• Melt Extract Stainless Steel Fiber Reinforced Concrete Admixtures System 1
  • Melt Extract Stainless Steel Fiber Reinforced Concrete Admixtures System 2
Melt Extract Stainless Steel Fiber Reinforced Concrete Admixtures

Melt Extract Stainless Steel Fiber Reinforced Concrete Admixtures

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Loading Port:
Tianjin
Payment Terms:
TT OR LC
Min Order Qty:
2000 kg
Supply Capability:
250000 kg/month

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Quick Details

  • Place of Origin: Shandong, China (Mainland)

  • Model Number: steel fiber
  • material: steel wire

  • application: concrete reinocement

  • type: end hook steel fiber

 Product features

with excellent tensile ,hightenacity ,against cracking and fatigue ,they`re widely usd in the structures made of concrete

 

 

Specifications


1.hooked steel fiber
2.CE and ISO9001:2008
3.diameter from 0.5mm to 1.2mm
4.competitive price,high quality and service

Hooked Steel Fiber:

 1.Diameter:0.5mm-1.0mm

2.Length:   25mm-60mm

3.Material: low carbon steel wire

4.Feature:  excellent tensile,high tenacity,against cracking,impact and fatigue

5.Uses:     high way,tunnel,building,airport road serface and so on .

 

Picture

 Concrete Admixtures Steel Fiber Reinforced

 

steel fiber concrete reinforced

 

 

 FAQ

we can produce any type steel fiber and of course we can make production according to your requirement

we have specilize in this field for almost 10 years ,with good quality and competitive price

 

 

