Cooling Nozzles for Preformed Plastic Articles

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Solution Overview

Problem

Conventional apparatuses for cooling preformed plastic container articles are inefficient, requiring 1.5 to 2 minutes to cool them from 100°C to 60°C, leading to potential damage from contact and resin crystallization, resulting in whitening and increased apparatus size.

Innovation Solution

An apparatus using conveyer means with cooling nozzles and a water tank to spray and immerse preformed articles in cooling water, combined with gas ejection to remove adhering water, ensuring effective cooling and preventing damage through precise temperature control and water purification.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Device complexity

If air stream cooling is used for preformed articles, then the apparatus structure is simple, but the cooling time is excessively long (1.5 to 2 minutes) and cooling effectiveness is insufficient

Engineering Contradiction:
Improveapparatus structureVSAvoidcooling time
Core Design Contradiction:
Device complexityVSLoss of time

Solution Approach 1:

The patent applies hydraulic cooling by circulating cooling water through cooling water supply pipes and nozzles positioned along the conveyer passage. This allows direct contact cooling of the preformed articles, reducing cooling time from 1.5-2 minutes to a much shorter duration while maintaining apparatus simplicity through the use of standard hydraulic components.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

The patent introduces cooling water as an intermediary substance to transfer heat from the preformed articles. The cooling water circulates through a closed loop system with pumps and heat exchangers, efficiently removing heat from the articles without requiring complex direct cooling mechanisms.

Inventive Principle:
Principle #24Intermediary (Mediator)

2Volume of stationary object

If air stream cooling is used for preformed articles, then the apparatus size can be kept moderate, but the cooling effectiveness is insufficient and articles may contact and damage each other

Engineering Contradiction:
Improveapparatus sizeVSAvoidarticle integrity
Core Design Contradiction:
Volume of stationary objectVSReliability

Solution Approach 1:

The hydraulic cooling system with water supply pipes and nozzles provides intensive cooling that prevents article softening and contact damage. The system maintains compact apparatus size by integrating cooling components along the existing conveyer path rather than requiring extended cooling zones.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

The patent changes the cooling parameter from air stream to water-based cooling, which has much higher heat transfer coefficients. This enables effective cooling within a compact apparatus volume while preventing article damage by rapidly reducing temperature before articles can contact each other.

Inventive Principle:
Principle #35Parameter changes

3Reliability

If extended cooling time is required, then cooling effectiveness may be improved, but the conveyer length and apparatus size inevitably increase

Engineering Contradiction:
Improvecooling effectivenessVSAvoidconveyer length
Core Design Contradiction:
ReliabilityVSLength of stationary object

Solution Approach 1:

The hydraulic cooling system provides high-intensity cooling that achieves effective temperature reduction in a short time and compact space. Water circulation through supply pipes and nozzles along the conveyer passage enables rapid heat removal without extending conveyer length or apparatus size.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

By changing from air cooling to water-based cooling, the patent achieves much higher cooling rates that reduce the required cooling time and conveyer length. The high heat transfer coefficient of water enables effective cooling in a compact apparatus configuration.

Inventive Principle:
Principle #35Parameter changes

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 apparatus significantly reduces cooling time, prevents damage from contact, and maintains the quality of preformed articles by using water immersion and gas drying, resulting in efficient and effective cooling with a compact design.

Implementation Method 1

cooling means for cooling the preformed articles by the cooling water in the cooling zone

Methodology Applied
Scientific EffectEvaporative cooling: Evaporative Cooler

Implementation Method 2

a spray of water is blown onto the preformed articles from the cooling nozzles

Methodology Applied
Scientific EffectConduction cooling: Conduction (thermal)

Implementation Method 3

gas ejection means for removing the cooling water adhering on or staying in the preformed articles

Methodology Applied
Scientific EffectEvaporation: Evaporation

Data Source

PatentUS7887319B2Apparatus for cooling preformed articles and method of cooling preformed articles
Publication Date: 2011.02.15 TOYO SEIKAN KAISHA LTD
  • US7887319B2 patent drawing
  • US7887319B2 patent drawing
  • US7887319B2 patent drawing

AI summary

An apparatus for cooling preformed articles, which is capable of very effectively cooling the preformed articles and is, further, capable of sufficiently suppressing or preventing the preformed articles from being locally damaged as a result of coming in contact with each other as they are conveyed neighboring one another in a state of not yet fully cooled. A spray is blown onto the preformed articles 34 conveyed passing through a predetermined conveyer passage 42, a cooling liquid is blown next thereto, and a gas stream is further blown thereto.