Patent · US11348674B2 · B2 · US
Peristaltic pump
- (11) Publication number
- US11348674B2
- (21) Application number
- 16/389,042
- (22) Filing date
- 2019-04-19
- (30) Priority date
- 2011-12-21
- (43) Publication date
- 2022-05-31
- (45) Date of grant
- 2022-05-31
- (51) IPC
- A61M 5/142; A61M 5/168; F04B 43/08; F04B 43/12; G01F 1/66; G06Q 50/22; G16H 20/17; G16H 40/63; G16H 50/00; F04B 43/09; F04B 49/00; F04B 49/06; G16H 40/67
- (52) CPC
- G16H Healthcare informatics, i.e. information and communication technology [ICT] specially adapted for the handling or processing of medical or healthcare data: 20/17, 10/65, 30/00, 40/63, 40/67, 50/00
- A61B Diagnosis; surgery; identification: 17/00234
- A61M Devices for introducing media into, or onto, the body; devices for transducing body media or for taking media from the body; devices for producing or ending sleep or stupor {}: 2005/16863, 2205/6009, 2205/6054, 25/00, 5/14228, 5/16831, 5/16877, 5/16886, 5/1689
- F04B Positive-displacement machines for liquids; pumps: 2201/0201, 2205/09, 43/08, 43/082, 43/09, 43/12, 43/1223, 43/1261, 49/00, 49/065
- G01F Measuring volume, volume flow, mass flow or liquid level; metering by volume: 1/00, 1/666
- G06Q Information and communication technology [ICT] specially adapted for administrative, commercial, financial, managerial or supervisory purposes; systems or methods specially adapted for administrative, commercial, financial, managerial or supervisory purposes, not otherwise provided for: 50/22
- G06T Image data processing or generation, in general: 2207/20104
- G16Z Information and communication technology [ICT] specially adapted for specific application fields, not otherwise provided for: 99/00
- (73) Assignee
- Deka Products LP
- (72) Inventors
- Dean Kamen; John M. Kerwin; Colin H. Murphy; Christopher C. Langenfeld; Michael J. Slate; Michael S. Place; Larry B. Gray
- (54) Title
- Peristaltic pump
- (57) Abstract
A peristaltic pump and related-method are disclosed that includes a cam shaft having a plunger cam, a plunger-cam follower that engages the plunger cam of the cam shaft, a tube receiver, a spring, a plunger, a position sensor, and a processor. The tube receiver receives a tube. The spring provides a bias. The plunger is biased toward the tube by the spring and the plunger is to the plunger-cam follower, such that expansion of the plunger cam along a radial angle intersecting the plunger-cam follower as the cam shaft rotates actuates the plunger away from the tube. The position sensor determines a position of the plunger and the processor estimates fluid flow within the tube utilizing the position of the plunger.
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Claims (20)
- A peristaltic pump, comprising: a cam shaft including a plunger cam; a plunger-cam follower configured to engage the plunger cam of the cam shaft; a tube receiver configured to receive a tube; a spring configured to provide a bias; a plunger biased toward the tube receiver by the spring, the plunger coupled to the plunger-cam follower, wherein expansion of the plunger cam along a radial angle intersecting the plunger-cam follower as the cam shaft rotates actuates the plunger away from the tube receiver; a position sensor configured to determine a position of the plunger; and a processor coupled to the position sensor, wherein the processor is configured to estimate fluid flow within the tube utilizing the position of the plunger.
- The peristaltic pump according to claim 1, further comprising an angle sensor operatively coupled to the cam shaft configured to determine an angle of rotation of the cam shaft.
- The peristaltic pump according to claim 1, wherein the processor compares a first static region of the position sensor to a second static region of the position sensor to estimate the fluid flow.
- The peristaltic pump according to claim 3, wherein the processor determines the first static region by identifying the first static region within a predetermined range of angles as indicated by an angle sensor.
- The peristaltic pump according to claim 4, wherein the processor determines the second static region by identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.
- The peristaltic pump according to claim 4, wherein the processor determines the first static region and the second static region by measuring the position of the plunger as determined by the position sensor at predetermined angles as indicated by the angle sensor.
- The peristaltic pump according to claim 1, wherein the processor compares a first static region measured by the position sensor to a second static region measured by the position sensor to estimate the fluid flow.
