{"id":600,"date":"2018-10-17T00:14:39","date_gmt":"2018-10-16T16:14:39","guid":{"rendered":"https:\/\/plasticmoldco.com\/?p=600"},"modified":"2018-10-17T00:14:39","modified_gmt":"2018-10-16T16:14:39","slug":"chapter-25-2-residual-stress-china-injection-mold","status":"publish","type":"post","link":"https:\/\/www.plasticmoldco.com\/fr\/2018\/10\/17\/chapitre-25-2-contraintes-residuelles-china-moule-dinjection\/","title":{"rendered":"Chapitre 25-2, Contraintes r\u00e9siduelles, moule d'injection en porcelaine"},"content":{"rendered":"<h1>Refroidissement d\u00e9s\u00e9quilibr\u00e9<\/h1>\n<p>de la paroi du moule \u00e0 son centre peut provoquer des contraintes r\u00e9siduelles induites par la chaleur. En outre, des contraintes r\u00e9siduelles asym\u00e9triques induites par la chaleur peuvent se produire si la vitesse de refroidissement des deux surfaces est d\u00e9s\u00e9quilibr\u00e9e. Un tel refroidissement d\u00e9s\u00e9quilibr\u00e9 entra\u00eenera un mod\u00e8le de tension-compression asym\u00e9trique sur la pi\u00e8ce, provoquant un moment de flexion qui tend \u00e0 causer le gauchissement de la pi\u00e8ce. Ce ph\u00e9nom\u00e8ne est illustr\u00e9 dans la figure 3 ci-dessous. Par cons\u00e9quent, les pi\u00e8ces dont l'\u00e9paisseur n'est pas uniforme ou les zones mal refroidies sont sujettes \u00e0 un refroidissement d\u00e9s\u00e9quilibr\u00e9 et donc \u00e0 des contraintes thermiques r\u00e9siduelles. Pour les pi\u00e8ces mod\u00e9r\u00e9ment complexes, la distribution des contraintes r\u00e9siduelles induites par la chaleur est encore compliqu\u00e9e par une \u00e9paisseur de paroi non uniforme, le refroidissement du moule et les contraintes du moule en mati\u00e8re de libre contraction.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-1328\" title=\"Refroidissement non \u00e9quilibr\u00e9\" src=\"https:\/\/web.archive.org\/web\/20130131102852im_\/http:\/\/www.moldchina.org\/wp-content\/uploads\/2011\/10\/Unbalanced-cooling.gif\" alt=\"\" width=\"584\" height=\"287\" \/><\/p>\n<h3>FIGURE 3. Les contraintes r\u00e9siduelles asym\u00e9triques induites par la chaleur, caus\u00e9es par un refroidissement d\u00e9s\u00e9quilibr\u00e9 dans l'\u00e9paisseur de la pi\u00e8ce moul\u00e9e, entra\u00eenent un gauchissement de la pi\u00e8ce.<\/h3>\n<h2>Densit\u00e9s de cong\u00e9lation variables<\/h2>\n<p>La figure ci-dessous illustre la variation des densit\u00e9s fig\u00e9es caus\u00e9e par l'historique de la pression de garnissage.<\/p>\n<h3>Profil de temp\u00e9rature<\/h3>\n<p>La figure de gauche repr\u00e9sente le profil de temp\u00e9rature \u00e0 un endroit de la pi\u00e8ce. Pour les besoins de l'illustration, la pi\u00e8ce est divis\u00e9e en huit couches \u00e9gales sur toute l'\u00e9paisseur de la pi\u00e8ce. Le profil montre la temp\u00e9rature \u00e0 l'instant de solidification (cong\u00e9lation) pour chaque couche (t1 \u00e0 t8). Notez que le mat\u00e9riau commence \u00e0 se solidifier \u00e0 partir des couches ext\u00e9rieures et que l'interface gel\u00e9e se d\u00e9place vers l'int\u00e9rieur avec le temps.<\/p>\n<h3>Trace de pression<\/h3>\n<p>La figure centrale pr\u00e9sente un historique de pression typique, montrant les niveaux de pression (P1 \u00e0 P8) au fur et \u00e0 mesure que chaque couche se solidifie. En g\u00e9n\u00e9ral, la pression augmente progressivement au cours du remplissage, atteignant un maximum au d\u00e9but de la phase de tassement, puis commence \u00e0 diminuer en raison du refroidissement et de la d\u00e9cong\u00e9lation de la porte. En cons\u00e9quence, le mat\u00e9riau des couches externes et des couches centrales se solidifie lorsque le niveau de pression est faible, tandis que les couches interm\u00e9diaires g\u00e8lent sous l'effet d'une pression de remplissage \u00e9lev\u00e9e.