Fluoride Molten Salt and/or Chloride Molten Salt Corrosion Protection Methods and Application of Chromium
A molten salt corrosion and chloride technology, applied in the field of material corrosion protection, can solve the problems of inability to form a protective surface film, corrosion, thermodynamic instability, etc., to slow down the intergranular corrosion problem, reduce the corrosion rate, and be easy to operate and control. Effect
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Embodiment 1
[0041] The molten salt system of this embodiment is a static constant temperature system.
[0042] 1. Pretreatment of 316L stainless steel and chromium
[0043] Use wire cutting method to cut 316L stainless steel and chromium (99.9wt%) into a sample with a size of 30mm×10mm×2mm, and a diameter of Hole. The surface of all samples was polished step by step with SiC sandpaper to 2000 mesh, and then ultrasonically cleaned with deionized water and absolute ethanol in turn, and dried with a hair dryer with cold air.
[0044] 2. Corrosion protection method of 316L stainless steel in 700℃FLiNaK molten salt
[0045] figure 1 It is a schematic diagram of the corrosion protection test device in Example 1. Among them, 1 is 316 stainless steel crucible, 2 is graphite crucible, 3 is FLiNaK molten salt, 4 is pure chromium, 5 is 316L stainless steel sample, and 6 is 316L stainless steel welding wire, 7 is alumina ceramic sheet.
[0046] The pretreated 316L stainless steel and chromium are in accorda...
Embodiment 2
[0049] The molten salt system of this embodiment is a static constant temperature system.
[0050] 1. Pretreatment of 316L stainless steel and chromium
[0051] Use wire cutting to cut 316L stainless steel and chromium (99.9wt%) into specimens with a size of 30mm×10mm×2mm, and each sample with a diameter of Hole. The surface of all samples was polished step by step with SiC sandpaper to 2000 mesh, and then ultrasonically cleaned with deionized water and absolute ethanol in turn, and dried with a hair dryer with cold air.
[0052] 2. Corrosion protection method of 316L stainless steel in 700℃FLiNaK molten salt
[0053] figure 2 The schematic diagram of the corrosion protection test device in Example 2; among them, 1 is a 316 stainless steel crucible, 2 is a graphite crucible, 3 is FLiNaK molten salt, 4 is pure chromium, 5 is a 316L stainless steel sample, and 6 is 316L stainless steel welding wire, 7 is alumina ceramic sheet.
[0054] 316L stainless steel and chromium figure 2 The m...
Embodiment 3
[0057] The molten salt system of this embodiment is a static constant temperature system.
[0058] 1. Pretreatment of 316 stainless steel and chromium
[0059] Use wire cutting to cut 316 stainless steel and chromium (99.9wt%) into samples with a size of 30mm×10mm×2mm, and each sample with a diameter of Hole. The surface of all samples was polished step by step with SiC sandpaper to 2000 mesh, and then ultrasonically cleaned with deionized water and absolute ethanol in turn, and dried with a hair dryer with cold air.
[0060] 2. 316 stainless steel NaF-ZrF at 800℃ 4 Corrosion protection methods in molten salt
[0061] 316 stainless steel and chromium were added to the experimental crucible, 316 stainless steel and chromium were kept in direct contact. Add 550g NaF-ZrF to the crucible 4 (59.5-40.5 mol%) molten salt, soak the chromium part in the molten salt system, cover the graphite lid, put the graphite crucible into the outer 316 stainless steel crucible, and weld and seal the sta...
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