• 201 Stainless Steel Coil / Sheet System 1
  • 201 Stainless Steel Coil / Sheet System 2
  • 201 Stainless Steel Coil / Sheet System 3
201 Stainless Steel Coil / Sheet

201 Stainless Steel Coil / Sheet

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Loading Port:
China Main Port
Payment Terms:
TT or LC
Min Order Qty:
20 Ton m.t.
Supply Capability:
20000 per month m.t./month

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201 Stainless Steel Coil / Sheet

 

1.Size of 201 Stainless Steel Coil : Thickness: 0.3mm ~~ 6mm, Width: 650mm ~~ 2100mm, Length: to be customized.

 

2.Material of 201 Stainless Steel Coil :SUS201,202,301,304,304L,316,316L ,321 etc.

 

3.Standard of 201 Stainless Steel Coil :AISI,JIS,GB,DIN

 

4.Finish of 201 Stainless Steel Coil :Black, No.1, 2B, 2D, BA, NO.3, NO.4, SB, NO.8, HL

 

5.Testing of 201 Stainless Steel Coil :Each heat number and batch must be tested for both chemical and mechanical properties

 

 

Stainless Steel Coil / Sheet

Standard

JIS, AISI, ASTM, GB, DIN, EN

Property

Stainless steel coil, Stainless steel sheet, Stainless steel plate, stainless steel

Length

1-12m

Quality

prime

Manufacturing Process

factory direct sale

Surface Treatment

Black, No.1, 2B, 2D, BA, NO.3, NO.4, SB, NO.8, HL

Main Grade

201,201,301,302,303,304,321,316,316L,309,310,309H,

310S,431,430,420,430F

Model Number

304 stainless steel channel,201 stainless steel channel

MOQ

20 ton

Trade Term

FOB China mainport

Payment term

T/T or L/C

Price

negotiable

Packing

Export packing

Dilvery time

20days or depend on order quantity

Container

The capacity for a 20" container:20-24tons

 

 

 

 

