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Stainless steel is used in many construction sites because it is more resistant to rust and corrosion than iron. When using stainless steel, it is very important to know the temperature range that the material can withstand. There are different types of stainless steel, and each has a different heat resistance temperature. Since each type of stainless steel has situations where it is suitable or not, knowing the heat resistance temperature in advance will help you choose the right material. This time, we will introduce the heat resistance temperatures of various stainless steels as well as the characteristics associated with them. Heat resistance temperature of stainless steel: Stainless steel is the translation of the English term “stainless steel”. The literal translation is steel that does not rust easily, but in reality, the understanding of steel that does not rust easily is correct. Unlike heat-resistant steels abbreviated as SUH, stainless steel (SUS) is manufactured with the aim of improving corrosion resistance at room temperature. Therefore, stainless steel does not have special heat resistance. However, the general heat resistance temperature of stainless steel is 700°C to 800°C. In particular, it is not suitable for use in environments above 900°C. Ensure at least around 500°C, and it can be used with confidence within the normal range of operation. Here, we introduce the heat resistance temperatures of various stainless steels. The heat resistance of metals is considered from various aspects, but in this article, \"heat resistance temperature\" refers to the tensile strength of the metal at high temperatures (700°C to 800°C). I. Austenitic stainless steel: Austenitic stainless steel is a type of stainless steel with good balance of properties; it is relatively easy to process and possesses excellent corrosion resistance. In addition to ordinary steel, it also contains chromium for corrosion resistance and nickel to stabilize the metal composition. Due to its excellent corrosion resistance, it is often used as a material for products exposed to rain and wind. Specifically, springs, belt conveyors, equipment, industrial furnaces, etc. As for the heat resistance temperature, it can reach around 600°C; its strength lies between that of ferrite and martensite. However, above 600°C, it is the most durable among other stainless steels. II. Ferritic stainless steels: The characteristic of ferritic stainless steels is that they contain no nickel. Since it contains no nickel, no protective film is formed on the metal surface. Although its corrosion resistance and strength are inferior to those of other stainless steels, it can be produced at a lower cost. Nevertheless, its corrosion resistance is the lowest among stainless steels; as a result, it has a wide range of applications, including kitchen utensils. Specifically, household appliance parts, bolts and nuts, food processing equipment, bicycle rims, etc. It is characterized by strong magnetism, and its material can be determined by whether it sticks to a magnet. Regarding the heat resistance of this product, although it has high heat resistance at around 300°C to 400°C, it drops sharply above 500°C. III. Martensitic Mexico: Martensite is a type that possesses the property of being able to increase its strength through post-quenching. In stainless steel, it has a relatively high carbon content and a low chromium content. Therefore, compared to other stainless steels, it has a composition that emphasizes strength, and is often used in products where strength is more important than corrosion resistance. Specifically, cutting tools, valves, brakes, bearings, turbine blades, etc. Regarding the heat resistance temperature, it exhibits higher strength than other stainless steels below 500°C, but its heat resistance drops sharply at temperatures above 500°C. IV. Precipitation-hardening stainless steel: Precipitation hardening is a type of stainless steel that is hardened through tempering. It is characterized by the use of intermetallic compounds in place of the carbides found in ordinary stainless steel, and its price is higher because its manufacturing process is more complex than that of other stainless steels. However, due to its high performance, it is often used as a material for high-end products. It is specifically used for shafts, turbines, springs, instrument parts, etc. Since it is a material designed for normal temperatures (mainly below 550°C), its heat resistance is lower than that of other stainless steels. Specifically, although it maintains high strength below 500°C, its strength drops sharply above that temperature.
The heat resistance temperature of stainless steel varies depending on the type. Generally, the heat resistance of stainless steel ranges from 700°C to 800°C, but it is not suitable for use in environments above 900°C. Below are the heat resistance temperatures and characteristics of various stainless steels: 1. Austenitic stainless steel: Its heat resistance temperature is around 600°C; it possesses good corrosion resistance and workability, and is often used in products exposed to rain and wind. 2. Ferritic stainless steel: It has a relatively low heat resistance, with good heat tolerance around 300°C to 400°C; it is suitable for use in various household appliance components, bolts, and nuts. 3. Martensitic stainless steel: It has a high heat resistance and high strength at temperatures below 500°C; it is commonly used in products where strength is more important than corrosion resistance. 4. Precipitation-hardening stainless steel: Due to its complex manufacturing process, it is relatively expensive. Its heat resistance is relatively low; it maintains high strength below 500°C, but its strength drops sharply above that temperature. It should be noted that the aforementioned heat resistance temperatures are merely general reference values. In actual applications, other factors must also be considered, such as the chemical composition of the material, stress, and the environment. .