āļ„āļģāļ–āļēāļĄāļ—āļĩāđˆāļžāļšāļšāđˆāļ­āļĒ?

āļŸāļīāļĨāđŒāļĄāļāļąāļ™āļĢāđ‰āļ­āļ™āļĢāļ–āļĒāļ™āļ•āđŒāļ§āļĩāļ„āļđāļĨ (V-KOOL) āļĄāļĩāļœāļĨāļ—āļ”āļŠāļ­āļšāļāļēāļĢāļĨāļ”āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āđƒāļ™āļĢāļ–āļĒāļ™āļ•āđŒāļˆāļēāļāđāļŠāļ‡āđāļ”āļ”āļˆāļĢāļīāļ‡āđ„āļ”āđ‰āļĄāļēāļāļ–āļķāļ‡ 9.6 āļ­āļ‡āļĻāļēāđ€āļ‹āļĨāđ€āļ‹āļĩāļĒāļŠāļˆāļēāļ Advance Meterials Technology Centre, Singapore Polytechnic āđāļĨāļ° āļĒāļąāļ‡āđ„āļ”āđ‰āļĢāļąāļšāļĄāļēāļ•āļĢāļāļēāļ™āļŸāļīāļĨāđŒāļĄāļ›āļĢāļ°āļŦāļĒāļąāļ”āļžāļĨāļąāļ‡āļ‡āļēāļ™āđ€āļšāļ­āļĢāđŒ 5 āļˆāļēāļāļāļĢāļ°āļ—āļĢāļ§āļ‡āļžāļĨāļąāļ‡āļ‡āļēāļ™ āļˆāļķāļ‡āļĄāļąāđˆāļ™āđƒāļˆāđ„āļ”āđ‰āļ–āļķāļ‡āļ„āđˆāļēāļāļąāļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āđ„āļ”āđ‰āļˆāļĢāļīāļ‡āļˆāļēāļāļ—āļąāđ‰āļ‡āđ€āļ„āļĢāļ·āđˆāļ­āļ‡āļ§āļąāļ”āđāļĨāļ°āđāļŠāļ‡āđāļ”āļ”āļˆāļĢāļīāļ‡

āđ‚āļ”āļĒāļŠāļēāļĄāļēāļĢāļ–āļŠāļĄāļ„āļĨāļīāļ›āļāļēāļĢāļ—āļ”āļŠāļ­āļšāļˆāļĢāļīāļ‡āļˆāļēāļāļ›āļĢāļ°āđ€āļ—āļĻāļŠāļīāļ‡āļ„āđ‚āļ›āļĢāđŒāđ‚āļ”āļŠāļ–āļēāļšāļąāļ™ Advance Meterials Technology Centre, Singapore Polytechnic āđāļĨāļ°āļāļēāļĢāļ—āļ”āļŠāļ­āļšāđ‚āļ”āļĒāļšāļĢāļīāļĐāļąāļ— āļ§āļĩāđ€āļ„āđ€āļ­āļŠ āļāļĢāļļāđŠāļ› (āđ€āļ­āđ€āļ‹āļĩāļĒ) āļˆāļģāļāļąāļ”āđƒāļ™āļ›āļĢāļ°āđ€āļ—āļĻāđ„āļ—āļĒāđ„āļ”āđ‰āļˆāļēāļāļ„āļĨāļīāļ›āļ§āļĩāļ”āļĩāđ‚āļ­āļ™āļĩāđ‰Â Â āļĢāļĩāļ§āļīāļ§āļŸāļīāļĨāđŒāļĄāļāļąāļ™āļĢāđ‰āļ­āļ™ V-KOOL āļĨāļ”āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āđƒāļ™āļĢāļ–āļĒāļ™āļ•āđŒāļˆāļēāļāđāļŠāļ‡āđāļ”āļ”āļˆāļĢāļīāļ‡āđ„āļ”āđ‰āļĄāļēāļāļ–āļķāļ‡ 9.6 āļ­āļ‡āļĻāļēāđ€āļ‹āļĨāđ€āļ‹āļĩāļĒāļŠ

