Unit of competency Outline
Date retreived
22/07/2026 7:58 PM AWST
22/07/2026 7:58 PM AWST
Whilst all efforts are made to provide accurate and timely information from the relevant source/documentation, please be aware that the information supplied may not be the most current version. The accuracy of the detail has not been confirmed by the Department and therefore should not be relied upon without first confirming the contents.
Plan and schedule operations on vessels over 750 kw propulsion power
Plan and schedule operations on vessels over 750 kw propulsion power
Unit of competency
National Code
TDMMR1601A
TDMMR1601A
State Code
S2160
S2160
TGA Status
Replaced
Replaced
DTWD Status
Replaced
Replaced
State Implementation and Classification
Approved Date
15/02/2005
Field of Education
031701 - Maritime Engineering
Original Release Date
15/02/2005
Nominal Hours
10
Description
Notes
Elements and Performance Criteria
No information
General context
Work must be carried out in compliance with mandatory rules and regulations and IMO Conventions and Codes including the relevant sections of the AMSA Marine Orders and ensure that applicable codes, guidelines and standards recommended by IMO, the classification societies and maritime industry organisations are taken into account.
Work is performed relatively independently under broad operational requirements, with accountability for self and others in achieving the prescribed outcomes within the limits of responsibility of an Engineer (Class 2).
Work involves the application of marine engineering management practice to the planning and scheduling of the operation of the vessel's power installation and auxiliary machinery on vessels of 750 kW propulsion power and more across a wide and often unpredictable variety of operational situations during a voyage. Contribution to the development and implementation of a broad plan or strategy for the operation of the vessel's power installation and auxiliary machinery is required and accountability and responsibility for self and others in achieving the outcomes is involved.
Work requires significant judgement in planning, engineering and leadership functions related to planning and scheduling the operation of the vessel's power installation and auxiliary machinery within the limits of responsibility of an Engineer (Class 2). This includes management and analysis of the power installation capacity and voyage requirements, decision-making and contingency planning.
Worksite environment
Planning and scheduling of the operation of power installation and auxiliary machinery may be undertaken for an Australian or international commercial vessel of 750 kW propulsion power or more.
Operational scheduling and planning methods may include the use of:
GANTT charts
CPM/PERT network techniques
other project planning techniques.
Propulsion plant configurations may include:
low speed, medium and high speed diesel propulsion
stern tube bearing
CPP
direct drive shaft
diesel electric
steam turbine
gas turbine
reduction gears
thrust blocks, detuners and shaft bearings.
Types of engines, propulsion equipment and related auxiliary machinery may include:
steam turbine, diesel, diesel electric and gas turbine propulsion systems and controls
steering gear, stabilizers, bow thrusters, rudders
fluid power systems and controls
pumps and pumping systems
auxiliary systems and controls, including:
fresh and salt water cooling systems
lubricating oil cooling systems
fuel, oil, gas, coal
air starting
lubrication
bilge and ballast system, oily water separator
refrigeration and air-conditioning plant and equipment
onboard air compressors and compressed air and control air systems
waste management and pollution control systems as per the MARPOL Convention
evaporators
inert gas generator
cargo pumps, tank washing machines and associated systems
purifiers and clarifiers
heaters
sewage plant
fixed fire fighting installations and fire control systems
auxiliary boilers and waste heat generators
life saving appliances
maintenance to hull and vessel side valves.
Potential emergencies may include:
loss of propulsion
loss of electrical power
loss of steerage
flooding of engine room
fire or explosion in engine room
fuel oil, lubrication oil, steam and gas leaks
overheating and overspeed of machinery, governors, emergency trips.
Sources of information/documents
Documentation/records may include:
details of scheduled voyage
ISM Code safety management system plans, procedures, checklists and instructions
vessel and company's operational procedures and instructions
engines, propulsion plant and auxiliary machinery manufacturer's specifications, instructions and recommended procedures
maintenance log, running sheets and records including computer database of running information and maintenance records where relevant
vessel's survey as it relates to engines, propulsion plant and auxiliary machinery
vessel's safety and emergency contingency plans and procedures
relevant sections of national and international regulations, IMO Conventions and Codes, including AMSA Marine Orders and class society rules dealing with the operation and performance evaluation of engines, propulsion plant and auxiliary machinery
instructions of relevant Maritime Authorities and class societies concerning the operation of engines, propulsion plant and auxiliary machinery.
