IP Library Granted Patent US 12,514,963
Granted Patent B2
US 12,514,963 · App. 17/903,366 · Granted Jan 6, 2026

Inline heater overheating system and method

Inventors: Oskar Erik Frode Styrbjorn Fallman (Lund, SE); Michael Pettersson (Malmo, SE); Jimmie Marcus Axel Hansson (Limhamn, SE)
Assignees: Baxter International Inc.; Baxter Healthcare SA
A61M1/16A61M1/28H05B3/0085A61M2205/3334
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Quick Facts
Patent No.
US 12,514,963
App. No.
17/903,366
Granted
Jan 6, 2026
Kind
B2
Abstract

An inline heating system including an inline heater including a heater element; a control unit configured to cause one of voltage or current to be applied to power the inline heater; and a current or voltage meter positioned and arranged to measure the other of current or voltage at the heater element due to the applied voltage or current, wherein the control unit is further configured to determine a heater element resistance using the applied voltage or current and the measured current or voltage as part of a no flow or low flow condition detection algorithm implemented by the control unit, wherein the voltage or current applied to power the inline heater is stopped if the no flow or low flow condition is detected.

Claims (34)

1 . An inline heating system comprising:

an inline heater including a heater element;

a control unit configured to cause one of a voltage or a current to be applied to power the inline heater;

a memory communicatively coupled to the control unit, the memory configured to store a calibration data table that relates calibrated heater element resistances of the inline heater to at least one of fluid flowrates through the inline heater or input voltages or currents to the inline heater; and

at least one meter arranged to measure at least one of a current or voltage at the heater element due to the applied voltage or the applied current, the at least one meter outputting the at least one of the current or the voltage to the control unit,

wherein the control unit is further configured to:

determine a heater element resistance (Re) of the inline heater using the applied voltage or the applied current and the measured at least one of the current or the voltage as part of a no flow or low flow condition detection algorithm implemented by the control unit,

compare the determined heater element resistance (Re) of the inline heater with a commanded fluid flowrate and a power setting of the heater element to the calibration data table to determine whether a no flow or low flow condition is detected, and

stop applying the voltage or the current to power the inline heater upon detection of the no flow or low flow condition.

2 . The inline heating system of claim 1 , wherein the control unit includes the at least one meter.

3 . The inline heating system of claim 1 , wherein the control unit is configured to determine multiple heater element resistances using the applied voltage or the applied current and the measured at least one current or voltage at different times over a sample period to determine if the no flow or low flow condition is detected.

4 . The inline heating system of claim 1 , further comprising at least one additional heater element, wherein the control unit is configured to determine a heater element resistance for each of the at least one additional heater element as part of the no flow or low flow condition detection algorithm.

5 . The inline heating system of claim 4 , further comprising at least one additional meter arranged to measure the at least one current or voltage at the at least one additional heater element.

6 . The inline heating system of claim 4 , wherein the control unit is configured to stop the voltage or the current applied to power the inline heater if the no flow or low flow condition is detected at any of the heater elements.

7 . The inline heating system of claim 1 , wherein the control unit is configured to compare a rate of change in the determined heater element resistance to a et maximum rate of change in the determined heater element resistance as part of the low flow condition detection algorithm implemented by the control unit.

8 . The inline heating system of claim 7 , wherein the rate of change in the determined heater element resistance is a positive rate of change.

9 . The inline heating system of claim 1 , wherein the calibrated heater element resistances are determined remotely from the inline heating system and then stored in the control unit.

10 . The inline heating system of claim 1 , wherein the control unit is configured to determine the at least one of the current or the voltage at a sample rate that is of at least one of (i) 100 Hz or greater, or (ii) at least two times greater than a frequency of a pulsed voltage source powering the inline heater.

11 . The inline heating system of claim 1 , wherein the control unit includes an analog heater protection circuit configured to filter the measured at least one of the current or the voltage.

12 . An inline heating system comprising:

an inline heater including a heater element;

a voltage source or a current source positioned to apply a voltage or a current to power the inline heater

a memory configured to store a calibration data table that relates calibrated heater element resistances of the inline heater to at least one of fluid flowrates through the inline heater or input voltages or input currents to the inline heater; and

an analog heater protection circuit configured to:

(i) measure at least one of a current or a voltage at the heater element due to the applied voltage or the applied current,

(ii) determine a heater element resistance (Re) of the inline heater using the applied voltage or the applied current and the measured at least one of the current or the voltage,

(iii) compare the determined heater element resistance (Re) of the inline heater with a commanded fluid flowrate and a power setting of the heater element to the calibration data table to determine whether a no flow or low flow condition is detected, and

(iv) (iv) stop a power signal or disable an enable signal when the heater element resistance of the inline heater indicates the no flow or low flow condition.

13 . The inline heating system of claim 12 , wherein the analog heater protection circuit includes at least one of: a measurement circuit, a divider circuit, a differential circuit, or a comparator.

14 . An inline heating system comprising:

an inline heater including a heater element;

a control unit configured to: compare a determined heater element resistance (Re) of the inline heater with a commanded fluid flowrate and a power setting of the inline heater to a calibration data table to determine whether a no flow or low flow condition is detected, and stop applying a current or a voltage to power the inline heater upon detection of the no flow or low flow condition; and

a meter arranged to measure at least one of a current or a voltage at the heater element due to the applied voltage or the applied current, the meter outputting the at least one of the current or the voltage to the control unit to enable the control unit to calibrate the determined resistance to the outputted at least one of the current or voltage.

15 . The inline heating system of claim 14 , wherein the inline heating system is provided as part of a peritoneal dialysis machine, a hemodialysis machine, a hemofiltration machine, a hemodiafiltration machine, a continuous renal replacement therapy machine, a water purification unit, a dialysis fluid preparation unit, or a blood warmer.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2025
From: BAXTER HEALTHCARE SA
To: VANTIVE HEALTH GMBH
Reel/Frame 074046/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2025
From: BAXTER INTERNATIONAL INC.
To: VANTIVE US HEALTHCARE LLC
Reel/Frame 074046/0769 →
SECURITY INTEREST Recorded Jan 31, 2025
From: VANTIVE US HEALTHCARE LLC; GAMBRO RENAL PRODUCTS, INC.
To: ARES CAPITAL CORPORATION
Reel/Frame 070076/0701 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2022
From: GAMBRO LUNDIA AB
To: BAXTER INTERNATIONAL INC.; BAXTER HEALTHCARE SA
Reel/Frame 061041/0317 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2022
From: FALLMAN, OSKAR ERIK FRODE STYRBJORN; PETTERSSON, MICHAEL; HANSSON, JIMMIE MARCUS AXEL
To: GAMBRO LUNDIA AB
Reel/Frame 061024/0650 →
Continuity (2)
Provisional Application 63241738 · Sep 8, 2021
Related Publication 20230070999A1 · Mar 9, 2023
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