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Intermediate25 min readManufacturing

Unitronics Structured Text for Assembly Lines

Learn Structured Text programming for Assembly Lines using Unitronics VisiLogic / UniLogic. Includes code examples, best practices, and step-by-step implementation guide for Manufacturing applications.

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Platform
VisiLogic / UniLogic
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Complexity
Intermediate to Advanced
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Project Duration
4-8 weeks

Implementing Structured Text for Assembly Lines using Unitronics VisiLogic / UniLogic requires translating a control narrative into code, tests, and commissioning checks. This hands-on guide focuses on practical implementation steps, an illustrative code example, and decisions that should be recorded during design review.

The guide uses VisiLogic / UniLogic terminology and Structured Text because complex calculations, data manipulation, advanced control algorithms, and when code reusability is important. Confirm language support for the selected controller and software release, then map the example's 5 sensor inputs and 5 actuator outputs to the project's reviewed I/O list.

Real Assembly Lines projects in Manufacturing face practical challenges including cycle time optimization, quality inspection, and integration with existing systems. Success requires balancing powerful for complex logic against steeper learning curve, while meeting 4-8 weeks project timelines typical for Assembly Lines implementations.

This guide provides step-by-step implementation guidance, an illustrative example, practical design patterns, and troubleshooting scenarios. Compile and test the adapted logic in an isolated environment, verify fail-safe behavior with the responsible controls and safety reviewers, and complete site acceptance checks before production use.

Unitronics VisiLogic / UniLogic for Assembly Lines

VisiLogic / UniLogic is a programming environment associated with Unitronics controller families such as Jazz 2, Samba 7", Vision V350. This guide uses Structured Text terminology from the supplied guide dataset, but controller capabilities and language support can change by model, firmware, software edition, and license.

Verify Before You Start:

  • The selected controller supports the required Structured Text constructs

  • The project version matches the installed VisiLogic / UniLogic release

  • Required communications, motion, safety, and simulation options are licensed

  • Firmware and device-description files are compatible with the project

  • The vendor manuals used for the design match the exact hardware revision


Application Planning:

For a Assembly Lines exercise, map the required inputs and outputs before writing logic. The example considers 5 sensor types, including Vision systems, Proximity sensors, Force sensors, and 5 actuator types.

Control Equipment for Assembly Lines:

  • Assembly workstations with fixtures

  • Pallet transfer systems

  • Automated guided vehicles (AGVs)

  • Collaborative robots (cobots)


Controller-family references used in this guide include:

  • Jazz 2: Confirm CPU, I/O, memory, communications, and Structured Text support in the current selection guide

  • Samba 7": Confirm CPU, I/O, memory, communications, and Structured Text support in the current selection guide

  • Vision V350: Confirm CPU, I/O, memory, communications, and Structured Text support in the current selection guide

  • Vision V570: Confirm CPU, I/O, memory, communications, and Structured Text support in the current selection guide


Hardware Selection Checklist:

  • Count local and remote I/O, including planned expansion

  • Measure the required task and communications update rates

  • Identify memory, data-retention, diagnostics, and cybersecurity requirements

  • Treat safety functions as a separate, standards-led design activity

  • Confirm lifecycle status, regional availability, licensing, and support


Source and Validation Note:

This page does not represent a vendor certification or a hardware acceptance test. Use current Unitronics manuals, release notes, and safety documentation as the authority for product-specific behavior. Validate adapted logic in a simulator or isolated test setup before connecting it to equipment.

Investment Considerations:

For Assembly Lines projects, compare hardware, software licensing, training, engineering, test equipment, commissioning, spares, and ongoing support. Obtain current pricing and lifecycle information directly from the vendor or an authorized regional supplier.

Understanding Structured Text for Assembly Lines

Structured Text (ST) is a high-level, text-based programming language defined in IEC 61131-3. It resembles Pascal and provides powerful constructs for complex algorithms, calculations, and data manipulation.

Execution Model:

Code executes sequentially from top to bottom within each program unit. Variables maintain state between scan cycles unless explicitly reset.

Core Advantages for Assembly Lines:

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

  • Excellent code reusability: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Compact code representation: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Good for algorithms and calculations: Critical for Assembly Lines when handling intermediate to advanced control logic

  • Familiar to software developers: Critical for Assembly Lines when handling intermediate to advanced control logic


Why Structured Text 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 Structured Text:

Variables:
- declaration: VAR / VAR_INPUT / VAR_OUTPUT / VAR_IN_OUT / VAR_GLOBAL sections
- initialization: Variables can be initialized at declaration: Counter : INT := 0;
- constants: VAR CONSTANT section for read-only values

Operators:
- arithmetic: + - * / MOD (modulo)
- comparison: = <> < > <= >=
- logical: AND OR XOR NOT

