R15.06: Hand-Guiding and Direct Teaching Safety
- Date
- 2027-03-07
- Location
- Online
- Host
- R15.06 (Functional Safety)
About this event
A live 30-minute expert session on Hand-Guiding and Direct Teaching Safety (R15.06).
What We'll Cover:
- What Hand-Guiding and Direct Teaching Safety is and where it sits in the R15.06 safety framework
- The core method, step by step, with the decisions that matter
- How it maps to R15.06 and the artifacts it produces
- Common mistakes that get findings raised in assessment
- The traceability and evidence an auditor looks for
Related topics: hand-guiding and direct teaching safety · Hand · Guiding · Direct · Teaching · Safety · r15.06 · ansi · ria · industrial robot · robot system · safeguarding · risk assessment · integrator · collaborative robot · North America
Critical Systems Analysis provides embedded functional safety consulting for R15.06.
Note: this session's content is researched from publicly available standard text; it is not sourced from a CSA training deck.
Learn more: https://criticalsystemsanalysis.com
Partner with us: https://meetings.hubspot.com/benjamin-twombly/strategic-partnerships
— The Complete Functional Safety Session Library —
ISO 26262 — Automotive Functional Safety
Foundations & Concepts
- The Safety Lifecycle, End to End — ISO 26262 for Safety Engineers
- Understanding Tailoring the Safety Lifecycle under ISO 26262
- Exploring ISO 26262 — Item Definition, Done Right
- Introduction to What Automotive Functional Safety Actually Means — ISO 26262
- Legal and Liability Drivers (Why the Standard Exists) in ISO 26262 — Key Concepts
- Essentials of Understanding ASIL (A, B, C, D) (ISO 26262)
- Essentials of An Item Definition Worked Example in ISO 26262
- What Counts as Unreasonable Risk under ISO 26262 Essentials
- Essentials of Structure of the Standard (Parts 1–12) (ISO 26262)
Risk & Requirements
- ISO 26262: Writing Technical Safety Requirements (TSRs) — Key Concepts
- Software Safety Requirements and Architecture per ISO 26262, Step by Step
- A Practical Guide to ISO 26262: Hazard Identification, Step by Step
- HARA — Hazard Analysis and Risk Assessment per ISO 26262 Made Clear
- Navigating ISO 26262 — Freedom From Interference and ASIL Coexistence
- Determining ASIL from Exposure, Severity, Controllability per ISO 26262, Step by Step
- The Complete Guide to Common Pitfalls in ASIL Decomposition (ISO 26262)
- From Safety Goals to the Functional Safety Concept — ISO 26262 for Practitioners
- Understanding Hardware Safety Requirements under ISO 26262
- ISO 26262: Coexistence of Elements of Different ASIL — Key Concepts
- Mastering ISO 26262: Characteristics of a Good One (Safety Requirements)
Architecture & Design
- Inside Verifying Hardware Design under ISO 26262
- Understanding ISO 26262 — The Technical Safety Concept
- Hardware Design and Detailed Design — ISO 26262 for Practitioners
- Demystifying Safety Mechanisms and Fault Handling per ISO 26262
- Calculating Hardware Architectural Metrics — Workshop per ISO 26262 Made Clear
- Mastering System Architecture and Requirement Allocation — ISO 26262
- Hardware Architectural Metrics (SPFM, LFM, PMHF) (ISO 26262) for Practitioners
Hardware, Metrics & Communication
- Evaluating Random Hardware Failures — ISO 26262 for Safety Engineers
Software & Systematic
- Verification and the V-Model for ISO 26262 Essentials
- ISO 26262 — The V-Model for Automotive Safety Development — Key Concepts
Verification, Validation & Assessment
- Practical ISO 26262: The Safety Case, Explained
- Confirmation Measures — Review, Audit, Assessment under ISO 26262 in Practice
Management, Lifecycle & Compliance
- Exploring ISO 26262 — The Role of the Safety Manager
