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To improve their performance, metal materials are often enhanced through heat treatment processes. However, during this treatment, various phenomena can occur that prevent the metal from being used properly after treatment, or that alter its properties. Therefore, it is important to be aware of the common phenomena that arise during metal heat treatment and of the damage they can cause. 1 Overheating phenomenon: Excessive heating during heat treatment can easily lead to the enlargement of austenite grains, thereby reducing the mechanical properties of the parts. 1) General overheating: Excessively high heating temperatures or prolonged exposure to high temperatures, which leads to the coarsening of austenite grains, is referred to as overheating. Large austenite grains lead to a decrease in the strength and toughness of steel, an increase in the brittle transition temperature, and an increased tendency to deformation and cracking during quenching. The cause of overheating is either loss of control over the furnace temperature gauge or overheating due to improper mixing (often resulting from a lack of understanding of the manufacturing process). The overheated structure can be refined by annealing, normalizing, or multiple high-temperature temperings, allowing it to austenitize again under normal conditions. 2) Fracture morphology inheritance: When steel with overheated structure is reheated and quenched, although the austenite grains can be refined, coarse granular fracture patterns may still appear. There are many theoretical debates regarding the origin of fracture patterns. It is generally believed that excessive heating caused impurities such as MNS to dissolve into austenite and accumulate at the grain boundaries; during cooling, these impurities precipitate along these grain boundaries, making the material prone to fracturing along the coarse austenite grain boundaries when subjected to impact. 3) Geneticity of coarse microstructures: When steel parts with coarse martensite, bainite, or walzite microstructures are re-austenitized by heating them slowly to conventional quenching temperatures, or even lower, their austenite grains remain coarse. This phenomenon is known as structural geneticity. To eliminate this genetic tendency toward coarse microstructures, intermediate annealing or multiple high-temperature tempering treatments can be employed. 2 Over-sintering: Excessively high heating temperatures not only cause the austenite grains to become larger, but also lead to oxidation or melting at the grain boundaries, resulting in weakened grain boundaries; this phenomenon is known as over-sintering. The properties of steel deteriorate severely after over-sintering, and cracks form during quenching. Overheated tissue cannot be restored and must be discarded. Therefore, overheating must be avoided in the work process. 3 Decarburization and oxidation: When steel is heated, the carbon in its surface layer reacts with oxygen, hydrogen, carbon dioxide, water vapor, and other elements present in the medium (or atmosphere), resulting in a decrease in the carbon concentration on the surface. This process is known as decarburization. After quenching, decarburized steel exhibits reduced surface hardness, fatigue strength, and wear resistance; moreover, residual tensile stress forms on the surface, which can lead to the development of network-like cracks. When heated, the reaction between the iron and alloys, as well as various elements, in the surface layer of steel with oxygen, carbon dioxide, water vapor, and other substances present in the medium (or atmosphere) to form an oxide film is known as oxidation. After oxidation at high temperatures (usually above 570 degrees), the dimensional accuracy and surface finish of workpieces deteriorate. Steel parts with poor hardenability of their oxide films are prone to develop soft spots after quenching. Measures to prevent oxidation and reduce decarburization include: coating the workpiece surface, sealing and heating with stainless steel foil, using a salt bath furnace for heating, heating in a protective atmosphere (such as purified inert gases with controlled carbon levels in the furnace), and using a flame combustion furnace (to make the furnace gas reducing). 4 Hydrogen embrittlement: The phenomenon of reduced plasticity and toughness in high-strength steels when heated in a hydrogen-rich atmosphere is known as hydrogen embrittlement. Workpieces affected by hydrogen embrittlement can have this issue eliminated through dehydrogenation treatments such as tempering or aging. Heating in a vacuum, a low-hydrogen atmosphere, or an inert atmosphere can also prevent hydrogen embrittlement. In current continuous heat treatment furnaces, quenching is followed by timely tempering, and oxygen removal can be carried out during this tempering process. Based on current usage and statistical data, products treated in continuous controlled atmosphere heat treatment furnaces generally do not suffer from hydrogen embrittlement.
The four common phenomena in metal heat treatment are overheating, overburning, decarburization and oxidation, and hydrogen embrittlement. 1) Overheating refers to the situation where the heating temperature is too high or the holding time is too long, resulting in coarse austenite grains, which affects the mechanical properties of the part and increases its tendency to deform and crack. 2) Overheating refers to the situation where the heating temperature is too high, causing local oxidation or melting at the grain boundaries, which weakens those boundaries and thereby severely compromises the properties of the steel. 3) Decarburization and oxidation refer to the reactions that occur between the carbon on the surface of steel and elements such as oxygen in the surrounding medium during heating, resulting in a decrease in the carbon concentration in the surface layer; this is known as decarburization ; The iron on the surface of steel reacts with oxygen in the medium to form an oxide film, a process known as oxidation. Both decarburization and oxidation reduce the hardness, fatigue strength, and wear resistance of steel. 4) Hydrogen embrittlement refers to the phenomenon of reduced plasticity and toughness in high-strength steels when heated in a hydrogen-rich atmosphere. Hydrogen embrittlement can be eliminated through dehydrogenation treatments, such as tempering and aging. Heating in a vacuum, low-hydrogen atmosphere, or inert atmosphere can prevent the occurrence of hydrogen embrittlement. Understanding and mastering these phenomena can help us avoid adverse effects during metal heat treatment, thereby ensuring the performance and quality of metal materials. .