Double action infusion pump
US-2015343137-A1 · Dec 3, 2015 · US
US2016367751A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016367751-A1 |
| Application number | US-201514746648-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jun 22, 2015 |
| Priority date | Jun 22, 2015 |
| Publication date | Dec 22, 2016 |
| Grant date | — |
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An embodiment of a fluid infusion device includes a fluid pump mechanism having a rotor and a stator. The rotor includes a reference surface and a cam element rising from the reference surface, and the stator includes a cam element having a stator cam surface. The cam elements cooperate to axially displace the rotor as a function of angular position of the rotor. A biasing element provides force to urge the cam elements together. A drive motor actuates the rotor to pump medication fluid from a fluid cartridge module to a body, via a subcutaneous conduit. A detection circuit processes axial and angular position data of the rotor, and determines that an upstream occlusion has occurred based on detectable characteristics of the axial and angular position data.
Opening claim text (preview).
What is claimed is: 1 . A fluid pump mechanism comprising: a stator comprising a stator cam element having a stator cam surface; a rotor comprising a reference surface and a rotor cam element having a variable height rising from the reference surface, the rotor cam element cooperating with the stator cam element to axially displace the rotor, relative to the stator, as a function of angular position of the rotor; a biasing element that provides a biasing force to urge the rotor cam element toward the stator cam element and toward the reference surface; and a detection circuit to process axial and angular position data of the rotor, and to determine that an upstream occlusion has occurred based on detectable characteristics of the axial and angular position data. 2 . The fluid pump mechanism of claim 1 , wherein: the detection circuit initiates an alert, alarm, or warning message in response to determining that an upstream occlusion has occurred. 3 . The fluid pump mechanism of claim 1 , wherein, under normal operating conditions: a complete rotation of the rotor corresponds to one pumping cycle comprising a fluid intake period followed by a fluid expulsion period; during the fluid intake period, the stator cam element is in contact with the rotor cam element; during the fluid expulsion period, the rotor cam element disengages the stator cam element, and the biasing element axially displaces the rotor such that the rotor cam element moves toward the reference surface; and after the fluid expulsion period and before a next fluid intake period, the stator cam element is in contact with the reference surface. 4 . The fluid pump mechanism of claim 3 , wherein, under upstream occlusion conditions: vacuum conditions created by an occlusion upstream of the fluid pump mechanism increase axial velocity of the rotor during the fluid expulsion period; and the detection circuit determines that an upstream occlusion has occurred when a calculated axial velocity of the rotor exceeds a threshold axial velocity value. 5 . The fluid pump mechanism of claim 4 , wherein the upstream occlusion is associated with an empty fluid reservoir condition. 6 . The fluid pump mechanism of claim 1 , further comprising: an axial position sensor associated with the detection circuit, the axial position sensor obtaining the axial position data of the rotor. 7 . The fluid pump mechanism of claim 1 , further comprising: an angular position sensor associated with the detection circuit, the angular position sensor obtaining the angular position data of the rotor. 9 . A fluid infusion device for delivering a medication fluid to a body, the fluid infusion device comprising: a fluid pump mechanism that cooperates with a fluid cartridge module, the fluid pump mechanism comprising a rotor and a stator, the rotor comprising a reference surface and a rotor cam element having a variable height rising from the reference surface, the stator comprising a stator cam element having a stator cam surface, the rotor cam element cooperating with the stator cam element to axially displace the rotor, relative to the stator, as a function of angular position of the rotor; a biasing element that provides a biasing force to urge the rotor cam element toward the stator cam element and toward the reference surface; a subcutaneous conduit in fluid communication with an outlet valve of the fluid pump mechanism; a drive motor coupled to actuate the rotor of the fluid pump mechanism to pump medication fluid from the fluid cartridge module to the body, via the subcutaneous conduit; and a detection circuit to process axial and angular position data of the rotor, and to determine that an upstream occlusion has occurred based on detectable characteristics of the axial and angular position data. 10 . The fluid infusion device of claim 9 , wherein: the fluid infusion device is a disposable insulin pump device; and the medication fluid comprises insulin. 11 . The fluid infusion device of claim 9 , wherein: a complete rotation of the rotor corresponds to one pumping cycle comprising a fluid intake period followed by a fluid expulsion period; under normal operating conditions, the fluid expulsion period is characterized by a first axial velocity of the rotor; and under upstream occlusion conditions, the fluid expulsion period is characterized by a second axial velocity of the rotor, wherein the second axial velocity is higher than the first axial velocity. 12 . The fluid infusion device of claim 11 , wherein, under normal operating conditions: during the fluid intake period, the stator cam element is in contact with the rotor cam element; during the fluid expulsion period, the rotor cam element disengages the stator cam element, and the biasing element axially displaces the rotor such that the rotor cam element moves toward the reference surface; and after the fluid expulsion period and before a next fluid intake period, the stator cam element is in contact with the reference surface. 13 . The fluid infusion device of claim 11 , wherein, under upstream occlusion conditions: vacuum conditions created by an occlusion upstream of the fluid pump mechanism increase axial velocity of the rotor during the fluid expulsion period; and the detection circuit determines that an upstream occlusion has occurred when a calculated axial velocity of the rotor exceeds a threshold axial velocity value. 14 . The fluid infusion device of claim 11 , wherein: vacuum conditions created when the fluid reservoir is empty increase axial velocity of the rotor during the fluid expulsion period; and the detection circuit determines that an upstream occlusion has occurred when a calculated axial velocity of the rotor exceeds a threshold axial velocity value. 15 . The fluid infusion device of claim 9 , further comprising: an axial position sensor associated with the detection circuit, the axial position sensor obtaining the axial position data of the rotor. 16 . The fluid infusion device of claim 9 , further comprising: an angular position sensor associated with the detection circuit, the angular position sensor obtaining the angular position data of the rotor. 17 . A fluid infusion device comprising: a stator comprising a stator cam element having a stator cam surface; a rotor comprising a reference surface and a rotor cam element having a variable height rising from the reference surface, the rotor cam element cooperating with the stator cam element to axially displace the rotor, relative to the stator, as a function of angular position of the rotor; a biasing element that provides a biasing force to urge the rotor cam element toward the stator cam element and toward the reference surface; an axial position sensor to obtain axial position data of the rotor; an angular position sensor to obtain angular position data of the rotor; and a detection circuit that obtains and processes the axial position data and the angular position data, wherein the detection circuit determines that an upstream occlusion has occurred based on processing of the axial position data and the angular position data. 18 . The fluid infusion device of claim 17 , wherein: a complete rotation of the rotor corresponds to one pumping cycle comprising a fluid intake period followed by a fluid expulsion period; under normal operating conditions, the fluid expulsion period is characterized by a first axial velocity of the rotor; and under upstream occlusion conditions, the fluid expulsion period is characterized by a se
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