Learning to implement Function Blocks for Temperature Control using Emerson's PAC Machine Edition / Movicon NExT / DeltaV Studio is an essential skill for PLC programmers working in Process Control. This comprehensive guide walks you through the fundamentals, providing clear explanations and practical examples that you can apply immediately to real-world projects.
Emerson has established itself as High in water/wastewater, food-and-beverage, automotive (legacy GE plants), upstream oil-and-gas (DeltaV), chemicals, power generation, making it a strategic choice for Temperature Control applications. With ~5% global process + PAC global market share and 6 popular PLC families including the PACSystems RX3i and PACSystems RX7i, Emerson provides the robust platform needed for intermediate complexity projects like Temperature Control.
The Function Blocks approach is particularly well-suited for Temperature Control because process control, continuous operations, modular programming, and signal flow visualization. This combination allows you to leverage visual representation of signal flow while managing the typical challenges of Temperature Control, including pid tuning and temperature stability.
Throughout this guide, you'll discover step-by-step implementation strategies, working code examples tested on PAC Machine Edition / Movicon NExT / DeltaV Studio, and industry best practices specific to Process Control. Whether you're programming your first Temperature Control system or transitioning from another PLC platform, this guide provides the practical knowledge you need to succeed with Emerson Function Blocks programming.
Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio for Temperature Control
Emerson sells the PACSystems PLC line (RX3i, RX7i, RXi, RSTi-EP) inherited from GE Intelligent Platforms / GE Fanuc, programmed in PAC Machine Edition (PME). PME is an IEC 61131-3 environment with the unusual feature of allowing C-language Function Blocks alongside ladder, FBD, ST, SFC, and IL β a holdover from the GE Fanuc lineage that remains popular in legacy-heavy plants. DeltaV is Emerson's process-automation DCS, programmed in DeltaV Studio, separate from PME and aligned to control-module-...
Platform Strengths for Temperature Control:
- Mature PACSystems hardware lineage (RX3i, RX7i, RXi controllers)
- PAC Machine Edition supports IEC 61131-3 plus C-language Function Blocks
- Hot-standby and SIL 3 redundancy options
- Strong process pedigree via DeltaV β same-vendor PLC + DCS story
Unique ${brand.software} Features:
- PAC Machine Edition supports IEC 61131-3 plus C-language Function Blocks
- Hot-standby and SIL 3 redundancy options
- PACSystems RXi for Linux-based open controller deployments
- DeltaV control-module-template engineering for process plants
Key Capabilities:
The PAC Machine Edition / Movicon NExT / DeltaV Studio environment excels at Temperature Control applications through its mature pacsystems hardware lineage (rx3i, rx7i, rxi controllers). This is particularly valuable when working with the 4 sensor types typically found in Temperature Control systems, including Thermocouples (K-type, J-type), RTD sensors (PT100, PT1000), Infrared temperature sensors.
Control Equipment for Temperature Control:
- Electric resistance heaters (cartridge, band, strip)
- Steam injection systems
- Thermal fluid (hot oil) systems
- Refrigeration and chiller systems
Emerson's controller families for Temperature Control include:
- PACSystems RX3i: Suitable for intermediate Temperature Control applications
- PACSystems RX7i: Suitable for intermediate Temperature Control applications
- PACSystems RSTi-EP: Suitable for intermediate Temperature Control applications
- VersaMax (legacy): Suitable for intermediate Temperature Control applications
Hardware Selection Guidance:
RX3i is the volume mid-tier PLC; RX7i is the legacy high-end; RXi is the modern Linux-based open controller; RSTi-EP is the compact distributed-I/O controller. DeltaV S-series controllers serve full-DCS deployments. SIL 3 variants exist within each line for safety-critical loops....
Industry Recognition:
High in water/wastewater, food-and-beverage, automotive (legacy GE plants), upstream oil-and-gas (DeltaV), chemicals, power generation. Moderate β legacy GE Fanuc plants in automotive Tier 1 still run PACSystems for body-shop, paint, and trim conveyor sub-systems....
