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Last Updated: Apr 25, 2025 | Study Period: 2023-2030
In industrial, electrical, structural, and ergonomic applications where resonance and vibration are present, vibration dampening material is utilized to minimize or eliminate noise. Our viscoelastic polymer, Sorbothane, has been employed in a variety of products, including small appliances and protective footwear.
In ergonomic, industrial, and electrical applications where it is necessary to reduce the amount of energy a system produces, the term "vibration damping" is employed. After a vibration has been dampened, energy is sent through the proper channels, which reduces the propagation of noise.
Numerous factors can make vibration undesirable. It could appear as a little irritation or as a potentially disastrous environmental component. Our solutions at Technicon Acoustics use a variety of dampening materials to ensure that vibration is stopped before it becomes a problem.
The details of their intended application dictate which material is acceptable for vibration damping. The following are some of the most popular vibration-damping materials: Rubber is the perfect material for applications requiring vibration dampening.
It swiftly isolates vibration by absorbing energy and then releasing it as heat back into the environment. Even though it lacks true damping properties by itself, it can be an effective tool when combined with other materials. Rubber is a great material for absorbing vibration energy since it absorbs energy and releases it as heat while also having low vibration dampening effects.
The Global Vibration damping materials market accounted for $XX Billion in 2022 and is anticipated to reach $XX Billion by 2030, registering a CAGR of XX% from 2023 to 2030.
Small satellites can be made better, faster, cheaper, and lighter by using whole-spacecraft. International Fabreeka, Inc. launch-vibration damping materials using vibration isolation technologies, which do this by lowering the design-load and vibration-test requirements for on-board components.
Using superelastic shape memory alloy technology, a three-axis passive launch-vibration isolation device was created in this work to drastically reduce the dynamic launch loads conveyed to a tiny satellite.
This results in a superior damping characteristic, which is made possible by multilayered thin plates of viscous lamina sticky acrylic tape stiffening superelastic SMA blades.
A static stress test was used to determine the fundamental properties of the proposed isolation system with different numbers of viscoelastic multilayers. Additionally, a launch environment simulating sine and random vibration tests was used to verify the design's efficacy.
Sl no | Topic |
1 | Market Segmentation |
2 | Scope of the report |
3 | Abbreviations |
4 | Research Methodology |
5 | Executive Summary |
6 | Introduction |
7 | Insights from Industry stakeholders |
8 | Cost breakdown of Product by sub-components and average profit margin |
9 | Disruptive innovation in the Industry |
10 | Technology trends in the Industry |
11 | Consumer trends in the industry |
12 | Recent Production Milestones |
13 | Component Manufacturing in US, EU and China |
14 | COVID-19 impact on overall market |
15 | COVID-19 impact on Production of components |
16 | COVID-19 impact on Point of sale |
17 | Market Segmentation, Dynamics and Forecast by Geography, 2023-2030 |
18 | Market Segmentation, Dynamics and Forecast by Product Type, 2023-2030 |
19 | Market Segmentation, Dynamics and Forecast by Application, 2023-2030 |
20 | Market Segmentation, Dynamics and Forecast by End use, 2023-2030 |
21 | Product installation rate by OEM, 2023 |
22 | Incline/Decline in Average B-2-B selling price in past 5 years |
23 | Competition from substitute products |
24 | Gross margin and average profitability of suppliers |
25 | New product development in past 12 months |
26 | M&A in past 12 months |
27 | Growth strategy of leading players |
28 | Market share of vendors, 2023 |
29 | Company Profiles |
30 | Unmet needs and opportunity for new suppliers |
31 | Conclusion |
32 | Appendix |