Non-vacuum groove type oxidation-resistant coating for solar power generation
A technology of trough solar energy and anti-oxidation coating applied in the field of solar power generation
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Embodiment 1
[0015] The anti-oxidation coating for non-vacuum trough solar power generation described in this embodiment is coated on the surface of the stainless steel metal substrate, and the protective coating is a mixture of aluminum boride, aluminum oxide and yttrium oxide. The coating, wherein the content of aluminum boride is 47.5wt%, the content of aluminum oxide is 27.5wt%, and the balance is diyttrium trioxide.
Embodiment 2
[0017] The anti-oxidation coating for non-vacuum trough solar power generation described in this embodiment is coated on the surface of the stainless steel metal substrate, and the protective coating is a mixture of aluminum boride, aluminum oxide and yttrium oxide. The coating, wherein the content of aluminum boride is 62.5wt%, the content of aluminum oxide is 27.5wt%, and the balance is diyttrium trioxide.
Embodiment 3
[0019] The anti-oxidation coating for non-vacuum trough solar power generation described in this embodiment is coated on the surface of the stainless steel metal substrate, and the protective coating is a mixture of aluminum boride, aluminum oxide and yttrium oxide. The coating, wherein the content of aluminum boride is 52.5wt%, the content of aluminum oxide is 32.5wt%, and the balance is diyttrium trioxide.
[0020] The protective coatings obtained in Examples 1-3 were subjected to thermal shock tests. Heat the protective coating to 600°C, then cool it to room temperature in air; repeat this process until the surface of the coating forms cracks visible to the naked eye, and count the number of times until the cracks appear, indicating the final number of thermal shocks of the protective coating It can reach 350-600 times.
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Abstract
Description
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Application Information
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