Journal of Magnesium and Alloys· 2026Q1
Magnezyum alaşımı üzerinde verimli buzlanma/çözülme önleme için bal peteği-mikro sütun biyomimetik yapılı dayanıklı fototermal süperhidrofobik yüzey
Durable photothermal superhydrophobic surface with honeycomb-micropillar biomimetic structure for efficient anti/de-icing on magnesium alloy
- 0atıf
- Q1SCImago
- 2026yıl
Kısa özet
AZ91D magnezyum alaşımı üzerinde TiN nanopartikülleri ve faz değişim malzemesi (PCM) mikro kapsülleri ile entegre edilmiş lazerle indüklenmiş bal peteği-mikro sütun yapısı, -15°C'de 888s buzlanma gecikmesi ve 1 güneş altında 428s içinde buz eritme ile verimli buzlanma önleme ve çözülme sağlar.
Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.
Özet (abstract)
Magnesium alloys suffer from severe icing, corrosion, and mechanical degradation under harsh marine and cold environments, which significantly limit their practical applications. Herein, a durable photothermal superhydrophobic surface with a laser-induced honeycomb–micropillar architecture was developed on AZ91D magnesium alloy by integrating TiN nanoparticles and phase-change material (PCM) microcapsules. The laser-generated honeycomb–micropillar structure not only enhances coating adhesion through interfacial mechanical interlocking but also improves solar energy utilization by promoting multiple reflection and scattering of incident light. The TiN nanoparticles provide efficient photothermal conversion, while PCM microcapsules introduce latent heat buffering for thermal regulation during icing and de-icing processes. The optimized SLSHC surface exhibits a water contact angle of 165.2° and achieves an icing delay time of 888 s at −15 °C, which is further extended by the synergistic contribution of the honeycomb–micropillar structure and PCM latent heat. Under 1 sun irradiation, the surface temperature rapidly increases to 73.6 °C and complete ice melting is achieved within 428 s. Electrochemical measurements demonstrate that the SLSHC surface exhibits significantly enhanced corrosion resistance, with improved barrier protection attributed to the reduced solid–liquid contact area and mechanically anchored coating interface. This work provides a multifunctional surface design strategy for magnesium alloys with integrated anti-icing, de-icing, corrosion protection, and mechanical durability in harsh environments.
Yazarların özeti; kaynağından alınmıştır. Journal of Magnesium and Alloys, 2026 · DOI ↗
Devamı Pofolia uygulamasında
Çıkarımlar, ana noktalar ve makaleye soru sorma; ilgi alanına göre her gün yeni özetler. Ücretsiz.
Web'de giriş yaparak açSurfaces, Coatings and FilmsMaterials Science