{"id":95,"date":"2022-05-08T12:03:58","date_gmt":"2022-05-08T11:03:58","guid":{"rendered":"http:\/\/www.univ-tebessa.dz\/tisc\/?p=95"},"modified":"2022-05-08T12:04:40","modified_gmt":"2022-05-08T11:04:40","slug":"composite-structure-publication-out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs","status":"publish","type":"post","link":"https:\/\/www.univ-tebessa.dz\/tisc\/2022\/05\/08\/composite-structure-publication-out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs\/","title":{"rendered":"composite structure publication\/ Out-of-plane elastic constants of curved cell walls honeycombs"},"content":{"rendered":"<p>Out-of-plane elastic constants of curved cell walls honeycombs<\/p>\n<p>The work describes the out\u2010of\u2010plane properties of a curved wall honeycomb structure evaluated using analyt-<br \/>\nical models and \ufb01nite elements techniques. Out\u2010of\u2010plane properties are calculated using a theoretical approach<br \/>\nbased on energy theorems and validated using a full\u2010scale \ufb01nite element technique to simulate transverse shear<br \/>\ntests. The effects of the curvature of the walls and the depth of the honeycomb cells on the out\u2010of\u2010plane elastic<br \/>\nconstants are evaluated and excellent agreement is observed between theoretical and numerical models. These<br \/>\ncurved cell wall honeycombs feature speci\ufb01c (i.e., relative density weighted) highly tailorable upper shear<br \/>\nbounds that shift their maximum values with the radiuses of the curved cell walls at different internal cell<br \/>\nangles. Finally, it is also shown that these honeycombs exhibit a particular topology with a speci\ufb01c upper<br \/>\nboundary independent of the non\u2010zero curvature cell wall adopted and only dependent upon the internal cell<br \/>\nangle.<\/p>\n<h2><a href=\"http:\/\/www.univ-tebessa.dz\/vrpg\/wp-content\/uploads\/sites\/24\/2021\/04\/composite-structure.pdf\">dowload the file<\/a><\/h2>\n","protected":false},"excerpt":{"rendered":"<p>Out-of-plane elastic constants of curved cell walls honeycombs The work describes the out\u2010of\u2010plane properties of a curved wall honeycomb structure evaluated using analyt- ical models and \ufb01nite elements techniques. Out\u2010of\u2010plane properties are calculated using a theoretical approach based on energy theorems and validated using a full\u2010scale \ufb01nite element technique to simulate transverse shear tests. The effects of the curvature of the walls and the depth of the honeycomb cells on the out\u2010of\u2010plane elastic constants are evaluated and excellent agreement is observed between theoretical and numerical models. These curved cell wall honeycombs feature speci\ufb01c (i.e., relative density weighted) highly tailorable upper shear bounds that shift their maximum values with the radiuses of the curved cell walls at different internal cell angles. Finally, it is also shown that these honeycombs exhibit a particular topology with a speci\ufb01c upper boundary independent of the non\u2010zero curvature cell wall adopted and only dependent upon the internal cell angle. dowload the file<\/p>\n","protected":false},"author":1,"featured_media":96,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"_uag_custom_page_level_css":"","_coblocks_attr":"","_coblocks_dimensions":"","_coblocks_responsive_height":"","_coblocks_accordion_ie_support":"","ocean_front_end_style_editor":"no","ocean_post_layout":"","ocean_both_sidebars_style":"","ocean_both_sidebars_content_width":0,"ocean_both_sidebars_sidebars_width":0,"ocean_sidebar":"0","ocean_second_sidebar":"0","ocean_disable_margins":"enable","ocean_add_body_class":"","ocean_shortcode_before_top_bar":"","ocean_shortcode_after_top_bar":"","ocean_shortcode_before_header":"","ocean_shortcode_after_header":"","ocean_has_shortcode":"","ocean_shortcode_after_title":"","ocean_shortcode_before_footer_widgets":"","ocean_shortcode_after_footer_widgets":"","ocean_shortcode_before_footer_bottom":"","ocean_shortcode_after_footer_bottom":"","ocean_display_top_bar":"default","ocean_display_header":"default","ocean_header_style":"","ocean_center_header_left_menu":"0","ocean_custom_header_template":"0","ocean_custom_logo":0,"ocean_custom_retina_logo":0,"ocean_