- The Complete Guide to Quality Management vs Functional Safety (ISO 26262)
- Essentials of Supplier–Customer Interfaces (DIA) per ISO 26262
- Getting Started with ISO 26262: The Safety Plan
- Making Sense of Release for Production and Beyond for ISO 26262
- Fundamentals of Building a Functional Safety Management System under ISO 26262
- Navigating Competence Management for Safety Teams per ISO 26262
- Introduction to Field Monitoring and Safety in the Field — ISO 26262
- Working with ISO 26262 — Safety Culture in Practice
Context & Related Standards
- Where Each Applies per ISO 26262 vs SOTIF (ISO 21448), Step by Step
More sessions
- A Practical Guide to ISO 26262: Transitioning to a Safe State
- Essentials of Safety Analyses — FMEA, FTA, and FMEDA (ISO 26262)
IEC 61508 — Functional Safety Foundations
Foundations & Concepts
- What Trustworthy Software Requires (Part 3) for IEC 61508 — Key Concepts
- Navigating IEC 61508 — Terms and Definitions You Need to Know
- The Complete Guide to What Functional Safety Means for E/E/PE Systems for IEC 61508
- The Structure of the Standard (Parts 1–7) for IEC 61508, Explained
- The Overall Safety Lifecycle for IEC 61508 — Key Concepts
- Inside Understanding Safety Integrity Levels (SIL) under IEC 61508
Risk & Requirements
- Mastering Hazard and Risk Analysis under IEC 61508
- Fundamentals of Risk Reduction and the ALARP Principle under IEC 61508
- A Practical Guide to Allocating Safety Functions and SIL Targets for IEC 61508
- Practical The Safety Requirements Specification (SRS) — IEC 61508
- Deep Dive: IEC 61508: From SIL Target to Verified Design — Worked Example
Architecture & Design
- Hardware Safety Integrity — Architectural Constraints under IEC 61508 in Practice
- Working with E/E/PE System Design and Development per IEC 61508
- Deep Dive: Software Requirements and Architecture for IEC 61508-3
Hardware, Metrics & Communication
- Introduction to Sensors, Logic Solvers, and Final Elements under IEC 61508
- IEC 61508 — Residual Error Rate of Safe Communication, Step by Step
- Safe Communication and the Black-Channel Approach under IEC 61508 Essentials
- Hardware Fault Tolerance (HFT), Explained (IEC 61508) for Practitioners
- Common Cause Failures and the Beta Factor under IEC 61508
- Understanding IEC 61508 — Bus Systems in Safety Applications
- Demystifying Safe Failure Fraction (SFF) and Diagnostic Coverage (IEC 61508)
- Proof Testing and the Proof-Test Interval under IEC 61508
- Fundamentals of PFD, PFH, and Failure Rates (FIT) — IEC 61508
- Route 1H vs Route 2H, Explained in IEC 61508
Software & Systematic
- Managing Systematic Faults (Part 2) (IEC 61508) for Safety Engineers
- The Software Safety Lifecycle — IEC 61508 for Safety Engineers
- Exploring Techniques and Measures Tables, Explained under IEC 61508-3
- Random vs Systematic Failures (IEC 61508)
- Understanding Systematic Capability and Route 1S/2S/3S under IEC 61508
Verification, Validation & Assessment
- Hands-On IEC 61508: Functional Safety Assessment (FSA)
- Introduction to Documentation and the Safety Case — IEC 61508
- Getting Started with IEC 61508: Verification and Validation Planning
Management, Lifecycle & Compliance
- Deep Dive: Functional Safety Management for IEC 61508
- Building an IEC 61508 Compliance Plan (IEC 61508)
Context & Related Standards
- Low-Demand vs High-Demand Modes of Operation in IEC 61508 for Safety Engineers
- Making Sense of IEC 61508 and ISO 13849: Machinery Functional Safety
- From Generic to Process Sector in IEC 61508 and IEC 61511
- Navigating IEC 61508 — Product Liability and the Legal Case for Safety
- Essentials of Fault Avoidance vs Fault Control in IEC 61508
More sessions
- IEC 61508 — Realizing the Safety-Related System, Step by Step
