2008Unpublished venueRequires access

Modeling of Bendable MAV Wing Using Energy Method

Vijay Jagdale, Bhavani V. Sankar, Peter Ifju

Open publisher page 5 citations

Abstract

Out of many exciting and unique micro air vehicles (MAVs) being developed at the University of Florida, one MAV design utilizes a bendable wing concept. To minimize the storage volume, the wing is rolled and the MAV is stored inside a canister. To predict the shape of the wing and consequently initial strain produced in the wing, when it is stored inside canister, energy method principal is used. An analytical model is developed which predicts the shape and initial strains in the wing by modeling the wing as a one dimensional composite beam. Results of the analytical model prediction are compared with the experimental observations.

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What this paper is about

Out of many exciting and unique micro air vehicles (MAVs) being developed at the University of Florida, one MAV design utilizes a bendable wing concept. To minimize the storage volume, the wing is rolled and the MAV is stored inside a canister. To predict the shape of the wing and consequently initial strain produced in the wing, when it is stored inside canister, energy method principal is used. An analytical model is developed which predicts the shape and initial strains in the wing by modeling the wing as a one dimensional composite beam. Results of the analytical model prediction are compared with the experimental observations.

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OpenAlex reports 5 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

Out of many exciting and unique micro air vehicles (MAVs) being developed at the University of Florida, one MAV design utilizes a bendable wing concept. To minimize the storage volume, the wing is rolled and the MAV is stored inside a canister. To predict the shape of the wing and consequently initial strain produced in the wing, when it is stored inside canister, energy method principal is used. An analytical model is developed which predicts the shape and initial strains in the wing by modeling the wing as a one dimensional composite beam. Results of the analytical model prediction are compared with the experimental observations.

Key concepts: Wing, Aerospace engineering, Computer science, Automotive engineering, Energy (signal processing), Aeronautics, Engineering, Physics

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