Applicable International, Australian and State/Territory regulations and legislation
Applicable procedures and codes may include:
sections of national and international regulations, IMO Conventions and Codes, including AMSA Marine Orders and class society rules related to the operation of engines, propulsion plant and auxiliary machinery on vessels of 750 kW propulsion power or more
relevant international, Australian and State/Territory OH&S legislation
relevant international, Australian and State/Territory engineering practice standards.
Work must be carried out in compliance with mandatory rules and regulations and IMO Conventions and Codes including the relevant sections of the AMSA Marine Orders and ensure that applicable codes, guidelines and standards recommended by IMO, the classification societies and maritime industry organisations are taken into account.
Work is performed relatively independently under broad operational requirements, with accountability for self and others in achieving the prescribed outcomes within the limits of responsibility of an Engineer (Class 2).
Work involves the application of marine engineering management practice to the planning and scheduling of the operation of the vessel's power installation and auxiliary machinery on vessels of 750 kW propulsion power and more across a wide and often unpredictable variety of operational situations during a voyage. Contribution to the development and implementation of a broad plan or strategy for the operation of the vessel's power installation and auxiliary machinery is required and accountability and responsibility for self and others in achieving the outcomes is involved.
Work requires significant judgement in planning, engineering and leadership functions related to planning and scheduling the operation of the vessel's power installation and auxiliary machinery within the limits of responsibility of an Engineer (Class 2). This includes management and analysis of the power installation capacity and voyage requirements, decision-making and contingency planning.
Worksite environment
Planning and scheduling of the operation of power installation and auxiliary machinery may be undertaken for an Australian or international commercial vessel of 750 kW propulsion power or more.
Operational scheduling and planning methods may include the use of:
GANTT charts
CPM/PERT network techniques
other project planning techniques.
Propulsion plant configurations may include:
low speed, medium and high speed diesel propulsion
stern tube bearing
CPP
direct drive shaft
diesel electric
steam turbine
gas turbine
reduction gears
thrust blocks, detuners and shaft bearings.
Types of engines, propulsion equipment and related auxiliary machinery may include:
steam turbine, diesel, diesel electric and gas turbine propulsion systems and controls
steering gear, stabilizers, bow thrusters, rudders
fluid power systems and controls
pumps and pumping systems
auxiliary systems and controls, including:
fresh and salt water cooling systems
lubricating oil cooling systems
fuel, oil, gas, coal
air starting
lubrication
bilge and ballast system, oily water separator
refrigeration and air-conditioning plant and equipment
onboard air compressors and compressed air and control air systems
waste management and pollution control systems as per the MARPOL Convention
evaporators
inert gas generator
cargo pumps, tank washing machines and associated systems
purifiers and clarifiers
heaters
sewage plant
fixed fire fighting installations and fire control systems
auxiliary boilers and waste heat generators
life saving appliances
maintenance to hull and vessel side valves.
Potential emergencies may include:
loss of propulsion
loss of electrical power
loss of steerage
flooding of engine room
fire or explosion in engine room
fuel oil, lubrication oil, steam and gas leaks
overheating and overspeed of machinery, governors, emergency trips.
Sources of information/documents
Documentation/records may include:
details of scheduled voyage
ISM Code safety management system plans, procedures, checklists and instructions
vessel and company's operational procedures and instructions
engines, propulsion plant and auxiliary machinery manufacturer's specifications, instructions and recommended procedures
maintenance log, running sheets and records including computer database of running information and maintenance records where relevant
vessel's survey as it relates to engines, propulsion plant and auxiliary machinery
vessel's safety and emergency contingency plans and procedures
relevant sections of national and international regulations, IMO Conventions and Codes, including AMSA Marine Orders and class society rules dealing with the operation and performance evaluation of engines, propulsion plant and auxiliary machinery
instructions of relevant Maritime Authorities and class societies concerning the operation of engines, propulsion plant and auxiliary machinery.
Applicable International, Australian and State/Territory regulations and legislation
Applicable procedures and codes may include:
sections of national and international regulations, IMO Conventions and Codes, including AMSA Marine Orders and class society rules related to the operation of engines, propulsion plant and auxiliary machinery on vessels of 750 kW propulsion power or more
relevant international, Australian and State/Territory OH&S legislation
relevant international, Australian and State/Territory engineering practice standards.
Critical aspects of evidence to be considered
Assessment must confirm appropriate knowledge and skills to:
Plan and schedule the operations of vessel's power installation and auxiliary machinery for the voyage of a vessel within the scope of responsibility of an Engineer (Class 2)
Comply with all required safety, environmental and hazard control precautions and procedures when planning the operations of vessel's power installation and auxiliary machinery
Identify typical potential operational problems and hazards and develop appropriate contingency plans in accordance with the scope of responsibility of an Engineer (Class 2)
Document and disseminate operational plans and schedules
Ensure adherence to national and international regulations, IMO Conventions and Codes.