Investment Considerations:
With $$$ pricing, Emerson positions itself in the premium segment. For Temperature Control projects requiring intermediate skill levels and 2-3 weeks development time, the total investment includes hardware, software licensing, training, and ongoing support.
Understanding Function Blocks for Temperature Control
Function Block Diagram (FBD) is a graphical programming language where functions and function blocks are represented as boxes connected by signal lines. Data flows from left to right through the network.
Execution Model:
Blocks execute based on data dependencies - a block executes only when all its inputs are available. Networks execute top to bottom when dependencies allow.
Core Advantages for Temperature Control:
- Visual representation of signal flow: Critical for Temperature Control when handling intermediate control logic
- Good for modular programming: Critical for Temperature Control when handling intermediate control logic
- Reusable components: Critical for Temperature Control when handling intermediate control logic
- Excellent for process control: Critical for Temperature Control when handling intermediate control logic
- Good for continuous operations: Critical for Temperature Control when handling intermediate control logic
Why Function Blocks Fits Temperature Control:
Temperature Control systems in Process Control typically involve:
- Sensors: RTDs (PT100/PT1000) for high-accuracy measurements, Thermocouples (J, K, T types) for high-temperature applications, Infrared pyrometers for non-contact measurement
- Actuators: SCR (thyristor) power controllers for electric heaters, Solid-state relays for on/off heating control, Proportional control valves for steam or thermal fluid
- Complexity: Intermediate with challenges including Long thermal time constants making tuning difficult
Control Strategies for Temperature Control:
- pid: Standard PID control with proportional, integral, and derivative terms tuned for the thermal process dynamics
- cascade: Master temperature loop outputs to slave heater/cooler control loop for tighter control
- ratio: Maintain temperature ratio between zones for gradient applications
Programming Fundamentals in Function Blocks:
StandardBlocks:
- logic: AND, OR, XOR, NOT - Boolean logic operations
- comparison: EQ, NE, LT, GT, LE, GE - Compare values
- math: ADD, SUB, MUL, DIV, MOD - Arithmetic operations
TimersCounters:
- ton: Timer On-Delay - Output turns ON after preset time
- tof: Timer Off-Delay - Output turns OFF after preset time
- tp: Pulse Timer - Output pulses for preset time
Connections:
- wires: Connect output pins to input pins to pass data
- branches: One output can connect to multiple inputs
- feedback: Outputs can feed back to inputs for state machines
Best Practices for Function Blocks:
- Arrange blocks for clear left-to-right data flow
- Use consistent spacing and alignment for readability
- Label all inputs and outputs with meaningful names
- Create custom FBs for frequently repeated logic patterns
- Minimize wire crossings by careful block placement
Common Mistakes to Avoid:
- Creating feedback loops without proper initialization
- Connecting incompatible data types
- Not considering execution order dependencies
- Overcrowding networks making them hard to read
Typical Applications:
1. HVAC control: Directly applicable to Temperature Control
2. Temperature control: Related control patterns
3. Flow control: Related control patterns
4. Batch processing: Related control patterns
Understanding these fundamentals prepares you to implement effective Function Blocks solutions for Temperature Control using Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio.
Implementing Temperature Control with Function Blocks
Industrial temperature control systems use PLCs to regulate process temperatures in manufacturing, food processing, chemical processing, and other applications. These systems maintain precise temperature setpoints through heating and cooling control while ensuring product quality and energy efficiency.
This walkthrough demonstrates practical implementation using Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio and Function Blocks programming.
