Iv flow management systems and methods

US2020282140A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2020282140-A1
Application numberUS-202016854648-A
CountryUS
Kind codeA1
Filing dateApr 21, 2020
Priority dateApr 1, 2015
Publication dateSep 10, 2020
Grant date

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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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  7. Citations and related patents

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Abstract

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An intravenous delivery system may operate by gravity feed, and may have a liquid source containing a liquid, a drip unit that receives the liquid from the liquid source, and tubing that receives the liquid from the drip unit for delivery to a patient. A flow rate sensor may be used to measure a flow rate of liquid through the intravenous delivery system, and may generate a flow rate signal indicative of the flow rate. A controller may receive the signal, and may compare the flow rate with a desired flow rate. If the flow rate is more or less than the desired flow rate, the controller may transmit a control signal to a flow rate regulator. The flow rate regulator may receive the control signal and, in response, modify the flow rate to bring the flow rate closer to the desired flow rate.

First claim

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We claim: 1 . A system for controlling flow of a liquid to a patient through use of an intravenous delivery system, the system comprising: a flow rate sensor that: measures a flow rate of the liquid through the intravenous delivery system; and generates a flow rate signal indicative of the flow rate; a controller that: receives the flow rate signal; compares the flow rate with a desired flow rate to determine that the flow rate is different from the desired flow rate; and in response to determining that the flow rate is different from the desired flow rate, transmits a control signal; and a flow rate regulator, comprising: a fixture comprising a slot configured to be oriented nonparallel and nonperpendicular to tubing of the system that conveys the liquid; a pinching member positioned in the slot; and a motor that urges the pinching member to move along the slot such that the pinching member exerts a varying degree of compression on the tubing to modify the flow rate, wherein in response to receipt of the control signal, the pinching member exerts a compression on the tubing to modify the flow rate. 2 . The system of claim 1 , wherein the flow rate sensor, the controller, and the flow rate regulator all operate iteratively throughout a plurality of time increments such that, in each of the plurality of time increments, the flow rate sensor measures the flow rate and generates the flow rate signal, and the controller receives the flow rate signal and compares the flow rate with the desired flow rate; wherein the controller determines that the flow rate is different from the desired flow rate by determining that the flow rate is greater than the desired flow rate; wherein, in response to receipt of the control signal, the flow rate regulator: modifies the flow rate by moving from an open state that permits the liquid to flow through the intravenous delivery system, to a closed state that substantially prevents the liquid from flowing through the intravenous delivery system; and remains in the closed state for a predetermined number of the time increments. 3 . The system of claim 1 , wherein the flow rate sensor, the controller, and the flow rate regulator all operate iteratively throughout a plurality of time increments such that, in each of the plurality of time increments, the flow rate sensor measures the flow rate and generates the flow rate signal, and the controller receives the flow rate signal and compares the flow rate with the desired flow rate; wherein the controller determines that the flow rate is different from the desired flow rate by determining that the flow rate is less than the desired flow rate; wherein, in response to receipt of the control signal, the flow rate regulator: modifies the flow rate by moving from a closed state that substantially prevents the liquid from flowing through the intravenous delivery system, to an open state in that permits the liquid to flow through the intravenous delivery system; and remains in the open state for a predetermined number of the time increments. 4 . The system of claim 1 , wherein the controller determines that the flow rate is different from the desired flow rate by determining that the flow rate is greater than the desired flow rate by a differential flow rate; wherein, in response to receipt of the control signal, the flow rate regulator moves, in proportion to the differential flow rate, to a less open state that permits the liquid to flow through the intravenous delivery system at a modified flow rate smaller than the flow rate. 5 . The system of claim 1 , wherein the controller determines that the flow rate is different from the desired flow rate by determining that the flow rate is less than the desired flow rate by a differential flow rate; wherein, in response to receipt of the control signal, the flow rate regulator moves, in proportion to the differential flow rate, to a more open state that permits the liquid to flow through the intravenous delivery system at a modified flow rate greater than the flow rate. 6 . The system of claim 1 , wherein the controller is incorporated into a computing device comprising a display screen and a user input device, wherein the controller further: receives the desired flow rate from a user via the user input device; and initiates display of the flow rate on the display screen. 7 . The system of claim 1 , wherein the flow rate sensor is secured to a drip unit of the intravenous delivery system, wherein the drip unit comprises a drip chamber and an orifice that delivers drops of the liquid from a liquid source to the drip chamber via gravity feed, wherein the flow rate sensor measures the flow rate by counting drops received by the drip chamber within a predetermined time period. 8 . The system of claim 7 , further comprising the drip unit; wherein the drip unit comprises a key feature indicative of an orifice size of the orifice; wherein the flow rate sensor comprises a key feature receiver that receives the key feature in response to securement of the flow rate sensor to the drip unit; wherein the flow rate sensor uses the orifice size to determine a volume of the liquid in each of the drops to facilitate measurement of the flow rate. 9 . The system of claim 1 , wherein the flow rate sensor measures the flow rate of the liquid through the system by: measuring a first weight of a subset of the intravenous delivery system at a first time; and measuring a second weight of the subset at a second time separated from the first time by a time increment; wherein at least one of the flow rate sensor and the controller: subtracts the second weight from the first weight to obtain a differential weight; and obtains the flow rate based on the differential weight and the time increment. 10 . The system of claim 1 , wherein the flow rate sensor measures the flow rate of the liquid through the system by: measuring a first volume of the liquid in a subset of the intravenous delivery system at a first time; and measuring a second volume of the liquid in the subset at a second time separated from the first time by a time increment; wherein at least one of the flow rate sensor and the controller: subtracts the second volume from the first volume to obtain a differential volume; and obtains the flow rate based on the differential volume and the time increment. 11 . The system of claim 10 , wherein the flow rate sensor measures the flow rate of the liquid through the system by: measuring a first temperature of the liquid at a first location within the intravenous delivery system; and measuring a second temperature of the liquid at a second location, downstream of the first location, within the intravenous delivery system; wherein at least one of the flow rate sensor and the controller: subtracts the second temperature from the first temperature to obtain a differential temperature; and obtains the flow rate based on the differential temperature. 12 . The system of claim 1 , wherein the intravenous delivery system comprises tubing that conveys the liquid, wherein the flow rate regulator comprises: an opposing member positioned adjacent to the tubing; a cam member positioned on an opposite side of the tubing from the opposing member; and a motor that rotates the cam member about an axis; wherein the cam member comprises a variable radius curved rim that, in response to rotation of the cam member about the axis, cooperates with the opposing member to exert a varying degree of compression on the tubing to modify the flow rate. 13 . The system of claim 1 , further compr

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What does patent US2020282140A1 cover?
An intravenous delivery system may operate by gravity feed, and may have a liquid source containing a liquid, a drip unit that receives the liquid from the liquid source, and tubing that receives the liquid from the drip unit for delivery to a patient. A flow rate sensor may be used to measure a flow rate of liquid through the intravenous delivery system, and may generate a flow rate signal ind…
Who is the assignee on this patent?
Becton Dickinson Co
What technology area does this patent fall under?
Primary CPC classification A61M5/16813. Mapped technology areas include Human Necessities.
When was this patent published?
Publication date Thu Sep 10 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).