FMEA & HARA — Hazard & Failure Analysis
Foundations & Concepts
- Essentials of General Introduction FMEA (FMEA)
- Elements of a FMEA under FMEA Essentials
Risk & Requirements
- Introduction to HARA, HAZOP, STPA — Hazard Analysis Techniques Compared
- Working with HARA — Hazard Analysis and Risk Assessment, Explained
- Inside — Determining ASIL with HARA (ISO 26262)
- Navigating — Common Pitfalls in Hazard Analysis and Risk Assessment
- From HARA to Safety Goals under in Practice
Verification, Validation & Assessment
- Practical Failure Mode Effect and Criticality Analysis (FMECA) — FMEA
More sessions
- Mastering System – FMEA — FMEA
- Demystifying Safety Output Devices (FMEA)
- Practical : FMEA results and safety-related parameter
UL 4600 — Autonomous Systems Safety
Foundations & Concepts
- Deep Dive: Enabling Sensors and Technologies for ADAS and AV Lidar for UL 4600
- Navigating Levels of Automation from SAE J3016: Level 3 – Conditional Automation per UL 4600
- UL 4600: Enabling Sensors and Technologies for ADAS and AV Radar — Key Concepts
- Levels of Automation from SAE J3016: Level 2 – Partial Automation in UL 4600 for Safety Engineers
- UL 4600 — Levels of Automation from SAE J3016: Level 5 – Full Automation — Key Concepts
- Mastering Enabling Sensors and Technologies for ADAS and AV Ultrasonic Sensors (USS) per UL 4600
- Understanding UL 4600 — Levels of Automation from SAE J3016: Level 4 – High Automation
- The Complete Guide to SAE J3016 defines Six Levels of Automation for UL 4600
- Enabling Sensors and Technologies for ADAS and AV Cameras in UL 4600 for Safety Engineers
The Standard: Structure & Parts
- Practical : UL 4600 Standard for Safety of Autonomous Products
- UL-4600 Part 7 – Interactions for UL 4600, Explained
- Getting Started with UL-4600 Part 13 – Tool Qualification, COTS, Legacy Components — UL 4600
- UL-4600 Part 8 – Autonomy Functions for UL 4600 — Key Concepts
- UL 4600 — UL-4600 Part 11 – Data and Networking, Step by Step
- A Practical Guide to UL-4600 Part 6 – Risk Assessment for UL 4600
- The Complete Guide to UL-4600 Part 16 – Metrics and SPIs (UL 4600)
- Essentials of UL-4600 Part 12 – Verification, Validation and Test per UL 4600
- Fundamentals of UL 4600 is Goal-based and Technology-agnostic —
- Introduction to UL-4600 Part 15 – Maintenance under UL 4600
- UL-4600 Part 10 – Dependability (UL 4600) for Practitioners
- Applying UL-4600 Part 17 – Assessment — UL 4600
- Working with UL 4600 — UL-4600 Part 9 – Software and Systems Process
- UL 4600: UL-4600 Part 14 – Lifecycle Concerns, Step by Step
- UL 4600 — UL-4600 Parts 1 - 4, Step by Step
- Getting Started with UL-4600 Part 5 – Safety Case — UL 4600
Risk & Requirements
- Operational Design Domain Environmental Aspects under UL 4600 Essentials
- Working with UL 4600 — Operational Design Domain ODD Violations
- Exploring Operational Design Domain ODD Changes under UL 4600
- UL 4600: Operational Design Domain ODD Requirements — Key Concepts
- Operational Design Domain ODD Description for UL 4600, Explained
- Making Sense of UL 4600: Operational Design Domain Scenario Description Language
Hardware, Metrics & Communication
- Fundamentals of Fault Model : Sensors — UL 4600
Software & Systematic
- Fault Model Sample Database in UL 4600 for Safety Engineers
- Hands-On : UL 4600 Fault Models
Verification, Validation & Assessment
- Run-Time Monitoring (UL 4600)
- UL 4600 — Safety Case Updates — Key Concepts
- Applying UL 4600: V&V Coverage
- A Field Guide to V&V Methods for UL 4600
- A Field Guide to Verification and validation (V&V) for UL 4600
- Applying Test Oracle — UL 4600
- A Field Guide to V&V Contribution for UL 4600
Context & Related Standards