ControlStructures:
- if: IF condition THEN statements; ELSIF condition THEN statements; ELSE statements; END_IF;
- case: CASE selector OF value1: statements; value2: statements; ELSE statements; END_CASE;
- for: FOR index := start TO end BY step DO statements; END_FOR;

Best Practices for Structured Text:

  • Use meaningful variable names with consistent naming conventions

  • Initialize all variables at declaration to prevent undefined behavior

  • Use enumerated types for state machines instead of magic numbers

  • Break complex expressions into intermediate variables for readability

  • Use functions for reusable calculations and function blocks for stateful operations


Common Mistakes to Avoid:

  • Using = instead of := for assignment (= is comparison)

  • Forgetting semicolons at end of statements

  • Integer division truncation - use REAL for decimal results

  • Infinite loops from incorrect WHILE/REPEAT conditions


Typical Applications:

1. PID control: Directly applicable to Assembly Lines
2. Recipe management: Related control patterns
3. Statistical calculations: Related control patterns
4. Data logging: Related control patterns

Understanding these fundamentals prepares you to implement effective Structured Text solutions for Assembly Lines using Unitronics VisiLogic / UniLogic.

Implementing Assembly Lines with Structured Text

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 Structured Text 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: Structured Text addresses this through Powerful for complex logic.


2. Handling product variants with different operations

  • Solution: Structured Text addresses this through Excellent code reusability.


3. Managing parts supply and preventing stock-outs

  • Solution: Structured Text addresses this through Compact code representation.


4. Recovering from faults while maintaining quality

  • Solution: Structured Text addresses this through Good for algorithms and calculations.


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:

  • Task and I/O timing: Record minimum, average, and maximum values under a defined test load

  • Accuracy: Define an acceptable tolerance and compare it with calibrated reference measurements

  • Throughput: Count completed cycles over a fixed interval and record rejected or incomplete cycles

  • Fault response: Measure detection, safe-state, alarm, and recovery behavior for each test case

  • Resource use: Record memory, communications load, and diagnostic-buffer behavior

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 — 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 — 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 — Unitronics' own screen-sharing for technical support,User community forum with active troubleshooting discussions

Use the monitoring and diagnostic functions available in your VisiLogic / UniLogic version, and record the software, firmware, hardware, workload, and test procedure with every result.

Unitronics Structured Text Example for Assembly Lines

Illustrative Structured Text example for Assembly Lines using Unitronics terminology. Adapt the syntax to your VisiLogic / UniLogic release, compile it, and verify it in an isolated test environment before use on equipment.

(* Unitronics VisiLogic / UniLogic - Assembly Lines Control *)
(* Structured Text Implementation for Manufacturing *)
(* Unitronics projects use IDE-managed tag names rather than raw memory a *)

PROGRAM PRG_ASSEMBLY_LINES_Control

VAR
    (* State Machine Variables *)
    eState : E_ASSEMBLY_LINES_States := IDLE;
    bEnable : BOOL := FALSE;
    bFaultActive : BOOL := FALSE;

    (* Timers *)
    tonDebounce : TON;
    tonProcessTimeout : TON;
    tonFeedbackCheck : TON;

    (* Counters *)
    ctuCycleCounter : CTU;

    (* Process Variables *)
    rVisionsystems : REAL := 0.0;
    rServomotors : REAL := 0.0;
    rSetpoint : REAL := 100.0; (* Illustrative value; replace with a reviewed requirement *)
END_VAR

VAR CONSTANT
    (* Manufacturing Process Parameters *)
    C_DEBOUNCE_TIME : TIME := T#500MS;
    C_PROCESS_TIMEOUT : TIME := T#30S; (* Illustrative value; verify for the process *)
    C_BATCH_SIZE : INT := 50; (* Illustrative value; replace with a reviewed requirement *)
END_VAR

(* Input Conditioning *)
tonDebounce(IN := bStartButton, PT := C_DEBOUNCE_TIME);
bEnable := tonDebounce.Q AND NOT bEmergencyStop AND bSafetyOK;

(* Main State Machine - Pattern: State machines are commonly implemented  *)
CASE eState OF
    IDLE:
        rServomotors := 0.0;
        ctuCycleCounter(RESET := TRUE);
        IF bEnable AND rVisionsystems > 0.0 THEN
            eState := STARTING;
        END_IF;

    STARTING:
        (* Ramp up output - Gradual start *)
        rServomotors := MIN(rServomotors + 5.0, rSetpoint);
        IF rServomotors >= rSetpoint THEN
            eState := RUNNING;
        END_IF;

    RUNNING:
        (* Assembly Lines active - Assembly line control systems coordinate the seque *)
        tonProcessTimeout(IN := TRUE, PT := C_PROCESS_TIMEOUT);
        ctuCycleCounter(CU := bCyclePulse, PV := C_BATCH_SIZE);

