Renewable Energy Training Courses > Utility-Scale Hybrid Solar PV Plants with Battery Energy Storage Systems (BESS) - Mastering Grid Stability, Design Integration, and Lifecycle Asset Management
Code Date Format Currency Team of 10
Per Person*
Team of 7
Per Person*
Early Bird Fee
Per Person
Normal Fee
Per Person
PWR1468 08 - 11 Jun 2026 Kuala Lumpur, Malaysia SGD 3,697 3,869 4,099 4,299
PWR1468 08 - 11 Jun 2026 Kuala Lumpur, Malaysia USD 2,923 3,059 3,199 3,399
PWR1468(A) 08 - 12 Jun 2026 Kuala Lumpur, Malaysia SGD 4,127 4,319 4,599 4,799
PWR1468(A) 08 - 12 Jun 2026 Kuala Lumpur, Malaysia USD 3,181 3,329 3,499 3,699

*Fee per person in a team of 7 or 10 participating from the same organisation, registering 6 weeks before the course date
Request for a quote if you have different team sizes, content customisation, alternative dates or course timing requirements
Request for in-person classroom training or online (VILT) training format

Learn in teams and save more! Enjoy group discounts of up to 50% off normal fees for team based learning. Contact us on [email protected] to learn more today!

Code

PWR1468

Date

08 - 11 Jun 2026

Format

Kuala Lumpur, Malaysia

Currency

SGD

Team of 10
Per Person*

3,697

Team of 7
Per Person*

3,869

Early Bird Fee
Per Person

4,099

Normal Fee
Per Person

4,299

Code

PWR1468

Date

08 - 11 Jun 2026

Format

Kuala Lumpur, Malaysia

Currency

USD

Team of 10
Per Person*

2,923

Team of 7
Per Person*

3,059

Early Bird Fee
Per Person

3,199

Normal Fee
Per Person

3,399

Code

PWR1468(A)

Date

08 - 12 Jun 2026

Format

Kuala Lumpur, Malaysia

Currency

SGD

Team of 10
Per Person*

4,127

Team of 7
Per Person*

4,319

Early Bird Fee
Per Person

4,599

Normal Fee
Per Person

4,799

Code

PWR1468(A)

Date

08 - 12 Jun 2026

Format

Kuala Lumpur, Malaysia

Currency

USD

Team of 10
Per Person*

3,181

Team of 7
Per Person*

3,329

Early Bird Fee
Per Person

3,499

Normal Fee
Per Person

3,699

*Fee per person in a team of 7 or 10 participating from the same organisation, registering 6 weeks before the course date
Request for a quote if you have different team sizes, content customisation, alternative dates or course timing requirements
Request for in-person classroom training or online (VILT) training format

About this Classroom Training

The global energy landscape is undergoing a large transformation, moving rapidly toward decentralised, clean, and dispatchable power. Hybrid integration of Utility-Scale Solar Photovoltaic (PV) Plants with Battery Energy Storage Systems (BESS) is the foundational architecture enabling this shift effectively and efficiently. Hybrid PV-BESS facilities stabilise grid instability, enhance asset profitability, and maximise the integration of intermittent solar energy.

Participants will dive deep into system architecture, PV-BESS, performance metrics, safety and degradation concerns, and monitoring, all aligned with current international operational best practices. The training is specifically designed to help professionals master the complexities of balancing demand variability, supporting peak-shaving, and providing ancillary grid services in expanding markets like Southeast Asia. Participants will move beyond separate PV and BESS concepts to master the synergies, shared infrastructure, and advanced software Energy Management System (EMS) controls that unlock optimal performance and revenue streams in competitive energy markets.

This comprehensive 4-day program equips participants with the essential knowledge and hands-on capability to design, integrate, commission, and manage hybrid solar and BESS projects at utility scale. As the energy sector shifts toward flexible, dispatchable renewables to address intermittency and grid-stability challenges, participants will gain critical skills needed to navigate the transition.

This course will be delivered face-to-face over 4-day sessions, comprising of 8 hours per day, 1 hour lunch and 2 breaks of 15 minutes per day. Course Duration: 26 hours in total, 26 CPD points.

