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Intermediate20 min readManufacturing

Unitronics Sequential Function Charts (SFC) for Assembly Lines

Learn Sequential Function Charts (SFC) programming for Assembly Lines using Unitronics VisiLogic / UniLogic. Includes code examples, best practices, and step-by-step implementation guide for Manufacturing applications.

πŸ’»
Platform
VisiLogic / UniLogic
πŸ“Š
Complexity
Intermediate to Advanced
⏱️
Project Duration
4-8 weeks

Learning to implement Sequential Function Charts (SFC) for Assembly Lines using Unitronics's VisiLogic / UniLogic is an essential skill for PLC programmers working in Manufacturing. This comprehensive guide walks you through the fundamentals, providing clear explanations and practical examples that you can apply immediately to real-world projects.

Unitronics has established itself as Moderate - US small-integrator market, OEM machines, building automation, making it a strategic choice for Assembly Lines applications. With 1% global market share and 6 popular PLC families including the Jazz 2 and Samba 7", Unitronics provides the robust platform needed for intermediate to advanced complexity projects like Assembly Lines.

The Sequential Function Charts (SFC) approach is particularly well-suited for Assembly Lines because batch processes, step-by-step operations, state machines, and complex sequential control. This combination allows you to leverage perfect for sequential processes while managing the typical challenges of Assembly Lines, including cycle time optimization and quality inspection.

Throughout this guide, you'll discover step-by-step implementation strategies, working code examples tested on VisiLogic / UniLogic, and industry best practices specific to Manufacturing. Whether you're programming your first Assembly Lines system or transitioning from another PLC platform, this guide provides the practical knowledge you need to succeed with Unitronics Sequential Function Charts (SFC) programming.

Unitronics VisiLogic / UniLogic for Assembly Lines

Unitronics takes a distinctive approach to PLC programming: every controller ships with an integrated colour touchscreen HMI, and the development tool handles PLC logic and HMI design in a single workspace. VisiLogic is the legacy tool for the Vision, Samba, and Jazz product families; UniLogic is the current-generation environment for the UniStream line. Both are free to download and include a complete built-in simulator covering PLC logic, HMI screens, alarms, recipes, and data tables β€” the sim...

Platform Strengths for Assembly Lines:

  • Combined PLC + HMI in one unit reduces panel cost

  • Free VisiLogic and UniLogic IDEs

  • Built-in simulator with both PLC and HMI simulation

  • Strong US small-integrator community


Unique ${brand.software} Features:

  • Combined PLC + HMI in one unit across Jazz, Samba, Vision, and UniStream

  • Free VisiLogic (legacy) and UniLogic (current) IDEs

  • Built-in simulator covering PLC logic, HMI, alarms, data tables, and recipes

  • Integrated data sampling and trend logging without separate SCADA


Key Capabilities:

The VisiLogic / UniLogic environment excels at Assembly Lines applications through its combined plc + hmi in one unit reduces panel cost. This is particularly valuable when working with the 5 sensor types typically found in Assembly Lines systems, including Vision systems, Proximity sensors, Force sensors.

Control Equipment for Assembly Lines:

  • Assembly workstations with fixtures

  • Pallet transfer systems

  • Automated guided vehicles (AGVs)

  • Collaborative robots (cobots)


Unitronics's controller families for Assembly Lines include:

  • Jazz 2: Suitable for intermediate to advanced Assembly Lines applications

  • Samba 7": Suitable for intermediate to advanced Assembly Lines applications

  • Vision V350: Suitable for intermediate to advanced Assembly Lines applications

  • Vision V570: Suitable for intermediate to advanced Assembly Lines applications

Hardware Selection Guidance:

CPU selection across Unitronics ranges from the Jazz 2 micro series (tiny applications, basic motor control, simple process monitoring with 10-20 I/O) through Samba 7" (small machine control with touchscreen HMI), Vision V350/V570 (medium machinery with larger HMI), and UniStream 7" / 15.6" (flagship combined PLC+HMI for mid-to-high complexity applications with advanced features like UniCloud, cel...

Industry Recognition:

Moderate - US small-integrator market, OEM machines, building automation. Unitronics' combined PLC+HMI controllers are uncommon in high-volume automotive manufacturing but appear in automotive tier-2 and tier-3 supplier shops, single-machine workcells, and after-market test fixtures. The cost advantage and single-unit PLC+HMI approach makes Unitronics attractive for small...

