[{"data":1,"prerenderedAt":33},["ShallowReactive",2],{"topic-en-strength-of-materials\u002Ftension-and-compression\u002Fmechanical-properties-of-materials\u002Fductility-and-brittleness-of-materials":3},{"topic":4,"trail":14,"children":28,"tasks":29,"alternates":30},{"id":5,"name":6,"locale":7,"path":8,"seo_title":9,"seo_description":10,"seo_text":11,"content_html":12,"content_chunks":13},112,"Ductility and Brittleness of Materials","en","strength-of-materials\u002Ftension-and-compression\u002Fmechanical-properties-of-materials\u002Fductility-and-brittleness-of-materials","Ductility and Brittleness of Materials — Deformation and Fracture","Ductile and brittle behavior, permanent strain, elongation and reduction of area, and their significance for engineering material behavior.","This topic explains the difference between ductile and brittle material behavior. It covers permanent deformation, elongation and reduction of area after fracture, and the engineering importance of ductility for stress redistribution and warning before failure.","\u003Cp>\u003Cstrong>Ductility\u003C\u002Fstrong> is the ability of a material to undergo appreciable irreversible deformation before fracture. \u003Cstrong>Brittle behavior\u003C\u002Fstrong> is characterized by fracture with relatively little plastic deformation.\u003C\u002Fp>\u003Ch2>Measures of ductility\u003C\u002Fh2>\u003Cp>After a tensile test, ductility is commonly characterized by percentage elongation and percentage reduction of area. Under comparable test conditions, larger values indicate that the specimen accumulated more plastic deformation before fracture.\u003C\u002Fp>\u003Ch2>Why ductility matters\u003C\u002Fh2>\u003Cp>Plastic deformation can allow local redistribution of stress and may provide visible warning of overload before failure. Brittle fracture often develops with little preceding plastic deformation, so defects, stress concentrations, temperature, and loading conditions require particular attention.\u003C\u002Fp>\u003Ch2>Not an absolute classification\u003C\u002Fh2>\u003Cp>Material behavior depends not only on composition or material name. Temperature, strain rate, stress state, specimen geometry, and environment can change the observed mode of deformation and fracture.\u003C\u002Fp>",[],[15,19,23,27],{"id":16,"name":17,"path":18},45,"Strength of Materials","strength-of-materials",{"id":20,"name":21,"path":22},46,"Tension and Compression","strength-of-materials\u002Ftension-and-compression",{"id":24,"name":25,"path":26},48,"Mechanical Properties of Materials","strength-of-materials\u002Ftension-and-compression\u002Fmechanical-properties-of-materials",{"id":5,"name":6,"path":8},[],[],{"en":31,"uk":32},"https:\u002F\u002Fmechclassroom.com\u002Fen\u002Ftopics\u002Fstrength-of-materials\u002Ftension-and-compression\u002Fmechanical-properties-of-materials\u002Fductility-and-brittleness-of-materials","https:\u002F\u002Fmechclassroom.com\u002Ftopics\u002Fopir-materialiv\u002Froztyah-i-stysk\u002Fmekhanichni-vlastyvosti-materialiv\u002Fplastychnist-i-krykhkist-materialiv",1787712539045]