- The peristaltic pump according to claim 6, wherein the processor determines the first static region by identifying a peak movement of the plunger as measured by the position sensor and identifies the second static region to be after the identified peak movement.
- The peristaltic pump according to claim 6, wherein the processor determines the second static region by identifying an end of the first static region.
- The peristaltic pump according to claim 1, further comprising an electric motor operatively coupled to the cam shaft to apply a rotational torque to the cam shaft.
- A peristaltic pump, comprising: a motor; a cam shaft operatively coupled to the motor such that rotation of the motor rotates the cam shaft; a plunger cam coupled to the cam shaft for rotation therewith; a pivot shaft; a plunger pivotally coupled to the pivot shaft, the plunger having a cam follower configured to engage the plunger cam of the cam shaft, wherein the plunger is configured to pivot to a first position to compress a tube and to a second position away from the tube; a bias member configured to bias the plunger to the first position to compress the tube; a position sensor configured to measure a position of the plunger; and a processor configured to estimate a volume of fluid discharged from the tube when the bias member causes the plunger to move towards the first position, wherein: the plunger and the plunger cam are configured to compress the tube using only a force of the bias member, the plunger cam is configured to only retract the plunger to the second position, and the plunger is configured to engage the plunger cam such that the plunger cam does not force the plunger against the tube.
- A method of pumping fluid, the method comprising: engaging a plunger-cam follower with a plunger cam; biasing a plunger toward a tube, the plunger coupled to the plunger-cam follower; expanding the plunger cam along a radial angle intersecting the plunger-cam follower caused by rotation of the plunger cam thereby actuating the plunger away from the tube; determining a position of the plunger; and estimating fluid flow within the tube using the determined position of the plunger.
- The method according to claim 12, further comprising determining an angle of rotation of a cam shaft.
- The method according to claim 12, further comprising: comparing a first static region of the plunger position to a second static region of the plunger position; and estimating the fluid flow in accordance with the first static region and the second static region.
- The method according to claim 14, wherein the act of determining the first static region includes identifying the first static region within a predetermined range of angles as indicated by an angle sensor.
- The method according to claim 15, wherein the act of determining the second static region includes identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.
- The method according to claim 12, the method further comprising: comparing a first static region to a second static region; and estimating the fluid flow in accordance with the comparison.
- The method according to claim 17, further comprising: determining the first static region by identifying a peak movement of the plunger; and determining the second static region to be after the identified peak movement.
- The method according to claim 17, further comprising determining the second static region by identifying an end of the first static region.
- A method for pumping fluid, the method comprising: engaging a cam follower of a plunger with a plunger cam; pivoting the plunger to a first position to compress a tube; disengaging the cam follower from the plunger cam; biasing the plunger toward the first position to compress the tube; compressing the tube using only a force of the biasing when in the first position; reengaging the cam follower with the plunger cam; pivoting the plunger to a second position away from the tube by using the plunger cam to retract the plunger to the second position; measuring a position of the plunger; and estimating a volume of fluid discharged from the tube using the position of the plunger when the cam follower is disengaged from the plunger cam.
Description
The present disclosure relates to infusing fluid. More particularly, the present disclosure relates to a system, method and apparatus for infusing fluid into a patient, e.g., using a pump.
Providing patient care in a hospital generally necessitates the interaction of numerous professionals and caregivers (e.g., doctors, nurses, pharmacists, technicians, nurse practitioners, etc.) and any number of medical devices/systems needed for treatment of a given patient. Despite the existence of systems intended to facilitate the care process, such as those incorporating electronic medical records (“EMR”) and computerized provider order entry (“CPOE”), the process of providing comprehensive care to patients including ordering and delivering medical treatments, such as medications, is associated with a number of non-trivial issues.
Peristaltic pumps are used in a variety of applications such as medical applications, especially fluid transfer applications that would benefit from isolation of fluid from the system and other fluids. Some peristaltic pumps work by compressing or squeezing a length of flexible tubing. A mechanical mechanism pinches a portion of the tubing and pushes any fluid trapped in the tubing in the direction of rotation. There are rotary peristaltic pumps and finger peristaltic pumps.
