Showing 39,361 - 39,380 results of 123,020 for search '(( 2 e decrease ) OR ( 5 ((point decrease) OR (((mean decrease) OR (a decrease)))) ))', query time: 2.15s Refine Results
  1. 39361

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  2. 39362

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  3. 39363

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  4. 39364

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  5. 39365

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  6. 39366

    Frequency-Dependent Effects of Pulsatile Flow on Particle Inertial Focusing and Separation in Sinusoidal Microchannels by Amith Mudugamuwa (20841943)

    Published 2025
    “…At 5 Hz, the purity decreased notably for 15 μm particles (from 94% to 71%) and slightly for 10 μm particles (from 99% to 94%), while at 10 Hz, purities remained close to the steady flow values. …”
  7. 39367
  8. 39368
  9. 39369
  10. 39370

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  11. 39371

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  12. 39372

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  13. 39373

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  14. 39374

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  15. 39375

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  16. 39376

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  17. 39377

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  18. 39378

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  19. 39379

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
  20. 39380

    Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation by Aaqib H. Khan (9407159)

    Published 2022
    “…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”