Products Description
It allows for processes such as extraction at normal temperature and pressure, ultrasonic extraction, ultrasonic recovery extraction, and ultrasonic counter-current extraction. This device can perform ultrasonic dynamic continuous counter-current recovery extraction, making it suitable for pharmaceutical and biological product companies, enterprises, laboratories, and the R&D departments of pharmaceutical and biological product ACE for various production purposes.
Products parameters
Parameters of Ultrasonic Extraction:
Optimum Ambient(ºC) | 5~35 | |||
Power Supply(V/Hz) | Single phase 220/60 | Three phase 380/60 | ||
Host speed | Digital display frequency conversion stepless speed regulation | Digital DC stepless speed regulation | ||
Motor Rotating Control(rpm) | 10~140 | 20~130 | 20~110 | |
Rotary motor(W) | 40 | Brushless 250 | ||
Temperature Control(ºC) | Digital Display,Room Temp-99 | |||
Maximum vacuum(Pa) | 399.9(≤3mmHg) | |||
Rotary Flask(L) |
5/6 FlangetypeØ50 |
10 FlangetypeØ125 |
20 FlangetypeØ125 |
50 FlangetypeØ125 |
Collection Flask(L) | 3 | 5 | 10 | 20 |
Condenser | Vertical double serpentine tube | Vertical, main cold + sub-cool, high efficiency three-return condenser | ||
Condensation area(m2) | 0.27 |
Main cold 0.42 Deputy cold 0.22 |
Main cold 0.8 Deputy cold 0.39 |
Main cold 0.91 Deputy cold 0.52 |
Evaporation Speed(L/h) |
Water≥2 Alcohol≥4 |
Water≥3.5 Alcohol≥7 |
Water≥5 Alcohol≥13 |
Water≥10 Alcohol≥23 |
Water bath material | Stainless Steel | |||
Bath Size(mm) | Φ300×170 | Φ350×220 | Φ450×260 | Φ550×320 |
Lift Type | Electric(Automatic) lift | |||
Lift Distance(mm) | 0~150 | 0~160 | 0~190 | 0~180 |
Motor Power(kW) | 2.0 | 3.0 | 4.0 | 4.0(220V) |
Dimension(mm) | 860×500×1000 | 920×550×1700 | 1250×600×2100 | 1320×770×2340 |
working principle
Generation of Ultrasonic Extraction:
An ultrasonic transducer converts electrical energy into high-frequency sound waves, typically in the range of 20 kHz to 100 kHz.
Cavitation Effect:
When these ultrasonic waves pass through the extraction solvent, they create alternating high-pressure and low-pressure cycles. During the low-pressure cycle, small vacuum bubbles or cavities form in the solvent.
These bubbles grow over successive cycles and eventually collapse violently during the high-pressure cycle. This phenomenon is known as cavitation.
Mechanical Disruption:
The collapse of the cavitation bubbles generates intense localized pressure and high shear forces. This mechanical disruption breaks the cell walls of the plant or biological material, increasing the solvent's access to the cellular contents.
As a result, the bioactive compounds are released more efficiently from the plant matrix into the solvent.
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