Dehumidified Air Dryer

7.2. Assembly

»

Please ensure adequate carrying capacity of the lifting equipment.

Check the carrying capacity of the point of installation, particularly if installed on a platform.

The place selected for installation should be as free of vibrations as possible.

The main switch must be freely accessible.

Ground the equipment against electrostatic charging.

A special foundation is not required for installation.

The dryer must be installed on a level surface, and may not be exposed to excessive humidity. Maximum permissible ambient temperature of the control system is 45 °C (113°F).

To facilitate servicing, install the dryer such that it is accessible from 3 sides. Make sure that the air filters can be changed without problems. The rear of the dryer can be placed against a wall.

To conserve energy, keep the distances between dryer, hopper and processing machine as short as possible.

The location of the control unit should be chosen so that a clear view of the separators is guaran- teed from the control unit. Thus any malfunctions which arise can be corrected more easily.

Fasten the transport cables to the eyelets of the control cabinets. During transport do not contact or push against other components with the control panels.

7.3. Storage

The control system may only be stored at temperatures from -25 to +55°C (-13 to +131 °F).

Between delivery and machine commissioning the equipment should be stored in a dry, dust-free and vibration-free room.

SM2-625

Transport, Assembly and Storage 7-4

Page 66
Image 66
Sterling STT 800 manual Dehumidified Air Dryer Assembly, Storage

STT 800 specifications

The Sterling STT 800 is an advanced thrust vector control system that has garnered significant attention in the aerospace and defense sectors. Designed to enhance the performance of various aircraft, including drones and missiles, the STT 800 combines cutting-edge technologies and innovative design to provide operators with exceptional maneuverability and precision.

One of the primary features of the Sterling STT 800 is its state-of-the-art thrust vectoring capability. This technology allows the aircraft to change the direction of its thrust, enabling unparalleled agility and control during flight. By directing engine thrust both horizontally and vertically, the STT 800 can perform complex aerial maneuvers that standard aircraft would struggle to achieve. This capability is critical for modern combat scenarios, where quick evasive actions and sharp turns can mean the difference between mission success and failure.

The STT 800 is built with lightweight, robust materials that enhance its durability while minimizing overall weight. This design philosophy ensures that the system remains operable under extreme conditions, including high-speed flight and challenging environmental situations. Advanced materials not only contribute to the overall performance of the system but also improve its resistance to wear and tear.

Another key characteristic of the Sterling STT 800 is its integration with advanced navigation and control systems. The aircraft can utilize GPS, inertial navigation systems, and state-of-the-art avionics to maintain high levels of situational awareness and operational efficiency. This integration enables seamless communication between components, allowing for real-time adjustments and data sharing during flight.

The STT 800 is also designed with modularity in mind, allowing for easy upgrades and the incorporation of future technologies. This adaptability ensures that operators can keep pace with the rapidly evolving landscape of aerospace technology, maintaining a competitive edge in both military and civilian applications.

In addition, the Sterling STT 800 features advanced software algorithms that optimize flight paths and enhance overall efficiency. This intelligent system provides operators with predictive analytics, ensuring that the aircraft can adapt to changing conditions and mission objectives effectively.

Overall, the Sterling STT 800 represents a significant leap forward in thrust vector control technology. With its combination of advanced maneuverability, durable design, sophisticated navigation systems, and modularity, it exemplifies the capabilities required for modern aerial operations and sets a new standard for performance in the aerospace industry.