• Concrete Admixtures Steel Fiber Reinforced System 1
  • Concrete Admixtures Steel Fiber Reinforced System 2
Concrete Admixtures Steel Fiber Reinforced

Concrete Admixtures Steel Fiber Reinforced

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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 be used in self-compacting concrete applications?
Yes, melt extract stainless steel fiber can be used in self-compacting concrete (SCC) applications. SCC is known for its ability to flow and fill complex and congested reinforcement areas without the need for external vibration. The addition of stainless steel fibers can enhance the mechanical properties of SCC, such as flexural and impact strength, crack resistance, and durability. Melt extract stainless steel fibers have excellent tensile strength and corrosion resistance, making them suitable for use in SCC. These fibers are typically produced by melting stainless steel and then rapidly extracting it into fine filaments. These filaments are then bundled together to form the stainless steel fibers. By incorporating melt extract stainless steel fibers into SCC, the concrete's ductility and toughness can be improved. This is particularly beneficial in applications where high structural performance is required, such as in bridge decks, tunnels, and high-rise buildings. The fibers help to prevent crack propagation and enhance the overall durability of the concrete. Additionally, melt extract stainless steel fibers can also improve the fire resistance of SCC. Stainless steel has a high melting point and retains its strength even at elevated temperatures, making it an ideal reinforcement material in fire-prone areas. However, it is important to note that the dosage and distribution of stainless steel fibers should be carefully considered to ensure optimal performance. The fiber length, aspect ratio, and volume fraction should be selected based on the specific requirements of the SCC application. In conclusion, melt extract stainless steel fiber can indeed be used in self-compacting concrete applications. Their addition can enhance the mechanical properties, durability, and fire resistance of SCC, making it a suitable choice for a wide range of construction projects.
Q:What is the effect of melt extract stainless steel fiber on the modulus of rupture of shotcrete?
The effect of melt extract stainless steel fiber on the modulus of rupture of shotcrete is that it enhances the overall strength and durability of the shotcrete. The stainless steel fibers reinforce the shotcrete matrix, preventing cracks and improving the resistance to bending and flexural stresses. This leads to an increased modulus of rupture, making the shotcrete more resistant to cracking and improving its structural performance.
Q:Is melt extract stainless steel fiber compatible with all types of aggregate?
No, melt extract stainless steel fiber may not be compatible with all types of aggregate. The compatibility depends on various factors such as the size, shape, and composition of the aggregate, as well as the specific application requirements. It is important to consider consulting with experts or conducting tests to determine the compatibility before using melt extract stainless steel fiber with a particular type of aggregate.
Q:Is melt extract stainless steel fiber suitable for use in high-performance mortar?
Yes, melt extract stainless steel fiber is suitable for use in high-performance mortar. Stainless steel fibers are known for their exceptional strength, durability, and corrosion resistance, making them ideal for applications that require high-performance materials. When added to mortar, these fibers can enhance the overall performance of the mortar by improving its tensile and flexural strength, reducing cracking, increasing impact resistance, and enhancing durability. Additionally, melt extract stainless steel fibers have a high melting point, which allows them to withstand high temperatures without losing their mechanical properties. This makes them particularly suitable for high-performance applications where the mortar will be exposed to extreme conditions or thermal stresses. Overall, melt extract stainless steel fiber can significantly improve the performance and lifespan of high-performance mortar.
Q:What is the effect of melt extract stainless steel fiber on the thermal conductivity of concrete?
The thermal conductivity of concrete can be greatly improved by incorporating melt extract stainless steel fiber. Stainless steel fibers possess excellent thermal conductivity properties, enabling them to effectively transfer heat throughout the concrete. When these fibers are added to the concrete mixture, they create a three-dimensional network that aids in the efficient conduction and distribution of heat. This enhanced thermal conductivity has multiple positive impacts on the performance of the concrete. To begin with, the heightened thermal conductivity can enhance the overall thermal efficiency of structures constructed with this particular type of concrete. It facilitates better heat transfer, leading to more efficient temperature regulation and reducing the need for additional insulation or heating and cooling systems. Furthermore, the improved thermal conductivity can also enhance the durability of the concrete. By evenly distributing heat and minimizing temperature variations, the risk of thermal cracking and damage due to expansion and contraction is diminished. This is particularly advantageous in environments with substantial temperature fluctuations. Moreover, the greater thermal conductivity provided by melt extract stainless steel fiber can also be beneficial in applications like radiant floor heating systems. The fibers effectively transfer heat from the heating elements to the surface, resulting in more efficient and effective heating. In conclusion, the incorporation of melt extract stainless steel fiber in concrete significantly improves its thermal conductivity. This improvement leads to increased thermal efficiency, enhanced durability, and improved performance in various applications where heat transfer is crucial.
