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New Releases by Michael Giuliano

Michael Giuliano is the author of Miniaturized, Low-voltage Power Converters with Fast Dynamic Response (2013), Thermal Analysis and Management of Lithium Titanate Batteries for Use in Battery and Hybrid Electric Vehicles (2011), Teaching Residents how to Teach in the Clinical Setting (2008), Synthetic Approaches to Sibiromycin (1981) and Waterfront Housing (1978).

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Miniaturized, Low-voltage Power Converters with Fast Dynamic Response

Miniaturized, Low-voltage Power Converters with Fast Dynamic Response
This thesis introduces a two-stage architecture that combines the strengths of switched capacitor (SC) techniques (small size, light-load performance) with the high efficiency and regulation capability of switch-mode power converters. The resulting designs have a superior efficient-power density trade-off over traditional designs. These power converters can provide numerous lowvoltage outputs over a wide input voltage range with a very fast dynamic response, which are ideal for powering logic devices in the mobile and high-performance computing markets. Both design and fabrication considerations for power converters using this architecture are addressed. The results are demonstrated in a 2.4 W dc-dc converter implemented in a 180 nm CMOS IC process and co-packaged with its passive components for high-performance. The converter operates from an input voltage of 2.7 V to 5.5 V with an output voltage of /= 1.2 V, and achieves a 2210 W/inch3 power density with /= 80% efficiency.

Thermal Analysis and Management of Lithium Titanate Batteries for Use in Battery and Hybrid Electric Vehicles

release date: Jan 01, 2011
Thermal Analysis and Management of Lithium Titanate Batteries for Use in Battery and Hybrid Electric Vehicles
Lithium-titanate batteries have become a viable option for automotive energy storage due to their long lifetime, good energy density, and ability to withstand large charge/discharge currents. Normal vehicle operation exposes the battery to significant current demands which can cause substantial heat generation. Therefore, the battery pack requires an active thermal management system in order to maintain a safe operating temperature and prevent battery degradation. The goals for this research are to analyze the temperature rise and heat generation in a battery pack of 50 Ah lithium- titanate cells, and to design and evaluate cooling systems that maintain safe operating temperatures without consuming excessive parasitic power. A liquid crystal thermography technique was devised to measure the temperature rise of the cells under various charge/discharge current cycles. Two cooling systems, one water-cooled and the other air-cooled, were designed and implemented, and their performance was evaluated. While both systems performed effectively, the air-cooled system is more efficient as it consumes less parasitic power. Finally, the experimental data were employed within a numerical model to accurately characterize the spatially-varying heat generation source term within the cells. Ultimately, it has been shown that ambient air can be used as the active fluid to adequately cool the cells through proper heat exchanger design. The results from the numerical model to characterize the heat generation term will be useful in future thermal modeling and management studies of lithium-titanate cells.

Teaching Residents how to Teach in the Clinical Setting

release date: Jan 01, 2008
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