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Blog

Oops! It Happened Again

Stay ahead of unexpected equipment malfunctions and empower your team with AI and machine learning to accurately detect and prevent breakdowns.

Blog

Sustainability Pathways – Helping Companies Address the Dual Challenge

AspenTech has created structured solutions packages – known as Sustainability Pathways – designed to help companies strategically meet sustainability targets across 11 of the most impactful areas.

Video

Aspen Plant Scheduler with Mtell

Watch this video for an introduction of how Aspen Plant Scheduler and Aspen Mtell work together to predict and minimize the impact of downtime

Video

Improving Resource Allocation and Maintenance Efficiency with Alert Manager

Plant engineers often face disjointed workflows and a lack of critical information to make quick, informed decisions when troubleshooting equipment issues. Now, with the Alert Manager functionality within Aspen Mtell®, engineers have access to a centralized interface that allows them to identify the cause of the problem and prioritize the equipment criticality and failure mode severity for any alerts in queue through an interactive risk matrix. View this video now and discover how Alert Manager can help you to focus on the most critical issues, enabling you to improve equipment performance and increase profitability.

Case Study

Novozymes Uses Process Modeling to Optimize and Develop Biodiesel Processes

Novozymes A/S, a global biotechnology company based in Denmark, was looking to support the development and optimization of biodiesel processes due to increasing biodiesel market demand, rising materials costs and more stringent industry regulations.

Blog

Taming the Downtime Scheduling Beast

Achieve supply chain resilience with downtime scheduling that leverages prescriptive maintenance and advanced scheduling optimization to minimize impact on production.

Press Release

Aspen Technology Combines inmation Software and AIoT Hub to Advance Customers’ Digital Transformation Strategies

A global leader in industrial data management from the shopfloor to the boardroom, we accelerate data-driven value creation in asset-intensive industries through robust data software offerings. 

Technical Paper

Unsupervised Machine Learning for Seismic Facies Classification Applied in Presalt Carbonate Reservoirs of the Búzios Field, Brazil

Seismic data can provide useful information for prospect identification and reservoir characterization. Combining seismic attributes helps identify different patterns, for improved geological characterization. Machine learning applied to seismic interpretation is very useful in assisting with data classification limitations.

Technical Paper

Hybrid Approach in Velocity Model Building: A Case Study from Western Offshore Basin, India

In depth imaging, depth calibration using well-tie updated velocity is generally applied to poststack data. This is the most correct type of depth calibration as it positions structures in their proper places.

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