- Working with — UL 4600 and Other Standards
- Practical UL 4600 Versus SOTIF —
- The Complete Guide to UL 4600 compared to ISO Standards for
- Essentials of Relationship: UL 4600 and Other Standards per UL 4600
More sessions
- A Practical Guide to Issues and Approaches for Human-Machine Interaction for UL 4600
ISO/SAE 21434 — Automotive Cybersecurity
Foundations & Concepts
- Motivation / Introduction for ISO 21434 Essentials
- Item definition in ISO 21434
The Standard: Structure & Parts
- Operations and maintenance (ISO 21434) for Practitioners
Risk & Requirements
- Practical Concept Phase — ISO 21434
- Cybersecurity terms in ISO 21434 in Practice
- Essentials of Threat analysis and risk assessment (TARA) (ISO 21434)
- Deep Dive: Cybersecurity Concept (ISO 21434)
- Vulnerability Analysis (ISO 21434) for Safety Engineers
- Vulnerability Management per ISO 21434, Step by Step
Architecture & Design
- Product development - Design under ISO 21434 in Practice
Software & Systematic
- Hands-On Cyber Security Training for ISO 21434
Verification, Validation & Assessment
- Working with Cybersecurity Verification per ISO 21434
- Hands-On Cybersecurity Validation for ISO 21434
- ISO 21434 — Product Development – Integration Verification — Key Concepts
- The Complete Guide to Product Development Security Testing (ISO 21434)
Management, Lifecycle & Compliance
- Introduction to Product Development - Implementation under ISO 21434
- Case Study — ISO 21434 for Practitioners
- Navigating Organizational Cybersecurity Management per ISO 21434
- ISO 21434: Project Dependent Cybersecurity Management, Step by Step
- A Practical Guide to ISO 21434: Standards / Legal Aspects
- End of cybersecurity support and decommissioning (ISO 21434) for Safety Engineers
- Applying ISO 21434: Product Development - Requirements
- Fundamentals of Distributed cybersecurity activities under ISO 21434
ISO 26262-11 — Semiconductor Functional Safety
Foundations & Concepts
- Making Sense of ISO 26262-11: Functional Safety versus Safety of the Intended Function
- Need for ISO 26262 per ISO 26262-11 Made Clear
- History of ISO 26262 under ISO 26262-11 Essentials
- Inside ISO 26262-11 — Scope of ISO 26262
Risk & Requirements
- ISO 26262-11 — Exposure, Severity and Controllability — Key Concepts
- Inside Hazard Analysis and Risk Assessment (HARA) under ISO 26262-11
- A Field Guide to ASIL Determination for ISO 26262-11
Hardware, Metrics & Communication
- Inside Semiconductor Functional Safety Based on ISO 26262 under ISO 26262-11
Verification, Validation & Assessment
- Essentials of ISO 26262-11 — Safety Management - ISO 26262 Part 2 Functional Safety Assessment
- Safety Management - ISO 26262 Part 2 Safety Plan and Safety Case under ISO 26262-11 in Practice
Management, Lifecycle & Compliance
- Safety Culture — ISO 26262-11 for Practitioners
- Introduction to Safety Management - ISO 26262 Part 2 Confirmation measure under ISO 26262-11
- ISO 26262-11 — Safety Management - ISO 26262 Part 2 Safety Manager, Step by Step
- Introduction to Safety Management - ISO 26262 Part 2 Safety Culture is Important — ISO 26262-11
More sessions
- Fundamentals of ISO 26262 under ISO 26262-11
ISO/PAS 8800 — Safety & Artificial Intelligence
Foundations & Concepts
- Making Sense of AI/ML Definitions and Concepts for ISO 8800
- Making Sense of Safety and artificial intelligence for Road Vehicles – ISO/TC PAS 8800 — ISO 8800
- AI Safety Standard Framework under ISO 8800 in Practice
- Relevance of Artificial Intelligence in Automotive Applications in ISO 8800
Risk & Requirements
- Practical ISO 8800: Need for additional safety requirements on AI systems – Solution
- General workflow for deriving safety requirements – Solution per ISO 8800 Made Clear
