Showing posts with label heart. Show all posts
Showing posts with label heart. Show all posts

Thursday, 27 December 2012

Cardiovascular disease: The mechanics of prosthetic heart valves

Dec. 20, 2012 — Computer simulations of blood flow through mechanical heart valves could pave the way for more individualized prosthetics.

Every year, over 300,000 heart valve replacement operations are performed worldwide. Diseased valves are often replaced with mechanical heart valves (MHVs), which cannot yet be designed to suit each patient's specific needs. Complications such as blood clots can occur, which can require patients to take blood-thinning medication.

To investigate why such complications occur, Vinh-Tan Nguyen at A*STAR's Institute of High Performance Computing, Singapore, together with scientists at the National University of Singapore and institutions across the USA, have developed a new computer model to simulate the dynamics of blood flow through MHVs1.

"The current practice for heart valve replacement in patients is a one-size-fits-all approach where a patient is implanted with the best-fit valve available on the market," explains Nguyen. "The valves are well designed for general physiological conditions, but may not be suitable for each individual's particular heart condition."

The researchers focused on the blood flow dynamics in a prosthetic valve known as a bileaflet MHV. This type of MHV contains two mobile leaflets, or gates, which are held in place by hinges. The leaflets open and close in response to blood flow pressures through the valve. Little is known about the effect that the hinged leaflets have on blood dynamics, although such designs are suspected of causing blood clots.

The computer model developed by Nguyen and his team simulates pressure flows through bileaflet MHVs by representing blood vessels as a computational mesh, where calculations are performed for individual blocks of the mesh. Their crucial advance was in enabling this mesh to move and evolve in response to the leaflet movements.

The researchers validated their computer model through laboratory experiments with a full 3D reproduction of the heart's circulation system. Particle imaging equipment allowed them to visualize the fluid dynamics under different scenarios including pulsatile flow, which follows the pattern of a typical cardiac cycle.

"We obtained good agreement between our computer simulations and the experiments in terms of the magnitude and velocity of blood flow through the leaflets," states Nguyen. The researchers also found that leaflet hinges might play a vital role in clotting, because individual hinges have different tolerances that can disrupt normal blood flow and cause stress in the vein walls.

This research is a first crucial step in understanding the impact of MHVs on blood flow. "Ultimately we hope to provide doctors with a tool to evaluate blood flow dynamics and other related aspects in patients with newly implanted valves," says Nguyen.

The A*STAR-affiliated researchers contributing to this research are from the Institute of High Performance Computing.

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The above story is reprinted from materials provided by The Agency for Science, Technology and Research (A*STAR), via ResearchSEA.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Vinh-Tan Nguyen, Yee Han Kuan, Po-Yu Chen, Liang Ge, Fotis Sotiropoulos, Ajit P. Yoganathan, Hwa Liang Leo. Experimentally Validated Hemodynamics Simulations of Mechanical Heart Valves in Three Dimensions. Cardiovascular Engineering and Technology, 2011; 3 (1): 88 DOI: 10.1007/s13239-011-0077-z

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


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Wednesday, 19 December 2012

Computer science grad student develops 'musical heart'

Nov. 6, 2012 — A University of Virginia graduate student has developed a biofeedback-based system that helps smartphones select music that will help get their owners' heart pumping during exercise, or slow it down when they want to cool down or relax.

"Whether I am driving, jogging, traveling or relaxing -- I never find the appropriate music to listen to," said Shahriar Nirjon, a doctoral student in computer science in the School of Engineering and Applied Science. "I believe there are many like me. The problem is: The heart wants to hear something, but our music player does not understand the need. My joy was in connecting them together -- in a non-invasive and cost-effective way."

Called "Musical Heart," the system "brings together wellness and entertainment," Nirjon said.

Musical Heart works by merging a microphone that detects the pulse in arteries in the ear with earphones that bring in music from a playlist on a smartphone. An app selects tunes that optimize the heart rate of an individual user based on a given activity, whether running, walking or relaxing -- playing fast-paced music for hard workouts, and slowing the beat for cool-downs. An algorithm refines the music selection process of the system by storing heart rate data and calculating the effects of selected music on the rate. Over time, it improves music selections to optimize the user's heart rate.

Musical Heart uses a pair of specially built earphones equipped with tiny sensors to continuously monitor the user's heart rate and activity level. That physiological information, along with contextual information, is then sent to a remote server, which provides dynamic music suggestions to help the user maintain a target heart rate. The system learns, in essence, to select music that will have a desired effect on heart rate customized to the individual user, based on the effects of past music selections on the heart rate. In addition to helping to optimize heart rate for various activities, Musical Heart also can select music that helps the user relax.

"We've designed Musical Heart to be convenient, non-invasive, personalized and low cost," Nirjon said.

Most portable heart monitors, he said, are not personalized to the user, meaning they don't provide the biofeedback feature of Musical Heart. They can be inconvenient to use, requiring bulky watch-like monitors, sometimes with a chest strap, and can range in price from $80 to $400.

The Musical Heart system, which is not on the market, may cost about $20, Nirjon said, and is more than simply a monitor because of its music selection feature.

Nirjon will present his system at the 10th Association for Computing Machinery Conference on Embedded Networked Sensor Systems (SenSys 2012), being held this week in Toronto -- the most important annual meeting in the field, he said. His paper describing the system has been accepted for publication in the conference's proceedings.

Nirjon's area of expertise is in smartphone sensing and networked embedded systems. Musical Heart is one of his research projects and will be a part of his Ph.D. thesis. He works with computer science professor John A. Stankovic, who runs a research group that bridges health and computer science. The industry partner on this project was Microsoft Research Asia (Beijing).

Nirjon currently is working on a generic acoustic sensing platform for smartphones that hosts a suite of apps -- one of which is the Musical Heart. He does not currently have a marketing plan, but may develop one in the future.

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The above story is reprinted from materials provided by University of Virginia, via Newswise.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here