Rotary peristaltic pumps typically move liquids through flexible tubing placed in an arc-shaped raceway. Rotary peristaltic pumps are generally made of two to four rollers placed on a roller carrier driven rotationally by a motor.
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Record as JSON
{
"publication_number": "US11348674B2",
"country": "US",
"kind": "B2",
"title": "Peristaltic pump",
"abstract": "A peristaltic pump and related-method are disclosed that includes a cam shaft having a plunger cam, a plunger-cam follower that engages the plunger cam of the cam shaft, a tube receiver, a spring, a plunger, a position sensor, and a processor. The tube receiver receives a tube. The spring provides a bias. The plunger is biased toward the tube by the spring and the plunger is to the plunger-cam follower, such that expansion of the plunger cam along a radial angle intersecting the plunger-cam follower as the cam shaft rotates actuates the plunger away from the tube. The position sensor determines a position of the plunger and the processor estimates fluid flow within the tube utilizing the position of the plunger.",
"claims": [
"1. A peristaltic pump, comprising: a cam shaft including a plunger cam; a plunger-cam follower configured to engage the plunger cam of the cam shaft; a tube receiver configured to receive a tube; a spring configured to provide a bias; a plunger biased toward the tube receiver by the spring, the plunger coupled to the plunger-cam follower, wherein expansion of the plunger cam along a radial angle intersecting the plunger-cam follower as the cam shaft rotates actuates the plunger away from the tube receiver; a position sensor configured to determine a position of the plunger; and a processor coupled to the position sensor, wherein the processor is configured to estimate fluid flow within the tube utilizing the position of the plunger.",
"2. The peristaltic pump according to claim 1, further comprising an angle sensor operatively coupled to the cam shaft configured to determine an angle of rotation of the cam shaft.",
"3. The peristaltic pump according to claim 1, wherein the processor compares a first static region of the position sensor to a second static region of the position sensor to estimate the fluid flow.",
"4. The peristaltic pump according to claim 3, wherein the processor determines the first static region by identifying the first static region within a predetermined range of angles as indicated by an angle sensor.",
"5. The peristaltic pump according to claim 4, wherein the processor determines the second static region by identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.",
"6. The peristaltic pump according to claim 4, wherein the processor determines the first static region and the second static region by measuring the position of the plunger as determined by the position sensor at predetermined angles as indicated by the angle sensor.",
"7. The peristaltic pump according to claim 1, wherein the processor compares a first static region measured by the position sensor to a second static region measured by the position sensor to estimate the fluid flow.",
"8. The peristaltic pump according to claim 6, wherein the processor determines the first static region by identifying a peak movement of the plunger as measured by the position sensor and identifies the second static region to be after the identified peak movement.",
"9. The peristaltic pump according to claim 6, wherein the processor determines the second static region by identifying an end of the first static region.",
"10. The peristaltic pump according to claim 1, further comprising an electric motor operatively coupled to the cam shaft to apply a rotational torque to the cam shaft.",
"11. A peristaltic pump, comprising: a motor; a cam shaft operatively coupled to the motor such that rotation of the motor rotates the cam shaft; a plunger cam coupled to the cam shaft for rotation therewith; a pivot shaft; a plunger pivotally coupled to the pivot shaft, the plunger having a cam follower configured to engage the plunger cam of the cam shaft, wherein the plunger is configured to pivot to a first position to compress a tube and to a second position away from the tube; a bias member configured to bias the plunger to the first position to compress the tube; a position sensor configured to measure a position of the plunger; and a processor configured to estimate a volume of fluid discharged from the tube when the bias member causes the plunger to move towards the first position, wherein: the plunger and the plunger cam are configured to compress the tube using only a force of the bias member, the plunger cam is configured to only retract the plunger to the second position, and the plunger is configured to engage the plunger cam such that the plunger cam does not force the plunger against the tube.",
"12. A method of pumping fluid, the method comprising: engaging a plunger-cam follower with a plunger cam; biasing a plunger toward a tube, the plunger coupled to the plunger-cam follower; expanding the plunger cam along a radial angle intersecting the plunger-cam follower caused by rotation of the plunger cam thereby actuating the plunger away from the tube; determining a position of the plunger; and estimating fluid flow within the tube using the determined position of the plunger.",