- Navigating Dataset Requirements Development- Exercise per ISO 8800
- Working with Operational design domain per ISO 8800
- Getting Started with ISO 8800: Need for additional safety requirements on AI systems – Exercise
- General workflow for deriving safety requirements – Exercise in ISO 8800 in Practice
Architecture & Design
- Inside ISO 8800 — Dataset Design- Exercise
Hardware, Metrics & Communication
- ISO 8800: Performance metrics [9], Step by Step
Software & Systematic
- Generalization error in ISO 8800
- Deep Dive: Linear regression (ISO 8800)
- Demystifying Dataset Safety Analysis - Exercise per ISO 8800
- Inside ISO 8800 — Aspects related to machine learning (ML)
- A Field Guide to Reinforcement Learning (ISO 8800)
- Dataset Safety Analysis - Solution for ISO 8800 Essentials
- A Practical Guide to ISO 8800: Dataset Safety Analysis – Exercise Open discussion
- Inside ISO 8800 — Background to Machine Learning and AI
- Making Sense of ISO 8800: Implications for off-line training of machine learning algorithms
- Applying ISO 8800: Supervised & Unsupervised Machine Learning
- Introduction to Background: Statistical Learning under ISO 8800
- A Field Guide to Decision tree (ISO 8800)
Verification, Validation & Assessment
- Verification and validation of AI systems - Solution — ISO 8800 for Safety Engineers
- Applying Verification and validation of AI systems - Exercise — ISO 8800
More sessions
- Essentials of ISO 26262 in ISO 8800
Functional Safety Assessment — Assessment & Services
Foundations & Concepts
- Demystifying What Is Functional Safety? A Plain-English Introduction in
- Demystifying How to Scope a Functional Safety Consulting Engagement in
Verification, Validation & Assessment
- Applying Methods and Evidence — Functional Safety Verification
- Making Sense of The Difference for Functional Safety Audit vs Assessment
- Functional Safety Testing for Safety-Critical Systems in in Practice
- Mastering Planning FSAs Across the Lifecycle (FSA-1 to FSA-4) under
- Hands-On Why and When for Independent Functional Safety Assessment
- Deep Dive: What to Expect for Functional Safety Assessment (FSA)
Context & Related Standards
- A Field Guide to The Standards Landscape (Industrial Functional Safety)
IEC 62443 — Industrial Cybersecurity
Foundations & Concepts
- Inside Definitions Security Safety under IEC 62443
Risk & Requirements
- SDLC-Security Requirements Specification under IEC 62443
- Mastering SDLC-Security Risk Assessment and Threat Modeling under IEC 62443
Architecture & Design
- Applying SDLC-Software Design — IEC 62443
- Getting Started with SDLC-Software Architecture Design — IEC 62443
Software & Systematic
- Practical SDLC-Module Implementation — IEC 62443
- SDLC-Module Testing — IEC 62443 for Safety Engineers
Verification, Validation & Assessment
- Fundamentals of Security Verification under IEC 62443
Management, Lifecycle & Compliance
- A Field Guide to Security Level for IEC 62443
- Applying IEC 62443: SDLC-Security Defect and Update Management
- Exploring IEC 62443 — Management Plan
- Legal Aspects under IEC 62443
More sessions
- Getting Started with SDLC-Document Security Guidelines — IEC 62443
- Making Sense of IEC 62443: Motivation Cyber Security
- Getting Started with IEC 62443: SDLC-Security Tools
V-Model — The V-Model & Safety Lifecycle
Architecture & Design
- Left Side of the V: Requirements and Design — Key Concepts
Software & Systematic
- The V-Model for Functional Safety, Explained () for Practitioners
- Fundamentals of Traceability Across the V-Model —
- Requirements to Validation for V-Model for Systems Engineering Essentials
- Deep Dive: Mapping Safety Activities onto the V-Model ()
- Demystifying The V-Model in Automotive Development (ISO 26262) per