<\/p>\n<h3>Volume sp\u00e9cifique congel\u00e9<\/h3>\n<p>La figure de droite repr\u00e9sente la trace du volume sp\u00e9cifique pour la couche 5 sur un graphique pvT et les volumes sp\u00e9cifiques gel\u00e9s finaux pour toutes les couches, marqu\u00e9s par les cercles pleins num\u00e9rot\u00e9s.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-1329\" title=\"Volume gel\u00e9-sp\u00e9cifique\" src=\"https:\/\/web.archive.org\/web\/20130131102852im_\/http:\/\/www.moldchina.org\/wp-content\/uploads\/2011\/10\/Frozen-in-specific-volume.gif\" alt=\"\" width=\"680\" height=\"251\" \/><\/p>\n<h3>FIGURE 4. Facteurs influen\u00e7ant l'\u00e9volution du volume sp\u00e9cifique \"fig\u00e9\".<br \/>\nR\u00e9tr\u00e9cissement diff\u00e9rentiel<\/h3>\n<p>Compte tenu des volumes sp\u00e9cifiques fig\u00e9s, les diff\u00e9rentes couches se r\u00e9tracteront diff\u00e9remment, selon les courbes pvT qui r\u00e9gissent le comportement du mat\u00e9riau en mati\u00e8re de r\u00e9tr\u00e9cissement. Hypoth\u00e9tiquement, si chaque couche \u00e9tait d\u00e9tach\u00e9e des autres (comme le montre la figure 5), les \u00e9l\u00e9ments mat\u00e9riels de la figure de gauche ci-dessous auraient r\u00e9tr\u00e9ci comme ceux de la figure du centre. Dans ce cas, les couches interm\u00e9diaires tendent \u00e0 se r\u00e9tracter moins que les autres en raison d'un volume sp\u00e9cifique congel\u00e9 plus faible (ou, de mani\u00e8re \u00e9quivalente, d'une densit\u00e9 congel\u00e9e plus \u00e9lev\u00e9e). En r\u00e9alit\u00e9, toutes les couches sont li\u00e9es entre elles. Par cons\u00e9quent, le r\u00e9sultat final sera une distribution compromise de la r\u00e9traction, les couches interm\u00e9diaires \u00e9tant comprim\u00e9es et les couches ext\u00e9rieures et centrales \u00e9tant \u00e9tir\u00e9es.<\/p>","protected":false},"excerpt":{"rendered":"<p>Unbalanced cooling from the mold wall to its center can cause thermal-induced residual stress. Furthermore, asymmetrical thermal-induced residual stress can occur if the cooling rate of the two surfaces is unbalanced. Such unbalanced cooling will result in an asymmetric tension-compression pattern across the part, causing a bending moment that tends to cause part warpage. This [&hellip;]<\/p>","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_et_pb_use_builder":"","_et_pb_old_content":"","_et_gb_content_width":"","footnotes":""},"categories":[15],"tags":[],"class_list":["post-600","post","type-post","status-publish","format-standard","hentry","category-mould-technology-blog-1"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v26.4 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Chapter 25-2, Residual stress, china injection mold - Plastic Mold | China Mold Maker<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/www.plasticmoldco.com\/fr\/2018\/10\/17\/25-2-fejezet-marado-feszultseg-porcelan-froccsontoforma\/\" \/>\n<meta property=\"og:locale\" content=\"fr_FR\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Chapter 25-2, Residual stress, china injection mold - Plastic Mold | China Mold Maker\" \/>\n<meta property=\"og:description\" content=\"Unbalanced cooling from the mold wall to its center can cause thermal-induced residual stress. 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