Introduction

Oil and gas facilities face mounting pressure to reduce emissions while maintaining a reliable power supply. Hybrid energy systems combining renewables, storage, and conventional generation offer a proven solution. These systems require sophisticated control strategies to balance multiple energy sources effectively. This article examines control strategies for managing hybrid energy systems in oil and gas operations. It covers load balancing techniques, frequency support mechanisms, and control system architectures.

What Are Hybrid Energy Systems?

A Hybrid Energy System (HES) is a unified power generation solution that integrates two or more distinct energy sources. They combine renewables with conventional generation plus energy storage. The primary goal of a hybrid energy system is to maximize renewable utilization and reduce emissions while ensuring 24/7 power reliability.

Core Components of Hybrid Energy Systems

A standard hybrid system for an industrial facility consists of:

Control Strategies to Manage Hybrid Energy Systems

Effective control strategies are the “brain” of a hybrid energy system, tasked with harmonizing intermittent renewables, chemical storage, and mechanical generators. The following sections highlight some of these strategies.

Design Control System Architecture

Hierarchical Control Architecture

Effective hybrid systems employ hierarchical control architectures handling different timescales simultaneously.

Integration Approaches

Integration approaches define how the hierarchical control levels (Local, Supervisory, Planning) communicate and coordinate across system components. They are architectural decisions that directly implement the multi-layered hierarchy discussed above.

Centralized Control
A single EMS master controller handles all decisions across hierarchy levels.

Distributed Control
Each component (inverter, BESS, turbine) runs autonomous local controllers, loosely coordinating via the network.

Hybrid Control (Industry Standard)
Combines centralized optimization (Level 3) with distributed execution (Levels 1-2). Supervisory EMS sets targets; locals execute autonomously.

Intelligent Load Balancing

Load balancing ensures demand is distributed proportionally across available assets to prevent equipment wear and inefficiency.

Frequency Support Mechanisms

Frequency stability indicates real-time balance between generation and demand. Oil and gas facilities require a stable frequency (50 Hz or 60 Hz) for reliable equipment operation.

Frequency Control Challenges

Primary Support Methods

To bridge this gap, control strategies utilize a multi-layered approach to frequency regulation:

Bidirectional Power Flow Control

In traditional systems, power flows in one direction: from the generator to the load. Hybrid systems, however, require a Bidirectional Control Strategy to manage assets like batteries that function as both a source (discharging) and a load (charging).

This strategy is executed through the Energy Management System (EMS) and focuses on three critical areas:

Executing Your Hybrid Energy System with Petrotech

Transitioning to a hybrid energy system is a complex engineering feat. In the high-stakes environment of oil and gas, the integration and synchronization of these assets requires precision that off-the-shelf solutions cannot provide.

A specialist like Petrotech is critical because generic controllers often fail to address the Inertia Gap, leading to frequency instability and costly production halts. Our approach integrates renewable generation, energy storage, and conventional power seamlessly. We design control systems ensuring reliable operation while maximizing emissions reductions. Our services include:

Contact us to discuss your hybrid energy system requirements and explore how our expertise supports your decarbonization objectives.

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For more than 50 years, our team has helped customers keep critical operations running. We built our reputation as Petrotech by taking responsibility for control systems on important rotating machinery.

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