Automated re-melt control systems

US10634284B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10634284-B2
Application numberUS-201715701383-A
CountryUS
Kind codeB2
Filing dateSep 11, 2017
Priority dateSep 9, 2016
Publication dateApr 28, 2020
Grant dateApr 28, 2020

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A system may automatically control a pipeline heating system to maintain a desired temperature and/or to provide flow assurance of process fluid along a pipeline. The system may identify the occurrence and location of the solidification of a given process fluid or the melting of the given process fluid by monitoring temperatures along the pipeline and identifying from the monitored temperatures the occurrence and location of a latent heat signature associated with the solidification or melting of the given process fluid. The system may determine a distribution of solidified process fluid along the pipeline. The system may determine the percentage of a given section of pipeline that is filled with solid and/or liquid process fluid on a meter-by-meter basis. The system may perform automated re-melt operations to resolve plugs of solidified process fluid that may occur in the pipeline.

First claim

Opening claim text (preview).

What is claimed is: 1. A control system for a pipeline that transports a process fluid, the control system comprising: a heating system that applies thermal energy to the pipeline to increase a temperature of the process fluid; a sensor network configured to record pipeline data for the pipeline, the sensor network comprising a fluid temperature sensor positioned to detect the temperature of the process fluid at one or more locations in the pipeline; and a controller in electronic communication with the sensor network, the controller comprising a processor and memory storing specific computer-executable instructions that, when executed by the processor, cause the controller to: receive the pipeline data; identify, in the pipeline data generated by the fluid temperature sensor, a latent heat signature of the process fluid, the latent heat signature indicating a solidification of the process fluid in the pipeline, wherein to identify the latent heat signature, the controller extracts temperature data for a time period from the sensor network and compares the extracted temperature data to latent heat signature data that is stored in the memory and that represents the latent heat signature; and automatically initiate a process that causes the heating system to apply additional thermal energy to the pipeline to melt the process fluid that has solidified. 2. The control system of claim 1 , wherein the sensor network comprises a fiber optic based distributed temperature sensing (DTS) system. 3. The control system of claim 2 , wherein the controller is further configured to determine a location of solidified process fluid in the pipeline based on the pipeline data. 4. The control system of claim 3 , wherein the heating system comprises a plurality of heating zones distributed along the pipeline, wherein each heating zone of the plurality of heating zones is maintained at a respective stagnant line set point temperature by the heating system, and wherein execution by the processor of the instructions further causes the controller to: determine from the pipeline data that the latent heat signature was generated by the process fluid at a first location in the pipeline; determine that the first location is within a first heating zone of the plurality of heating zones; and automatically initiate the process to cause the heating system to heat a portion of the pipeline in the first heating zone while the heating system continues to cycle a second heating zone of the plurality of heating zones at the respective stagnant line set point temperature for the second heating zone. 5. The control system of claim 2 , wherein execution by the processor of the instructions further causes the controller to determine from the pipeline data that the solidification of the process fluid caused a plug of the pipeline. 6. The control system of claim 5 , wherein to determine that the solidification of the process fluid caused a plug, the controller: determines, based on the pipeline data, that the solidified process fluid is present along a section of the pipeline having a length that is greater than a predetermined length; determines a distribution of the solidified process fluid along the section of the pipeline; generates distribution data based on the determined distribution of the solidified process fluid; controls the heating system to uniformly heat the section of the pipeline to a pre-melt temperature that is a predetermined number of degrees below a melting point of the solidified process fluid; and causes the heating system to initiate a re-melt process in which the heating system increases the temperature of the section of the pipeline to at least the melting point of the solidified process fluid. 7. The control system of claim 6 , wherein execution by the processor of the instructions further causes the controller to: receive, from the sensor network, pipeline re-melt data during the re-melt process; identify in the pipeline re-melt data, a second latent heat signature of the process fluid, the second latent heat signature indicating that the solidified process fluid in the section of the pipeline is undergoing a spatially non-uniform phase change, the second latent heat signature corresponding to a drop in heating rate that occurs when the solidified process fluid changes phases from solid to liquid; and cause the heating system to stop the re-melt process and to return the temperature of the section of the pipeline to below the melting point of the solidified process fluid. 8. The control system of claim 6 , wherein to determine the distribution of the solidified process fluid along the section of the pipeline, the controller: determines a rate of change over time of the temperature of the process fluid at a first location within the section of the pipeline; and determines, at the location, a percentage of the pipeline that is filled with solidified process fluid based on the determined rate of change over time of the temperature at the location. 9. A method for thermal management of a pipeline, comprising: recording, with a sensor network at the pipeline, pipeline data for the pipeline; receiving, by a controller, pipeline data recorded by a sensor network configured to monitor one or more characteristics of the pipeline, the one or more characteristics including a temperature of a process fluid in the pipeline; identifying, by the controller, that the pipeline data includes a latent heat signature associated with a phase change of the process fluid by: extracting temperature data for a time period from the sensor network; and comparing the extracted temperature data to latent heat signature data that is stored in the memory and that represents the latent heat signature; and automatically initiating, by the controller, a process to resolve a plug of the pipeline using a heating system. 10. The method of claim 9 , further comprising determining, by the controller, a location of the plug in the pipeline based on the pipeline data. 11. The method of claim 10 , wherein automatically initiating the process to resolve the plug using the heating system comprises: instructing the heating system to apply power to heaters in a first heating zone of the pipeline corresponding to the location of the plug; and instructing the heating system to maintain a second heating zone of the pipeline at a stagnant line set point temperature. 12. The method of claim 9 , wherein automatically initiating the process to resolve the plug using the heating system comprises: determining that the plug is present along a section of the pipeline having a length that is greater than a predetermined length based on the pipeline data; determining a distribution of the solidified process fluid along the section of the pipeline; generating distribution data based on the determined distribution of the solidified process fluid; instructing the heating system to uniformly heat the section of the pipeline to a pre-melt temperature that is a predetermined number of degrees below a melting point of the solidified process fluid; and instructing the heating system to initiate a re-melt process in which the heating system increases the temperature of the section of the pipeline to at least the melting point of the solidified process fluid. 13. The method of claim 12 , wherein automatically initiating the process to resolve the plug using the heating system further comprises: determining, during the re-melt process, that the solidified process fluid in the section of the pipeline is undergoing a spatially non-uniform phase change based on at least one additional latent heat signa

Assignees

Inventors

Classifications

  • of gas pipelines, e.g. alarm · CPC title

  • F17D3/01Primary

    for controlling, signalling, or supervising the conveyance of a product · CPC title

  • for hot fluids (F17D1/086 takes precedence) · CPC title

  • Protection or supervision of installations (arrangements for protecting foundations E02D31/00; protecting pipes from damage or internal or external wear F16L57/00, against corrosion and scale F16L58/00; investigation of the fluid-tightness of structures G01M3/00) · CPC title

  • F17D1/08Primary

    for liquids or viscous products (water-main or service pipe systems E03B7/04; domestic hot-water supply systems F24D17/00) · CPC title

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What does patent US10634284B2 cover?
A system may automatically control a pipeline heating system to maintain a desired temperature and/or to provide flow assurance of process fluid along a pipeline. The system may identify the occurrence and location of the solidification of a given process fluid or the melting of the given process fluid by monitoring temperatures along the pipeline and identifying from the monitored temperatures…
Who is the assignee on this patent?
Nvent Services Gmbh
What technology area does this patent fall under?
Primary CPC classification F17D3/01. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Apr 28 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).