Q: Can melt extract stainless steel fiber improve the resistance of concrete to impact loads?
Yes, melt extract stainless steel fiber can improve the resistance of concrete to impact loads. Stainless steel fibers are known for their high tensile strength, durability, and ability to enhance the mechanical properties of concrete. When added to concrete mixtures, stainless steel fibers can help to distribute the applied load more evenly and prevent crack propagation, which in turn improves the resistance of concrete to impact loads. The fibers act as reinforcement within the concrete matrix, effectively increasing its resistance to impact and enhancing its overall toughness. Additionally, melt extract stainless steel fibers have a high melting point, which allows them to maintain their structural integrity even under extreme temperatures or rapid heating. This further contributes to the improved impact resistance of concrete. Overall, the addition of melt extract stainless steel fibers can significantly enhance the ability of concrete to withstand impact loads and improve its overall performance in applications where impact resistance is critical, such as industrial floors, pavements, and high-traffic areas.
Q: How does melt extract stainless steel fiber affect the permeability of concrete to water?
The permeability of concrete to water can be significantly influenced by the use of melt extract stainless steel fiber. To enhance the durability and overall performance of the structure, stainless steel fibers are introduced into concrete mixtures. By incorporating stainless steel fibers into concrete, a three-dimensional network of reinforcement is formed within the matrix. This network acts as a barrier, limiting the flow of water through the concrete. The fibers create a complex pathway for water molecules, thereby reducing the material's permeability. Furthermore, the presence of stainless steel fibers plays a role in reducing the occurrence of microcracks in concrete. Microcracks can arise from various factors such as shrinkage, temperature fluctuations, and external forces. These cracks create openings for water to infiltrate the concrete, thereby increasing its permeability. However, the inclusion of stainless steel fibers helps manage and minimize the development and propagation of these cracks, subsequently decreasing the concrete's permeability. Additionally, stainless steel fibers bring added advantages to the concrete matrix by enhancing its tensile strength and ductility. This increased strength allows the concrete to better endure external loads and pressures, thus diminishing the likelihood of crack formation and water seepage. To summarize, the introduction of melt extract stainless steel fiber into concrete has a positive impact on its permeability to water. The fibers establish a barrier that restricts the movement of water molecules and assist in controlling the formation of microcracks, ultimately reducing the concrete's permeability.
Q: How does the addition of melt extract stainless steel fiber impact the shrinkage of concrete?
Melt extract stainless steel fiber has a substantial impact on the shrinkage of concrete. Its addition enhances the strength, durability, and crack resistance of the concrete. When incorporated into the mix, these fibers reinforce the concrete and reduce its overall shrinkage. Concrete naturally shrinks as it dries and loses moisture. This shrinkage can cause cracks, compromising the structure's integrity and lifespan. However, the addition of melt extract stainless steel fibers minimizes shrinkage and significantly reduces the likelihood of cracks. The stainless steel fibers create a three-dimensional network within the concrete, resisting the tensile forces that occur during shrinkage. This prevents cracks from forming and improves the material's performance by distributing stress throughout. Moreover, melt extract stainless steel fibers improve the behavior of concrete after cracking. If cracks do appear, the fibers act as reinforcement, bridging across the cracks and preventing further propagation. This strengthens the concrete's structure. In conclusion, incorporating melt extract stainless steel fibers into concrete significantly reduces shrinkage and enhances crack resistance. This not only improves the concrete's durability and lifespan, but also ensures its ability to withstand external forces and environmental conditions.
Q: What is the recommended fiber length for melt extract stainless steel fiber in concrete?
The recommended fiber length for melt extract stainless steel fiber in concrete typically ranges from 25mm to 50mm. This fiber length is considered optimal for enhancing the mechanical properties and durability of concrete. It helps to improve the tensile strength, flexural strength, and impact resistance of the concrete, making it more resistant to cracking and improving its overall performance. Additionally, this fiber length ensures proper dispersion and distribution within the concrete matrix, leading to a more uniform reinforcement throughout the structure. However, it is important to note that the specific fiber length may vary depending on the specific application and design requirements, so consulting with a structural engineer or following manufacturer guidelines is recommended.
Q: What is the typical length and diameter of melt extract stainless steel fiber?
The typical length of melt extract stainless steel fiber is around 20-40 mm, while the diameter ranges from 0.1-0.3 mm.
Q: Can melt extract stainless steel fiber be used in sound barrier walls?
Yes, melt extract stainless steel fiber can be used in sound barrier walls. Stainless steel fibers are commonly used in soundproofing applications due to their high strength and excellent acoustic properties. These fibers can effectively absorb and dampen sound waves, reducing noise transmission through the barrier walls. Additionally, stainless steel fibers are highly durable and resistant to corrosion, making them suitable for outdoor applications. Overall, using melt extract stainless steel fiber in sound barrier walls can help enhance their soundproofing capabilities and improve the overall acoustic performance of the structure.
Q: How does melt extract stainless steel fiber improve the fatigue resistance of concrete?
Melt extract stainless steel fiber is known for enhancing the fatigue resistance of concrete due to its unique properties and characteristics. When added to concrete, these fibers create a three-dimensional reinforcement network that strengthens the material and improves its ability to withstand repetitive loading or cyclic stress. One of the main ways in which melt extract stainless steel fiber enhances the fatigue resistance of concrete is by increasing its crack resistance. As the concrete undergoes cyclic loading, cracks may develop and propagate, leading to eventual failure. However, the presence of stainless steel fibers helps to arrest the growth of these cracks, preventing them from spreading and improving the overall durability of the concrete. Moreover, the high tensile strength and excellent ductility of stainless steel fibers contribute to the fatigue resistance of concrete. These fibers can absorb and distribute stress throughout the concrete matrix, reducing the concentration of stress at specific points. This redistribution of stress helps to prevent the formation of microcracks and enhances the overall fatigue strength of the concrete. Additionally, the corrosion resistance of stainless steel fibers plays a crucial role in improving the fatigue resistance of concrete. Concrete is often exposed to harsh environmental conditions, such as moisture and chemical agents, which can lead to corrosion and deterioration of the material. However, stainless steel fibers are highly resistant to corrosion, ensuring the long-term integrity and durability of the concrete structure. Furthermore, melt extract stainless steel fibers also provide thermal stability to concrete. The expansion and contraction of concrete due to temperature variations can lead to the development of cracks and decrease its fatigue resistance. However, the presence of stainless steel fibers helps to minimize these thermal stresses by providing additional reinforcement and reducing the risk of crack formation. In conclusion, melt extract stainless steel fiber enhances the fatigue resistance of concrete through various mechanisms. It improves crack resistance, distributes stress, offers corrosion resistance, and provides thermal stability. By incorporating these fibers into concrete, the material becomes more resilient, durable, and capable of withstanding repetitive loading or cyclic stress, ultimately improving its fatigue resistance.
Q: What is the recommended fiber dosage when using melt extract stainless steel fiber in shotcrete?
The recommended fiber dosage when using melt extract stainless steel fiber in shotcrete typically ranges from 25 to 40 kg/m3, depending on the specific requirements of the project and the desired performance characteristics.
Q: Can melt extract stainless steel fiber improve the resistance of concrete to fire?
Certainly, the incorporation of melt extract stainless steel fiber into concrete has the ability to enhance its fire resistance. Renowned for their elevated melting point, resistance to corrosion, and exceptional heat conductivity, stainless steel fibers are an optimal choice for bolstering the fire resistance of concrete. Upon their addition to concrete, these fibers establish a three-dimensional reinforcement network, effectively preventing the occurrence of cracks and spalling during exposure to fire. Furthermore, the stainless steel fibers serve as a heat sink, proficiently absorbing and dissipating heat, thus significantly impeding the rise in temperature within the concrete and consequently augmenting its fire resistance. Moreover, these fibers fortify the concrete's overall strength and durability, rendering it more resilient to fire and extending its structural integrity even under extreme temperatures. Consequently, the inclusion of melt extract stainless steel fiber in concrete unquestionably improves its resistance to fire.
Q: How does melt extract stainless steel fiber affect the permeability of concrete to chloride ions?
Melt extract stainless steel fiber can significantly reduce the permeability of concrete to chloride ions. The addition of this type of fiber enhances the concrete's ability to resist the penetration of chloride ions, which are responsible for causing corrosion in reinforced concrete structures. The fiber acts as a physical barrier, preventing the movement of chloride ions through the concrete matrix. This ultimately helps to increase the durability and lifespan of concrete structures in chloride-rich environments.

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