- Working with V-Model vs Agile for Safety-Critical Development per
Verification, Validation & Assessment
- Demystifying Integration, Verification, Validation per Right Side of the V
AI Safety — AI & Machine Learning Safety
Foundations & Concepts
- Functional Safety Basics under AI & Functional Safety
- Essentials of Terms and Definitions in AI & Functional Safety
- Demystifying AI/ML Definitions and Concepts (AI & Functional Safety)
Software & Systematic
- Exploring Statistical Learning under AI & Functional Safety
- Basic notions of artificial neural networks for AI & Functional Safety, Explained
- Machine Learning in Industry for AI & Functional Safety — Key Concepts
- A Practical Guide to Machine Learning & Cybersecurity for AI & Functional Safety
- Machine Learning & Functional Safety for AI & Functional Safety Essentials
- Practical AI & Functional Safety: Machine Learning - Training
Context & Related Standards
- Mastering Trust and Trustworthiness under AI & Functional Safety
- Hands-On AI & Functional Safety: Ethics Guidelines for Trustworthy AI
- Deep Dive: Standards & Regulations for AI & Functional Safety
- VDE-AR-E 2842-61 for AI & Functional Safety, Explained
- A Practical Guide to AI & Functional Safety: Legal Provisions
ISO 21448 — Safety of the Intended Functionality
Risk & Requirements
- Understanding ISO 21448 — Hazard identification and risk analysis
- Hands-On Validation and evaluation of unknown hazardous scenarios for ISO 21448
- A Field Guide to Verification and evaluation of known hazardous scenarios (ISO 21448)
- Acceptance criteria and validation targets in ISO 21448 in Practice
- Analysis of functional insufficiencies and triggering conditions per ISO 21448 Made Clear
Architecture & Design
- ADAS and AV system specification and design per ISO 21448 Made Clear
Verification, Validation & Assessment
- Hands-On ISO 21448: Criteria for SOTIF Release
- Verification and Validation Strategy per ISO 21448, Step by Step
- Demystifying Analyzing SOTIF using FMEA, Fault Tree Analysis (FTA), and STPA in ISO 21448
Management, Lifecycle & Compliance
- Understanding Process-oriented requirements for safety development under ISO 21448
- A Field Guide to Operating phase activities (ISO 21448)
Context & Related Standards
- Functional modifications to reduce SOTIF risks under ISO 21448 in Practice
More sessions
- Deep Dive: Wrap-up and Discussion Topics (ISO 21448)
- Fundamentals of Intro to Advanced Driver Assistance (ADAS) and Autonomous Vehicles (AV) per ISO 21448
ISO 12100 — Machinery Risk Assessment
Foundations & Concepts
- Demystifying Scope and Structure (EN ISO 12100 Explained)
Risk & Requirements
- How to Perform a Machinery Risk Assessment (ISO 12100) per Made Clear
- Risk Estimation and Risk Evaluation (ISO 12100) ()
- Understanding Documenting Machinery Risk Assessment for CE Marking under
- Exploring — Residual Risk and the Risk Graph (ISO 12100)
- Hazard Identification under ISO 12100 ()
- Applying : Building an ISO 12100 Risk Assessment Checklist
- Exploring A Worked Example under ISO 12100 Risk Assessment
- From Hazard to Safety Requirement with ISO 12100 for — Key Concepts
- Essentials of Machinery Risk Assessment, Step by Step per ISO 12100
- The Three-Step Method (ISO 12100) — Risk Reduction for Practitioners
- Mastering Common Mistakes in ISO 12100 Risk Assessments under
Context & Related Standards
- A Practical Guide to How They Work Together for ISO 12100 and ISO 13849
More sessions
- The Complete Guide to A Practical Workflow for ISO 12100 for Machine Builders
FTA — Fault Tree Analysis
Foundations & Concepts
- What Is Fault Tree Analysis in Safety? in in Practice
Risk & Requirements