Black xEV āļœāļĨāļīāļ•āļ”āđ‰āļ§āļĒāđ€āļ—āļ„āđ‚āļ™āđ‚āļĨāļĒāļĩ Advance Nano Technology āļ—āļĩāđˆāđƒāļŦāđ‰āļ„āļļāļ“āļŠāļĄāļšāļąāļ•āļīāļāļēāļĢāļ›āđ‰āļ­āļ‡āļāļąāļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āđāļĨāļ°āļĒāļąāļ‡āđƒāļŦāđ‰āđ€āļ™āļ·āđ‰āļ­āļŸāļīāļĨāđŒāļĄāļ—āļĩāđˆāļĄāļĩāļ„āļ§āļēāļĄāđ€āļ„āļĨāļĩāļĒāļĢāđŒāđƒāļŠāļĄāļēāļāļāļ§āđˆāļēāļŸāļīāļĨāļ·āļĄāđ€āļ‹āļĢāļēāļĄāļīāļ„āļ—āļąāđˆāļ§āđ†āđ„āļ› āđāļĨāļ°āļāļēāļĢāļ›āđ‰āļ­āļ‡āļāļąāļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āļ—āļĩāđˆāđ„āļ”āđ‰āļĄāļēāļāļāļ§āđˆāļē

āđ‚āļ”āļĒāļ—āļēāļ‡ V-KOOL Thailand āđ„āļ”āđ‰āļ—āļģāļāļēāļĢāļ—āļ”āļŠāļ­āļšāļ„āļ§āļēāļĄāđāļ•āļāļ•āđˆāļēāļ‡āļ‚āļ­āļ‡āļŸāļīāļĨāđŒāļĄ V-KOOL Black xEV āļāļąāļšāļŸāļīāļĨāđŒāļĄāđ€āļ‹āļĢāļēāļĄāļīāļ„āļĢāļ°āļ”āļąāļšāļžāļĢāļĩāđ€āļĄāļĩāđˆāļĒāļĄāđƒāļ™āļ•āļĨāļēāļ”āļ›āļĢāļ°āđ€āļ—āļĻāđ„āļ—āļĒ āļŠāļēāļĄāļēāļĢāļ–āļŠāļĄāļ„āļĨāļīāļ›āļāļēāļĢāļ—āļ”āļŠāļ­āļšāđ„āļ”āđ‰āļ•āļēāļĄāļĨāļīāđ‰āļ‡āļ„āđŒāļ™āļĩāđ‰

  1. āļ—āļ”āļŠāļ­āļšāļāļēāļĢāļ‚āļąāļšāļ‚āļĩāđˆ V-KOOL Black xEV āļāļąāļšāļŸāļīāļĨāđŒāļĄāđ€āļ‹āļĢāļēāļĄāļīāļ„āļĢāļ°āļ”āļąāļšāļžāļĢāļĩāđ€āļĄāļĩāđˆāļĒāļĄ
  2. āļ—āļ”āļŠāļ­āļšāļāļēāļĢāļ›āđ‰āļ­āļ‡āļāļąāļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āļ”āđ‰āļ§āļĒ āļāļĨāđ‰āļ­āļ‡āļ§āļąāļ”āļ­āļļāļ“āļŦāļ āļđāļĄāļī

  1. āļŸāļīāļĨāđŒāļĄ VK āđƒāļŠāđ‰āđ€āļ—āļ„āđ‚āļ™āđ‚āļĨāļĒāļĩ XIR Sputtering āļˆāļēāļāđ‚āļĨāļŦāļ°āļĄāļđāļĨāļ„āđˆāļēāļŠāļđāļ‡ āđ€āļŠāđˆāļ™ āđ€āļ‡āļīāļ™āđāļĨāļ°āļ—āļ­āļ‡āļ„āļģ āđ€āļžāļ·āđˆāļ­āđƒāļŦāđ‰āđ„āļ”āđ‰āļ›āļĢāļ°āļŠāļīāļ—āļ˜āļīāļ āļēāļžāđƒāļ™āļāļēāļĢāļŠāļ°āļ—āđ‰āļ­āļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āđ„āļ”āđ‰āļˆāļĢāļīāļ‡āđāļĨāļ°āļĄāļĩāļ„āļ§āļēāļĄāļ—āļ™āļ—āļēāļ™āļŠāļđāļ‡
  2. āļŸāļīāļĨāđŒāļĄ xEV āļœāļĨāļīāļ•āļˆāļēāļāđ€āļ—āļ„āđ‚āļ™āđ‚āļĨāļĒāļĩ Advance Nano Technology āļ—āļĩāđˆāđ€āļŦāļ™āļ·āļ­āļāļ§āđˆāļēāđ€āļ—āļ„āđ‚āļ™āđ‚āļĨāļĒāļĩāđ€āļ‹āļĢāļēāļĄāļīāļ„ āļ—āļĩāđˆāđƒāļŦāđ‰āļ„āļļāļ“āļŠāļĄāļšāļąāļ•āļīāļāļēāļĢāļ›āđ‰āļ­āļ‡āļāļąāļ™āļ„āļ§āļēāļĄāļĢāđ‰āļ­āļ™āļ—āļĩāđˆāļŠāļđāļ‡āđāļĨāļ°āđƒāļŦāđ‰āđ€āļ™āļ·āđ‰āļ­āļŸāļīāļĨāđŒāļĄāļ—āļĩāđˆāļĄāļĩāļ„āļ§āļēāļĄāđ€āļ„āļĨāļĩāļĒāļĢāđŒāđƒāļŠ