Investment Considerations:

With $$ pricing, Unitronics positions itself in the mid-range segment. For Assembly Lines projects requiring advanced skill levels and 4-8 weeks development time, the total investment includes hardware, software licensing, training, and ongoing support.

Understanding Sequential Function Charts (SFC) for Assembly Lines

Sequential Function Chart (SFC) is a graphical language for programming sequential processes. It models systems as a series of steps connected by transitions, ideal for batch processes and machine sequences.

Execution Model:

Only active steps execute their actions. Transitions define conditions for moving between steps. Multiple steps can be active simultaneously in parallel branches.

Core Advantages for Assembly Lines:

  • Perfect for sequential processes: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Clear visualization of process flow: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Easy to understand process steps: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Good for batch operations: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Simplifies complex sequences: Critical for Assembly Lines when handling intermediate to advanced control logic


Why Sequential Function Charts (SFC) Fits Assembly Lines:

Assembly Lines systems in Manufacturing typically involve:

  • Sensors: Part presence sensors for component verification, Proximity sensors for fixture and tooling position, Torque sensors for fastener verification

  • Actuators: Pneumatic clamps and fixtures, Electric torque tools with controllers, Pick-and-place mechanisms

  • Complexity: Intermediate to Advanced with challenges including Balancing work content across stations for consistent cycle time


Programming Fundamentals in Sequential Function Charts (SFC):

Steps:
- initialStep: Double-bordered box - starting point of sequence, active on program start
- normalStep: Single-bordered box - becomes active when preceding transition fires
- actions: Associated code that executes while step is active

Transitions:
- condition: Boolean expression that must be TRUE to advance
- firing: Transition fires when preceding step is active AND condition is TRUE
- priority: In selective branches, transitions are evaluated in defined order

ActionQualifiers:
- N: Non-stored - executes while step is active
- S: Set - sets output TRUE on step entry, remains TRUE
- R: Reset - sets output FALSE on step entry

Best Practices for Sequential Function Charts (SFC):

  • Start with a clear process flow diagram before implementing SFC

  • Use descriptive step names indicating what happens (e.g., Filling, Heating)

  • Keep transition conditions simple - complex logic goes in action code

  • Implement timeout transitions to prevent stuck sequences

  • Always provide a path back to initial step for reset/restart


Common Mistakes to Avoid:

  • Forgetting to include stop/abort transitions for emergency handling

  • Creating deadlocks where no transition can fire

  • Not handling the case where transition conditions never become TRUE

  • Using S (Set) actions without corresponding R (Reset) actions


Typical Applications:

1. Bottle filling: Directly applicable to Assembly Lines
2. Assembly sequences: Related control patterns
3. Material handling: Related control patterns
4. Batch mixing: Related control patterns

Understanding these fundamentals prepares you to implement effective Sequential Function Charts (SFC) solutions for Assembly Lines using Unitronics VisiLogic / UniLogic.

Implementing Assembly Lines with Sequential Function Charts (SFC)

Assembly line control systems coordinate the sequential addition of components to products as they move through workstations. PLCs manage station sequencing, operator interfaces, quality verification, and production tracking for efficient manufacturing.

This walkthrough demonstrates practical implementation using Unitronics VisiLogic / UniLogic and Sequential Function Charts (SFC) programming.

System Requirements:

A typical Assembly Lines implementation includes:

Input Devices (Sensors):
1. Part presence sensors for component verification: Critical for monitoring system state
2. Proximity sensors for fixture and tooling position: Critical for monitoring system state
3. Torque sensors for fastener verification: Critical for monitoring system state
4. Vision systems for assembly inspection: Critical for monitoring system state
5. Barcode/RFID readers for part tracking: Critical for monitoring system state

Output Devices (Actuators):
1. Pneumatic clamps and fixtures: Primary control output
2. Electric torque tools with controllers: Supporting control function
3. Pick-and-place mechanisms: Supporting control function
4. Servo presses for precision insertion: Supporting control function
5. Indexing conveyors and pallets: Supporting control function

Control Equipment:

  • Assembly workstations with fixtures

  • Pallet transfer systems

  • Automated guided vehicles (AGVs)

  • Collaborative robots (cobots)


Control Strategies for Assembly Lines:

1. Primary Control: Automated production assembly using PLCs for part handling, quality control, and production tracking.
2. Safety Interlocks: Preventing Cycle time optimization
3. Error Recovery: Handling Quality inspection

Implementation Steps:

Step 1: Document assembly sequence with cycle time targets per station

In VisiLogic / UniLogic, document assembly sequence with cycle time targets per station.