By the end of this 4 days training course, participants will be able to:

  • Attain an in-depth, advanced understanding of the design, integration, and operational principles of utility-scale hybrid PV-BESS systems.
  • Analyse and apply optimisation techniques to design and size utility-scale hybrid plants for maximum efficiency and grid services.
  • Develop skills to evaluate, quantify, and mitigate complex technical, performance, and safety risks associated with PV and BESS infrastructure.

This course has been designed for professionals working in the energy sector looking to further develop their careers to keep up to date on emerging technologies.

  • Electrical, Power System, and Renewable Energy Engineers involve in system planning, protection studies, and grid interconnection, as well as Transmission and Distribution Operators managing grid stability and congestion issues.
  • Project Managers, Developers, and EPC Contractors responsible for overseeing the full lifecycle from feasibility and economics to construction and commissioning of hybrid plants.
  • Asset Managers and O&M Engineers focusing on day-to-day plant reliability, performance monitoring, troubleshooting, and maximising long-term asset health.
  • QA/QC Engineers, Commissioning Teams, and Safety Specialists dealing with standards, testing protocols, fire risk assessments, and thermal runaway mitigation.
  • Financial Analysts, System Operators, and Digital/AI Engineers tasked with optimising revenue streams (ancillary services, arbitrage), and commercial strategy.
  • Intermediate
  • Advanced

This training is conducted in a classroom environment, combining lectures (50%), case study discussions (30%), and interactive activities (20%) to provide a balanced mix of theoretical knowledge, practical insights, and hands-on engagement. Participants will apply learning through role-playing exercises, quizzes, and examinations to reinforce understanding and assess competency. The training leverages digital tools such as Cluedo, Mentimeter, and Slido, as well as technical applications including SolarGIS, Meteonorm, NASA POWER, the NREL PVWatts Calculator, and the FMECA toolbox. Learning resources include videos, printed materials, and presentation slides, supported by references from books, journals, websites, prior trainings, and the trainer’s personal repository of experiences.

Your expert instructor is an internationally recognised Professional Engineer and Chartered Engineer (UK) with more than 18 years of global experience across 30+ countries, specialising in renewable energy systems, and Utility-Scale Battery Energy Storage Systems (BESS). His work spans Europe, the Middle East, Africa, America, Australia, and Asia, where he has provided high-impact technical services for leading power utility organisations in the the EU and APAC region.

His notable project portfolio includes the commissioning of large-scale solar PV plants, technology assessments for offshore wind parks, and specialised forensic investigations at major renewable energy and grid-connected assets, HVDC interconnectors, offshore wind submarine cables, and high-voltage grid infrastructure. He leads comprehensive investigations involving LV, MV, HV, and EHV equipment failures up to 500 kV, covering both AC and DC networks while providing regional support to global technical bodies. His technical expertise spans utility-scale solar PV design, performance assessment, degradation analysis, BESS safety and thermal runaway behaviour, grid stability, ancillary services, and hybrid PV–BESS integration.

With over 12 years of international training experience, he has delivered more than 25 specialised training programs on BESS, solar PV systems, offshore wind cables, HV/EHV failures, and forensic engineering for utilities, EPCs, regulators, and TSOs worldwide.

He holds numerous professional credentials including CEng (UK), ACPE, Professional Engineer (BEM), Professional Technologist (MBOT), HRDC Accredited Trainer, while actively pursuing further certifications including MIFireE, EUR ING, and MCIArb. His depth of technical knowledge, extensive field experience, and proven training excellence make him an authoritative subject-matter expert.

Unlock the potential of your workforce with customized in-house training programs designed specifically for the energy sector. Our tailored, in-house courses not only enhance employee skills and engagement but also offer significant cost savings by eliminating travel expenses. Invest in your team’s success and achieve specific outcomes aligned with your organization’s goals through our expert training solutions. Request for further information regarding our on-site or in-house training opportunities.

In our ongoing commitment to sustainability and environmental responsibility, we will no longer providing hard copy training materials. Instead, all training content and resources will be delivered in digital format. Inspired by the oil and energy industry’s best practices, we are leveraging on digital technologies to reduce waste, lower our carbon emissions, ensuring our training content is always up-to-date and accessible. Click here to learn more.

