IP Library Granted Patent US 11,045,600
Granted Patent B2
US 11,045,600 · App. 17/086,902 · Granted Jun 29, 2021

Liquid infusion apparatus

Inventor: Roger E. Susi (Winter Park, FL)
Assignee: IRADIMED CORPORATION
A61M5/142A61M5/14228A61M5/172F04B43/082A61M5/1413A61M39/26A61M2205/14
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Quick Facts
Patent No.
US 11,045,600
App. No.
17/086,902
Granted
Jun 29, 2021
Kind
B2
Abstract

An apparatus and method are disclosed for controlling infusion of liquid into a patient using a peristaltic pump. The liquid infusion apparatus includes a liquid conduit having a proximal segment, a distal segment and an intermediate segment. The liquid infusion apparatus also includes a flow valve in fluid communication with the intermediate and distal segments. The flow valve includes a shuttle member slidably disposed within a housing about the distal segment, the shuttle member being configured for lateral movement relative to an elongated axis of the distal segment. The shuttle member is configured to operate in a first configuration to impede fluid flow through the liquid conduit and in a second configuration for which fluid flow through the liquid conduit is unimpeded. The shuttle member includes a resilient grasper for selectively engaging and disengaging a mating actuator resiliently received by the grasper.

Claims (30)

1. A liquid infusion apparatus, comprising:

an ultrasonic motor configured to provide displacement of a liquid from a liquid source through a liquid conduit;

an oscillator that generates an output at a frequency;

a circuit connected to receive the output from the oscillator to produce recurring output pulses at spaced intervals on a plurality of output terminals;

a resistor-capacitor (RC) filter with an associated time constant, the RC filter configured to cause sweeping of the oscillator output frequency when a motor control signal indicates that the ultrasonic motor is to start running; and

a pair of air core transformers, each having a secondary winding to connect to the ultrasonic motor, and having a pair of primary windings to conduct current in alternating relationship in response to output pulses from separate ones of pairs of the plurality of output terminals.

2. The liquid infusion apparatus of claim 1 , further comprising a feedback signal that provides an indication of the operation of the ultrasonic motor.

3. The liquid infusion apparatus of claim 2 , wherein the feedback signal operates in combination with the RC filter to cause sweeping of the oscillator output frequency.

4. The liquid infusion apparatus of claim 2 , wherein the feedback signal is indicative of motor speed.

5. The liquid infusion apparatus of claim 1 , wherein the ultrasonic motor provides displacement of the liquid through the liquid conduit in a linear manner.

6. The liquid infusion apparatus of claim 1 , wherein the sweeping of the oscillator is from a higher frequency to a lower frequency.

7. The liquid infusion apparatus of claim 6 , wherein the higher frequency is useful for starting the ultrasonic motor from a standstill and the lower frequency is an appropriate frequency to establish a steady-state motor speed.

8. The liquid infusion apparatus of claim 1 , wherein the displacement of the liquid through the liquid conduit provides a constant fluid flow rate.

9. The liquid infusion apparatus of claim 1 , wherein the liquid infusion apparatus is compatible with an MRI environment.

10. The liquid infusion apparatus of claim 1 , further comprising a conductive housing that inhibits internally-generated RF noise signals from radiating out of the liquid infusion apparatus.

11. A liquid infusion apparatus, comprising:

an ultrasonic motor configured to provide displacement of an IV fluid from a source of the IV fluid through a liquid conduit;

a voltage-controlled oscillator that generates an output at a frequency;

a drive circuit connected to receive the output from the voltage-controlled oscillator to produce recurring output pulses at spaced intervals on a plurality of output terminals;

a resistor-capacitor (RC) filter with an associated time constant, the RC filter configured to facilitate sweeping of the frequency of the output of the voltage-controlled oscillator when a motor control signal indicates that the ultrasonic motor is to start running; and

a pair of air core transformers, each having a secondary winding to connect to the ultrasonic motor, and having a pair of primary windings to conduct current in alternating relationship in response to output pulses from separate ones of pairs of the plurality of output terminals.

12. The liquid infusion apparatus of claim 11 , further comprising a feedback signal that provides an indication of the operation of the ultrasonic motor.

13. The liquid infusion apparatus of claim 12 , wherein the feedback signal operates in combination with the RC filter to cause sweeping of the oscillator output frequency.

14. The liquid infusion apparatus of claim 12 , wherein the feedback signal is indicative of motor speed.

15. The liquid infusion apparatus of claim 11 , wherein the ultrasonic motor provides displacement of the IV fluid through the liquid conduit in a linear manner.

16. The liquid infusion apparatus of claim 11 , wherein the sweeping of the voltage-controlled oscillator is from a higher frequency to a lower frequency.

17. The liquid infusion apparatus of claim 16 , wherein the higher frequency is useful for starting the ultrasonic motor from a standstill and the lower frequency is an appropriate frequency to establish a steady-state motor speed.

18. The liquid infusion apparatus of claim 11 , wherein the displacement of the liquid through the liquid conduit provides a constant fluid flow rate.

19. The liquid infusion apparatus of claim 11 , wherein the liquid infusion apparatus is compatible with an MRI environment.

20. The liquid infusion apparatus of claim 11 , further comprising a conductive housing that inhibits internally-generated RF noise signals from radiating out of the liquid infusion apparatus.

Continuity (5)
Division 15878669 · Jan 24, 2018
Continuation 13923082 · Jun 20, 2013
Continuation 12494166 · Jun 29, 2009
Division 11271705 · Nov 10, 2005
Related Publication 20210069408A1 · Mar 11, 2021
Cited By (2)
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