System Requirements:
A typical Temperature Control implementation includes:
Input Devices (Sensors):
1. RTDs (PT100/PT1000) for high-accuracy measurements: Critical for monitoring system state
2. Thermocouples (J, K, T types) for high-temperature applications: Critical for monitoring system state
3. Infrared pyrometers for non-contact measurement: Critical for monitoring system state
4. Thermistors for fast response applications: Critical for monitoring system state
5. Thermal imaging cameras for surface temperature monitoring: Critical for monitoring system state
Output Devices (Actuators):
1. SCR (thyristor) power controllers for electric heaters: Primary control output
2. Solid-state relays for on/off heating control: Supporting control function
3. Proportional control valves for steam or thermal fluid: Supporting control function
4. Solenoid valves for cooling water or refrigerant: Supporting control function
5. Variable frequency drives for cooling fan control: Supporting control function
Control Equipment:
- Electric resistance heaters (cartridge, band, strip)
- Steam injection systems
- Thermal fluid (hot oil) systems
- Refrigeration and chiller systems
Control Strategies for Temperature Control:
- pid: Standard PID control with proportional, integral, and derivative terms tuned for the thermal process dynamics
- cascade: Master temperature loop outputs to slave heater/cooler control loop for tighter control
- ratio: Maintain temperature ratio between zones for gradient applications
Implementation Steps:
Step 1: Characterize thermal system dynamics (time constants, dead time)
In PAC Machine Edition / Movicon NExT / DeltaV Studio, characterize thermal system dynamics (time constants, dead time).
Step 2: Select appropriate sensor type and placement for representative measurement
In PAC Machine Edition / Movicon NExT / DeltaV Studio, select appropriate sensor type and placement for representative measurement.
Step 3: Size heating and cooling capacity for worst-case load conditions
In PAC Machine Edition / Movicon NExT / DeltaV Studio, size heating and cooling capacity for worst-case load conditions.
Step 4: Implement PID control with appropriate sample time (typically 10x faster than process time constant)
In PAC Machine Edition / Movicon NExT / DeltaV Studio, implement pid control with appropriate sample time (typically 10x faster than process time constant).
Step 5: Add output limiting and anti-windup for safe operation
In PAC Machine Edition / Movicon NExT / DeltaV Studio, add output limiting and anti-windup for safe operation.
Step 6: Program ramp/soak profiles if required
In PAC Machine Edition / Movicon NExT / DeltaV Studio, program ramp/soak profiles if required.
Emerson Function Design:
PME FB libraries cover motion, drives, communications, safety. DeltaV control-module library is the central engineering artefact. EPC partners maintain extensive private libraries on both platforms.
Common Challenges and Solutions:
1. Long thermal time constants making tuning difficult
- Solution: Function Blocks addresses this through Visual representation of signal flow.
2. Transport delay (dead time) causing instability
- Solution: Function Blocks addresses this through Good for modular programming.
3. Non-linear response at different temperature ranges
- Solution: Function Blocks addresses this through Reusable components.
4. Sensor placement affecting measurement accuracy
- Solution: Function Blocks addresses this through Excellent for process control.
Safety Considerations:
- Independent high-limit safety thermostats (redundant to PLC)
- Watchdog timers for heater control validity
- Safe-state definition on controller failure (heaters off)
- Thermal fuse backup for runaway conditions
- Proper ventilation for combustible atmospheres
Performance Metrics:
- Scan Time: Optimize for 4 inputs and 5 outputs
- Memory Usage: Efficient data structures for PACSystems RX3i capabilities
- Response Time: Meeting Process Control requirements for Temperature Control
Emerson Diagnostic Tools:
PME online mode with breakpoint debug,DeltaV Diagnostics Station,AMS Device Manager for HART instrument health,Movicon NExT SCADA diagnostics,Profinet / EtherNet/IP topology tools,Trace tool with multi-channel capture,Hot-standby pair status diagnostics,Emerson global service desk support,Project-comparison and version-control integration,TΓV functional-safety audit-trail tooling
Emerson's PAC Machine Edition / Movicon NExT / DeltaV Studio provides tools for performance monitoring and optimization, essential for achieving the 2-3 weeks development timeline while maintaining code quality.
Emerson Function Blocks Example for Temperature Control
Complete working example demonstrating Function Blocks implementation for Temperature Control using Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio. Follows Emerson naming conventions. Tested on PACSystems RX3i hardware.
(* Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio - Temperature Control Control *)
(* Reusable Function Blocks Implementation *)
(* PME FB libraries cover motion, drives, communications, safet *)
FUNCTION_BLOCK FB_TEMPERATURE_CONTROL_Controller
VAR_INPUT
bEnable : BOOL; (* Enable control *)
bReset : BOOL; (* Fault reset *)
rProcessValue : REAL; (* RTDs (PT100/PT1000) for high-accuracy measurements *)
rSetpoint : REAL := 100.0; (* Target value *)
bEmergencyStop : BOOL; (* Safety input *)
END_VAR
VAR_OUTPUT
rControlOutput : REAL; (* SCR (thyristor) power controllers for electric heaters *)
bRunning : BOOL; (* Process active *)
bComplete : BOOL; (* Cycle complete *)
bFault : BOOL; (* Fault status *)
nFaultCode : INT; (* Diagnostic code *)
END_VAR
VAR
(* Internal Function Blocks *)
fbSafety : FB_SafetyMonitor; (* Safety logic *)
fbRamp : FB_RampGenerator; (* Soft start/stop *)
fbPID : FB_PIDController; (* Process control *)
fbDiag : FB_Diagnostics; (* PME alarms are flagged via library FBs into Movicon / Wonderware / Experion-equivalent SCADA. DeltaV alarms use the platform alarm-config with severity, suppression, and audit logging. *)
(* Internal State *)
eInternalState : E_ControlState;
tonWatchdog : TON;
END_VAR
(* Safety Monitor - Independent high-limit safety thermostats (redundant to PLC) *)
fbSafety(
Enable := bEnable,
EmergencyStop := bEmergencyStop,
ProcessValue := rProcessValue,
HighLimit := rSetpoint * 1.2,
LowLimit := rSetpoint * 0.1
);
(* Main Control Logic *)
IF fbSafety.SafeToRun THEN
(* Ramp Generator - Prevents startup surge *)
fbRamp(
Enable := bEnable,
TargetValue := rSetpoint,
RampRate := 20.0, (* Process Control rate *)
CurrentValue => rSetpoint
);
(* PID Controller - [object Object] *)
fbPID(
Enable := fbRamp.InPosition,
ProcessValue := rProcessValue,
Setpoint := fbRamp.CurrentValue,
Kp := 1.0,
Ki := 0.1,
Kd := 0.05,
OutputMin := 0.0,
OutputMax := 100.0
);
rControlOutput := fbPID.Output;
bRunning := TRUE;
bFault := FALSE;
nFaultCode := 0;
ELSE
(* Safe State - Watchdog timers for heater control validity *)
rControlOutput := 0.0;
bRunning := FALSE;
bFault := NOT bEnable; (* Only fault if not intentional stop *)
nFaultCode := fbSafety.FaultCode;
END_IF;
(* Diagnostics - PME data logging via Movicon NExT or PI historian; DeltaV uses Continuous Historian as the native logging tier. *)
fbDiag(
ProcessRunning := bRunning,
FaultActive := bFault,
ProcessValue := rProcessValue,
ControlOutput := rControlOutput
);
(* Watchdog - Detects frozen control *)
tonWatchdog(IN := bRunning AND NOT fbPID.OutputChanging, PT := T#10S);
IF tonWatchdog.Q THEN
bFault := TRUE;
nFaultCode := 99; (* Watchdog fault *)
END_IF;
(* Reset Logic *)
IF bReset AND NOT bEmergencyStop THEN
bFault := FALSE;
nFaultCode := 0;
fbDiag.ClearAlarms();
END_IF;
END_FUNCTION_BLOCKCode Explanation:
- 1.Encapsulated function block follows PME FB libraries cover motion, drives, c - reusable across Process Control projects
- 2.FB_SafetyMonitor provides Independent high-limit safety thermostats (redundant to PLC) including high/low limits
- 3.FB_RampGenerator prevents startup issues common in Temperature Control systems
- 4.FB_PIDController tuned for Process Control: Kp=1.0, Ki=0.1
- 5.Watchdog timer detects frozen control - critical for intermediate Temperature Control reliability
- 6.Diagnostic function block enables PME data logging via Movicon NExT or PI historian; DeltaV uses Continuous Historian as the native logging tier. and PME alarms are flagged via library FBs into Movicon / Wonderware / Experion-equivalent SCADA. DeltaV alarms use the platform alarm-config with severity, suppression, and audit logging.