        IF ctuCycleCounter.Q THEN
            eState := COMPLETE;
        ELSIF tonProcessTimeout.Q THEN
            bFaultActive := TRUE;
            eState := FAULT;
        END_IF;

    COMPLETE:
        rServomotors := 0.0;
        (* Log production data - Data logging uses UniLogic's Data Samplers — configured triggers (time-based or event-based) write structured records to Data Tables or SD card in CSV format. Exported files can be pushed via FTP or email. For cloud integration, UniCloud provides managed data ingestion. Simpler VisiLogic projects use HMI-triggered SD writes via custom ladder code. *)
        eState := IDLE;

    FAULT:
        rServomotors := 0.0;
        (* Alarm handling uses UniLogic's built-in Alarm Manager — configure alarm conditions in tables with severity, message text, and logging behaviour, and the engine handles detection, acknowledgement, history, and HMI display without custom code. VisiLogic uses a simpler alarm approach via HMI event handlers. *)
        IF bFaultReset AND NOT bEmergencyStop THEN
            bFaultActive := FALSE;
            eState := IDLE;
        END_IF;
END_CASE;

(* Safety Override - Always executes *)
IF bEmergencyStop OR NOT bSafetyOK THEN
    rServomotors := 0.0;
    eState := FAULT;
    bFaultActive := TRUE;
END_IF;

END_PROGRAM

Code Explanation:

  • 1.Enumerated state machine (State machines are commonly implemented in ladder with step-counter registers or in ST using CASE structures with named state constants. UniLogic's HMI graphical bindings make state-to-screen visualisation straightforward — a single state variable drives both logic and operator screen transitions. SFC is not a primary language on Unitronics; state logic is typically CASE or ladder.) for clear Assembly Lines sequence control
  • 2.Constants use clearly marked illustrative values that must be replaced with reviewed project requirements
  • 3.Input conditioning with debounce timer prevents false triggers in industrial environment
  • 4.STARTING state implements soft-start ramp - prevents mechanical shock
  • 5.Process timeout detection flags a possible stuck condition for investigation
  • 6.The final override illustrates a software permissive only; it is not a safety-rated function and must not replace a validated safety system

Best Practices

  • Follow Unitronics naming conventions: Unitronics projects use IDE-managed tag names rather than raw memory addressing.
  • Unitronics function design: Function block design in Unitronics uses user-defined FBs in UniLogic (more limi
  • Data organization: Unitronics uses its own tag database concept rather than IEC-standard data block
  • Structured Text: Use meaningful variable names with consistent naming conventions
  • Structured Text: Initialize all variables at declaration to prevent undefined behavior
  • Structured Text: Use enumerated types for state machines instead of magic numbers
  • Assembly Lines: Implement operation-level process data logging
  • Assembly Lines: Use standard station control template for consistency
  • Assembly Lines: Add pre-emptive parts request to avoid stock-out
  • Debug with VisiLogic / UniLogic: Use the built-in simulator to reproduce issues before hardware visit
  • Safety: Two-hand start buttons for manual stations
  • Use a compatible simulator or isolated test rig to test Assembly Lines logic before deployment

Common Pitfalls to Avoid

  • Structured Text: Using = instead of := for assignment (= is comparison)
  • Structured Text: Forgetting semicolons at end of statements
  • Structured Text: Integer division truncation - use REAL for decimal results
  • Unitronics common error: VisiLogic-to-UniLogic migration issues — 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 Structured Text programs unmaintainable over time

Related Certifications

🏆Unitronics Certified Integrator
🏆UniLogic Developer Training
🏆Advanced Unitronics Programming Certification

Applying Structured Text to Assembly Lines using Unitronics VisiLogic / UniLogic requires understanding the platform, the process, and the project's acceptance criteria. This guide has covered implementation structure, an illustrative code example, verification practices, and common pitfalls for a intermediate to advanced Assembly Lines exercise.

Use the practices outlined here to create a design that can be reviewed and tested. Define performance targets in the project requirements and confirm them with repeatable measurements.

Next Steps:

1. Check Sources: Read the current VisiLogic / UniLogic help, controller manual, release notes, and relevant standards
2. Practice Safely: Adapt the example in a simulator or isolated training setup
3. Review: Have the I/O map, state behavior, faults, and recovery steps reviewed
4. Test: Record normal, boundary, fault, restart, and communications test results

Structured Text Foundation:

Structured Text (ST) is a high-level, text-based programming language defined in IEC 61131-3. It resembles Pascal and provides powerful constructs for...

Project duration depends on scope, reviews, hardware availability, software and firmware versions, testing, commissioning, and site constraints. Remember: Implement operation-level process data logging

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