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Edge Computing

EDGE COMPUTING

Propel Operational Performance by Doing More With Your Data Utilizing Edge Computing

At Apperture Solutions, we help our customers gain access to process control system data when and where it is needed. Leveraging an Edge Environment makes data democratization a reality. Accessibility of data is maximized through secure egress from your ISA 95 Level 2 process control environments to data lakes, data scientists, analytics applications or enterprise resource planning systems.

Here’s How Edge Computing Powers Process Control:

Real-Time Decision Making

By processing data at the edge of the network (near the equipment), systems can make split-second decisions without having to rely on distant data centers or cloud-based services. For example, in a manufacturing plant, Edge computing can instantly adjust machine settings based on real-time sensor data, ensuring optimized performance.

Reduced Latency

In traditional process control systems, data must travel to centralized servers for analysis and then back to the system for adjustments. This introduces delays that can affect efficiency and quality. Edge computing eliminates this lag, enabling almost immediate responses to changing conditions.

Improved Reliability and Resilience

Edge computing ensures that critical systems continue to operate even when there’s an issue with connectivity to central servers. If a network failure occurs, Edge devices can continue to monitor and control processes locally, preventing downtime and maintaining production flow.

Data Filtering and Preprocessing

Edge devices can perform initial data filtering and preprocessing before sending it to the cloud or central data hub. This helps reduce the volume of data being transmitted and ensures that only the most important information is shared, improving both network efficiency and decision-making accuracy.

Energy Efficiency and Cost Reduction

By reducing the need to transmit large volumes of raw data to centralized systems, Edge computing lowers bandwidth and cloud storage costs. It also allows for more energy-efficient operations since adjustments can be made locally without relying on a remote cloud infrastructure.

Predictive Maintenance

Edge computing can enable real-time monitoring of equipment health, where algorithms process data from sensors (like temperature, vibration, pressure, etc.) and detect anomalies that may signal potential failures. This helps in scheduling predictive maintenance, reducing unplanned downtime, and extending the lifespan of equipment.

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