FULL BORE MAGNETIC FLOWMETER ASSEMBLY WITH TEMPERATURE SENSING ELEMENT
20200256714 ยท 2020-08-13
Assignee
Inventors
- Calin Ciobanu (Brea, CA, US)
- Jeffrey Lomibao (La Puente, CA, US)
- Jerry Ford (Placentia, CA, US)
- Kevin Franks (Montclair, CA, US)
Cpc classification
G01K2217/00
PHYSICS
G01F1/588
PHYSICS
G01K13/02
PHYSICS
International classification
G01K13/02
PHYSICS
Abstract
A magnetic flowmeter assembly is provided having electrodes disposed about a tubular body, wherein at least one of the electrodes includes a temperature sensing element inserted therein. The magnetic flowmeter assembly is configured to measure the flow rate of fluid flowing through the tubular body. The temperature sensing element can be inserted within an electrode such that it is well heatsinked to the electrode surface in contact with the fluid flow, thus placing the temperature sensing element in effective thermal contact with the fluid. As such, the magnetic flowmeter assembly enables simultaneous measurement of the fluid flow rate and fluid temperature.
Claims
1. A full bore magnetic flowmeter assembly, comprising: a tubular body having opposing open ends and defining a fluid flow path therebetween along a longitudinal axis (Ax), the tubular body attaches inline within a fluid flow system; a pair of coil assemblies coupled to the tubular body configured to generate a magnetic field within the fluid flow path of the tubular body; a plurality electrodes attached to the tubular body to be in electrical communication with a fluid within the flow path, a first electrode of the plurality of electrodes comprising an electrode body defining a hollow interior; and a temperature sensing element inserted within the hollow interior of the first electrode, the temperature sensing element having a tip embedded within the electrode body proximate to a contact end of the first electrode body, the contact end positioned to contact with the fluid within the flow path, enabling the temperature sensing element to measure the temperature of the fluid.
2. The magnetic flowmeter assembly as defined in claim 1, the electrode body further comprising a heat conductive filler coupled to the contact end, such that the heat conductive filler secures the temperature sensing element and minimizes any applied stress thereto.
3. The magnetic flowmeter assembly as defined in claim 1, wherein the temperature sensing element is electrically coupled to an electronics assembly for determining and displaying the fluid temperature.
4. The magnetic flowmeter assembly as defined in claim 1, wherein the first electrode is a measuring electrode configured to provide input for determining the flow rate of the fluid within the flow path.
5. The magnetic flowmeter assembly as defined in claim 1, wherein the first electrode is an auxiliary electrode configured with the temperature sensing element to determine whether the tubular body is fully empty.
6. The magnetic flowmeter assembly as defined in claim 1, wherein the tubular body is formed of thermoplastic material.
7. The magnetic flowmeter assembly as defined in claim 1, wherein the tubular body is formed of thermoplastic material selected from a group consisting of CPVC, PVC, and PVDF.
8. The magnetic flowmeter assembly as defined in claim 1, further comprising a brace that circumscribes the tubular body and that is operatively coupled to the pair of coil assemblies, serving as magnetic circuitry for the magnetic field generated.
9. The magnetic flowmeter assembly as defined in claim 8, wherein the brace comprises two c-shaped components that slidably mate with each other about the pipe, to couple to each other.
10. The magnetic flowmeter assembly as defined in claim 8, wherein the pair of coil assemblies are attached to the brace along the axis (Az) via attachment assemblies.
11. The magnetic flowmeter assembly as defined in claim 8, further comprising a protective housing disposed about the brace.
12. The magnetic flowmeter assembly as defined in claim 11, further comprising an electronics assembly coupled to the protective housing and in electrical communication with the plurality of electrodes and temperature sensing element, the electronics assembly configured to determine and output the measured flow rate and temperature simultaneously.
13. The magnetic flowmeter assembly as defined in claim 12, wherein the electronics assembly is configured to be detachably coupled to any location about the protective housing, so as to provide flexibility in conforming to the spatial requirements of the tubular body.
14. The magnetic flowmeter assembly as defined in claim 1, wherein the tip of the temperature sensing element is spaced apart from the fluid within the flow path.
15. The magnetic flowmeter assembly as defined in claim 14, wherein the tip of the temperature sensing element is held in place in relative to the contact end by a heat conductive filler.
