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Another advancement is the development of water reclamation systems. As environmental concerns grow, car wash facilities are increasingly adopting technologies that allow them to recycle and reuse water. These systems capture the runoff from washes, filter and purify the water, making it suitable for reuse. By implementing water reclamation processes, car washes not only reduce their water consumption but also lessen their environmental footprint, promoting sustainability within the industry.
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On the other hand, automatic car wash systems, which provide a fully automated experience, can be significantly more expensive. The price for these machines often starts at around $30,000 and can exceed $100,000 for high-capacity, advanced models with additional features such as touchless washing technology, wax application systems, and drying capabilities. The investment in these machines can be substantial but is often justified by their efficiency and the level of service they provide.
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Unfortunately, we studied that all of the above methods are employed after machining or forming, and they require a long process chain and costly production types of equipment [21–24]. Therefore, we proposed a titanium alloy implant preparation process that integrated with cutting and surface modification. The oxygen-rich atmosphere increases the partial pressure of oxygen in the oxidizing environment, and the heat generated during the cutting process increases the temperature and the rate of the oxidation. It uses the cutting heat and oxygen-rich atmosphere generated during the cutting process to form the oxide film (TiO2) to improve the corrosion resistance of the titanium alloy. The experimental equipment is shown in Figure 2. Since the cutting temperature is the most important factor in the oxide film formation process, this paper carried out researches based on theoretical analysis and experimental investigation to acquire an ideal temperature range for the cutting process to achieve the oxide layer.