Laser composite manufacturing furnace winding roller high-temperature-oxidation-resistant and press-in nodulation-resistant functional layer alloy material and process method
A high-temperature oxidation-resistant, functional layer technology, applied in the coating process of metal materials, coatings, etc., can solve the problems of poor oxidation resistance and high-temperature red hardness, affecting the quality of the coiled plate surface, and coating cracks and peeling, etc., to achieve Improve high-temperature red hardness, improve high-temperature oxidation resistance, and refine the structure
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[0020] A method for preparing a high-temperature oxidation-resistant and anti-pressing nodulation functional layer of a furnace roll manufactured by laser composite manufacturing, comprising the following steps:
[0021] Step 1. Preset a layer of 1.2-1.5mm thick transition layer material on the surface of the furnace roll by presetting Co-Cr-W alloy powder, select fiber laser for scanning cladding, and then process to keep the transition layer thickness 1.0 -1.2mm.
[0022] Step 2. Select a fiber laser and use the method of pre-powder to laser clad the functional layer alloy powder on the transition layer. The cladding process is: power: 2000-2500W, spot: 3.0mm, focal length 280-350mm, scanning speed 1000 -1200mm / min, single layer thickness 0.6-0.8mm, lap rate 40%-60%.
[0023] Further, the composition of the Co-Cr-W alloy powder in the step 1 is: C: 1.0%~2.0%, Cr: 25.0%~30.0%, W: 1.0%~5.0%, Mo: 0.5%~1.5% %, Al: 0.1%~1.0%, Mn: 0.1%~1.0%, Si: 1.0%~1.5%, Fe: 1.0%~5.0%, Ni: 1.0...
Embodiment 1
[0026] 1. Remove the factors affecting the cladding quality such as oil stains, oxides, fatigue layers, and surface cracks on the surface of the furnace roll, and use a fiber laser to clad a layer of transition layer alloy material at the designated position, leaving a thickness of 1.0mm after processing.
[0027] 2. Use laser cladding technology and preset powder to scan and clad the functional layer on the transition layer. The alloy composition of the functional layer is calculated by mass percentage: C: 2.0%, Cr: 24.0%, Ta: 10.0%, Al: 7.5% , Y: 0.8%, Si: 0.8%, Co: balance. The cladding thickness is 0.7mm.
[0028] 3. Process the functional layer after cladding, leaving a thickness of 0.5mm.
Embodiment 2
[0030] 1. Remove the factors affecting the cladding quality such as oil stains, oxides, fatigue layers, and surface cracks on the surface of the furnace roll, and use a fiber laser to clad a layer of transition layer alloy material at the designated position, leaving a thickness of 1.0mm after processing.
[0031] 2. Use laser cladding technology and pre-set powder to scan the cladding functional layer on the transition layer. The alloy composition of the functional layer is calculated by mass percentage: C: 1.9%, Cr: 25.0%, Ta: 9.0%, Al: 8.0% , Y: 1.0%, Si: 1.0%, Co: balance. The cladding thickness is 0.8mm.
[0032] 3. Process the functional layer after cladding, leaving a thickness of 0.6mm.
[0033] After cladding the functional layer, the metallurgical bonding of the furnace roll roll surface is good, there is no crack defect on the surface, and the hardness is higher than that of the original base material. After being used on-line, after high temperature and long-term...
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