Flexible Helical Strake Jacket for Vortex Shedding Mitigation

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Solution Overview

Problem

Cylindrical structures exposed to flowing fluids experience vortex shedding, leading to vibrations that can damage or destroy them due to resonance with the fluid flow's energy, as existing mitigation methods like continuous helical fins may incur mechanical stresses during installation and removal.

Innovation Solution

A flexible, woven non-metallic jacket with a series of discrete fins forming a helical strake is wrapped around the cylindrical structure, using a hook-and-loop fastener for easy attachment, which induces turbulence to reduce vibrations without causing significant mechanical stress.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Reliability

If a continuous helical metallic fin is welded to the exterior of a cylindrical structure, then vortex shedding effects are reduced, but mechanical stress and potential damage occur during installation and removal

Engineering Contradiction:
Improvevortex shedding mitigationVSAvoidstructural integrity
Core Design Contradiction:
ReliabilityVSStrength

Solution Approach 1:

The continuous helical fin is segmented into discrete fin rows spaced along the length of the cylindrical structure. Each fin row consists of individual fins that are not continuously connected, allowing the assembly to be flexible and removable without causing mechanical stress to the underlying structure during installation and removal

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

The fin rows are mounted on a flexible jacket that can be wrapped around the cylindrical structure. This flexible mounting system allows the mitigation assembly to be easily installed and removed without welding or mechanical fastening that would stress the cylindrical structure, while still maintaining effectiveness in disrupting vortex shedding

Inventive Principle:
Principle #30Flexible shells and thin films

2Ease of operation

If a flexible non-metallic jacket with discrete fins is used, then ease of installation and removal is improved, but structural strength may be reduced compared to metallic fins

Engineering Contradiction:
Improveinstallation easeVSAvoidfin structural strength
Core Design Contradiction:
Ease of operationVSStrength

Solution Approach 1:

The mitigation assembly uses composite construction with a flexible non-metallic jacket material combined with fin structures that provide the necessary aerodynamic function. This composite approach allows the assembly to be flexible and easy to install while maintaining sufficient structural strength through the fin geometry and arrangement to effectively disrupt vortex shedding

Inventive Principle:
Principle #40Composite materials

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 effectively mitigates vortex-induced vibrations by inducing turbulence in the fluid flow, reducing resonance and mechanical stress on the mitigation assembly, while being easy to install, remove, and transport without causing damage.

Implementation Method 1

The helical strake is operable to induce turbulence in a fluid flowing past the cylindrical structure

Methodology Applied
Scientific EffectTurbulence: Turbulence

Implementation Method 2

Vortex shedding is an oscillating flow that takes place when a fluid such as air or water flows past the cylindrical structure at certain velocities

Methodology Applied
Scientific EffectVortex shedding: Kármán Vortex Street

Data Source

PatentUS12038104B2Non-metallic, flexible assembly for mitigation of vortex shedding in cylindrical structures
Publication Date: 2024.07.16 SAUDI ARABIAN OIL CO
  • US12038104B2 patent drawing
  • US12038104B2 patent drawing
  • US12038104B2 patent drawing

AI summary

A vortex-shedding mitigation assembly includes a jacket sufficiently flexible to lay substantially flat under its own weight and that is comprised of a woven, non-metallic material. The assembly further includes a fin row comprising a plurality of discrete fins protruding from the jacket and arrayed in series diagonally across the jacket such that, when the jacket is wrapped around a cylindrical structure, the fin row forms a helical strake having an axis substantially parallel to an axis of the cylindrical structure. The helical strake is operable to induce turbulence in a fluid flowing past the cylindrical structure, thereby reducing vibration of the cylindrical structure induced by vortex shedding from the fluid flow.