Author name: Achmad JP

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Coronavirus disease 2019

COVID-19 is a contagious disease caused by the coronavirus SARS-CoV-2. In January 2020, the disease spread worldwide, resulting in the COVID-19 pandemic. The symptoms of COVID‑19 can vary but often include fever,[7] fatigue, cough, breathing difficulties, loss of smell, and loss of taste.[8][9][10] Symptoms may begin one to fourteen days after exposure to the virus. At least a third of people who are infected do not develop noticeable symptoms.[11][12] Of those who develop symptoms noticeable enough to be classified as patients, most (81%) develop mild to moderate symptoms (up to mild pneumonia), while 14% develop severe symptoms (dyspnea, hypoxia, or more than 50% lung involvement on imaging), and 5% develop critical symptoms (respiratory failure, shock, or multiorgan dysfunction).[13] Older people have a higher risk of developing severe symptoms. Some complications result in death. Some people continue to experience a range of effects (long COVID) for months or years after infection, and damage to organs has been observed.[14] Multi-year studies on the long-term effects are ongoing.[15] COVID‑19 transmission occurs when infectious particles are breathed in or come into contact with the eyes, nose, or mouth. The risk is highest when people are in close proximity, but small airborne particles containing the virus can remain suspended in the air and travel over longer distances, particularly indoors. Transmission can also occur when people touch their eyes, nose, or mouth after touching surfaces or objects that have been contaminated by the virus. People remain contagious for up to 20 days and can spread the virus even if they do not develop symptoms.[16] Testing methods for COVID-19 to detect the virus’s nucleic acid include real-time reverse transcription polymerase chain reaction (RT‑PCR),[17][18] transcription-mediated amplification,[17][18][19] and reverse transcription loop-mediated isothermal amplification (RT‑LAMP)[17][18] from a nasopharyngeal swab.[20] Several COVID-19 vaccines have been approved and distributed in various countries, many of which have initiated mass vaccination campaigns. Other preventive measures include physical or social distancing, quarantining, ventilation of indoor spaces, use of face masks or coverings in public, covering coughs and sneezes, hand washing, and keeping unwashed hands away from the face. While drugs have been developed to inhibit the virus, the primary treatment is still symptomatic, managing the disease through supportive care, isolation, and experimental measures.

Industry Insights

Understanding Foam Control in Waterborne Coatings

Understanding Foam Control in Waterborne Coatings Defoamers Industry Insights Paints & Coatings IN THIS ARTICLE Understanding Foam Control in Waterborne Coatings Why Does Foam Form? The Role of Defoamers Key Considerations When Selecting a Defoamer Evaluating Foam-Control Performance Supporting Consistent Coating Performance Understanding Foam Control in Waterborne Coatings Foam management plays an important role in the formulation and application of waterborne coatings. While foam formation is common during manufacturing and application, excessive foam can affect processing efficiency, coating appearance and overall product quality. Understanding the causes of foam and selecting a suitable defoaming technology can help formulators achieve more consistent results. Why Does Foam Form? Foam develops when air is introduced into a liquid and becomes stabilized by surface-active components. In waterborne coatings, this can occur during pigment dispersion, high-speed mixing, pumping and application. Surfactants, dispersants and other formulation ingredients may stabilize air bubbles, making them difficult to eliminate naturally. Persistent foam can contribute to several challenges: Reduced effective mixing and filling efficiency Entrapped air and pinholes in the applied coating. Surface irregularities that affect the final appearance. Inconsistent processing and application performance. The Role of Defoamers Defoamers are specialty additives designed to destabilize foam and promote the release of entrapped air. Their effectiveness depends on factors such as formulation chemistry, compatibility, processing conditions and the stage at which they are introduced. A suitable defoamer should provide effective foam control while minimizing unwanted effects on coating appearance and performance. Key Considerations When Selecting a Defoamer 1. Formulation Compatibility The defoamer should be evaluated within the complete coating formulation. Compatibility influences both foam-control efficiency and the risk of surface defects. 2. Processing conditions Mixing intensity, temperature and application methods can affect foam generation and defoamer performance. 3. Surface appearance Effective foam control should be balanced against the potential for craters, haze or other surface imperfections. 4. Performance during application Testing should consider not only foam generated during manufacturing but also air introduced during coating application. Evaluating Foam-Control Performance Laboratory evaluation can help formulators identify suitable defoaming technologies. Typical assessments may include foam volume, foam collapse time, entrapped air, coating appearance and application performance. Testing under representative processing and application conditions is important because results may vary between formulations. Supporting Consistent Coating Performance Effective foam control requires more than simply eliminating visible bubbles. The selected defoamer must also work within the formulation without compromising the desired coating properties. By considering formulation compatibility, processing conditions and surface quality together, formulators can develop more reliable foam-control strategies. Find the Right Solution for Your Application Connect with our technical experts to discuss your challenges and explore tailored additive solutions. Contact Technical

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