Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Shape Memory Alloy Capsule Micropump for Drug Delivery Applications

View through CrossRef
We introduce a shape memory alloy (SMA) actuated micropump optimized for drug delivery applications. The proposed novel design integrates a built-in replaceable drug reservoir within the pump package forming a self-contained preloaded capsule pump with an overall pump volume of 424.7 μL. The new design results in a compact, simple, and inexpensive micropump and reduces the probability of contamination with attained almost zero dead volume values. The pump consists of NiTi-alloy SMA wires coiled on a flexible polymeric enclosure and actuated by joule heating. Unlike diaphragm and peristaltic SMA micropump designs that actuate transversely, our design is actuated longitudinally along the direction of the highest mechanical compliance resulting in large strokes in the order of 5.6 mm at 27% deflection ratio, actuation speed up to 11 mm/s, and static head pressures up to 14 kPa (105 mmHg) at 7.1 W input power; thus, high throughputs exceeding 2524 μL/min under free convention conditions could be achieved. A model was developed to optimize the pump’s geometrical parameters and the enclosure material. The model concluded that low stiffness enclosure material combined with thinner SMA wire diameter would result in the maximum deflection at the lowest power rating. To prove its viability for drug delivery applications, the pump was operated at a constant discharge volume at a relatively constant static head pressure. Furthermore, a design of bicuspid-inspired polymeric check-valves is presented and integrated onto the pump to regulate the flow. Since the built-in reservoir is replaceable, the pump capsule can be reused multiple times and for multiple drug types.
Title: Shape Memory Alloy Capsule Micropump for Drug Delivery Applications
Description:
We introduce a shape memory alloy (SMA) actuated micropump optimized for drug delivery applications.
The proposed novel design integrates a built-in replaceable drug reservoir within the pump package forming a self-contained preloaded capsule pump with an overall pump volume of 424.
7 μL.
The new design results in a compact, simple, and inexpensive micropump and reduces the probability of contamination with attained almost zero dead volume values.
The pump consists of NiTi-alloy SMA wires coiled on a flexible polymeric enclosure and actuated by joule heating.
Unlike diaphragm and peristaltic SMA micropump designs that actuate transversely, our design is actuated longitudinally along the direction of the highest mechanical compliance resulting in large strokes in the order of 5.
6 mm at 27% deflection ratio, actuation speed up to 11 mm/s, and static head pressures up to 14 kPa (105 mmHg) at 7.
1 W input power; thus, high throughputs exceeding 2524 μL/min under free convention conditions could be achieved.
A model was developed to optimize the pump’s geometrical parameters and the enclosure material.
The model concluded that low stiffness enclosure material combined with thinner SMA wire diameter would result in the maximum deflection at the lowest power rating.
To prove its viability for drug delivery applications, the pump was operated at a constant discharge volume at a relatively constant static head pressure.
Furthermore, a design of bicuspid-inspired polymeric check-valves is presented and integrated onto the pump to regulate the flow.
Since the built-in reservoir is replaceable, the pump capsule can be reused multiple times and for multiple drug types.

Related Results

Electrostatically driven micropump with peristaltically moving membrane
Electrostatically driven micropump with peristaltically moving membrane
An electrostatically driven valveless micropump with a peristaltically moving membrane for gas chromatography is presented. The one‐chamber micropump has a peristaltically moving m...
Selection of Injectable Drug Product Composition using Machine Learning Models (Preprint)
Selection of Injectable Drug Product Composition using Machine Learning Models (Preprint)
BACKGROUND As of July 2020, a Web of Science search of “machine learning (ML)” nested within the search of “pharmacokinetics or pharmacodynamics” yielded over 100...
A SUPERIMPOSED VALVELESS MICROPUMP USING NEW CHANNELS FOR OPTIMAL DRUG DELIVERY
A SUPERIMPOSED VALVELESS MICROPUMP USING NEW CHANNELS FOR OPTIMAL DRUG DELIVERY
In this paper, we propose a valveless micropump with an improved inlet/outlet channel configuration for biomedical applications. To do so, we added curved parts known as "ears" to ...
Characterization of a 3D Printed Self-Powered Micropump Mould for Microfluidics Application
Characterization of a 3D Printed Self-Powered Micropump Mould for Microfluidics Application
The number of words should not exceed 350 Self-powered infusion micropump is a non-mechanical micropumps for microfluidics application. A three- dimensional (3D) printing is an int...
Inhibitory effect of capsule on natural transformation of Streptococcus pneumoniae
Inhibitory effect of capsule on natural transformation of Streptococcus pneumoniae
ABSTRACT The capsule ofStreptococcus pneumoniae(Spn) is highly heterogeneous based on expression of distinct polysaccharides.Spntransformation, controlled by the Com regulon, has b...
High-Precision Transdermal Drug Delivery Device with Piezoelectric Mechanism
High-Precision Transdermal Drug Delivery Device with Piezoelectric Mechanism
Piezoelectric (PE) micropumps are distinguished by their high precision, absence of electromagnetic radiation, and straightforward construction principles, making them vital in bio...
A Bioinspired Active Micropump
A Bioinspired Active Micropump
A preliminary design concept is provided for a bioinspired active micropump. The proposed micropump uses light energy to activate the transporter proteins (bacteriorhodopsin protei...
Development of High-Power Micropump Using Inertia Effect of Fluid for Small-Sized Fluid Actuators
Development of High-Power Micropump Using Inertia Effect of Fluid for Small-Sized Fluid Actuators
The authors have been developing a high output micropump for the small but powerful fluid actuator which has a source of fluid power individually. In this paper, a novel piezoelect...

Back to Top