PubMed Health⌕ Search

PubMed · 7833980

Justifying and tracking BMET training.

Abstract

We have outlined the importance of BMET training and how it is a crucial investment for not only the health care facility but also clinical engineering and individual BMETs. Training methods and funding mechanisms are also important aspects of the continuing education process. Being aware of the alternatives helps to achieve the goals of the clinical engineering program. We have also demonstrated management techniques of acquiring training, evaluating courses, and keeping statistics. Courstat manages statistics of training intensity among BMETs. This kind of tool provides managers with an overall picture of departmental expertise.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M Capuano, S Koritko. Justifying and tracking BMET training.. https://pubmed.ncbi.nlm.nih.gov/7833980/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Optimal design of non-Newtonian, micro-scale viscous pumps for biomedical devices.

The present paper addresses the numerical optimization of geometrical parameters of non-Newtonian micro-scale viscous pumps for biomedical devices. The objective is to maximize the mass flow rate per unit of shaft power consumed by the rotor when an external pressure load is applied along the channel that houses the rotor. Two geometric parameters are considered in the optimization process: (i) the height of the channel that houses the rotor (H) and (ii), the eccentricity (epsilon) of the rotor. Three different micro-scale viscous pump configurations were tested: a straight-housed pump (I-shaped housing) and two curved housed pumps (L- and U-shaped housings). The stress-strain constitutive law is modeled by a power-law relation. The results show that the geometric optimization of micro-scale viscous pumps is critical since the mass flow rate propelled by the rotor is highly dependent on epsilon and H. Numerical simulations indicate that mass flow rate is maximized when epsilon approximately 0, namely when the rotor is placed at a distance of 0.05 radii from the lower wall. The results also show that micro-scale viscous pumps with curved housing provide higher mass flow rate per unit of shaft power consumed when compared with straight-housed pumps. The results are presented in terms optimized dimensions of all three configurations (i.e., H(opt) and epsilon(opt)) and for values of the power-law index varying between 0.5 (shear thinning fluids) and 1.5 (shear-thickening fluids).

Biomedical Engineering↗