INFUSION SYSTEM AND METHOD WHICH UTILIZES DUAL WAVELENGTH OPTICAL AIR-IN-LINE DETECTION
Infusion fluid is flowed through a fluid delivery line of an infusion system. Optical signals having different wavelengths are transmitted through the fluid delivery line. The transmitted optical signals having the different wavelengths are received. At least one processor determines whether air or infusion fluid is disposed in the fluid delivery line based on the received optical signals having the different wavelengths.
1 - 15 . (canceled)
16 . An infusion system configured to detect air in a fluid delivery line, the infusion system comprising:
at least two optical transmitters configured to transmit optical signals having different wavelengths through a common path across the fluid delivery line;
at least one optical receiver configured to receive the optical signals having the different wavelengths transmitted from the at least two optical transmitters; and
at least one hardware processor in electronic communication with the at least two optical transmitters, and the at least one optical receivers;
said at least one hardware processor configured to stagger transmissions from the at least two optical transmitters and determine whether air or the infusion fluid is disposed in the fluid delivery line based on the received optical signals having the different wavelengths which are received by the at least one optical receiver.
17 . The infusion system of claim 16 , wherein the at least one hardware processor is further configured to determine whether the air or the infusion fluid is disposed in the fluid delivery line based on how a ratio of the received optical signals having the different wavelengths which are received by the at least one optical receiver compares to a threshold.
18 . The infusion system of claim 16 , wherein the optical signals comprise near infrared spectrum light.
19 . The infusion system of claim 16 , wherein a first optical signal transmitted by a first optical transmitter has a first wavelength and a second optical signal transmitted by a second optical transmitter has a second wavelength different than the first wavelength, wherein if the air is disposed in the fluid delivery line the air will have a substantially greater impact on the first optical signal received by the at least one optical receiver than on the second optical signal received by the at least one optical receiver.
20 . The infusion system of claim 16 , wherein the wavelengths of the optical signals are optimized for a particular type of the infusion fluid disposed in the fluid delivery line to achieve maximum differentiation between the air disposed in the fluid delivery line and the infusion fluid disposed in the fluid delivery line.
21 . The infusion system of claim 16 , wherein the at least two optical transmitters are configured to transmit the optical signals along a same optical beam axis using at least one optical beam splitter, at least one mirror, at least one reflective surface, or at least one refractive surface.
22 . The infusion system of claim 16 , wherein the staggering comprises transmitting the optical signals alternatively and sequentially.
23 . A method of detecting air in a fluid delivery line of an infusion system, the method comprising:
transmitting optical signals having different wavelengths from at least two optical transmitters through a common path across the fluid delivery line;
receiving the optical signals having the different wavelengths transmitted from the at least two optical transmitters; and
staggering transmissions from the at least two optical transmitters; and
determining whether air or the infusion fluid is disposed in the fluid delivery line based on the received optical signals having the different wavelengths.
24 . The method of claim 23 , further comprising determining whether the air or the infusion fluid is disposed in the fluid delivery line based on how a ratio of the received optical signals having the different wavelengths which are received by the at least one optical receiver compares to a threshold.
25 . The method of claim 23 , wherein the optical signals comprise near infrared spectrum light.
26 . The method of claim 23 , wherein a first optical signal transmitted by a first optical transmitter has a first wavelength and a second optical signal transmitted by a second optical transmitter has a second wavelength different than the first wavelength, wherein if the air is disposed in the fluid delivery line the air will have a substantially greater impact on the first optical signal received by the at least one optical receiver than on the second optical signal received by the at least one optical receiver.
27 . The method of claim 23 , wherein the wavelengths of the optical signals are optimized for a particular type of the infusion fluid disposed in the fluid delivery line to achieve maximum differentiation between the air disposed in the fluid delivery line and the infusion fluid disposed in the fluid delivery line.
28 . The method of claim 23 , wherein the transmission across the common path comprises using at least one optical beam splitter, at least one mirror, at least one reflective surface, or at least one refractive surface.
29 . The method of claim 23 , wherein the staggering comprises transmitting the optical signals alternatively and sequentially.