Multi-zone Temperature Controller for Hot Runner Injection Molding

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Solution Overview

Problem

Existing temperature controllers for hot runner injection molding systems are bulky and require multiple single-zone controller cards, making them inefficient with the compactness and reduced size of modern hot runner systems, and there is a need for a more compact, easy-to-operate, and economical solution.

Innovation Solution

A multiple zone temperature controller that uses time-division multiplexing to manage signals from multiple thermocouples and heating elements with a microcontroller, allowing for a single PCB card to control multiple zones, featuring a multiplexer for signal selection, power switching stages for precise current control, and a user interface for data display and input.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Ease of operation

If multiple single-zone controller cards are used to control each heating zone, then each zone can be controlled independently, but the controller size and device complexity increase significantly

Engineering Contradiction:
ImproveIndependent zone controlVSAvoidNumber of controller cards
Core Design Contradiction:
Ease of operationVSDevice complexity

Solution Approach 1:

The patent combines multiple single-zone controller cards into a single multi-zone controller card that can control multiple heating zones simultaneously. This is achieved by integrating multiple thermocouple inputs, multiple power switching stages, and multiple heating element outputs on one PCB card, thereby reducing the number of separate controller cards needed while maintaining independent control capability for each zone

Inventive Principle:
Principle #5Merging (Combining)

Solution Approach 2:

The controller card is designed with universal functionality to handle multiple zones through time-division multiplexing. The microcontroller can sequentially read temperature signals from multiple thermocouples and control multiple heating elements by switching between different input and output channels, making a single card capable of performing functions that previously required multiple separate cards

Inventive Principle:
Principle #6Universality (Multi-functionality)

2Device complexity

If a single multi-zone controller card is used to reduce controller size, then device complexity is reduced, but signal interference and measurement precision may deteriorate

Engineering Contradiction:
ImproveNumber of controller cardsVSAvoidTemperature signal accuracy
Core Design Contradiction:
Device complexityVSMeasurement precision

Solution Approach 1:

The patent employs time-division multiplexing where the microcontroller periodically switches between reading temperature signals from different thermocouples and controlling different heating zones. Each zone's temperature signal is read at specific time intervals, and the switching occurs rapidly enough that each zone maintains its temperature control precision while sharing common input and output resources on the single controller card

Inventive Principle:
Principle #19Periodic action

Solution Approach 2:

The patent introduces a multiplexer as an intermediary component that selectively connects different thermocouple inputs to the analog-to-digital converter at different time slots. This intermediary ensures that temperature signals from multiple zones are accurately captured without interference, maintaining measurement precision while enabling multiple zones to be monitored on a single controller card

Inventive Principle:
Principle #24Intermediary (Mediator)

3Speed

If heating zones are controlled simultaneously, then temperature control responsiveness is improved, but power consumption and heat generation increase

Engineering Contradiction:
ImproveTemperature control responsivenessVSAvoidPower consumption
Core Design Contradiction:
SpeedVSUse of energy by moving object

Solution Approach 1:

The controller uses periodic time-division multiplexing to switch between different heating zones, activating heating elements in sequential time slots rather than continuously. This allows the system to maintain responsive temperature control by rapidly cycling through zones while reducing overall power consumption compared to simultaneous continuous operation of all heating elements

Inventive Principle:
Principle #19Periodic action

Solution Approach 2:

The patent implements dynamic control where the microcontroller adjusts the timing and duration of power delivery to each heating zone based on real-time temperature feedback. By dynamically switching power allocation between zones and adjusting duty cycles, the system achieves responsive temperature control while optimizing power consumption to avoid unnecessary energy waste

Inventive Principle:
Principle #15Dynamics

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

The solution enables a compact, efficient, and cost-effective temperature control system that can manage multiple zones on a single PCB card, reducing size and complexity while maintaining precise temperature control and user interaction.

Implementation Method 1

each zone has a heating element and has a thermocouple for measuring temperature in the zone

Methodology Applied
Scientific EffectSeebeck effect: Seebeck Effect

Implementation Method 2

power switching stages, each power switching stage being coupled to one of the heating elements and supplying the one of the heating elements with a driving current

Methodology Applied
Scientific EffectJoule heating: Joule Heating

Data Source

PatentUS7671304B2Multiple zone temperature controller for injection molding system
Publication Date: 2010.03.02 MOLD MASTERS (2007) LIMITED
  • US7671304B2 patent drawing
  • US7671304B2 patent drawing
  • US7671304B2 patent drawing

AI summary

A multiple zone temperature controller for a hot runner injection molding system. The temperature controller includes inputs for signals from two or more thermocouples corresponding to two or more heating zones. The thermocouple inputs are time-division multiplexed and the output is amplified and input to a microcontroller. The microcontroller manages and controls operation of power switching stages for controlling the power supplied to heating elements corresponding to each of the heating zones. The multiplexer is a low impedance switch.