IP Library › Granted Patent US 10,661,009
Granted Patent B2
US 10,661,009 · App. 16/297,197 · Granted May 26, 2020

Dynamically controllable patient fluid control device

Inventors: Joseph Eibl (Sudbury, CA); Jon-Emile Kenny (Sudbury, CA)
Assignee: 1929803 Ontario Corp.
A61M5/1723A61B8/06A61B8/488A61M5/142A61M2205/18A61M2205/3334A61M2205/3375A61M2205/502A61M2230/04
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Quick Facts
Patent No.
US 10,661,009
App. No.
16/297,197
Granted
May 26, 2020
Kind
B2
Abstract

A fluid control device includes an interface to a remote fluid monitoring sensor that detects fluid flow in a patient. In some embodiments, a processor within the fluid delivery device is programmed to adjust the delivery or withdrawal of fluids based on the fluid flow signals provided by the sensor. In some embodiments, the fluid control device can display and/or record fluid flow signals thereby acting as a hemodynamic monitor.

Claims (42)

1. A fluid control device, comprising:

a processor programmed to execute a number of instructions;

a fluid pump that is configured to control fluids under control of the processor; and

a communication port that is configured to receive fluid flow signals from a remotely located flow sensor;

a memory for storing the fluid flow signals received from the remotely located flow sensor; and

a display for displaying the fluid flow signals received from the remotely located flow sensor;

wherein the processor is configured to execute instructions to control the fluid pump based on the fluid flow signals received from the remotely located flow sensor; and

wherein the fluid flow signals are indications of a maximum arterial and venous flow rates from sampled Doppler waveforms.

2. The fluid control device of claim 1 , wherein the fluid flow signals are Doppler signals.

3. The fluid control device of claim 1 , wherein the instructions cause the processor to:

receive an instruction to deliver a bolus of fluid to a patient;

receive signals indicative of a fluid flow in the patient before delivering the bolus;

deliver a portion of the bolus to the patient;

receive signals indicative of the fluid flow in the patient after the portion of the bolus has been delivered;

compare the signals indicative of fluid flow before and after the portion of the bolus was delivered; and

deliver a remainder of the bolus based on the comparison.

4. The fluid control device of claim 1 , wherein the Doppler signals are derived from arterial and venous blood flow in vessels of a patient.

5. The fluid control device of claim 1 , wherein the communication port is configured to receive wireless communications indicative of fluid flow in a patient from the remotely located flow sensor.

6. The fluid control device of claim 1 , wherein the processor is programmed to compare the fluid flow signals received prior to and after a challenge designed to change the blood flow in a patient and to control the pump based on the comparison.

7. The fluid control device of claim 6 , wherein the processor is programmed to deliver a bolus of liquid to the patient as a challenge.

8. The fluid control device of claim 6 , wherein the processor is programmed to generate an instruction to an operator to administer the challenge to the patient.

9. The fluid control device of claim 6 , wherein the processor is programmed to generate an alarm based on the comparison.

10. A fluid control device, comprising:

a processor programmed to execute a number of instructions;

a fluid pump that is configured to control fluids under control of the processor; and

a communication port that is configured to receive fluid flow signals from a remotely located flow sensor;

a memory for storing the fluid flow signals received from the remotely located flow sensor; and

a display for displaying the fluid flow signals received from the remotely located flow sensor;

wherein the processor is configured to execute instructions to control the fluid pump based on the fluid flow signals received from the remotely located flow sensor; and

wherein the processor is programmed to compare the fluid flow signals received prior to and after a challenge designed to change the blood flow in a patient and to control the pump based on the comparison.

11. The fluid control device of claim 10 , wherein the processor is programmed to deliver a bolus of liquid to the patient as a challenge.

12. The fluid control device of claim 10 , wherein the processor is programmed to generate an instruction to an operator to administer the challenge to the patient.

13. The fluid control device of claim 10 , wherein the processor is programmed to generate an alarm based on the comparison.

14. The fluid control device of claim 10 , wherein the instructions cause the processor to:

receive an instruction to deliver a bolus of fluid to a patient;

receive signals indicative of a fluid flow in the patient before delivering the bolus;

deliver a portion of the bolus to the patient;

receive signals indicative of the fluid flow in the patient after the portion of the bolus has been delivered;

compare the signals indicative of fluid flow before and after the portion of the bolus was delivered; and

deliver a remainder of the bolus based on the comparison.

15. The fluid control device of claim 10 , wherein Doppler signals are derived from arterial and venous blood flow in vessels of a patient.

16. The fluid control device of claim 10 , wherein the communication port is configured to receive wireless communications indicative of fluid flow in a patient from the remotely located flow sensor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2019
From: EIBL, JOSEPH; KENNY, JON-EMILE
To: 1929803 ONTARIO CORP., (D/B/A FLOSONICS MEDICAL)
Reel/Frame 048975/0646 →
Continuity (2)
Provisional Application 62640903 · Mar 9, 2018
Related Publication 20190275247A1 · Sep 12, 2019
Cited By (2)
US 12,350,468 US 12,544,038