- Demystifying Using FTA to Verify Safety Goals in
Verification, Validation & Assessment
- Essentials of Fault Tree Analysis (FTA) for Safety-Critical Systems per
- Getting Started with Cut Sets and Probabilities — Quantitative FTA
- Understanding — Building Your First Fault Tree, Step by Step
Context & Related Standards
- Mastering When to Use Which — FTA vs FMEA
ISO 13849 — Machinery Safety
Risk & Requirements
- Practical Software Safety Requirements for SRP/CS — ISO 13849
- Demystifying Determining Required Performance Level (PLr) by Risk Graph per ISO 13849
Architecture & Design
- Getting Started with : Designing Safety Functions to ISO 13849
- Practical Designated Architectures — Category B, 1, 2, 3, and 4 for ISO 13849
- Navigating Category 3 Architecture in Detail per ISO 13849
- Navigating ISO 13849 — Category 4 Architecture in Detail
- Exploring Category 2 Architecture and Test Rate under ISO 13849
- Emergency Stop Function Design under ISO 13849 in Practice
Hardware, Metrics & Communication
- Working with Performance Levels (PL) Explained per ISO 13849
- Exploring — Calculating Required Performance Level (PLr)
- Introduction to Validating Performance Level with PL Verification under ISO 13849
- Introduction to Quantifying MTTFd, DC, and CCF — ISO 13849
- Exploring Estimation and Measures (Diagnostic Coverage) per ISO 13849
- Introduction to Common Cause Failure (CCF) Scoring under ISO 13849
- Introduction to MTTFd from B10d and Component Data — ISO 13849
Software & Systematic
- Making Sense of ISO 13849: Safety-Related Application Software (SRASW)
- Making Sense of Safety-Related Embedded Software (SRESW) for ISO 13849
- Systematic Failures and Measures Against Them (ISO 13849)
Verification, Validation & Assessment
- A Field Guide to Validation Plan and Validation Records (ISO 13849)
Management, Lifecycle & Compliance
- Worked Example (ISO 13849) Made Clear
Context & Related Standards
- Making Sense of Choosing a Standard for ISO 13849 vs IEC 62061
- Demystifying Using SISTEMA for PL Calculation in ISO 13849
- Practical ISO 13849: Fault Exclusion and Well-Tried Components
- Practical Combining SRP/CS and Safety Functions in Series — ISO 13849
- A Field Guide to Choosing the Right Standard for
- Manual Reset and Start/Restart Functions (ISO 13849) for Practitioners
- Muting of Safety Functions (ISO 13849) for Safety Engineers
- ISO 13849: Enabling Devices and Hold-to-Run Controls, Step by Step
- ISO 13849: Two-Hand Control Devices — Key Concepts
- Guard Interlocking and Guard Locking under ISO 13849
R15.06 — Industrial Robot Safety
Foundations & Concepts
- Hands-On Understanding the Safety Requirements for Industrial Robots and Robot Systems under R15.06
The Standard: Structure & Parts
- Maintenance, Service, and Lockout/Tagout under R15.06
Risk & Requirements
- The Complete Guide to Risk Assessment for Robot Systems (R15.06)
- R15.06: End-Effector and Tooling Hazards, Step by Step
- Singularity and Axis-Limit Hazards for R15.06, Explained
Architecture & Design
- Cell Layout and Ergonomic Access Design — R15.06 for Safety Engineers
Hardware, Metrics & Communication
- A Field Guide to R15.06: Robot Stopping Functions — Category 0, 1, and 2 Stops
Software & Systematic
- Understanding Operator Training and Competency Requirements under R15.06
Verification, Validation & Assessment
- Validation of the Robot System Installation under R15.06 in Practice
- Attended Program Verification at Reduced Speed per R15.06 Made Clear
- Change Management and Re-Assessment After Modifications in R15.06 for Safety Engineers
Management, Lifecycle & Compliance
- Documentation and User Information Requirements — R15.06 for Practitioners
More sessions