custom_logo_max_width":0,"ocean_custom_logo_tablet_max_width":0,"ocean_custom_logo_mobile_max_width":0,"ocean_custom_logo_max_height":0,"ocean_custom_logo_tablet_max_height":0,"ocean_custom_logo_mobile_max_height":0,"ocean_header_custom_menu":"0","ocean_menu_typo_font_family":"0","ocean_menu_typo_font_subset":"","ocean_menu_typo_font_size":0,"ocean_menu_typo_font_size_tablet":0,"ocean_menu_typo_font_size_mobile":0,"ocean_menu_typo_font_size_unit":"px","ocean_menu_typo_font_weight":"","ocean_menu_typo_font_weight_tablet":"","ocean_menu_typo_font_weight_mobile":"","ocean_menu_typo_transform":"","ocean_menu_typo_transform_tablet":"","ocean_menu_typo_transform_mobile":"","ocean_menu_typo_line_height":0,"ocean_menu_typo_line_height_tablet":0,"ocean_menu_typo_line_height_mobile":0,"ocean_menu_typo_line_height_unit":"","ocean_menu_typo_spacing":0,"ocean_menu_typo_spacing_tablet":0,"ocean_menu_typo_spacing_mobile":0,"ocean_menu_typo_spacing_unit":"","ocean_menu_link_color":"","ocean_menu_link_color_hover":"","ocean_menu_link_color_active":"","ocean_menu_link_background":"","ocean_menu_link_hover_background":"","ocean_menu_link_active_background":"","ocean_menu_social_links_bg":"","ocean_menu_social_hover_links_bg":"","ocean_menu_social_links_color":"","ocean_menu_social_hover_links_color":"","ocean_disable_title":"default","ocean_disable_heading":"default","ocean_post_title":"","ocean_post_subheading":"","ocean_post_title_style":"","ocean_post_title_background_color":"","ocean_post_title_background":0,"ocean_post_title_bg_image_position":"","ocean_post_title_bg_image_attachment":"","ocean_post_title_bg_image_repeat":"","ocean_post_title_bg_image_size":"","ocean_post_title_height":0,"ocean_post_title_bg_overlay":0.5,"ocean_post_title_bg_overlay_color":"","ocean_disable_breadcrumbs":"default","ocean_breadcrumbs_color":"","ocean_breadcrumbs_separator_color":"","ocean_breadcrumbs_links_color":"","ocean_breadcrumbs_links_hover_color":"","ocean_display_footer_widgets":"default","ocean_display_footer_bottom":"default","ocean_custom_footer_template":"0","ocean_post_oembed":"","ocean_post_self_hosted_media":"","ocean_post_video_embed":"","ocean_link_format":"","ocean_link_format_target":"self","ocean_quote_format":"","ocean_quote_format_link":"post","ocean_gallery_link_images":"off","ocean_gallery_id":[],"footnotes":""},"categories":[1],"tags":[],"class_list":["post-95","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-uncategorised","entry","has-media"],"acf":[],"spectra_blocks_featured_image_url":{"thumbnail":{"url":"https:\/\/www.univ-tebessa.dz\/tisc\/wp-content\/uploads\/sites\/39\/2022\/05\/Out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs-150x150.png","width":150,"height":150},"medium":{"url":"https:\/\/www.univ-tebessa.dz\/tisc\/wp-content\/uploads\/sites\/39\/2022\/05\/Out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs-300x125.png","width":300,"height":125},"medium_large":{"url":"https:\/\/www.univ-tebessa.dz\/tisc\/wp-content\/uploads\/sites\/39\/2022\/05\/Out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs-768x319.png","width":768,"height":319},"large":{"url":"https:\/\/www.univ-tebessa.dz\/tisc\/wp-content\/uploads\/sites\/39\/2022\/05\/Out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs-1024x426.png","width":1024,"height":426},"full":{"url":"https:\/\/www.univ-tebessa.dz\/tisc\/wp-content\/uploads\/sites\/39\/2022\/05\/Out-of-plane-elastic-constants-of-curved-cell-walls-honeycombs.png","width":1246,"height":518}},"spectra_blocks_author_info":{"display_name":"webmaster","avatar_url":"https:\/\/secure.gravatar.com\/avatar\/8301651c8d0d959ad9af5f7c28d9663ad3fb20edb198179a1a7d8fa3b030c35a?s=96&d=mm&r=g","author_link":"https:\/\/www.univ-tebessa.dz\/tisc\/au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elastic constants of curved cell walls honeycombs The work describes the out\u2010of\u2010plane properties of a curved wall honeycomb structure evaluated using analyt- ical models and \ufb01nite elements techniques. Out\u2010of\u2010plane properties are calculated using a theoretical approach based on energy theorems and validated using a full\u2010scale \ufb01nite element technique to simulate transverse shear tests. 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