Q:What is the electrical conductivity of stainless steel strips?
The electrical conductivity of stainless steel strips may vary depending on the specific type and composition of stainless steel. In general, stainless steel is not as conductive as metals such as copper or aluminum. This is mainly due to stainless steel's higher resistance to the flow of electric current. However, there are stainless steel alloys that have been specially formulated to improve electrical conductivity. These alloys often contain higher amounts of elements like nickel or copper, which enhance the material's conductivity. It is important to consider that factors like temperature, surface condition, and strip thickness can also affect the electrical conductivity of stainless steel. Therefore, it is recommended to refer to specific data or consult with manufacturers to obtain accurate information regarding the electrical conductivity of stainless steel strips.
Q:What is the thermal expansion coefficient of stainless steel strips?
The thermal expansion coefficient of stainless steel strips can vary depending on the specific grade used. Compared to other materials, stainless steel generally has a low coefficient of thermal expansion. This coefficient measures the extent of expansion or contraction a material undergoes with temperature changes. Typically, stainless steel exhibits a thermal expansion coefficient ranging from approximately 10 to 17 µm/m°C (micrometers per meter per degree Celsius). This implies that with each degree Celsius rise in temperature, a stainless steel strip will lengthen by around 10 to 17 micrometers per meter. It is worth noting that the exact coefficient of thermal expansion may differ based on the specific alloy composition and heat treatment applied to the stainless steel. Therefore, it is advisable to refer to the manufacturer's specifications or carry out specific testing to ascertain the precise thermal expansion coefficient of a particular stainless steel strip.
Q:What are the main properties of 111 stainless steel strips?
The main properties of 111 stainless steel strips include high corrosion resistance, excellent mechanical properties, and good formability. These strips are made from austenitic stainless steel, which contains high levels of chromium and nickel. The high chromium content provides superior resistance to corrosion, making it suitable for various applications in industries such as automotive, aerospace, and construction. Additionally, 111 stainless steel strips possess excellent mechanical properties, such as high tensile strength and good impact resistance. This makes them ideal for applications that require strength and durability. Moreover, they exhibit good formability, allowing for easy shaping and fabrication into desired forms or components. Overall, 111 stainless steel strips offer a combination of corrosion resistance, mechanical strength, and formability, making them versatile and widely used in various industries.
Q:Are stainless steel strips resistant to atmospheric corrosion?
Yes, stainless steel strips are highly resistant to atmospheric corrosion. The presence of chromium in stainless steel forms a protective oxide layer on the surface, which prevents oxidation and corrosion when exposed to various atmospheric conditions.
Q:How do stainless steel strips resist stress corrosion cracking?
Due to their unique composition and properties, stainless steel strips are able to withstand stress corrosion cracking (SCC). The primary reason for this resistance is the presence of chromium, which creates a passive oxide layer on the steel's surface. This layer acts as a protective barrier against corrosive environments. The chromium oxide film, also known as the passive oxide layer, has the ability to self-repair and continually forms, even if it becomes damaged or scratched. It effectively prevents corrosive agents, like chlorides, from penetrating the material and inhibits the initiation and spread of stress corrosion cracking. Additionally, stainless steel strips contain other alloying elements such as nickel and molybdenum, which further enhance their resistance to SCC. Nickel improves the stability of the oxide layer and overall corrosion resistance, while molybdenum enhances resistance to pitting and crevice corrosion often associated with SCC. The microstructure of stainless steel also plays a crucial role in its resistance to SCC. Stainless steel strips are engineered to have a fine-grained microstructure, which enhances their corrosion resistance. The small grain size reduces susceptibility to intergranular corrosion, a common precursor to stress corrosion cracking. Surface treatments and finishes can also contribute to the resistance against SCC. Processes like passivation, pickling, or electropolishing can remove contaminants and enhance the formation of the protective oxide layer on the surface of stainless steel strips. Overall, the resistance of stainless steel strips to stress corrosion cracking is achieved through the combined effects of the chromium oxide film, alloying elements, fine-grained microstructure, and appropriate surface treatments. These factors work together to provide excellent corrosion resistance, making stainless steel strips a reliable and durable material choice for various applications.
Q:How do stainless steel strips resist staining?
Stainless steel strips resist staining primarily due to the presence of chromium in their composition. Chromium forms a passive layer on the surface of the stainless steel, which acts as a protective barrier against corrosion and staining. This passive layer is formed when chromium reacts with oxygen in the air, creating a thin oxide film that prevents further oxidation and staining of the steel. Additionally, stainless steel strips may contain other alloying elements such as nickel, molybdenum, and nitrogen, which further enhance their resistance to staining. The combination of these elements and the formation of the passive layer make stainless steel strips highly resistant to staining, even in harsh environments or when exposed to corrosive substances.
Q:Are stainless steel strips recyclable?
Indeed, the recyclability of stainless steel strips is undeniable. With its remarkable value and adaptability, stainless steel can be recycled indefinitely while retaining its exceptional properties. The recycling procedure entails melting down the stainless steel strips and reshaping them into novel items. This not only aids in the preservation of precious resources but also diminishes the environmental repercussions associated with mining and producing fresh stainless steel. By recycling stainless steel strips, we adopt a sustainable and responsible method that actively contributes to the establishment of a circular economy.
Q:Can stainless steel strips be used in the production of architectural fittings?
Yes, stainless steel strips can be used in the production of architectural fittings. Stainless steel is a durable and corrosion-resistant material, making it suitable for various architectural applications. Stainless steel strips can be fabricated into different shapes and sizes to create fittings such as handles, brackets, hinges, and decorative elements, adding both functionality and aesthetic appeal to architectural designs.
Q:How do stainless steel strips perform in cryogenic environments?
The outstanding performance of stainless steel strips in cryogenic environments is well-known. Stainless steel strips possess exceptional resistance to extreme low temperatures, thanks to their unique composition and properties. In cryogenic temperatures, stainless steel strips exhibit remarkable strength, toughness, and corrosion resistance, rendering them highly suitable for a wide range of applications. Even under extremely cold conditions, stainless steel maintains its mechanical properties without becoming brittle or cracking, ensuring the structural integrity of the material. The corrosion resistance of stainless steel is particularly advantageous in cryogenic environments, where moisture and other corrosive elements can be present. The formation of a passive oxide layer on the surface of stainless steel protects it from chemical reactions and oxidation, guaranteeing its durability and longevity in cryogenic applications. Moreover, stainless steel strips possess excellent thermal conductivity, facilitating efficient heat transfer in cryogenic systems. This is especially beneficial in applications like cryogenic storage tanks, where maintaining the temperature of stored materials is crucial. Overall, stainless steel strips exhibit exceptional performance in cryogenic environments, combining strength, toughness, corrosion resistance, and thermal conductivity. These properties make stainless steel the preferred choice in various industries, including aerospace, energy, medical, and research, where cryogenic conditions are prevalent.
Q:Can stainless steel strips be used in telecommunications applications?
Telecommunications applications can indeed make use of stainless steel strips. The reason for this is that stainless steel possesses exceptional corrosion resistance and durability, rendering it appropriate for diverse industries, including telecommunications. Its usefulness in telecommunications extends to various applications such as cable trays, cable conduits, antenna brackets, enclosures, and support structures. Due to their high strength-to-weight ratio, ability to withstand extreme temperatures, and capacity for electromagnetic interference (EMI) shielding, stainless steel strips are frequently favored in telecommunications. Furthermore, they can be readily fabricated and tailored to meet specific needs, making them a versatile option for telecommunications applications.

1. Manufacturer Overview

Location Hebei,China
Year Established 1989
Annual Output Value Above US$160 Thousand
Main Markets Europe, East Asia and Southeast Asia
Company Certifications ISO9001:2000;

2. Manufacturer Certificates

a) Certification Name  
Range  
Reference  
Validity Period  

3. Manufacturer Capability

a)Trade Capacity  
Nearest Port Tianjin
Export Percentage 70%
No.of Employees in Trade Department 30 People
Language Spoken: English;Chinese
b)Factory Information  
Factory Size: Above 14,500 square meters
No. of Production Lines Above 6
Contract Manufacturing OEM Service Offered;Design Service Offered
Product Price Range Average

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