"13. The method according to claim 12, further comprising determining an angle of rotation of a cam shaft.",
"14. The method according to claim 12, further comprising: comparing a first static region of the plunger position to a second static region of the plunger position; and estimating the fluid flow in accordance with the first static region and the second static region.",
"15. The method according to claim 14, wherein the act of determining the first static region includes identifying the first static region within a predetermined range of angles as indicated by an angle sensor.",
"16. The method according to claim 15, wherein the act of determining the second static region includes identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.",
"17. The method according to claim 12, the method further comprising: comparing a first static region to a second static region; and estimating the fluid flow in accordance with the comparison.",
"18. The method according to claim 17, further comprising: determining the first static region by identifying a peak movement of the plunger; and determining the second static region to be after the identified peak movement.",
"19. The method according to claim 17, further comprising determining the second static region by identifying an end of the first static region.",
"20. A method for pumping fluid, the method comprising: engaging a cam follower of a plunger with a plunger cam; pivoting the plunger to a first position to compress a tube; disengaging the cam follower from the plunger cam; biasing the plunger toward the first position to compress the tube; compressing the tube using only a force of the biasing when in the first position; reengaging the cam follower with the plunger cam; pivoting the plunger to a second position away from the tube by using the plunger cam to retract the plunger to the second position; measuring a position of the plunger; and estimating a volume of fluid discharged from the tube using the position of the plunger when the cam follower is disengaged from the plunger cam."
],
"description_excerpt": "The present disclosure relates to infusing fluid. More particularly, the present disclosure relates to a system, method and apparatus for infusing fluid into a patient, e.g., using a pump.\n\nProviding patient care in a hospital generally necessitates the interaction of numerous professionals and caregivers (e.g., doctors, nurses, pharmacists, technicians, nurse practitioners, etc.) and any number of medical devices/systems needed for treatment of a given patient. Despite the existence of systems intended to facilitate the care process, such as those incorporating electronic medical records (“EMR”) and computerized provider order entry (“CPOE”), the process of providing comprehensive care to patients including ordering and delivering medical treatments, such as medications, is associated with a number of non-trivial issues.\n\nPeristaltic pumps are used in a variety of applications such as medical applications, especially fluid transfer applications that would benefit from isolation of fluid from the system and other fluids. Some peristaltic pumps work by compressing or squeezing a length of flexible tubing. A mechanical mechanism pinches a portion of the tubing and pushes any fluid trapped in the tubing in the direction of rotation. There are rotary peristaltic pumps and finger peristaltic pumps.\n\nRotary peristaltic pumps typically move liquids through flexible tubing placed in an arc-shaped raceway. Rotary peristaltic pumps are generally made of two to four rollers placed on a roller carrier driven rotationally by a motor.",
"cpc": [
"G16H 20/17",
"A61B 17/00234",
"A61M 2005/16863",
"A61M 2205/6009",
"A61M 2205/6054",
"A61M 25/00",
"A61M 5/14228",
"A61M 5/16831",
"A61M 5/16877",
"A61M 5/16886",
"A61M 5/1689",
"F04B 2201/0201",
"F04B 2205/09",
"F04B 43/08",
"F04B 43/082",
"F04B 43/09",
"F04B 43/12",
"F04B 43/1223",
"F04B 43/1261",
"F04B 49/00",
"F04B 49/065",
"G01F 1/00",
"G01F 1/666",
"G06Q 50/22",
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"G16H 10/65",
"G16H 30/00",
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"G16H 40/67",
"G16H 50/00",
"G16Z 99/00"
],
"ipc": [
"A61M 5/142",
"A61M 5/168",
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"G01F 1/66",
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],
"assignees": [
"Deka Products LP"
],
"inventors": [
"Dean Kamen",
"John M. Kerwin",
"Colin H. Murphy",
"Christopher C. Langenfeld",
"Michael J. Slate",
"Michael S. Place",
"Larry B. Gray"
],
"filing_date": "2019-04-19",
"publication_date": "2022-05-31",
"grant_date": "2022-05-31",
"priority_date": "2011-12-21",
"application_number": "US-201916389042-A",
"family_id": "80856675",
"cited_by_count": 28,
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}
Record 1,152 of 8,000 in Patents full text (MLC-0201). Request the full dataset.