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Journal ArticleDOI

Design of a Portable Compliant Device for Estimating the Failure-Load of Mesoscale Cemented Sand Specimens

TLDR
In this paper, a hand-operated compliant mechanism for estimating the failure load of cm-sized stiff objects whose stiffness is of the order of 10 s of kN/m was presented.
Abstract
In this paper, we present the design and development of a portable, hand-operated composite compliant mechanism for estimating the failure-load of cm-sized stiff objects whose stiffness is of the order of 10 s of kN/m. The motivation for the design comes from the need to estimate the failure-load of mesoscale cemented sand specimens in situ, which is not possible with traditional devices used for large specimens or very small specimens. The composite compliant device, developed in this work, consists of two compliant mechanisms: a force-amplifying compliant mechanism (FaCM) to amplify sufficiently the force exerted by hand in order to break the specimen and a displacement-amplifying compliant mechanism (DaCM) to enable measurement of the force using a proximity sensor. The two mechanisms are designed using the selection-maps technique to amplify the force up to 100N by about a factor of 3 and measure the force with a resolution of 15 mN. The composite device, made using a FaCM, a DaCM, and a Hall effect-based proximity sensor, was tested on mesoscale cemented sand specimens that were 10mm in diameter and 20mm in length. The results are compared with those of a large commercial instrument. Through the experiments, it was observed that the failure-load of the cemented sand specimens varied from 0.95N to 24.33 N, depending on the percentage of cementation and curing period. The estimation of the failure-load using the compliant device was found to be within 1.7% of the measurements obtained using the commercial instrument and thus validating the design. The details of the design, prototyping, specimen preparation, testing, and the results comprise the paper.

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References
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Journal ArticleDOI

Evaluation and Design of Displacement-Amplifying Compliant Mechanisms for Sensor Applications

TL;DR: The SML model, which effectively captures the effects of appending a DaCM to a sensor, is introduced and is shown to be useful in not only evaluating the suitability of an existing DaCM for a new application but also for designing a new DaCM.
Journal ArticleDOI

Improving the Sensitivity and Bandwidth of In-Plane Capacitive Microaccelerometers Using Compliant Mechanical Amplifiers

TL;DR: In this article, the displacement-amplifying compliant mechanisms (DaCMs) were used to enhance both the sensitivity and bandwidth of in-plane capacitive micromachined accelerometers by using compliant mechanical amplifiers.
Journal ArticleDOI

Constitutive modeling of cemented sand

TL;DR: In this article, the applicability of two constitutive models which have been developed by other researchers is examined, and the procedures for determining 13 and 12 material parameters for the respective models are explained and compared with simple loading histories composed of initial hydrostatic prestress and subsequent proportional loading.
Journal ArticleDOI

Design of Single-Input-Single- Output Compliant Mechanisms for Practical Applications Using Selection Maps

TL;DR: The map juxtaposes user-specifications with the attributes of real compliant mechanisms stored in a database so that not only the practical feasibility of the specifications can be discerned quickly but also modifications can be done interactively to the existing compliant mechanisms.
Journal ArticleDOI

A Vision-Based Micro-Newton Static Force Sensor Using a Displacement-Amplifying Compliant Mechanism (DaCM)

TL;DR: In this article, a micro-newton static force sensor is presented as a packaged product, which consists of a compliant mechanism that amplifies the displacement caused by the force that is to be measured.
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