VelanoTech
СтатистикаVela of novelty & Technology 💬 ارتباط با ما: 🆔 @h_Yousefi94 🆔 @EhsanKhavasi 💜 همراهِمون باش... 🆔 @VelanoTech 📷 instagram.com/velanotech
- Последний пост
- 11 авг.
- Последнее чтение
- 14 авг.
- Постов за неделю
- 3
- Всего постов
- 22
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- 13 авг.
- 1/24сутки в ленте
- 132
- 1/48двое суток
- 151
- 1/72трое суток
- 163
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اگر گزینه «نه، معرفی کن» رو زدی، این هم پیج هوران 👇🏻 Instagram اینجا درباره شبیهسازی مهندسی، پروژههای واقعی و پشتصحنه کارهامون محتوا منتشر میکنیم.
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#HOORAN_VISUALS 03 Wind does not simply pass around buildings. Every structure changes the flow field, creating pressure gradients, wake regions, recirculation zones, and vortices that influence both structural performance and the surrounding urban environment. This visualization, generated with OpenFOAM, demonstrates how Computational Fluid Dynamics (CFD) helps engineers analyze airflow around buildings before construction. By understanding these invisible flow structures early in the design process, engineers can improve pedestrian comfort, optimize natural ventilation, reduce wind loads, and support more resilient urban planning. Every successful design begins with understanding the physics that cannot be seen. Test Before Reality. 🔗 Stay Connected Instagram | LinkedIn | Telegram
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#HOORAN_VISUALS 02 Mixing looks simple. Physics disagrees. Inside an industrial mixer, performance is determined by what cannot be seen: • Velocity distribution • Recirculation zones • Dead volumes • Shear rates • Mixing uniformity A mixer that appears identical from the outside can behave completely differently on the inside. Some regions mix rapidly. Others barely move. Some consume more energy than necessary. Others fail to achieve the required product quality. CFD makes these hidden flow structures visible before manufacturing, scaling up, or modifying equipment. Because better mixing is rarely about adding more power. It is usually about moving fluid more intelligently. TEST BEFORE REALITY. 🔗 Stay Connected Instagram | LinkedIn | Telegram
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#BEFORE_REALITY 02 For decades, vacuum cleaners shared the same flaw: The more dust they collected, the less effective they became. Most people accepted it. James Dyson didn't. He believed the problem wasn't inevitable. The design was. What followed was not a breakthrough idea or a sudden moment of inspiration. It was thousands of failures. More than 5,000 prototypes were built before the first Dyson vacuum cleaner reached the market. Most of them never worked. Each one revealed something new about airflow, pressure losses, and particle separation. Each failure made the next design better. Today, engineering teams increasingly move those failures into simulation. Because failure itself is not expensive. Late failure is. The goal of engineering is not avoiding failure. It is making failure cheaper, faster, and smarter. Reality is expensive. Simulation isn't. TEST BEFORE REALITY. 📖 Read the full story on our Instagram. 🔗 Stay Connected Instagram | LinkedIn | Telegram
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#Where_It_Shines 🔋 Thermal Management Simulation of Electric Vehicle Batteries In battery systems, temperature is more than just a number. It is a key factor that determines performance, lifetime, and safety. Non-uniform temperature distribution inside a battery pack can reduce efficiency, accelerate degradation, shorten battery life, and in critical conditions, lead to thermal runaway. Using CFD and OpenFOAM®, engineers can analyze airflow, heat transfer, and temperature distribution inside the battery pack before building a physical prototype, enabling design decisions to be driven by data rather than trial and error. This means: ✔ Optimized cooling performance ✔ Reduced thermal hotspots ✔ Extended battery lifetime ✔ Improved safety and reliability ✔ Lower development cost and time In industry, simulation is more than an engineering tool. It is a competitive advantage. Test Before Reality. 🔗 Stay Connected Instagram | LinkedIn | Telegram
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#HOORAN_VISUALS 01 Inside a cyclone separator, there are no moving parts. No filters. No complex mechanisms. Only geometry and fluid physics. As the flow enters tangentially, a powerful vortex develops inside the chamber. Centrifugal forces drive particles toward the wall, while cleaner air moves toward the core and exits through the vortex finder. The engineering challenge is simple to describe but difficult to optimize: Increase particle collection efficiency. Minimize pressure drop. Improve one too much, and the other usually suffers. CFD allows engineers to observe what experiments often cannot reveal directly: • Flow structures • Particle trajectories • Recirculation regions • Vortex behavior • Separation performance Because before equipment is manufactured, installed, or operated... the physics can already be tested. TEST BEFORE REALITY. 🔗 Stay Connected Instagram | LinkedIn | Telegram
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