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Flexural Stress01:16

Flexural Stress

734
When analyzing bending in symmetric members, it's crucial to understand how stresses distribute when subjected to bending moments. This stress distribution is effectively described by applying fundamental mechanics and material science principles, particularly Hooke's Law for elastic materials.
Hooke's Law states that within the material's elastic limits, stress is directly proportional to strain. In a member experiencing a bending moment, the strain at any point is relative to its distance...
734
ATP Driven Pumps I: An Overview01:27

ATP Driven Pumps I: An Overview

9.9K
ATP-driven pumps, also known as transport ATPases, are integral membrane proteins. They have binding sites for ATP located on the membrane's cytosolic side and the ion-conducting domain in the transmembrane region. These pumps use the free energy released from ATP hydrolysis to move the solutes across cell membranes against an electrochemical gradient.
There are four main types of ATP-driven pumps - P-type, V-type, F-type, and ABC transporter. All these pumps are of varying complexities and...
9.9K
Xylem and Transpiration-driven Transport of Resources02:03

Xylem and Transpiration-driven Transport of Resources

26.7K
The xylem of vascular plants distributes water and dissolved minerals that are taken up by the roots to the rest of the plant. The cells that transport xylem sap are dead upon maturity, and the movement of xylem sap is a passive process.
26.7K
ATP Driven Pumps II: P-type Pumps01:34

ATP Driven Pumps II: P-type Pumps

6.4K
The P-type pumps are a large family of integral membrane transporter ATPases. They are divided into five major types based on substrate specificity, from I to V.
A typical P-type pump has three cytosolic domains: nucleotide-binding (N), phosphorylation (P), and activator (A) domains. These domains are connected to the membrane-spanning helices by short amino acid segments. ATP hydrolysis and covalent phosphoenzyme intermediate formation are crucial parts of the catalytic cycle. At the highly...
6.4K
ATP Driven Pumps III: V-type Pumps01:30

ATP Driven Pumps III: V-type Pumps

4.8K
V-type pumps are ATP-driven pumps found in the vacuolar membranes of plants, yeast, endosomal and lysosomal membranes of animal cells, plasma membranes of a few specialized eukaryotic cells, and some prokaryotes. They are also known as the V1Vo-ATPase, that couple ATP hydrolysis to transport protons against a concentration gradient.
The peripheral or cytosolic V1 domain with eight subunits is involved in ATP hydrolysis. The integral or transmembrane V0 domain containing at least five subunits...
4.8K
Molecular Shapes01:18

Molecular Shapes

62.0K
Molecules have characteristic shapes that are crucial for their function. The arrangement of various electron groups around the central atom dictates their molecular geometry. Electron pairs in the valence shell of a central atom will adopt an arrangement that minimizes repulsions between the electron pairs by maximizing the distance between them. The valence electrons form either bonding pairs, located primarily between bonded atoms, or lone pairs.
Two regions of electron density in a diatomic...
62.0K

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Related Experiment Video

Updated: Feb 3, 2026

3D Printing - Evaluating Particle Emissions of a 3D Printing Pen
06:44

3D Printing - Evaluating Particle Emissions of a 3D Printing Pen

Published on: October 9, 2020

9.1K

Note: A 3D-printed flexure nanostage driven by piezo buzzers.

Sang Heon Lee1

  • 1Department of Mechanical Design Engineering, Andong National University, Andong, Gyungbuk 36729, South Korea.

The Review of Scientific Instruments
|November 8, 2018
PubMed
Summary

This study introduces a low-cost, 3D-printed flexure nanostage for precise motion control. The novel design overcomes limitations, enabling 10-micrometer linear movement with 30V input.

Area of Science:

  • Mechanical Engineering
  • Nanotechnology
  • Additive Manufacturing

Background:

  • Traditional nanostages are often expensive and complex to manufacture.
  • Limitations in materials, fabrication precision, and actuator force hinder accessibility.
  • The need for low-cost, high-precision motion systems is critical in various scientific fields.

Purpose of the Study:

  • To propose a novel flexure nanostage design.
  • To enable low-cost, at-home manufacturing using 3D printing.
  • To demonstrate single degree-of-freedom motion with reduced crosstalk.

Main Methods:

  • Design and fabrication of a flexure nanostage prototype using a three-dimensional (3D) printer.
  • Incorporation of specifically designed flexure holes to mitigate limitations.

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  • Utilizing 3D-printing exclusively for the fabrication of these critical holes.
  • Main Results:

    • The 3D-printed nanostage prototype demonstrated single degree-of-freedom linear motion.
    • Limitations related to material, fabrication precision, and actuator force were successfully addressed.
    • Effective reduction of crosstalk was achieved through innovative flexure hole design.
    • The stage achieved linear motion over a 10-micrometer distance within a 30V range.

    Conclusions:

    • A low-cost, manufacturable flexure nanostage is achievable with 3D printing.
    • The proposed design overcomes key limitations in precision motion systems.
    • This technology offers a viable solution for accessible nanotechnology research and development.