iPhone 18 Pro might carry over an issue present on the iPhone 17 Pro models | Apple Wants To Make…


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Explore the latest developments concerning iPhone 18 Pro.

Apple Wants To Make Sure That Your iPhone 18 Pro Remains As Clean And Pristine As When You First Unboxed It

Only the finest materials are picked by Apple to design and construct its premium products, but the underlying process can often compromise their durability. With the iPhone 17 Pro and iPhone 17 Pro Max, the company went back to aluminum, making it exceptional for heat dissipation and lowering cost, but less favorable when holding up against scratches and drops. Fortunately, a new rumor states that the iPhone 18 Pro and iPhone 18 Pro Max won’t suffer from these shortcomings, and you’ll find out why.

Some of the durability problems surrounding the iPhone 17 Pro were the camera plateau chipping easily and Cosmic Orange units suffering from oxidation effects, with the finish turning into Rose Gold. Other than that, aluminum is a malleable metal, able to be bent into various shapes, but it’s this exact attribute that compromises its durability when it falls from a certain height or angle.

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Apple’s Next Aluminum Breakthrough Could Turn CNC Machining Waste Back Into iPhone And MacBook Neo Frames At Temperatures As Low As 125 Degree Celsius

Apple is gradually accumulating a legendary portfolio of patents related to material sciences, with a recent patent filing describing a cheaper, more efficient process to recover pure aluminum from its scrapped alloy state.

Traditional methods of recovering pure aluminum from its alloys, such as the Hoopes process, are generally energy- and capital-intensive, diminishing the underlying economic rationale.

Apple, however, has now applied to patent a new aluminum recovery method, one that involves electrorefining in conjunction with a low-melting-temperature molten salt.

Unlike traditional fractional solidification methods that struggle to remove some common elements found within aluminum alloys, Apple's electrorefining process, which involves an aluminum chloride-based molten electrolyte salt, "may operate below 200° C, below 150° C, below 125° C and, in some variations, even lower."

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