High-temperature-resistant layered toughened tungsten-based composite material and preparation method thereof
A composite material, high temperature resistant technology, applied in the direction of metal layered products, chemical instruments and methods, lamination, etc., can solve the problems of low yield strength, high tungsten-plastic brittle transition temperature, affecting application, etc., and achieve good comprehensive performance Effect
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Embodiment 1
[0042] A high-temperature-resistant layered toughened tungsten-based composite material provided in this embodiment includes five repeating units, each repeating unit includes a tungsten layer, a tantalum layer, a niobium layer, a tantalum layer, and a tungsten layer arranged in sequence, and adjacent The two repeating units share one tungsten layer; the tungsten layer, tantalum layer, and niobium layer are all made of rolled metal foils, and the thicknesses of the tungsten foil, tantalum foil, and niobium foil in this embodiment are all 100 um.
[0043] The high temperature-resistant layered toughened tungsten-based composite material described in this embodiment is prepared by the following method:
[0044] Surface treatment: Cut tantalum foil and niobium foil into discs with a diameter of 20 mm, place them in absolute ethanol for 10 minutes to ultrasonically vibrate, remove dust and other impurities attached to the surface, dry them in vacuum and store them in a sealed conta...
Embodiment 2
[0049] The main difference between the present embodiment and the first embodiment lies in the different thicknesses of the platinum layer and the niobium layer, and the different specific parameters of the spark plasma sintering.
[0050] In this embodiment, the thickness of the platinum layer is 95 um, and the thickness of the niobium layer is 105 um.
[0051]The spark plasma sintering process in this embodiment includes three stages: the first stage is the stage of temperature increase and pressure increase, using a stepwise temperature increase method, first from room temperature to 600°C, the temperature increase rate is 55°C / min, and then from 600°C to 600°C. To 1100°C, the heating rate is 100°C / min. At the same time, a constant rate of pressure increase is adopted. The pressure is set at 10MPa at room temperature. When the temperature reaches 1100°C, the pressure reaches 30MPa; the second stage is the heat preservation and constant pressure stage, and the time is 20min ...
Embodiment 3
[0054] The main difference between the present embodiment and the first embodiment lies in the different thicknesses of the tungsten layer and the niobium layer, and the different specific parameters of the spark plasma sintering.
[0055] In this embodiment, the thickness of the tungsten layer is 105 um, and the thickness of the niobium layer is 108 um.
[0056] In this embodiment, the spark plasma sintering process includes three stages: the first stage is the stage of temperature increase and pressure increase, using a stepwise temperature increase method, first from room temperature to 600°C, the temperature increase rate is 95°C / min, and then from 600°C to 600°C. To 1200°C, the heating rate is 100°C / min. At the same time, a constant rate of pressure increase is adopted. The set pressure at room temperature is 10MPa. When the temperature reaches 1200°C, the pressure reaches 33MPa; the second stage is the heat preservation and constant pressure stage, and the time is 10min ...
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