- Hands-On Manufacturer vs. Integrator Safety Responsibilities for R15.06
- The Complete Guide to Safeguarding and Perimeter Guarding Requirements for R15.06
- Demystifying Teach Pendant and Programming Mode Safety (R15.06)
- Making Sense of R15.06: Collaborative Robot Operation Requirements
- Making Sense of Safety-Rated Soft Axis and Space Limiting for R15.06
- A Field Guide to Enabling Devices and Three-Position Switches for R15.06
- Presence-Sensing Safeguarding Devices (R15.06)
- Safeguarded, Restricted, and Operating Space (R15.06) for Practitioners
- Speed and Motion Limits in Manual Mode (R15.06) for Safety Engineers
- R15.06: Multi-Robot and Shared-Workspace Cell Safety — Key Concepts
- Awareness Barriers and Warning Devices under R15.06 Essentials
- Muting and Bypassing of Safeguards per R15.06, Step by Step
- Emergency Stop Circuit Requirements for R15.06 — Key Concepts
- Safety Controller Performance and Reliability for R15.06 Essentials
- R15.06 — Load/Unload Station and Material Handling Safety, Step by Step
- R15.06 — Applying R15.06 alongside ANSI B11 Machine Safety — Key Concepts
- Hand-Guiding and Direct Teaching Safety in R15.06
- Power and Force Limiting under R15.06 in R15.06 in Practice
ISO 10218 — Robot & Robot System Safety
Risk & Requirements
- Demystifying Safety Requirements for Industrial Robot Design per ISO 10218-1
- Demystifying Safety Requirements for Robot System Integration in ISO 10218-2
- Exploring Risk Assessment Methodology for Robot Applications under ISO 10218
- Inside ISO 10218 — End Effectors and Application-Specific Hazards
Architecture & Design
- A Practical Guide to ISO 10218-2: Designing the Safeguarded Space
- Inside Designing a Cobot Application to Force Limits under ISO/TS 15066
Hardware, Metrics & Communication
- Mastering Safety-Related Control System Performance (PL/SIL) under ISO 10218-1
Software & Systematic
- Fundamentals of Software and Configuration Management for Robot Cells — ISO 10218
Verification, Validation & Assessment
- Deep Dive: Verification and Validation of the Integrated Cell for ISO 10218-2
Context & Related Standards
- Exploring ISO 10218 vs R15.06 — Key Differences for Global Robot Deployments
- Hands-On ISO 10218 and ISO 12100: Applying the Machinery Risk Framework
- Hands-On CE Marking and the EU Machinery Regulation for ISO 10218
More sessions
- Navigating Power and Force Limiting for Collaborative Robots per ISO/TS 15066
- Navigating ISO/TS 15066 — Speed and Separation Monitoring for Cobots
- Understanding ISO 10218-1 — Robot Stopping Functions and Protective Stops
- Mastering Axis and Space Limiting Functions — ISO 10218-1
- Applying ISO 10218-1: Single Point of Control and Operating Modes
- Applying Collaborative Operation Requirements for Robots — ISO 10218-1
- A Practical Guide to Presence Sensing and Perimeter Safeguarding for ISO 10218-2
- Deep Dive: Manual Load/Unload and Interaction Zones (ISO 10218-2)
- Essentials of Restart, Reset, and Resumption of Operation (ISO 10218-2)
- Essentials of The Four Collaborative Operation Methods per ISO/TS 15066
- Essentials of Safety-Rated Monitored Stop Explained in ISO/TS 15066
- Working with Hand-Guiding Operation Requirements per ISO/TS 15066
- Working with ISO/TS 15066 — Biomechanical Limit Data and Body Regions
- Fundamentals of Integrating Robots with Conveyors and AGVs under ISO 10218
- Getting Started with ISO 10218: Emergency Stop and Enabling Device Requirements
- Getting Started with What Changed (The 2025 Revision) (ISO 10218)
- The Complete Guide to Speed and Separation Monitoring Implementation (ISO 10218)
- The Complete Guide to Information for Use and Instruction Handbooks for ISO 10218
- Demystifying Commissioning and Handover of Robot Systems (ISO 10218)