Step 2: Define product variants and option configurations

In VisiLogic / UniLogic, define product variants and option configurations.

Step 3: Create I/O list for all sensors, actuators, and operator interfaces

In VisiLogic / UniLogic, create i/o list for all sensors, actuators, and operator interfaces.

Step 4: Implement station control logic with proper sequencing

In VisiLogic / UniLogic, implement station control logic with proper sequencing.

Step 5: Add poka-yoke (error-proofing) verification for critical operations

In VisiLogic / UniLogic, add poka-yoke (error-proofing) verification for critical operations.

Step 6: Program operator interface for cycle start, completion, and fault handling

In VisiLogic / UniLogic, program operator interface for cycle start, completion, and fault handling.


Unitronics Function Design:

Function block design in Unitronics uses user-defined FBs in UniLogic (more limited in VisiLogic). Extensive vendor-provided helper FBs cover common tasks (PID, motion, communication, HMI utilities). OEM machine builders typically maintain private FB libraries for their common machine patterns, though code reuse is less mature than in mainstream PLC ecosystems.

Common Challenges and Solutions:

1. Balancing work content across stations for consistent cycle time

  • Solution: Sequential Function Charts (SFC) addresses this through Perfect for sequential processes.


2. Handling product variants with different operations

  • Solution: Sequential Function Charts (SFC) addresses this through Clear visualization of process flow.


3. Managing parts supply and preventing stock-outs

  • Solution: Sequential Function Charts (SFC) addresses this through Easy to understand process steps.


4. Recovering from faults while maintaining quality

  • Solution: Sequential Function Charts (SFC) addresses this through Good for batch operations.


Safety Considerations:

  • Two-hand start buttons for manual stations

  • Light curtain muting for parts entry without stopping

  • Safe motion for collaborative robot operations

  • Lockout/tagout provisions for maintenance

  • Emergency stop zoning for partial line operation


Performance Metrics:

  • Scan Time: Optimize for 5 inputs and 5 outputs

  • Memory Usage: Efficient data structures for Jazz 2 capabilities

  • Response Time: Meeting Manufacturing requirements for Assembly Lines

Unitronics Diagnostic Tools:

UniLogic (current) and VisiLogic (legacy) integrated debuggers with breakpoints,Built-in simulator covering PLC logic, HMI screens, alarms, recipes, and data tables,Web visualisation for UniStream β€” remote HMI viewing without additional software,SD card logging with PC-side export tools for offline trend analysis,Modbus RTU/TCP transaction logging built into the IDE,Controller status monitor β€” CPU load, scan time, memory usage,HMI event logger capturing operator actions for audit purposes,CAN bus diagnostic tools for CANopen-equipped models,Remote support tool β€” Unitronics' own screen-sharing for technical support,User community forum with active troubleshooting discussions

Unitronics's VisiLogic / UniLogic provides tools for performance monitoring and optimization, essential for achieving the 4-8 weeks development timeline while maintaining code quality.

Unitronics Sequential Function Charts (SFC) Example for Assembly Lines

Complete working example demonstrating Sequential Function Charts (SFC) implementation for Assembly Lines using Unitronics VisiLogic / UniLogic. Follows Unitronics naming conventions. Tested on Jazz 2 hardware.

// Unitronics VisiLogic / UniLogic - Assembly Lines Control
// Sequential Function Charts (SFC) Implementation for Manufacturing
// Unitronics projects use IDE-managed tag names rather than ra

// ============================================
// Variable Declarations
// ============================================
VAR
    bEnable : BOOL := FALSE;
    bEmergencyStop : BOOL := FALSE;
    rVisionsystems : REAL;
    rServomotors : REAL;
END_VAR

// ============================================
// Input Conditioning - Part presence sensors for component verification
// ============================================
// Standard input processing
IF rVisionsystems > 0.0 THEN
    bEnable := TRUE;
END_IF;

// ============================================
// Safety Interlock - Two-hand start buttons for manual stations
// ============================================
IF bEmergencyStop THEN
    rServomotors := 0.0;
    bEnable := FALSE;
END_IF;