To further optimise your learning experience from our courses, we also offer individualized “One to One” coaching support for 2 hours post training. We can help improve your competence in your chosen area of interest, based on your learning needs and available hours. This is a great opportunity to improve your capability and confidence in a particular area of expertise. It will be delivered over a secure video conference call by one of our senior trainers. They will work with you to create a tailor-made coaching program that will help you achieve your goals faster.
Request for further information post training support and fees applicable

1. What is a utility-scale hybrid solar PV plant with BESS?

A utility-scale hybrid solar PV plant with Battery Energy Storage Systems (BESS) combines large-scale photovoltaic generation with grid-connected batteries at a single site or through coordinated control. The PV system produces electricity from solar energy, while BESS stores excess generation and dispatches it when needed. This hybrid configuration enables better management of intermittency, improves grid reliability, supports peak demand, and allows renewable energy to behave more like conventional dispatchable power plants.

2. Why are hybrid PV-BESS systems important for grid stability?

Hybrid PV-BESS systems enhance grid stability by providing fast-response flexibility that solar PV alone cannot offer. Batteries can respond within milliseconds to frequency deviations, voltage fluctuations, and sudden load changes. They support services such as frequency regulation, ramp-rate control, spinning reserve, and peak shaving. This capability is increasingly critical as power systems integrate higher shares of variable renewable energy and retire conventional fossil-fuel-based generation.

3. What are the main advantages and limitations of hybrid solar PV with BESS?

Key advantages include improved energy dispatchability, reduced curtailment of solar generation, enhanced power quality, and additional revenue from ancillary grid services. Hybrid systems also defer transmission upgrades and improve asset utilisation. Limitations include high upfront capital costs, battery degradation over time, safety risks such as thermal runaway, and the need for sophisticated control systems. Proper design, operational strategy, and lifecycle management are essential to balance these trade-offs.

4. How do AC-coupled and DC-coupled hybrid PV-BESS systems differ?

In AC-coupled systems, the PV plant and BESS connect to the grid via separate inverters, offering operational flexibility and easier retrofitting. DC-coupled systems connect batteries on the DC side of the PV inverter, improving efficiency by reducing conversion losses and enabling better curtailment recovery. However, DC coupling can increase system complexity and limit independent operation. The choice depends on grid requirements, project objectives, and economic considerations.

5. What grid services can battery energy storage systems provide?

Battery energy storage systems support a wide range of grid services, including frequency response, voltage control, spinning reserve, black start capability, energy arbitrage, peak shaving, and congestion management. In hybrid PV systems, BESS also enables capacity firming, ramp control, and forecast error mitigation. These services help maintain system reliability while allowing higher penetration of renewable energy into modern electricity markets.

6. What are the key technical challenges in operating utility-scale BESS?

Major challenges include battery degradation from cycling and calendar ageing, thermal management, fire and safety risks, and maintaining accurate state-of-charge and state-of-health estimates. Environmental factors such as high temperature and humidity can accelerate degradation. Additionally, improper control strategies may reduce battery lifespan or economic returns. Robust battery management systems (BMS), energy management systems (EMS), and predictive analytics are essential for long-term reliability.

7. How does artificial intelligence improve hybrid PV-BESS performance?

Artificial intelligence enhances hybrid PV-BESS systems through improved forecasting, optimisation, and predictive maintenance. AI models can forecast solar generation and load demand, optimise battery dispatch for multiple grid services, and detect early signs of equipment failure. Digital twins and machine learning algorithms also improve battery state-of-health estimation and thermal risk prediction, enabling safer operation and maximising lifecycle value.

8. What is the future outlook for utility-scale hybrid solar PV and BESS?

The future outlook is strongly positive, driven by declining battery costs, stricter grid reliability requirements, and increasing renewable penetration. Hybrid PV-BESS systems are expected to become standard infrastructure in power systems worldwide. Advances in battery chemistry, grid-forming inverters, AI-driven control, and recycling technologies will further improve performance, safety, and sustainability, positioning hybrid plants as a cornerstone of the global energy transition.

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