Systems and methods for simulating a tympanic membrane
Disclosed herein is a device for modeling properties of an ear. The device includes an artificial tympanic membrane and a housing coupled to the artificial tympanic membrane. The housing defines an interior portion coupled to an interior surface of the artificial tympanic membrane. The interior portion has an adjustable volume or an adjustable type of fluid and an adjustable gas pressure. Adjustment of the volume or type of fluid and the gas pressure changes a membrane movement to produce selected movement properties according to a mobility scale.
1 . A method of testing an otoscope using a model ear, including an artificial tympanic membrane, the method comprising:
(i) providing an artificial tympanic membrane;
(ii) adjusting a volume of or a type of liquid proximate an interior surface of the artificial tympanic membrane;
(iii) adjusting a pressure of gas proximate an interior surface of the artificial tympanic membrane so as to controllably change a membrane movement of the artificial tympanic membrane to controllably mimic an ultrasound reflectivity of a healthy state of an ear; and
(iv) adjusting the pressure of gas proximate to the interior surface of the artificial tympanic membrane so as to controllably change the membrane movement of the artificial tympanic membrane to controllably mimic an ultrasound reflectivity of a disease state of the ear,
wherein the disease state is a bacterial or a viral ear infection;
wherein the adjusting of the volume or the type of liquid in (ii) and the adjusting of the pressure of gas in (iii), (iv), or in both (iii) and (iv) changes the membrane movement to produce selected movement properties according to a mobility scale.
2 . The method of claim 1 , wherein the adjusting one or more of the volume of liquid, the type of liquid, or the pressure of gas changes the membrane movement to controllably mimic the disease state of the ear.
3 . The method of claim 1 , wherein the adjustment of the type of liquid comprises varying a viscosity of liquid.
4 . The method of claim 1 , further comprising aligning an otoscope to locate the artificial tympanic membrane based on an optical reflection from the artificial tympanic membrane surface.
5 . The method of claim 4 , wherein the optical reflection is exhibited on an anterior inferior quadrant of the artificial tympanic membrane.
6 . The method of claim 4 , wherein the artificial tympanic membrane has one or more visual cues, wherein the visual cues comprise exhibiting at least partially a shape of an umbo or a malleus.
7 . The method of claim 1 , wherein the mobility scale comprises a set of ordinal values or a continuous scale.
8 . The method of claim 1 , further comprising directing a speculum of an acoustic otoscope toward the artificial tympanic membrane, wherein the artificial tympanic membrane is at least one of distensible or retractable and is configured to move in response to an applied pneumatic pressure change.
9 . The method of claim 2 , wherein the adjusting of one or more of the volume of liquid, the type of liquid, or the gas pressure changes a rate of the membrane movement to controllably mimic a disease state of an ear.
10 . The method of claim 1 , further comprising providing an artificial ear canal having an approximate geometry of a human pediatric subject or a human adult subject.
11 . The method of claim 1 , wherein the interior surface comprises a mock ossicular chain coupled to the artificial tympanic membrane, and wherein the method further comprises adjusting a tension in the mock ossicular chain coupled to the artificial tympanic membrane.
12 . The method of claim 1 , wherein a shape and a durometer of the artificial tympanic membrane is configured to mimic a presence of an ossicular chain.
13 . The method of claim 1 , further comprising injecting a liquid proximate the interior surface using a liquid injector.
14 . The method of claim 1 , wherein the adjusting the pressure of gas proximate the interior surface comprises opening or closing an internal air valve and activating an internal air pump.
15 . The method of claim 1 , further comprising adjusting the pressure of gas proximate an exterior surface of the artificial tympanic membrane using an external air pump.
16 . The method of claim 1 , further comprising measuring the pressure of gas proximate the interior surface using an internal pressure gauge.
17 . The method of claim 1 , further comprising measuring a pressure of gas proximate an exterior surface of the artificial tympanic membrane using an external pressure gauge.
18 . A method of testing an otoscope using a model ear, including an artificial tympanic membrane, the method comprising:
(i) providing an artificial tympanic membrane;
(ii) adjusting a volume of or a type of liquid proximate an interior surface of the artificial tympanic membrane;
(iii) adjusting a pressure of gas proximate an interior surface of the artificial tympanic membrane so as to controllably change a membrane movement of the artificial tympanic membrane to controllably mimic an ultrasound reflectivity of a healthy state of an ear; and
(iv) adjusting the pressure of gas proximate to the interior surface of the artificial tympanic membrane so as to controllably change the membrane movement of the artificial tympanic membrane to controllably mimic an ultrasound reflectivity of a disease state of the ear, wherein the disease state is a bacterial or a viral ear infection;
wherein the adjusting of two or more of the volume of liquid in (ii), the type of liquid in (ii), or the pressure of gas in (iii), (iv), or in both (iii) and (iv) changes a membrane deflection or the membrane movement to controllably mimic the ultrasound reflectivity of the disease state of the ear.
19 . A system for simulating a tympanic membrane, the system comprising:
a main chamber;
a membrane, wherein the membrane is supported within the main chamber, wherein the membrane separates an interior of the main chamber from an exterior of the main chamber, and wherein the membrane is secured by a membrane clamp; and
an elastomeric spring, wherein the elastomeric spring is coupled to the membrane and wherein the elastomeric spring is secured by a spring clamp;
wherein at least one of a mass of the membrane, a damping of the elastomeric spring, a spring rate, a pressure in the interior of the main chamber, and an amount of liquid in the interior of the main chamber are selectively controlled first to mimic an ultrasound reflectivity of a healthy state of an ear and second to mimic an ultrasound reflectivity of a disease state of the ear, wherein the disease state is a bacterial or a viral ear infection.