V-KOOL was first introduced in the US in 1991. Based on research originally related to US aerospace and military use, V-KOOL is the world’s first wavelength selective window coating that provides a virtually transparent protective barrier against the sun’s heat and radiation. Wavelength selective coatings enable the Stealth Bomber to evade detection by reducing the aircraft’s radar footprint.

V-KOOL utilizes a proprietary and patented di-electric sputtering process that embeds super clear substrate with up to 10 atomic layers of Indium Oxide and Silver that is further fortified with Gold. This complex process gives V-KOOL its amazing heat reflection qualities without looking reflective or dark. V-KOOL’s spectrally selective technology is based on the heat reflection technique.

Other Window Films in the Market

Common Metals

Other window films are mostly made out of common metals like aluminum, nickel and bronze. These metals have some heat performance but come with compromised reflective look and do not allow as much daylight to pass through, making night time driving more difficult and dangerous. Common metals also have the disadvantage of demetallization and the metals are deposited on the film more unevenly. Common metals and its manufacturing technology are also significantly cheaper in material cost. A discerning consumer will be wary of unethical retailers hawking these films for more than their worth.

Non-Metals

Films can be made of non-metals like oxides and nitrates. The benefits of these films are that they do not have mirror-like surfaces. But their performance in heat rejection is usually compromised. They work like “sponges”, soaking up heat instead of reflecting heat, so by nature; they are classified as heat absorbing. Very cheap non-metals such as dyed films will even have color fading under exposure of sun. Better performing non-metals like nitrates have some heat rejection properties but they are typically darker, more absorptive and the surface of the film may be prone to thermal cracks and lines. As the material cost is low, you may want to weigh performance and benefit to overall cost.

āđ€āļĢāļēāđƒāļŠāđ‰āļ„āļļāļāļāļĩāđ‰āđ€āļžāļ·āđˆāļ­āļžāļąāļ’āļ™āļēāļ›āļĢāļ°āļŠāļīāļ—āļ˜āļīāļ āļēāļž āđāļĨāļ°āļ›āļĢāļ°āļŠāļšāļāļēāļĢāļ“āđŒāļ—āļĩāđˆāļ”āļĩāđƒāļ™āļāļēāļĢāđƒāļŠāđ‰āđ€āļ§āđ‡āļšāđ„āļ‹āļ•āđŒāļ‚āļ­āļ‡āļ„āļļāļ“ āļ„āļļāļ“āļŠāļēāļĄāļēāļĢāļ–āļĻāļķāļāļĐāļēāļĢāļēāļĒāļĨāļ°āđ€āļ­āļĩāļĒāļ”āđ„āļ”āđ‰āļ—āļĩāđˆ āļ™āđ‚āļĒāļšāļēāļĒāļ„āļ§āļēāļĄāđ€āļ›āđ‡āļ™āļŠāđˆāļ§āļ™āļ•āļąāļ§ āđāļĨāļ°āļŠāļēāļĄāļēāļĢāļ–āļˆāļąāļ”āļāļēāļĢāļ„āļ§āļēāļĄāđ€āļ›āđ‡āļ™āļŠāđˆāļ§āļ™āļ•āļąāļ§āđ€āļ­āļ‡āđ„āļ”āđ‰āļ‚āļ­āļ‡āļ„āļļāļ“āđ„āļ”āđ‰āđ€āļ­āļ‡āđ‚āļ”āļĒāļ„āļĨāļīāļāļ—āļĩāđˆ āļ•āļąāđ‰āļ‡āļ„āđˆāļē

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