber and matrix with and without the presence of interfacial debond. 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microstructures","created_at":"2016-11-30T01:29:39.360-08:00","url":"https://www.academia.edu/30172583/The_rheology_of_olivine_and_spinel_magnesium_germanate_Mg_2_GeO_4_TEM_study_of_the_defect_microstructures?f_ri=39606","dom_id":"work_30172583","summary":null,"downloadable_attachments":[{"id":50630202,"asset_id":30172583,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":57346061,"first_name":"Jean-Claude","last_name":"Doukhan","domain_name":"independent","page_name":"JeanClaudeDoukhan","display_name":"Jean-Claude Doukhan","profile_url":"https://independent.academia.edu/JeanClaudeDoukhan?f_ri=39606","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":56,"name":"Materials 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u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Calving of icebergs is an important component of mass loss from the polar ice sheets and glaciers in many parts of the world. Calving rates can increase dramatically in response to increases in velocity and/or retreat of the glacier... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_6318791" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Calving of icebergs is an important component of mass loss from the polar ice sheets and glaciers in many parts of the world. Calving rates can increase dramatically in response to increases in velocity and/or retreat of the glacier margin, with important implications for sea level change. Despite their importance, calving and related dynamic processes are poorly represented in the current generation of ice sheet models. This is largely because understanding the &#39;calving problem&#39; involves several other long-standing problems in glaciology, combined with the difficulties and dangers of field data collection. In this paper, we systematically review different aspects of the calving problem, and outline a new framework for representing calving processes in ice sheet models. We define a hierarchy of calving processes, to distinguish those that exert a fundamental control on the position of the ice margin from more localised processes responsible for individual calving events. The first-order control on calving is the strain rate arising from spatial variations in velocity (particularly sliding speed), which determines the location and depth of surface crevasses. Superimposed on this first-order process are second-order processes that can further erode the ice margin. These include: fracture propagation in response to local stress imbalances in the immediate vicinity of the glacier front; undercutting of the glacier terminus by melting at or below the waterline; and bending at the junction between grounded and buoyant parts of an ice tongue. Calving of projecting, submerged &#39;ice feet&#39; can be regarded as a third-order process, because it is paced by first- or second-order calving above the waterline. First-order calving can be represented in glacier models using a calving criterion based on crevasse depth, which is a function of longitudinal strain rate. Modelling changes in terminus position and calving rates thus reduces to the problem of determining the ice geometry and velocity distribution. Realistic solutions to the problem of modelling ice flow therefore depend critically on an appropriate choice of sliding law. Models that assume that basal velocities are controlled by basal drag can replicate much of the observed behaviour of calving glaciers with grounded termini, but an important limitation is that they cannot be used to model floating glacier termini or ice shelves. Alternative sliding laws that parameterise drag from the glacier margins provide more flexible and robust ways of representing calving in ice sheet models. Such models can explain a remarkable range of observed phenomena within a simple, unifying framework, including: downglacier increases in velocity and strain rates where basal and/or lateral drag diminishes; flow acceleration in response to thinning through time; the tendency for glaciers to stabilise at &#39;pinning points&#39; in relatively shallow water or fjord narrowings; the constraints on ice shelf stability; and the contrasts in calving rates between tidewater and freshwater calving glaciers. Many unresolved issues remain, however, including the role played by the removal of backstress in the acceleration of retreating calving glaciers, and the controls on melting at and below the waterline.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/6318791" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="cf6a2aa9b24c0e5b56124e24afed87dc" rel="nofollow" data-download="{&quot;attachment_id&quot;:48919166,&quot;asset_id&quot;:6318791,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/48919166/download_file?st=MTczMjQwMDI0NSw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="20694" href="https://dmi.academia.edu/RuthMottram">Ruth Mottram</a><script data-card-contents-for-user="20694" type="text/json">{"id":20694,"first_name":"Ruth","last_name":"Mottram","domain_name":"dmi","page_name":"RuthMottram","display_name":"Ruth Mottram","profile_url":"https://dmi.academia.edu/RuthMottram?f_ri=39606","photo":"https://0.academia-photos.com/20694/3064714/3603995/s65_ruth.mottram.jpg"}</script></span></span></li><li class="js-paper-rank-work_6318791 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="6318791"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 6318791, container: ".js-paper-rank-work_6318791", }); 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Calving rates can increase dramatically in response to increases in velocity and/or retreat of the glacier margin, with important implications for sea level change. Despite their importance, calving and related dynamic processes are poorly represented in the current generation of ice sheet models. This is largely because understanding the 'calving problem' involves several other long-standing problems in glaciology, combined with the difficulties and dangers of field data collection. In this paper, we systematically review different aspects of the calving problem, and outline a new framework for representing calving processes in ice sheet models. We define a hierarchy of calving processes, to distinguish those that exert a fundamental control on the position of the ice margin from more localised processes responsible for individual calving events. The first-order control on calving is the strain rate arising from spatial variations in velocity (particularly sliding speed), which determines the location and depth of surface crevasses. Superimposed on this first-order process are second-order processes that can further erode the ice margin. These include: fracture propagation in response to local stress imbalances in the immediate vicinity of the glacier front; undercutting of the glacier terminus by melting at or below the waterline; and bending at the junction between grounded and buoyant parts of an ice tongue. Calving of projecting, submerged 'ice feet' can be regarded as a third-order process, because it is paced by first- or second-order calving above the waterline. First-order calving can be represented in glacier models using a calving criterion based on crevasse depth, which is a function of longitudinal strain rate. Modelling changes in terminus position and calving rates thus reduces to the problem of determining the ice geometry and velocity distribution. Realistic solutions to the problem of modelling ice flow therefore depend critically on an appropriate choice of sliding law. Models that assume that basal velocities are controlled by basal drag can replicate much of the observed behaviour of calving glaciers with grounded termini, but an important limitation is that they cannot be used to model floating glacier termini or ice shelves. Alternative sliding laws that parameterise drag from the glacier margins provide more flexible and robust ways of representing calving in ice sheet models. Such models can explain a remarkable range of observed phenomena within a simple, unifying framework, including: downglacier increases in velocity and strain rates where basal and/or lateral drag diminishes; flow acceleration in response to thinning through time; the tendency for glaciers to stabilise at 'pinning points' in relatively shallow water or fjord narrowings; the constraints on ice shelf stability; and the contrasts in calving rates between tidewater and freshwater calving glaciers. Many unresolved issues remain, however, including the role played by the removal of backstress in the acceleration of retreating calving glaciers, and the controls on melting at and below the waterline.","downloadable_attachments":[{"id":48919166,"asset_id":6318791,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":20694,"first_name":"Ruth","last_name":"Mottram","domain_name":"dmi","page_name":"RuthMottram","display_name":"Ruth Mottram","profile_url":"https://dmi.academia.edu/RuthMottram?f_ri=39606","photo":"https://0.academia-photos.com/20694/3064714/3603995/s65_ruth.mottram.jpg"}],"research_interests":[{"id":400,"name":"Earth Sciences","url":"https://www.academia.edu/Documents/in/Earth_Sciences?f_ri=39606","nofollow":false},{"id":410,"name":"Glaciology","url":"https://www.academia.edu/Documents/in/Glaciology?f_ri=39606","nofollow":false},{"id":39606,"name":"Strain 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