材料科学. 材料科学. 材料科学. 材料科学. 材料科学. 材料科学. 材料科学. ストレスをモデリングし,ハードな方法で硬化します
1Fraunhofer-Institut für Werkstoffmechanik, Freiburg, Germany. gumbsch@iwm.fhg.de
まとめ
金属のプラスチックの変形は,張力加熱を引き起こす. 新しいシミュレーションにより,コリネア脱位相互作用が,この硬化に大きく貢献し,将来のエンジニアリングモデルを導くことが明らかになりました.
科学分野:
- マテリアルサイエンス 材料科学
- コンピューティング・マテリアル・サイエンス・サイエンス
- 固体力学 固体力学とは
背景:
- 金属のプラスチックの変形は,ストレスの硬化,ストレスの増加につながります.
- 現在のエンジニアリングモデルは,金属の変形と硬化行動の近似的な記述を提供します.
- 張力加熱の物理的基礎を理解することは,材料工学にとって極めて重要です.
関連する概念動画
Plasticity
Plasticity is the property where an object loses its elasticity and undergoes irreversible deformation, even after the deformation forces are eliminated. If a material deforms irreversibly without increasing stress or load, then this is called ideal plasticity. For example, when a force is applied to an aluminum rod, it changes its shape, but it does not return to its original shape once the force is removed. Plastic deformation or ductility is thus a permanent deformation or change in the...
Stress-Strain Diagram - Ductile Materials
The stress-strain relationship in ductile materials such as structural steel or aluminium is intricate and progresses through several stages. When a specimen is loaded, it initially exhibits a linear length increase, depicted by a steep straight line on the stress-strain diagram. It indicates the material is elastically deforming and will return to its original shape once unloaded. However, when a critical stress value is reached, plastic deformation begins. This stage sees substantial...
Stress-Strain Diagram - Brittle Materials
Brittle materials, including glass, cast iron, and stone, exhibit unique characteristics. They fracture without considerable change in their elongation rate, indicating that their breaking and ultimate strength are equivalent. Such materials also show lower strain levels at the point of rupture. The failure in brittle materials predominantly results from normal stresses, as evidenced by the rupture created along a surface perpendicular to the applied load. These materials do not display...
Hooke's Law
Hooke's law, a pivotal principle in material science, establishes that the strain a material undergoes is directly proportional to the applied stress, defined by a factor called the modulus of elasticity or Young's modulus.
Plastic Behavior
A material's elastic behavior is characterized by the disappearance of stress once the load is removed, allowing the material to return to its original state. However, when stress surpasses the yield point, yielding commences, marking the onset of plastic deformation or permanent set. This change from elastic to plastic behavior is influenced by the peak stress value and the duration before the load is removed. An intriguing observation occurs when a specimen is loaded, unloaded, and reloaded.
Strain-Energy Density
Understanding the strain energy density in materials under axial load is crucial for evaluating their mechanical behavior and durability. When a rod is subjected to such a load, it elongates and stores energy, known as strain energy, as potential energy within the material. This energy is measured in terms of energy per unit volume.
In the elastic region of a material, the relationship between the stress and the strain is linear and follows Hooke's Law. The strain energy density in this region...
In the elastic region of a material, the relationship between the stress and the strain is linear and follows Hooke's Law. The strain energy density in this region...


