Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Design and Simulation of a Customize Three-axis Gimbal Structure using Finite Element Analysis Method

View through CrossRef
This paper presents a Finite Element Analysis (FEA) on a customized three-axis gimbal design application. Examples of applications of the gimbals such as drones, camera stabilizers, and spacecraft. The SolidWorks software checked the gimbal’s FEA characteristics with no existing load or normal conditions. Using the FEA method, a static simulation analysis where the material of this assembly design uses Polylactic Acid (PLA), used mainly by 3D printer machines. The force is given to the gimbal structure and obtains the results of the maximum value of stress in MPa, displacement in mm, and strain. Thus, based on the results obtained from SolidWorks, the structure will not fail. The maximum stress value between parts is 2.31 MPa for the support part and 3.09 MPa for the assembly model when the yield stress value of the PLA material properties is at 70 MPa. The new design structure for the gimbal hardware focuses on academic purposes based on PLA material and is easy to build using a 3D printer. In the summary, the customized three-axis gimbal design using SolidWorks will not fracture when the design is in normal condition which has a total force of 6.87 N, which is equal to 0.70 kg at 3.09 MPa where the weight of the base, O-ring, and servo motors at the U-shape part. In addition, the design can hold up to 230.87 N, which is equal to 23.54 kg at 69.90 MPa of the stress value before it will fail at 70 MPa.
Title: Design and Simulation of a Customize Three-axis Gimbal Structure using Finite Element Analysis Method
Description:
This paper presents a Finite Element Analysis (FEA) on a customized three-axis gimbal design application.
Examples of applications of the gimbals such as drones, camera stabilizers, and spacecraft.
The SolidWorks software checked the gimbal’s FEA characteristics with no existing load or normal conditions.
Using the FEA method, a static simulation analysis where the material of this assembly design uses Polylactic Acid (PLA), used mainly by 3D printer machines.
The force is given to the gimbal structure and obtains the results of the maximum value of stress in MPa, displacement in mm, and strain.
Thus, based on the results obtained from SolidWorks, the structure will not fail.
The maximum stress value between parts is 2.
31 MPa for the support part and 3.
09 MPa for the assembly model when the yield stress value of the PLA material properties is at 70 MPa.
The new design structure for the gimbal hardware focuses on academic purposes based on PLA material and is easy to build using a 3D printer.
In the summary, the customized three-axis gimbal design using SolidWorks will not fracture when the design is in normal condition which has a total force of 6.
87 N, which is equal to 0.
70 kg at 3.
09 MPa where the weight of the base, O-ring, and servo motors at the U-shape part.
In addition, the design can hold up to 230.
87 N, which is equal to 23.
54 kg at 69.
90 MPa of the stress value before it will fail at 70 MPa.

Related Results

Design
Design
Conventional definitions of design rarely capture its reach into our everyday lives. The Design Council, for example, estimates that more than 2.5 million people use design-related...
The Stability of a Two-Axis Gimbal System for the Camera
The Stability of a Two-Axis Gimbal System for the Camera
Gimbal or an inertial stabilization platform (ISP) is used to stabilize the line of sight of an object or device that is tracking another object (LOS) with stationary or moving tar...
Loads Prediction for a Gimbaled Tiltrotor in Conversion Flight Using CAD-Based 3-D Structural Analysis Models
Loads Prediction for a Gimbaled Tiltrotor in Conversion Flight Using CAD-Based 3-D Structural Analysis Models
This paper presents a method for modeling gimbaled rotor dynamics under trim conditions in X3D, a next-generation 3-D finite element based rotor structural dynamics solver. The rot...
Integrated attitude—orbit control of solar sail with single-axis gimbal mechanism
Integrated attitude—orbit control of solar sail with single-axis gimbal mechanism
AbstractA new attitude control method for solar sails is proposed using a single-axis gimbal mechanism and three-axis reaction wheels. The gimbal angle is varied to change the geom...
Development and Demonstration of Motion Stabilized Platform for Offshore Wind Observations
Development and Demonstration of Motion Stabilized Platform for Offshore Wind Observations
Abstract Our research group proposed a fundamental concept for a motion stabilized platform for a Floating LiDAR System (FLS) and validated the concept through numer...
On the Modelling of “Fork” Supports Using geometrically Exact Thin‐walled Beam Finite Elements
On the Modelling of “Fork” Supports Using geometrically Exact Thin‐walled Beam Finite Elements
AbstractThis paper discusses issues related to the modelling of so‐called “fork” supports using geometrically exact 3D thin‐walled beam finite elements whose rotations are parametr...
Strategi Komunikasi Pemasaran Salon Dreadock Studio Indonesia
Strategi Komunikasi Pemasaran Salon Dreadock Studio Indonesia
Dreadock Studio Indonesia adalah sebuah salon rambut gimbal yang berada di Kota Bandung. Berdirinya salon ini dilatar belakangi oleh Docko sang pemilik yang ingin mengubah stigma m...
Multi-physics simulation method for automotive motors with variable working conditions based on multi-software combination
Multi-physics simulation method for automotive motors with variable working conditions based on multi-software combination
This paper proposes a multi-physics simulation method for automotive motors under variable working conditions based on multi-software combination. The combination of finite element...

Back to Top