Interdependent assessment of units
This unit of competency must be assessed in conjunction with other mandatory competency units that form part of the job role of an Engineer (Class 2).
Required knowledge and skills
Knowledge of relevant national and international regulations, IMO Conventions and Codes including AMSA Marine Orders applicable to the planning and scheduling of the operations of the power installations and auxiliary machinery
Relevant OH&S legislation and policies
Established engineering practice for the planning and scheduling of the and or more
Engineering project scheduling and planning methods including the use of GANTT charts and CPM/PERT network techniques
Operational characteristics and performance specifications for the different types of marine engines, propulsion plant and auxiliary machinery usually found on a vessel of 750 propulsion power or more
Procedures for the planning and scheduling of the operation of the power installations and auxiliary machinery on vessels of 750 kW propulsion power and more
The nature and causes of typical potential malfunctions and/or poor performance of engines, propulsion plant and auxiliary machinery
Hazards and problems that can occur with power installations and auxiliary machinery during voyages of vessels of 750 kW propulsion power and more and appropriate preventative and remedial action and solutions
Safety, environmental and hazard control precautions and procedures relevant to the operation of the power installations and auxiliary machinery on vessels of 750 kW propulsion power or more
Operational and performance evaluation records that must be maintained on a vessel to meet the requirements of the company, survey requirements and regulatory authorities
Maritime communication techniques needed when planning and scheduling of the operation of the power installation and auxiliary machinery
Knowledge and ability to read and interpret vessel and machinery specifications, machinery design drawings, machine drawings, operational manuals, specifications and electrical and control circuit diagrams
Knowledge and ability to read and interpret material safety data sheets
Basic principles and operational characteristics of internal combustion engines, including:
two stroke and four stroke cycles
diesel engine scavenging systems both in normal and emergency operation
atmospheric pollution caused by diesel engine combustion and ways in which it can be minimised
shaft power
irregularities in the performance of machinery and plant
Methods of providing air for combustion
Theory and preventative strategies for scavenge and uptake fires, and starting airline, crankcase and gearbox explosions, including:
plans for hazard reduction
procedures for extinguishment of scavenge fires and dealing with crankcase mist detector alarm
regaining of control after starting airline, crankcase and gearbox explosions
Basic principles of fuel systems, including:
typical injection pressures and viscosities for different grades of fuel
alterations to fuel pumps, camshafts and injectors for varying fuel types
differences between constant and variable injection timing of fuel
injection requirements for different speeds of diesel engine
common service faults, symptoms and causes of combustion problems and related solutions
fuel line pulsation damping devices and leakage protection
fuel valve cooling arrangements
uni-fuel and dual fuel systems
Basic principles of engine cooling and lubrication, including:
different methods of diesel engine cooling
need for treatment of engine cooling water
methods of treating engine cooling water
diesel engine lubrication requirements
methods of lubricating diesel engine components
theory and types of lubrication
relative characteristics, and applications of mineral and synthetic oils
contaminants that may affect lubricants, their effect on machinery performance, and action that can be taken to avoid and remedy contamination of lubricants
common lubrication problems and their solution
Basic principles of marine control systems, including:
common sensors and their associated transmitters
temperature and pressure control systems used onboard vessel
methods of load-dependent cooling of diesel alternators on heavy fuel oils
principles of level control systems used onboard vessel
principles of electronic PID controllers
Procedures for the testing of boiler water, machinery cooling water and lubricating oil
Principles of operation of hydraulic and electronic overspeed governors
Basic principles and functions of machinery space monitoring and alarm systems including:
central cooling and load dependent cooling control systems
main engine control arrangements for fixed pitch and controllable pitch propeller systems requiring sequential control
alarm and monitoring systems involving data loggers, alarm loggers and trend analysis
Basic principles of air-conditioning and refrigeration systems, including:
principles of operation
performance indicators
characteristics, hazards and handling requirements of CFCs and HCFCs
safety and environmental requirements associated with air-conditioning and refrigeration systems
Basic principles of thermodynamics and heat and heat engines, including:
heat transfer
gases
properties and expansion of steam
steam cycles
boilers and evaporators
steam turbines
combustion
refrigeration and air conditioning
Principles and operational characteristics of steam turbines, gearing and associated equipment including:
lubrication
gear configurations
thrust blocks
air ejectors
determination of shaft power
irregularities in the performance of machinery and plant
Basic principles and operational characteristics of main and auxiliary boilers and associated equipment including:
boiler water tests and treatment
corrosion
superheaters
de-aerators
open and closed feed systems
uptake fires.