16. The magnetic flowmeter assembly as defined in claim 15, wherein the heat conductive filler is a thermally conductive 2-part epoxy.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Embodiments of the present invention will now be described, by way of example only, with reference to the following drawings in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
INCORPORATION BY REFERENCE
[0023] In certain embodiments of the present invention, the magnetic flowmeter assembly can be configured as described and claimed in Applicant's co-pending patent applications: 1) entitled FULL BORE MAGNETIC FLOWMETER ASSEMBLY, U.S. application Ser. No. 16/146,090, filed Sep. 28, 2018, 2) entitled MAGNETIC FLOWMETER ASSEMBLY HAVING INDEPENDENT COIL DRIVE AND CONTROL SYSTEM, U.S. application Ser. No. 16/243,868, filed Jan. 9, 2019, 3) entitled MAGNETIC FLOWMETER WITH MEDIA CONDUCTIVITY MEASUREMENT, U.S. application Ser. No. 16/243,980, filed Jan. 9, 2019, and 4) entitled MAGNETIC FLOWMETER ASSEMBLY WITH ZERO-FLOW MEASUREMENT CAPABILITY, U.S. application Ser. No. 16/244,060, filed Jan. 9, 2019, which are hereby incorporated by reference for all purposes.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] Referring now to the drawings, and particularly
[0025] With continued reference to
[0026] Referring now to
[0027] With reference now to
[0028] The magnetic flowmeter assembly 10 further includes a plurality of auxiliary electrodes 70 (c-e), including a first auxiliary electrode 70(c) and a second auxiliary electrode 70(d) that are disposed upstream of the pair of measuring electrodes 70 (a, b). The first and the second auxiliary electrodes are aligned with the axis (Az), on opposing sides of the pipe, such that axis (Ay) and axis (Az) are coplanar. The first and second auxiliary electrodes (70 c, d) can be used to determine the pipe as being full, empty, or partially full. A temperature sensing element disposed within the first and/or second auxiliary electrode 70 (c, d) can provide additional information that enable distinguishing between a partially or fully empty pipe. For example, a sudden change in the temperature measured, corroborated with the empty pipe detection, can improve the validity that a partially empty pipe has become totally empty. A third auxiliary electrode 70(e) can also be disposed downstream of the pair of measuring electrodes 70 (a, b). The measuring electrodes and the auxiliary electrodes are each mounted to a corresponding aperture 20 (a-e) formed in the wall of the pipe 12.
[0029] The tubular body, i.e. pipe 12, is formed of thermoplastic material, e.g., such as chlorinated polyvinyl chloride (CPVC), polyvinyl chloride (PVC), or polyvinylidene fluoride (PVDF). Preferably, the pipe is formed of the same pipe used in other portions of the fluid flow system (not shown), to include the type of pipe material (e.g., CPVC, PVC or PVDF) and size (e.g., pipe diameter). End connectors (
[0030] With reference now to
[0031] With reference now to
[0032] The brace 22 further serves as magnetic circuitry for the magnetic field generated by the coils 14. The brace has a generally octagonal shape, which benefits assembly and operation of the assembly 10. More particularly, the brace 22 is formed of two, generally c-shaped components 28 that slidably mate with each other about the pipe, to couple to each other. In this manner, the brace 22 can be used on pipes having different diameters. Attachments (e.g., bolts) couple the coils to the brace along the axis (Az).
[0033] The assembly 10 is configured to generate a strong alternating magnetic field (flux) B that is distributed evenly over the pipe cross-section. Utilizing an alternating magnetic field avoids electrode material migration. Configuration of the brace 22, e.g., including shape and materials, facilitates the resulting magnetic field (flux) B within the pipe 12. In the exemplary embodiment, the brace 22 is formed of soft magnetic materials, which refers to relative permeability, meaning it has no remnant magnetization when shut down.
[0034] With reference now to
[0035] With reference now to
[0036] In a method of manufacture, a pipe 12 is selected having the same parameters of other portions of the fluid flow system. The pipe is cut to a prescribed length (L) to accommodate the desired location of the sensor assembly 10 within the fluid flow system. Then, apertures 20 (a-e) are drilled in the pipe at the desired locations of the electrodes. The electrodes 70 (a-e) are then mounted in place.
[0037] It should be appreciated from the foregoing that the invention provides a magnetic flowmeter assembly having electrodes disposed about a tubular body, wherein at least one of the electrodes includes a temperature sensing element inserted therein. The magnetic flowmeter assembly is configured to measure the flow rate of fluid flowing through the tubular body using electrodes and a pair of coil assemblies that are configured to generate a magnetic field. The temperature sensing element can be located sufficiently close to a contact end of an electrode so as to be well heatsinked to said contact end without actual contact with the fluid flow. As such, the magnetic flowmeter assembly enables simultaneous measurement of the fluid flow rate and fluid temperature.
[0038] The present invention has been described above in terms of presently preferred embodiments so that an understanding of the present invention can be conveyed. However, there are other embodiments not specifically described herein for which the present invention is applicable. Therefore, the present invention should not to be seen as limited to the forms shown, which is to be considered illustrative rather than restrictive.