Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Deformation in a Circular Shaft01:10

Deformation in a Circular Shaft

262
One of the distinctive characteristics of circular shafts is their ability to maintain their cross-sectional integrity under torsion. In other words, each cross-section continues to exist as a flat, unaltered entity, simply rotating like a solid, rigid slab. To understand the distribution of shearing stress within such a shaft, consider a cylindrical section inside this circular shaft. This section has a length of L and a radius of R, with one end fixed. The radius of the cylindrical section is...
262
Stresses in a Shaft01:18

Stresses in a Shaft

348
The shaft PQ is subjected to a twisting force when equal and opposite torques are applied on either side. A section that cuts perpendicular to the shaft's axis at any arbitrary point R is examined to understand this. When the free-body diagram of the QR segment is analyzed, it reveals the shearing forces exerted by the PR portion onto the QR segment as the shaft experiences twisting.
Applying equilibrium conditions to the QR segment establishes that the internal shearing forces within the...
348
Design of Transmission Shafts01:16

Design of Transmission Shafts

281
The design of a transmission shaft is governed by two primary specifications: the power it transmits and its rotational speed. These parameters guide the selection of the shaft's material and cross-sectional dimensions, ensuring that the material's maximum shearing stress remains within the elastic limit while transmitting the desired power at the given speed. The system's power is intrinsically linked to the applied torque. The torque applied to the shaft can be calculated by...
281
Transmission Shafts: Problem Solving01:09

Transmission Shafts: Problem Solving

210
Designing a solid shaft that transmits power from a motor to a machine tool involves a series of calculations to ensure the shaft can withstand the stresses applied by bending moments and torques. First, calculate the torque exerted on the gear, considering the power transmitted by the shaft and its rotational speed. Following this, compute the tangential forces acting on the gears, which directly relate to the torque and the gear radius.
Next, use bending moment diagrams for the shaft to...
210
Circular Shaft - Stresses in Linear Range01:13

Circular Shaft - Stresses in Linear Range

231
Consider a scenario where a circular shaft is subject to torque that remains within the boundaries of Hooke's Law, avoiding any permanent deformation. So, the formula for shearing strain is revisited. This formula is multiplied by the modulus of rigidity, and then Hooke's Law for the shearing stress and strain is applied. As a result, the equation for shearing stress in a shaft can be derived.
231
Stress Concentrations in Circular Shafts01:18

Stress Concentrations in Circular Shafts

162
Consider the elastic torsion formula, which applies to a circular shaft with a consistent cross-section. This formula assumes that the shaft's ends are loaded with rigid plates firmly attached. However, in many cases, torques are applied to the shaft through mechanisms like flange couplings or gears, which are connected by keys inserted into keyways. This application method modifies the stress distribution near the point of torque application, causing it to deviate from the distributions...
162

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Long non-coding RNA CCDC144NL-AS1 sponges miR-143-3p and regulates MAP3K7 by acting as a competing endogenous RNA in gastric cancer.

Cell death & disease·2020
Same author

Identification of six candidate genes for endometrial carcinoma by bioinformatics analysis.

World journal of surgical oncology·2020
Same author

Overexpression of nicotinamide mononucleotide adenylyltransferase (nmnat) increases the growth rate, Ca<sup>2+</sup> concentration and cellulase production in Ganoderma lucidum.

Applied microbiology and biotechnology·2020
Same author

Chlorogenic acid alleviates acetaminophen-induced liver injury in mice via regulating Nrf2-mediated HSP60-initiated liver inflammation.

European journal of pharmacology·2020
Same author

Androgen receptor affects the response to immune checkpoint therapy by suppressing PD-L1 in hepatocellular carcinoma.

Aging·2020
Same author

Putrescine regulates nitric oxide accumulation in Ganoderma lucidum partly by influencing cellular glutamine levels under heat stress.

Microbiological research·2020

Related Experiment Video

Updated: Jun 3, 2025

Modeling and Experimental Analysis of the Single-Shaft Coaxial Motor-Pump Assembly in Electrohydrostatic Actuators
08:59

Modeling and Experimental Analysis of the Single-Shaft Coaxial Motor-Pump Assembly in Electrohydrostatic Actuators

Published on: June 13, 2022

2.5K

Digital-twin driven alignment control method for marine shafting with air spring vibration isolation system.

Song Liu1,2, Liang Shi3,4, Wei Xu3,4

  • 1Naval University of Engineering, Wuhan, Hubei, China. liusong13a@nudt.edu.cn.

Scientific Reports
|January 8, 2025
PubMed
Summary

This study introduces a digital twin-driven method for precise marine shafting alignment control using air spring vibration isolation systems (ASVISs). The approach optimizes air spring pressures to enhance ship safety and reduce noise.

Keywords:
Air spring vibration isolation system (ASVIS)Alignment controlDigital twinMarine shaftingProportional-integral-derivative (PID)

More Related Videos

Design and Application of a Fault Detection Method Based on Adaptive Filters and Rotational Speed Estimation for an Electro-Hydrostatic Actuator
06:45

Design and Application of a Fault Detection Method Based on Adaptive Filters and Rotational Speed Estimation for an Electro-Hydrostatic Actuator

Published on: October 28, 2022

1.6K
Optimization, Test and Diagnostics of Miniaturized Hall Thrusters
12:22

Optimization, Test and Diagnostics of Miniaturized Hall Thrusters

Published on: February 16, 2019

8.9K

Related Experiment Videos

Last Updated: Jun 3, 2025

Modeling and Experimental Analysis of the Single-Shaft Coaxial Motor-Pump Assembly in Electrohydrostatic Actuators
08:59

Modeling and Experimental Analysis of the Single-Shaft Coaxial Motor-Pump Assembly in Electrohydrostatic Actuators

Published on: June 13, 2022

2.5K
Design and Application of a Fault Detection Method Based on Adaptive Filters and Rotational Speed Estimation for an Electro-Hydrostatic Actuator
06:45

Design and Application of a Fault Detection Method Based on Adaptive Filters and Rotational Speed Estimation for an Electro-Hydrostatic Actuator

Published on: October 28, 2022

1.6K
Optimization, Test and Diagnostics of Miniaturized Hall Thrusters
12:22

Optimization, Test and Diagnostics of Miniaturized Hall Thrusters

Published on: February 16, 2019

8.9K

Area of Science:

  • Marine Engineering
  • Control Systems
  • Vibration Analysis

Background:

  • Accurate shafting alignment is critical for marine propulsion system safety and stability.
  • Air spring vibration isolation systems (ASVISs) can mitigate noise and adjust alignment but face control challenges.

Purpose of the Study:

  • To propose a digital twin (DT)-driven method for accurate marine shafting alignment control.
  • To address the challenge of precisely controlling shafting alignment using ASVISs.

Main Methods:

  • A neural network-based digital twin prediction model was developed to map air spring pressures to shafting alignment states.
  • Shafting alignment control was formulated as a non-linear optimization problem, minimizing alignment error and balancing air spring loads.
  • A genetic algorithm was employed for global optimization of air spring pressures, coupled with a PID-based soft-constrained controller for precise control policy generation.

Main Results:

  • The digital twin model effectively described the relationship between air spring pressures and shafting alignment.
  • The genetic algorithm successfully identified optimal air spring pressures to minimize alignment errors.
  • The PID-based controller accurately generated control policies for real-world ASVIS implementation.

Conclusions:

  • The proposed digital twin-driven method provides an effective solution for marine shafting alignment control.
  • This approach enhances the performance of ASVISs in marine applications.
  • The study validates the feasibility and effectiveness of the alignment control strategy in a real-world system.