Resource implications
Access is required to opportunities to either:
participate in a range of practical and theoretical assignments, exercises, case studies and other assessments that demonstrate the skills and knowledge to plan and schedule the operations of the power installation and auxiliary machinery for the voyage of a vessel of 750 kw propulsion power or more; and/or
plan and schedule the operations of a vessel's power installation and auxiliary machinery for the voyage of a commercial or training vessel of 750 kW propulsion power or more.
Consistency in performance
Applies underpinning knowledge and skills when:
planning and scheduling the operation of the power installation and auxiliary machinery for the voyage of a vessel
complying with all required safety, environmental and hazard control precautions and procedures when planning the operation of a vessel's power installation and auxiliary machinery
identifying typical potential operational problems and hazards and developing appropriate contingency plans
documenting and disseminating operational plans and schedules.
Shows evidence of application of relevant workplace procedures including:
relevant sections of international Conventions and Codes and AMSA Marine Orders
OHS regulations and hazard prevention policies and procedures
ISM Code safety management system procedures and work instructions on the operation of a vessel's power installation and auxiliary machinery, including machinery specifications and directions on equipment capability and limitations
waste, pollution and recycling management processes.
Work is managed, controlled and completed systematically with required attention to detail.
Context for assessment
Assessment of competence must comply with the assessment requirements of the relevant maritime regulations.
Assessment of this unit must be undertaken within relevant marine authority approved and audited arrangements by a registered training organisation:
As a minimum, assessment of knowledge must be conducted through appropriate written/oral examinations
Appropriate practical assessment must occur:
at the registered training organisation, and/or
on an appropriate working or training vessel.
Assessment must confirm appropriate knowledge and skills to:
Plan and schedule the operations of vessel's power installation and auxiliary machinery for the voyage of a vessel within the scope of responsibility of an Engineer (Class 2)
Comply with all required safety, environmental and hazard control precautions and procedures when planning the operations of vessel's power installation and auxiliary machinery
Identify typical potential operational problems and hazards and develop appropriate contingency plans in accordance with the scope of responsibility of an Engineer (Class 2)
Document and disseminate operational plans and schedules
Ensure adherence to national and international regulations, IMO Conventions and Codes.
Interdependent assessment of units
This unit of competency must be assessed in conjunction with other mandatory competency units that form part of the job role of an Engineer (Class 2).
Required knowledge and skills
Knowledge of relevant national and international regulations, IMO Conventions and Codes including AMSA Marine Orders applicable to the planning and scheduling of the operations of the power installations and auxiliary machinery
Relevant OH&S legislation and policies
Established engineering practice for the planning and scheduling of the and or more
Engineering project scheduling and planning methods including the use of GANTT charts and CPM/PERT network techniques
Operational characteristics and performance specifications for the different types of marine engines, propulsion plant and auxiliary machinery usually found on a vessel of 750 propulsion power or more
Procedures for the planning and scheduling of the operation of the power installations and auxiliary machinery on vessels of 750 kW propulsion power and more
The nature and causes of typical potential malfunctions and/or poor performance of engines, propulsion plant and auxiliary machinery
Hazards and problems that can occur with power installations and auxiliary machinery during voyages of vessels of 750 kW propulsion power and more and appropriate preventative and remedial action and solutions
Safety, environmental and hazard control precautions and procedures relevant to the operation of the power installations and auxiliary machinery on vessels of 750 kW propulsion power or more
Operational and performance evaluation records that must be maintained on a vessel to meet the requirements of the company, survey requirements and regulatory authorities
Maritime communication techniques needed when planning and scheduling of the operation of the power installation and auxiliary machinery
Knowledge and ability to read and interpret vessel and machinery specifications, machinery design drawings, machine drawings, operational manuals, specifications and electrical and control circuit diagrams
Knowledge and ability to read and interpret material safety data sheets
Basic principles and operational characteristics of internal combustion engines, including:
two stroke and four stroke cycles
diesel engine scavenging systems both in normal and emergency operation
atmospheric pollution caused by diesel engine combustion and ways in which it can be minimised
shaft power
irregularities in the performance of machinery and plant
Methods of providing air for combustion
Theory and preventative strategies for scavenge and uptake fires, and starting airline, crankcase and gearbox explosions, including:
plans for hazard reduction
