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横型シャーリングマシンブレード

追加情報

その他の名称

シャーマシンブレード、合金Metal鋼切断ナイフ、シャーリングブレード、カッティングブレード

原産地

中国

用途

金属加工, 製造工場, 建設工事

材料

H13、H13K、LD

モデル番号

MT-CSB

OEMサービス

利用可能

支払い条件

L/C、T/T、ウェスタンユニオン

包装

段ボール箱, 木製ケース

納期

7-20日

シェア先:

What do Cross Shearing Machine Blades Mean?

The term “Cross Shearing Machine Blade” refers to a specific type of industrial blade used in cross-cutting shearing machines. These machines are designed to make transverse cuts across the width of a material, such as metal sheets, plates, coils, or other continuous web materials. The Cross Shearing Machine Blade is a critical component of this process, responsible for delivering clean, accurate cuts perpendicular to the material’s direction of travel. These blades are engineered for durability, precision, and the ability to withstand the forces involved in shearing various material thicknesses and strengths. The specific meaning often implies a robust blade designed for making precise, right-angled cuts in industrial applications. Cross Shearing Machine Blades are also sometimes referred to as “cross-cut shear blades,” “transverse shear blades,” “cut-off shear blades,” or “guillotine shear blades” (in some contexts, though guillotine shears can also make longitudinal cuts).

Uses and Applications of Cross Shearing Machine Blades

Cross Shearing Machine Blades are essential in various industrial processes where materials need to be cut to specific lengths or sections across their width. Key uses and application scenarios include:

  • Metal Processing: Used in steel rolling mills, service centers, and metal fabrication plants to cut metal sheets, plates, coils, and bars to desired lengths. Cross Shearing Machine Blades ensure accurate cut-to-length operations.
  • Paper and Converting Industry: Employed in paper mills and converting facilities to cut large rolls of paper, cardboard, and other web materials into sheets of specific sizes. Precise Cross Shearing Machine Blades are crucial for downstream processes.
  • Coil Processing: Used in coil processing lines to shear metal coils into individual sheets or blanks of required dimensions. Robust cross shear blades are needed for efficient coil processing.
  • 製造: Integrated into various manufacturing lines to cut continuous materials like textiles, plastics, and composites into specific lengths for further processing or final products.
  • Automotive Industry: Used in the production of automotive parts that require precise cutting of metal sheets or coils into specific shapes and sizes.
  • Appliance Manufacturing: Employed in the fabrication of appliance components that require accurate cutting of metal sheets.
  • Construction Materials: Used in the processing of metal roofing, siding, and other construction materials that need to be cut to specific lengths.

The specific design, material, and size of the Cross Shearing Machine Blade are determined by the type and thickness of the material being cut, the speed of the shearing machine, and the required cutting accuracy.

Common Materials for Cross Shearing Machine Blades

The materials used in the manufacturing of Cross Shearing Machine Blades are critical for their durability, wear resistance, and ability to maintain a sharp cutting edge under demanding conditions. Common materials include:

  • 高炭素鋼: Offers good sharpness and is suitable for cutting softer metals and thinner gauges.
  • Tool Steels (e.g., D2, M2, A2, O1): These steels provide a superior balance of hardness, toughness, and wear resistance, making them ideal for a wide range of metal shearing applications. Cross shear blades made from tool steel offer extended service life.
  • High Carbon High Chromium Steels (e.g., Cr12MoV): These steels offer excellent wear resistance, particularly when cutting harder or more abrasive materials.
  • Powder Metallurgy Steels (PM Steels): These advanced steels offer superior homogeneity and can be tailored to provide specific combinations of high hardness, toughness, and wear resistance, resulting in high-performance cross shear blades.
  • Alloy Steels (e.g., H13, LD): Used for demanding applications, including hot shearing, offering high strength and resistance to thermal fatigue.
  • Carbide Inserts: For extremely demanding applications or high-speed shearing of tough materials, cross shear blades may utilize replaceable carbide inserts for maximum wear resistance.

The selection of the appropriate material for Cross Shearing Machine Blades depends on the type and thickness of the material being cut, the operating conditions (temperature, speed), and the desired blade lifespan and cutting quality. Heat treatment is also a crucial aspect of manufacturing these blades to achieve the optimal hardness and toughness.

Common Shapes of Cross Shearing Machine Blades

Cross Shearing Machine Blades are typically straight blades, but their design can vary depending on the specific shearing machine and the material being processed. Common shapes and features include:

  • Straight, Single-Edged Blades: The most common configuration for general cross-cutting applications.
  • Straight, Double-Edged Blades: Can be reversed or reground to utilize both cutting edges, extending blade life.
  • Beveled Edges: The angle and type of bevel (single, double, compound) are crucial for clean cutting and are tailored to the material being sheared.
  • Square Edges: Used in some applications, particularly for thicker materials, to deliver a strong shearing force.
  • Toothed or Serrated Edges: Used in specific applications, such as cutting softer or fibrous materials, to grip and cut more effectively.
  • Guillotine Shear Blades: Typically long, straight blades used in guillotine shearing machines for making straight cuts across the material. They can have various bevel angles.
  • Hydraulic Shear Blades: Designed to withstand the high forces exerted by hydraulic shearing machines, often featuring robust construction and precise edge geometry.

The precise shape and edge preparation of the Cross Shearing Machine Blade are critical for achieving clean, accurate cuts and maximizing blade life. The mounting mechanism, often involving T-slots and hydraulic clamping for quick blade changes and secure fastening, is also an important design consideration.

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