Q:Can melt extract stainless steel fiber be used in precast tunnel invert segments?
Yes, melt extract stainless steel fiber can be used in precast tunnel invert segments. These fibers are often added to concrete mixes to improve its strength, durability, and resistance to cracking. In the case of precast tunnel invert segments, incorporating melt extract stainless steel fibers can enhance the overall structural integrity of the segments, making them better equipped to withstand the harsh conditions and loading requirements of a tunnel environment.
Q:Can melt extract stainless steel fiber be used in high-performance concrete mixtures?
Yes, melt extract stainless steel fiber can be used in high-performance concrete mixtures. This type of fiber enhances the mechanical properties of concrete, such as increasing its tensile strength, crack resistance, and durability. It is particularly suitable for applications that require high-performance concrete, such as structural elements in buildings, bridges, and road pavements, where improved strength and durability are important.
Q:What is the typical fiber length of melt extract stainless steel fiber?
The specific product and manufacturer can cause variation in the typical fiber length of melt extract stainless steel fiber. Nevertheless, melt extract stainless steel fibers usually have a fiber length between 3 mm and 25 mm on average. This range is appropriate for diverse applications, including concrete reinforcement, composite material strengthening, thermal insulation, and electromagnetic protection. It is crucial to acknowledge that different industries and purposes may have specific fiber length requirements. Therefore, it is advisable to consult the manufacturer or supplier to obtain the precise specifications necessary for a specific project.
Q:How does melt extract stainless steel fiber affect the resistance of concrete to carbonation?
Melt extract stainless steel fiber can significantly improve the resistance of concrete to carbonation. Carbonation occurs when carbon dioxide from the atmosphere reacts with the calcium hydroxide in the concrete, forming calcium carbonate. This process reduces the alkalinity of the concrete, leading to a decrease in its durability and strength. By adding stainless steel fibers to the concrete mix, the carbonation process can be mitigated. The stainless steel fibers act as a physical barrier, preventing the ingress of carbon dioxide into the concrete matrix. This barrier effect is particularly effective in reducing carbonation depth, which is crucial for maintaining the long-term durability of concrete structures. Furthermore, stainless steel fibers enhance the mechanical properties of the concrete. They improve the tensile strength and ductility of the material, making it more resistant to cracking and subsequent carbonation. The fibers also enhance the bond between the cement paste and the aggregates, further increasing the durability of the concrete. In summary, the addition of melt extract stainless steel fiber to concrete greatly improves its resistance to carbonation. It acts as a barrier against carbon dioxide ingress, reduces carbonation depth, enhances mechanical properties, and ultimately prolongs the service life of concrete structures.
Q:How does melt extract stainless steel fiber affect the abrasion resistance of concrete?
Melt extract stainless steel fiber is known for significantly enhancing the abrasion resistance of concrete. When added to concrete mixes, these fibers create a three-dimensional reinforcement network within the material, improving its overall strength and durability. The unique properties of stainless steel, such as high tensile strength and excellent corrosion resistance, contribute to the enhanced abrasion performance of the concrete. The addition of melt extract stainless steel fiber to concrete helps to reduce the formation of microcracks and control the propagation of existing cracks. As a result, the concrete becomes more resistant to wear and tear caused by abrasion. The fibers act as reinforcement, bridging the gaps between aggregates and providing additional tensile strength to the concrete. By incorporating stainless steel fibers, the concrete gains a higher resistance to surface erosion, impact, and friction. This is particularly beneficial in high-traffic areas, such as industrial floors, highways, parking lots, and airports, where abrasion is a common issue. The improved abrasion resistance ensures that the concrete remains intact and maintains its structural integrity over an extended period. Furthermore, melt extract stainless steel fibers also enhance the overall lifespan of concrete structures. By reducing the need for repairs and maintenance due to abrasion damage, these fibers help to prolong the service life of concrete, resulting in cost savings and reduced environmental impact. In summary, melt extract stainless steel fiber greatly enhances the abrasion resistance of concrete by reinforcing the material, reducing crack formation, and improving its overall strength and durability. This makes it an excellent choice for applications where abrasion is a concern, leading to longer-lasting and more resilient concrete structures.

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