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Online Live Comprehensive Course on SmartPlant Electrical (SPEL) with Certification banner

Online Live Comprehensive Course on SmartPlant Electrical (SPEL) with Certification

Online Live Comprehensive Course on SmartPlant Electrical (SPEL) with Certification banner
Live online Advanced

Online Live Comprehensive Course on SmartPlant Electrical (SPEL) with Certification

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15 hrs
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English
1157 views
SKIETECH GROUP
SKIETECH GROUP
  • 7-day money-back guarantee
  • Session recordings included
  • Certificate of completion
Volume pricing for groups of 5+

Why enroll

  • Gain hands-on expertise in SmartPlant Electrical

  • Learn industry-standard workflows for Electrical design and documentation.

  • ·         Enhance skills in database management, reporting, and project execution.

  • ·         Improve efficiency by mastering automation and error-free deliverables.

  • ·         Get exposure to real-world engineering scenarios and case studies.

  • ·         Strengthen career opportunities with globally recognized certification.

  • ·         Build confidence to handle complex instrumentation projects independently.

  • ·         Stay ahead with in-demand skills valued across EPC and oil & gas industries.

Is this course for you?

You should take this if

  • You work in Oil & Gas Upstream or Energy & Utilities
  • You're a Electrical Engineering professional
  • You have 3+ years of hands-on experience in this field
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You're new to this field with no prior experience
  • You need a different specialisation outside Electrical Engineering
  • You need fully self-paced, on-demand content

Course details

The course is designed to equip participants with the knowledge and practical skills required to efficiently use SmartPlant Electrical (SPEL) for electrical design, documentation, and data management. It aims to build competency in handling real-world project requirements by teaching structured workflows, database management, and reporting functions. By the end of the training, learners will be able to confidently apply SPI for creating, maintaining, and optimizing instrumentation deliverables, ensuring accuracy, consistency, and compliance with industry standards while enhancing productivity in engineering projects.

Subject Description

This program provides a complete understanding of SmartPlant electrical, covering its core features, functions, and applications in modern engineering projects. Participants explore instrument index creation, specification sheets, wiring, loop diagrams, hookup, and reporting tools within the SPI environment. The curriculum emphasizes practical, hands-on learning through guided exercises that simulate actual industrial scenarios. Special attention is given to data consistency, integration with other engineering tools, and effective project execution. The course ensures participants develop both technical proficiency and problem-solving ability, making them industry-ready for roles in instrumentation and control engineering.

Please note that, This course will be conducted online live only, no recording will be provided.

Course suitable for

Key topics covered

Module 1: System and Domain Administration Overview

·         01 Introduction to SPEL

·         02 User Interface & Modules

·         03 Creating a New Project

·         04 Basic Introduction to SPEL Database

Module 2: Engineering Activities

·         01-Single line Diagram

·         02 What is "Load Type in Smart Plant Electrical?

·         03 What is PDB in SPEL and how to set it up successfully?

·         04 PDB Flow Set up

·         05 Cable creation and connections in Electrical Engineer

·         06 Load creation in Electrical Index

·         07 Motor Schematics.

·         08 Duplicating a PDB in Electrical index has rename of tags.

Module 3: Creation of SLD, Cable schedule, Load List, Equipment Report, Data sheet

·         01 Electrical Index Introduction

·         02 Electrical engineer Introduction

·         03 Reference data explorer Explanation

·         04 SLD explanation.

·         05 Load categories.

·         06 Creation of data using reference data explorer.

·         08 Making Connections in Electrical Engineer

·         09 Associate symbols to the creating objects for sld.

·         10 Providing properties to objects.

·         11 Creation and generation of SLD, load list, cable schedule, data sheet etc.

Module 4: Generating Engineering Deliverables

·         01 SLD

·         02 CABLE SCHEDULE

·         03 LOAD LIST

·         04 DATA SHEETS

·         05 SCHEMATICS

Module 5: Project Work

  • ·         Mid Term Assignments

  • Q&A Session

Opportunities that await you!

Skills & tools you'll gain

Smartplant Electrical

Career opportunities

Training details

This is a live course that has a scheduled start date.

Live session

Starts

Mon, Oct 13, 2025

2:30 PM UTC· your timezone

Duration

1.5 hours per day

10 days total

COMPLETED

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Questions and Answers

A: Undershooting this current leads to overheated MV cables and a failed IR test during SAT. Three‑phase current comes from P / (√3·V·η·pf). Plugging in 3.2 MW, 6.6 kV, 0.95, and 0.88 lands near 350 A. The other choices drop either efficiency or the three‑phase relationship, both common mistakes when electrical and mechanical data get mixed late in EPC.

A: Leaving this unresolved risks rejection by the hazardous area inspector and last‑minute rework. Ex e protection relies on controlled temperature rise and insulation integrity; uncertified plastic caps can deform, lose IP rating, and reduce creepage distances during fault conditions. The standard allows unused entries only when sealed with certified stopping plugs matching the protection concept.

A: Flagging the wrong document drives unnecessary MOC churn when you're already buried in punch items. Large conductors on modest breakers often come from late voltage‑drop or derating checks that never fed back into the SLD revision. Before assuming a protection mismatch, you confirm installation length, grouping factors, and whether the breaker setting—not the frame size—was the real design control.

A: Underestimating this leads to control room overheating and nuisance PLC trips during commissioning. Three‑phase power at 415 V and 800 A is about 575 kW; 2% of that ends up as heat inside the room, roughly 11 kW. The wrong answers confuse where losses occur or equate current directly with heat.