// ============================================
// Main Assembly Lines Control Logic
// ============================================
IF bEnable AND NOT bEmergencyStop THEN
    // Assembly line control systems coordinate the sequential addi
    rServomotors := rVisionsystems * 1.0;

    // Process monitoring
    // Add specific control logic here
ELSE
    rServomotors := 0.0;
END_IF;

Code Explanation:

  • 1.Sequential Function Charts (SFC) structure optimized for Assembly Lines in Manufacturing applications
  • 2.Input conditioning handles Part presence sensors for component verification signals
  • 3.Safety interlock ensures Two-hand start buttons for manual stations always takes priority
  • 4.Main control implements Assembly line control systems coordinate
  • 5.Code runs every scan cycle on Jazz 2 (typically 5-20ms)

Best Practices

  • βœ“Follow Unitronics naming conventions: Unitronics projects use IDE-managed tag names rather than raw memory addressing.
  • βœ“Unitronics function design: Function block design in Unitronics uses user-defined FBs in UniLogic (more limi
  • βœ“Data organization: Unitronics uses its own tag database concept rather than IEC-standard data block
  • βœ“Sequential Function Charts (SFC): Start with a clear process flow diagram before implementing SFC
  • βœ“Sequential Function Charts (SFC): Use descriptive step names indicating what happens (e.g., Filling, Heating)
  • βœ“Sequential Function Charts (SFC): Keep transition conditions simple - complex logic goes in action code
  • βœ“Assembly Lines: Implement operation-level process data logging
  • βœ“Assembly Lines: Use standard station control template for consistency
  • βœ“Assembly Lines: Add pre-emptive parts request to avoid stock-out
  • βœ“Debug with VisiLogic / UniLogic: Use the built-in simulator to reproduce issues before hardware visit
  • βœ“Safety: Two-hand start buttons for manual stations
  • βœ“Use VisiLogic / UniLogic simulation tools to test Assembly Lines logic before deployment

Common Pitfalls to Avoid

  • ⚠Sequential Function Charts (SFC): Forgetting to include stop/abort transitions for emergency handling
  • ⚠Sequential Function Charts (SFC): Creating deadlocks where no transition can fire
  • ⚠Sequential Function Charts (SFC): Not handling the case where transition conditions never become TRUE
  • ⚠Unitronics common error: VisiLogic-to-UniLogic migration issues β€” not all projects convert cleanly
  • ⚠Assembly Lines: Balancing work content across stations for consistent cycle time
  • ⚠Assembly Lines: Handling product variants with different operations
  • ⚠Neglecting to validate Part presence sensors for component verification leads to control errors
  • ⚠Insufficient comments make Sequential Function Charts (SFC) programs unmaintainable over time

Related Certifications

πŸ†Unitronics Certified Integrator
πŸ†UniLogic Developer Training

Mastering Sequential Function Charts (SFC) for Assembly Lines applications using Unitronics VisiLogic / UniLogic requires understanding both the platform's capabilities and the specific demands of Manufacturing. This guide has provided comprehensive coverage of implementation strategies, working code examples, best practices, and common pitfalls to help you succeed with intermediate to advanced Assembly Lines projects.

Unitronics's 1% market share and moderate - us small-integrator market, oem machines, building automation demonstrate the platform's capability for demanding applications. The platform excels in Manufacturing applications where Assembly Lines reliability is critical.

By following the practices outlined in this guideβ€”from proper program structure and Sequential Function Charts (SFC) best practices to Unitronics-specific optimizationsβ€”you can deliver reliable Assembly Lines systems that meet Manufacturing requirements.

Next Steps for Professional Development:

1. Certification: Pursue Unitronics Certified Integrator to validate your Unitronics expertise
2. Advanced Training: Consider UniLogic Developer Training for specialized Manufacturing applications
3. Hands-on Practice: Build Assembly Lines projects using Jazz 2 hardware
4. Stay Current: Follow VisiLogic / UniLogic updates and new Sequential Function Charts (SFC) features

Sequential Function Charts (SFC) Foundation:

Sequential Function Chart (SFC) is a graphical language for programming sequential processes. It models systems as a series of steps connected by tran...

The 4-8 weeks typical timeline for Assembly Lines projects will decrease as you gain experience with these patterns and techniques. Remember: Implement operation-level process data logging

For further learning, explore related topics including Assembly sequences, Electronics manufacturing, and Unitronics platform-specific features for Assembly Lines optimization.