Best Practices
- βFollow Emerson naming conventions: PME projects in former-GE plants often retain GE-style raw memory references (%I
- βEmerson function design: PME FB libraries cover motion, drives, communications, safety. DeltaV control-mo
- βData organization: Structured types in PME for axis status, recipe, and instrument data. DeltaV use
- βFunction Blocks: Arrange blocks for clear left-to-right data flow
- βFunction Blocks: Use consistent spacing and alignment for readability
- βFunction Blocks: Label all inputs and outputs with meaningful names
- βTemperature Control: Sample at 1/10 of the process time constant minimum
- βTemperature Control: Use derivative on PV, not error, for temperature control
- βTemperature Control: Start with conservative tuning and tighten gradually
- βDebug with PAC Machine Edition / Movicon NExT / DeltaV Studio: Use PME online mode with breakpoints for IEC POU debug; use C-FB build
- βSafety: Independent high-limit safety thermostats (redundant to PLC)
- βUse PAC Machine Edition / Movicon NExT / DeltaV Studio simulation tools to test Temperature Control logic before deployment
Common Pitfalls to Avoid
- β Function Blocks: Creating feedback loops without proper initialization
- β Function Blocks: Connecting incompatible data types
- β Function Blocks: Not considering execution order dependencies
- β Emerson common error: GE-legacy raw-address symbolic conflicts after migration to PME
- β Temperature Control: Long thermal time constants making tuning difficult
- β Temperature Control: Transport delay (dead time) causing instability
- β Neglecting to validate RTDs (PT100/PT1000) for high-accuracy measurements leads to control errors
- β Insufficient comments make Function Blocks programs unmaintainable over time
Related Certifications
Mastering Function Blocks for Temperature Control applications using Emerson PAC Machine Edition / Movicon NExT / DeltaV Studio requires understanding both the platform's capabilities and the specific demands of Process Control. This guide has provided comprehensive coverage of implementation strategies, working code examples, best practices, and common pitfalls to help you succeed with intermediate Temperature Control projects.
Emerson's ~5% global process + PAC market share and high in water/wastewater, food-and-beverage, automotive (legacy ge plants), upstream oil-and-gas (deltav), chemicals, power generation demonstrate the platform's capability for demanding applications. The platform excels in Process Control applications where Temperature Control reliability is critical.
By following the practices outlined in this guideβfrom proper program structure and Function Blocks best practices to Emerson-specific optimizationsβyou can deliver reliable Temperature Control systems that meet Process Control requirements.
Next Steps for Professional Development:
1. Certification: Pursue Emerson PACSystems Certified Engineer to validate your Emerson expertise
2. Advanced Training: Consider DeltaV Certified Professional for specialized Process Control applications
3. Hands-on Practice: Build Temperature Control projects using PACSystems RX3i hardware
4. Stay Current: Follow PAC Machine Edition / Movicon NExT / DeltaV Studio updates and new Function Blocks features
Function Blocks Foundation:
Function Block Diagram (FBD) is a graphical programming language where functions and function blocks are represented as boxes connected by signal line...
The 2-3 weeks typical timeline for Temperature Control projects will decrease as you gain experience with these patterns and techniques. Remember: Sample at 1/10 of the process time constant minimum
For further learning, explore related topics including Temperature control, Plastic molding machines, and Emerson platform-specific features for Temperature Control optimization.