Punching Tungsten Carbide Strips Normative Rods for Demanding Environments
The tungsten carbide strips normative rod, made from high-quality tungsten carbide, is an essential component in various industrial applications requiring high strength, wear resistance, and corrosion resistance. These rods are known for their excellent mechanical properties and durability, making them ideal for use in demanding environments.
Product Features
-
High Hardness: The tungsten carbide material offers extremely high hardness (typically 85-92 HRA), ensuring superior performance in abrasive environments.
-
Wear Resistance: Exhibits exceptional wear resistance, allowing the rod to withstand high friction and heavy loads, thereby extending its service life.
-
Corrosion Resistance: The rod is resistant to various corrosive media, including acids, alkalis, and salts, making it suitable for use in aggressive environments.
-
High Strength: Possesses excellent flexural and compressive strength, enabling it to maintain structural integrity under high-pressure conditions.
-
Thermal Stability: Maintains stable performance in high-temperature environments, suitable for applications involving extreme temperatures.
Main Applications
-
Machining and Manufacturing: Used in cutting tools, drill bits, end mills, and other machining applications due to its high hardness and wear resistance.
-
Mining and Drilling: Essential for rock drilling, oil and gas exploration, and mining operations where durable and reliable tools are required.
-
Aerospace: Utilized in high-precision components that require durability and resistance to extreme conditions.
-
Chemical Processing: Suitable for equipment and tools that handle aggressive chemicals, ensuring long-lasting performance.
-
Automotive Industry: Used in the production of high-performance engine components, ensuring efficiency and durability.
Technical Parameters
Strip Grades and Specifications |
Grade | Co% | Grain Size of WC | Hardness | Density (g/cm3) | Flexural Strength(Mpa) | Fracture Toughness | Elastic Modulus | Coefficient of Thermal Expansion |
HRA | HV30 | MNm-3/2 | GPa | 10-6/℃ |
SX01F | 4 | Sub-Micron | 94 | 2060 | 15.1 | 2800 | 9 | 550 | 4.6 |
SX03F | 5 | Sub-Micron | 93.4 | 1930 | 14.9 | 3000 | 10 | 540 | 4.8 |
SX10F | 6 | Sub-Micron | 92.9 | 1840 | 14.8 | 3500 | 10 | 530 | 4.9 |
SX10UF | 6 | Ultra-fine | 93.8 | 2040 | 14.7 | 2900 | 9 | 530 | 4.9 |
SX05F | 6 | Sub-Micron | 92.9 | 1840 | 14.8 | 3400 | 10 | 530 | 4.9 |
SX03B | 6 | Sub-Micron | 91.6 | 1600 | 14.9 | 2800 | 11 | 530 | 4.9 |
SX05B | 6.5 | Fine | 91.4 | 1550 | 14.8 | 3000 | 12 | 525 | 4.9 |
SX10C | 7 | Fine | 90.7 | 1480 | 14.7 | 3200 | 12 | 520 | 5 |
SX11F | 8 | Sub-Micron | 92.3 | 1720 | 14.6 | 3800 | 10 | 510 | 5.1 |
SX11UF | 8 | Ultra-fine | 93.5 | 1960 | 14.5 | 3000 | 9 | 510 | 5.1 |
SX10B | 8 | Sub-Micron | 90.5 | 1460 | 14.6 | 3200 | 11 | 510 | 5.1 |
SX12F | 9 | Ultra-fine | 93.5 | 1960 | 14.4 | 4500 | 10 | 500 | 5.3 |
SX12NF | 9 | Nano | 94.2 | 2100 | 14.3 | 4800 | 9 | 500 | 5.3 |
SX15F | 10 | Sub-Micron | 92 | 1670 | 14.3 | 3600 | 11 | 490 | 5.4 |
SX20F | 10 | Sub-Micron | 91.7 | 1620 | 14.4 | 4300 | 11 | 490 | 5.4 |
SX37F | 15 | Sub-Micron | 89.6 | 1350 | 13.8 | 4100 | 16 | 430 | 6.3 |
SX37NF | 15 | Nano | 92 | 1670 | 13.8 | 4800 | 10 | 430 | 6.3 |
SX37UF | 15 | Ultra-fine | 91.5 | 1570 | 13.8 | 4000 | 11 | 430 | 6.3 |

