MEM23126Evaluate industrial robotic applications

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What an assessment for MEM23126 must cover

51 assessable components: 4 elements (19 performance criteria), 8 performance evidence and 24 knowledge evidence requirements. An audit-defensible tool maps every question and task back to these — that mapping is the coverage matrix Auditori generates alongside the assessment.

Elements & performance criteria

1 Establish scope of robotics evaluation

  • 1.1Determine parameters and context of robotics applications to be evaluated
  • 1.2Identify stakeholders to be consulted on evaluation
  • 1.3Identify software requirements used in the robotic applications
  • 1.4Identify relevant compliance requirements of work health and safety (WHS) and regulatory requirements, codes of practice, standards and risk assessment requirements for robotic applications and automation safety
  • 1.5Ensure appropriate support, including licensed electrical, technical and professional assistance, is available
  • 1.6Investigate sustainability implications of robotic applications

2 Confirm existing features of robotics applications

  • 2.1Review features and functions of robotic applications and classify industrial robotic devices
  • 2.2Review robots and robotic elements
  • 2.3Identify robotic principles and techniques required to evaluate and optimise the processes
  • 2.4Identify appropriate analysis techniques, software and software validation techniques

3 Evaluate robotic applications

  • 3.1Assess robotic hardware, sensors or transducers, signal conditioning, controllers, power interfaces, actuators and interface with the end effectors
  • 3.2Assess motion analysis, load capability, accuracy, precision and repeatability
  • 3.3Assess system integration, networks, data sharing, control and human machine interfaces (HMIs)
  • 3.4Assess software and programming techniques for controllers, distributed control system (DCS), supervisory control and data acquisition (SCADA) and system simulation
  • 3.5Assess compliance of robot and system with WHS and regulatory requirements, codes of practice, standards and risk management requirements
  • 3.6Apply mock-up and prototyping techniques for robot and subsystem testing
  • 3.7Assess sustainability implications of robotic application

4 Report results

  • 4.1Record results of evaluation
  • 4.2Provide documentation that includes required calculations, specifications, diagrams, computer programs and files, and mock-ups or prototypes

Performance evidence

  • identifying work health and safety (WHS), regulatory and risk management compliance requirements, including those related to automation safety
  • investigating sustainability implications of robotic applications
  • identifying, reviewing and classifying features and functions of robotic applications and robotic devices, robotic principles and techniques, analysis techniques and software
  • evaluating robotic hardware
  • evaluating robotic motion, load capability, accuracy, precision, efficiency and repeatability on at least two occasions
  • evaluating system integration, networking, data sharing, control and human machine interfaces, software and programming, supervisory control and data acquisition (SCADA) or distributed control system (DCS), and system simulation
  • applying mock-up or prototyping and virtual techniques for robot and subsystem testing on at least two occasions
  • reporting and documenting processes and results of evaluation, including calculations, specifications, diagrams, computer programs and files, and mock-ups or prototypes

Knowledge evidence

  • compliance requirements of WHS and regulatory requirements, codes of practice, standards and risk management requirements for robotic applications
  • classifications and applications of industrial and mobile robotic devices or systems
  • features, mechanisms and components of robots
  • advantages and disadvantages of different types of actuators for engineering applications
  • types of actuator power interfaces
  • end effectors and their applications
  • robot sensors including:
  • contact, proximity and interrupted beam
  • distance sensing
  • pressure and temperature
  • relative and absolute encoders
  • vision and smart cameras
  • sensor interface/transducer signal conditioning techniques and analog to digital converter (ADC)
  • online and offline programming methods
  • mechanical, fluid power, electrical, electronic, programming, communications and networking principles and techniques related to robotics
  • role of kinematic and kinetic analysis of robot mechanisms
  • analysis of motions, loads, accuracy, precision and repeatability
  • situations requiring licensed trade, technical or professional assistance including actuator power interfacing
  • interfaces for sensors and actuators, including the use of signal conditioning techniques and ADC, power interfacing and digital to analog converter (DAC), and pulse-width modulation (PWM)
  • programming techniques for motion control and load handling with specialist input including vision systems, proximity and distance measurement inputs, and variable velocity control which may be implemented using packaged routines
  • automation safety in systems and programs including appropriate use of emergency stop, failsafe design, redundancy, interlocks, guarding and data integrity
  • system integration of sensing, control, end effectors and actuators, data requirements, network topology and communication protocols required
  • software for simulation, motion analysis, control, digital to analogue converter (DAC) and SCADA
  • sustainability implications of industrial robotics.

Unit content sourced from training.gov.au — © Commonwealth of Australia, licensed under CC BY 4.0. Auditori is not affiliated with the Department of Employment and Workplace Relations.

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Questions about assessing MEM23126

What does an assessment tool for MEM23126 need to cover?

To satisfy the Principles of Assessment and Rules of Evidence, an assessment for MEM23126 needs to address all 51 unit components: 4 elements with 19 performance criteria, 8 performance evidence requirements, 24 knowledge evidence requirements, and the foundation skills. A coverage matrix mapping each question and task to these components is what an auditor looks for.

How does Auditori generate an assessment tool for MEM23126?

Auditori pulls the current release of MEM23126 from training.gov.au and generates a complete package: candidate assessment, assessor guide with model answers and observation criteria, and a coverage matrix mapping every component. A suitably qualified person then reviews and approves the draft in a built-in workflow — consistent with ASQA's guidance on AI use in VET — before export as branded PDF and editable Word.

Is the first assessment tool really free?

Yes. Every new account includes one free credit — enough to generate the complete assessment tool for MEM23126 — with no card and no subscription required. After that it's pay-as-you-go per unit.

Can I check my existing MEM23126 assessment instead of generating a new one?

Yes — upload your existing assessment or learner guide and Auditori maps it against every element, performance criterion, PE and KE of MEM23126, showing exactly what's covered and what's missing. Mapping costs a quarter of a credit.

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