7M27100019 Allicdata Electronics
Allicdata Part #:

7M27100019-ND

Manufacturer Part#:

7M27100019

Price: $ 0.35
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: TXC Corporation
Short Description: CRYSTAL 27.12MHZ 12PF SMD
More Detail: 27.12MHz ±30ppm Crystal 12pF 4-SMD, No Lead
DataSheet: 7M27100019 datasheet7M27100019 Datasheet/PDF
Quantity: 1000
3000 +: $ 0.31809
Stock 1000Can Ship Immediately
$ 0.35
Specifications
Series: 7M
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: MHz Crystal
Frequency: 27.12MHz
Frequency Stability: ±30ppm
Frequency Tolerance: ±30ppm
Load Capacitance: 12pF
Operating Mode: --
Operating Temperature: -20°C ~ 70°C
Ratings: --
Mounting Type: Surface Mount
Package / Case: 4-SMD, No Lead
Size / Dimension: 0.126" L x 0.098" W (3.20mm x 2.50mm)
Height - Seated (Max): 0.032" (0.80mm)
Description

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Crystals are one of the oldest and most mysterious building blocks of nature. Within their complex molecular structure, they possess an almost endless array of properties that make them perfect candidates for an endless array of applications, including 7M27100019. By controlling the crystalline structure, a wide range of functions can be achieved.

The 7M27100019 application field is the production of synthetic crystal muscle, the most advanced form of artificial muscle technology. Synthetic crystal muscle is a special material that is designed to mimic the properties of biological muscle without the need for electricity or biochemical reactions. It is composed of thousands of tiny crystals that can contract and expand in response to changes in temperature and pressure. The crystals are arranged in specialized mesostructures, or lattice-like formations, that allow them to move and flex in three dimensions. By varying the types of crystals and the structure of these mesostructures, different materials with specific mechanical, electrical, and chemical properties can be created.

The working principle of 7M27100019 is based on the intricacies of crystalline changes. As the temperatures and pressures in their surroundings fluctuate, the crystals are forced to rearrange into new, more stable formations. This reaction creates a force called a crystalline force, which can be harnessed to create mechanical movement. By carefully controlling the temperature and pressure around the crystals, engineers can alter their behavior and induce movement. In synthetic crystal muscle, the crystalline structure of the material is tuned in such a way that it behaves like a biological muscle, contracting and expanding in response to changes in temperature and pressure.

The control of heat flow is an important aspect of 7M27100019. Through careful engineering, the temperature of the crystals can be precisely controlled within a range of hundreds of degrees. This allows them to remain within the optimal range of temperatures and pressures for efficient operation. With the technology, engineers can precisely manipulate the force generated by the crystals to create incredibly precise movements, even to the sub-nanometer level.

At the heart of 7M27100019 lies the use of crystalline structures to induce movement. By carefully engineering the crystalline structure, a range of different properties could be achieved, from heat and pressure power to ceramic resistance. In the case of synthetic muscle, the crystalline structure was used to induce movement by manipulating the temperature and pressure of the crystals. Through precise control of the temperature, the crystals were able to move and flex in response to temperature and pressure changes, creating a force not unlike that of biological muscle.

7M27100019 is a cutting-edge technology that utilizes complex crystalline structures to produce an array of artificial muscle technologies. By carefully engineering the crystalline structure, engineers are able to manipulate the pressure and temperature of the crystals, inducing movement in response to precise temperature and pressure conditions. In this way, engineers can create precise movements with synthetic crystal muscle and a variety of other materials with different mechanical, electrical, and chemical properties.

The specific data is subject to PDF, and the above content is for reference

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