procedures for extinguishment of scavenge fires and dealing with crankcase mist detector alarm
regaining of control after starting airline, crankcase and gearbox explosions
Basic principles of fuel systems, including:
typical injection pressures and viscosities for different grades of fuel
alterations to fuel pumps, camshafts and injectors for varying fuel types
differences between constant and variable injection timing of fuel
injection requirements for different speeds of diesel engine
common service faults, symptoms and causes of combustion problems and related solutions
fuel line pulsation damping devices and leakage protection
fuel valve cooling arrangements
uni-fuel and dual fuel systems
Basic principles of engine cooling and lubrication, including:
different methods of diesel engine cooling
need for treatment of engine cooling water
methods of treating engine cooling water
diesel engine lubrication requirements
methods of lubricating diesel engine components
theory and types of lubrication
relative characteristics, and applications of mineral and synthetic oils
contaminants that may affect lubricants, their effect on machinery performance, and action that can be taken to avoid and remedy contamination of lubricants
common lubrication problems and their solution
Basic principles of marine control systems, including:
common sensors and their associated transmitters
temperature and pressure control systems used onboard vessel
methods of load-dependent cooling of diesel alternators on heavy fuel oils
principles of level control systems used onboard vessel
principles of electronic PID controllers
Procedures for the testing of boiler water, machinery cooling water and lubricating oil
Principles of operation of hydraulic and electronic overspeed governors
Basic principles and functions of machinery space monitoring and alarm systems including:
central cooling and load dependent cooling control systems
main engine control arrangements for fixed pitch and controllable pitch propeller systems requiring sequential control
alarm and monitoring systems involving data loggers, alarm loggers and trend analysis
Basic principles of air-conditioning and refrigeration systems, including:
principles of operation
performance indicators
characteristics, hazards and handling requirements of CFCs and HCFCs
safety and environmental requirements associated with air-conditioning and refrigeration systems
Basic principles of thermodynamics and heat and heat engines, including:
heat transfer
gases
properties and expansion of steam
steam cycles
boilers and evaporators
steam turbines
combustion
refrigeration and air conditioning
Principles and operational characteristics of steam turbines, gearing and associated equipment including:
lubrication
gear configurations
thrust blocks
air ejectors
determination of shaft power
irregularities in the performance of machinery and plant
Basic principles and operational characteristics of main and auxiliary boilers and associated equipment including:
boiler water tests and treatment
corrosion
superheaters
de-aerators
open and closed feed systems
uptake fires.
Resource implications
Access is required to opportunities to either:
participate in a range of practical and theoretical assignments, exercises, case studies and other assessments that demonstrate the skills and knowledge to plan and schedule the operations of the power installation and auxiliary machinery for the voyage of a vessel of 750 kw propulsion power or more; and/or
plan and schedule the operations of a vessel's power installation and auxiliary machinery for the voyage of a commercial or training vessel of 750 kW propulsion power or more.
Consistency in performance
Applies underpinning knowledge and skills when:
planning and scheduling the operation of the power installation and auxiliary machinery for the voyage of a vessel
complying with all required safety, environmental and hazard control precautions and procedures when planning the operation of a vessel's power installation and auxiliary machinery
identifying typical potential operational problems and hazards and developing appropriate contingency plans
documenting and disseminating operational plans and schedules.
Shows evidence of application of relevant workplace procedures including:
relevant sections of international Conventions and Codes and AMSA Marine Orders
OHS regulations and hazard prevention policies and procedures
ISM Code safety management system procedures and work instructions on the operation of a vessel's power installation and auxiliary machinery, including machinery specifications and directions on equipment capability and limitations
waste, pollution and recycling management processes.
Work is managed, controlled and completed systematically with required attention to detail.
Context for assessment
Assessment of competence must comply with the assessment requirements of the relevant maritime regulations.
Assessment of this unit must be undertaken within relevant marine authority approved and audited arrangements by a registered training organisation:
As a minimum, assessment of knowledge must be conducted through appropriate written/oral examinations
Appropriate practical assessment must occur:
at the registered training organisation, and/or
on an appropriate working or training vessel.
Replaced By
| State Code | National Code | Title | Type |
|---|---|---|---|
| S5466 | TDMMR1607B | PLAN AND SCHEDULE OPERATIONS ON VESSELS OVER 750KW PROPULSION POWER | Unit of competency |
| State Code | National Code | Title | Type |
|---|---|---|---|
| S215 | TDM60201 | Advanced Diploma of Transport and Distribution (Marine Engineering) | Qualification |