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Siemens X300 EV9-4 Endocavity Transducer Echo Scanner

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Siemens X300 EV9-4 Endocavity Transducer Echo Scanner

Country/Region china
City & Province guangzhou guangdong
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Product Details

Siemens X300 EV9-4 Endocavity Transducer/ Echo Scanner

 

Siemens EV9-4 Endocavity Transducer

 

1. Type: Endovaginal
2. Frequency:9-4MHz
3. Compatible system: X150/X300/X500/G20/G40/G50/G60
4. Application: intracavity transvaginal and gynecology
7. Lead time:1-3 days


 
 

 

Knowledge point

 

 

Structure of the transducer

 

The parameters of the transducer performance, which influence the quality of ultrasound images, are the axial and lateral resolution and sensitivity. The axial resolution is determined mostly by the frequency of the ultrasound wave. As the frequency increases, the wavelength decreases, which is advantageous because it provides a better distinction between a target and other objects. The lateral resolution along the direction orthogonal to the axial direction is determined by the beam profile of the transducer. A narrower beam leads to better resolution along the lateral direction. The sensitivity of the transducer determines the contrast ratio of the ultrasonic images. A transducer with higher sensitivity can generate a brighter image of the target. The transducer is designed to acquire high-quality images by enhancing these performance parameters.

 

A typical 1D array transducer is composed of an active layer, acoustic matching layers, a backing block, an acoustic lens, kerfs, a ground sheet (GRS), and a signal flexible printed circuit board (FPCB). The active layer is usually made of a piezoelectric material—mostly piezoceramic. The active layer generates an ultrasound wave in response to an electric driving signal, receives the wave reflected at the boundary of an organ, and converts the received ultrasound wave to an electric signal by means of the piezoelectric effect. However, the big difference in the acoustic impedance between piezoceramic elements and a human body prevents the efficient transfer of ultrasonic energy between the two media. The acoustic matching layers are used to facilitate the transfer of ultrasound energy. Each matching layer has a thickness of one-quarter wavelength at the center frequency of the transducer. The backing block is used to absorb the ultrasound wave propagating backward from the piezoelectric element. If the backward wave is reflected at the bottom of the backing block and returned to the piezoelectric element, it can cause noise in the ultrasound image. Thus, the backing block should have a high attenuation. In addition to this material damping, several structural variations have been implemented to increase the scattering effects inside the backing block, e.g., inserting grooves or rods in the block . The backing block commonly has an acoustic impedance between 3 and 5 Mrayl. If the backing block has an acoustic impedance that is too high, the acoustic energy generated by the piezoelectric element will be wasted by the backing block and few ultrasound waves will be transmitted to the human body. The acoustic lens protects the ultrasonic transducer from exterior damage, and focuses the ultrasound beam onto a specified point based on Snell’s law. Materials with low attenuation constants are preferred to reduce the loss of ultrasound energy inside the lens. Typical acoustic lenses are made of rubber materials for comfortable contact between the transducer and patients. The kerf is a gap between arrayed piezoelectric elements that isolates each element from its neighboring elements to reduce the crosstalk between them. The crosstalk seriously degrades the transducer performance. Therefore, various shapes and materials of the kerf have been developed to decrease the crosstalk .

 


Other Siemens probes we can offer:

 

BrandModelCompatible System
Siemens3.5C55SG50/X150/X300
Siemens6C1HDS2000
Siemens7.5L40AG20/G40
Siemens7.5L75SG20 and Prima / Adara
SiemensC7F2Antares/ X300 and X500
SiemensCH4-1Antares
SiemensCH5-2G40/G60/X150/X300
SiemensCH6-2Antares
SiemensCX5-2Antares/ Sonoline Elegra
SiemensC6-2CV70/ G50/G60/ X300/X500
SiemensC6F3G50/G60
SiemensC5F1Antares
SiemensC8-5X300
SiemensP10-4Antares
SiemensPH4-1Antares
SiemensP4-2G50/G60/CV70/X150/X300/X500
SiemensP5-1X300, X300PE
SiemensEC9-4G40/ X150/ X300/Antares
SiemensEV9F4X300 and Antares
SiemensVFX9-4Antares
SiemensVF13-5spAntares/X300/X500/G50/G60
SiemensVFX13-5Antares
SiemensVF13-5X150/X300/X500/G40 /G50/G60/ Sonoline Sienna/Sonoline Elegra
SiemensVF13-5Antares
SiemensVF10-5Antares
Siemens4V1CSequoia 512 GI, Sequoia C512, S2000
Siemens/Acuson4V1Sequoia
Siemens/Acuson6L3Acuson Sequoia
Siemens/Acuson8C4Sequoia 512 G /Sequoia C512
Siemens/Acuson8L5Sequoia 512
Siemens/Acuson8V5Sequoia
Siemens/Acuson7L3Cypress
Siemens/Acuson8V3Sequoia 512 /S1000
Siemens/Acuson9EVF4S1000/ S2000 and S3000
Siemens/Acuson9L4Acuson S2000/ Sequoia/Sequoia C512
Siemens/Acuson10V4Sequoia
Siemens/Acuson15L8WSequoia 512
Siemens/Acuson15L8Sequoia
Siemens/Acuson17L5HDSequoia 512
Siemens/Acuson18L6HDS1000, S2000, S3000
Siemens/AcusonAUX CWCypress / Cypress CV System
Siemens/AcusonC3Aspen
Siemens/AcusonEC9-4G40/ G60/X150/ X300
Siemens/AcusonEC7Aspen/ XP128
Siemens/AcusonEV-8C4Sequoia 512/ S2000
Siemens/AcusonEC-10C5Sequoia 512
Siemens/AcusonL5Aspen
Siemens/AcusonL7Aspen/128XP-10
Siemens/AcusonTE-V5MSequoia/ Sequoia C512/Sequoia 512/ Aspen/ Cypress/S1000/S2000
Siemens/AcusonTE-V5MsCypress/Sequoia/S2000/X300 systems
Siemens/AcusonV4Aspen/ XP
Siemens/AcusonV7Aspen/ XP


  

Common ultrasonic Probe Damage(Convex, Linear, Sector, Endocavity probes)

 

Common ultrasonic probe damageSolutions
Lens damage, wear, holes, swelling, delaminationLens replacement
Strain relief damage, separationStrain replacement
Nosepiece and probe separation and cracksStrain replacement
Cable cutsCable patches, possible cable replacement
Connector housing electrical damageMajor and minor electrical repairs, pin module replacement

 

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