Brake disc with steel layer with reduced nickel content and manufacturing method
A brake disc for a disc brake may have a braking band made of gray cast iron or steel, provided with two opposite braking surfaces, each of which defines at least partially one of the two main faces of the disc. The disc is provided with a base layer constituted by steel having a nickel content of at most 15% which covers at least one of the two braking surfaces of the braking band.
1 . A brake disc for disc brake, comprising a braking band provided with two opposite braking surfaces, each of which defines at least partially one of the two main faces of the disc, the braking band being made of gray cast iron or steel;
said disc being provided with a base layer, which covers at least one of the two braking surfaces of the braking band, said base layer being constituted by steel having a nickel content at most equal to 15%,
wherein an auxiliary ferritic-nitrocarburized layer or an auxiliary ferroalumination layer is interposed between one of the two braking surfaces of the braking band and the base layer, and/or between one of the two braking surfaces of the braking band and an intermediate layer, and/or between the base layer and a protective surface coating, and/or between the intermediate layer and the base layer.
2 . The brake disc for disc brake according to claim 1 , wherein said base layer is constituted by steel having a nickel content at most equal to 7.5%.
3 . The brake disc for disc brake according to claim 1 , wherein the base layer is further constituted by one or more carbides included in the steel.
4 . The brake disc for disc brakes according to claim 1 , wherein the intermediate layer of steel comprises nickel and is interposed between the base layer and at least one of the two braking surfaces of the braking band.
5 . The brake disc for disc brake according to claim 4 , wherein the intermediate layer has a nickel content at most equal to 15%.
6 . The brake disc for disc brake according to claim 5 , wherein the intermediate layer has a nickel content at most equal to 7.5%.
7 . The brake disc for disc brakes according to claim 1 , comprising the protective surface coating which covers the base layer at least on the side of one of the two braking surfaces of the braking band, said protective surface coating being arranged on a side of the base layer which does not face towards one of the two braking surfaces, said protective surface coating being constituted by one or more carbides in particle form deposited by Thermal Spray deposition technique, e.g. by HVOF (High-Velocity Oxy-Fuel) technique, or by HVAF (High-Velocity Air Fuel) technique, or by APS (Atmosphere Plasma Spray) technique, or by Cold Spray deposition technique, e.g. by KM (Kinetic Metallization) technique, or by laser beam deposition technique, e.g. the LMD (Laser Metal Deposition), or HSLC (High-Speed Laser Cladding) technique, or EHLA (Extreme High-Speed Laser Application) technique, or TSC (Top Speed Cladding) technique.
8 . The Brake disc for disc brake according to claim 7 , wherein the carbides in particle form comprise tungsten carbide (WC) or chromium carbide or niobium carbide (NbC) or titanium carbide (TIC).
9 . The brake disc for disc brake according to claim 8 , wherein the carbides in particle form consist of chromium carbide and titanium carbide.
10 . The brake disc according to claim 1 , wherein the base layer steel comprises between 10% and 20% of chromium (Cr).
11 . The brake disc according to claim 1 , wherein the steel of the base layer is constituted by 10% to 20% of chromium (Cr), at most by 1.5% of silicon (Si), at most by 2% of manganese (Mn), at most by 0.03% carbon (C), the balance being iron (Fe).
12 . A method for making a brake disc comprising the following operating steps:
preparing a brake disc, comprising a braking band provided with two opposite braking surfaces, each of which defines at least partially one of the two main faces of the disc, the braking band being made of gray cast iron or steel;
depositing a base layer constituted by steel with a nickel content of at most equal to 15%;
depositing an auxiliary ferroalumination layer between one of the two braking surfaces of the braking band and the base layer, and/or between one of the two braking surfaces of the braking band and an intermediate layer, and/or between the base layer and a protective surface coating, and/or between the intermediate layer and the base layer, wherein the step of depositing the auxiliary ferroalumination layer comprises the step of:
immersing at least partially said braking band into molten aluminum maintained at a predetermined temperature so that the molten aluminum covers at least a predetermined surface region of said braking band, said immersion being protracted for a predetermined period of time to allow the diffusion of aluminum atoms into a surface microstructure of said cast iron or steel with the consequent formation of ferroaluminum intermetallic compounds in a surface layer of said braking band, thus generating a layer constituted by ferroaluminum intermetallic compounds in said predetermined surface region of said braking band;
removing said braking band from the molten aluminum;
removing the aluminum remaining on said braking band after extraction, so as to expose said layer of ferroaluminum intermetallic compounds on the surface,
said layer of ferroaluminum intermetallic compounds exposed on the surface conferring a superior resistance to corrosion and wear at said predetermined surface region to said braking band made of cast iron or steel.
13 . The method according to claim 12 , further comprising the step of depositing over said base layer a material in particle form constituted by tungsten carbide (WC) or by niobium carbide (NbC) or titanium carbide (Tic) or chromium carbide by Thermal Spray deposition technique, e.g. by HVOF (High-Velocity Oxy-Fuel) technique, by HVAF (High-Velocity Air Fuel) technique, by APS (Atmosphere Plasma Spray) technique or a Cold Spray deposition technique, e.g. by KM (Kinetic Metallization) technique, or by a laser beam deposition technique, e.g. by LMD (Laser Metal Deposition) technique, or by HSLC (High-Speed Laser Cladding) technique, or by EHLA (Extreme High-Speed Laser Application) technique, or by TSC (Top Speed Cladding) technique, forming the protective surface coating which covers the base layer.