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| Company Info. |
| Zhejiang Huier Coating Environmental Protection Equipment Co., Ltd |
| Verified Supplier |
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| Product List |
I. Working Principle
1. Cavitation Effect
The ultrasonic generator converts electrical energy into a
high-frequency electrical signal (20-40kHz). The transducer
transmits this high-frequency vibration to the cleaning fluid,
creating alternating, dense and sparse acoustic pressure
fluctuations.
Microscopic bubbles form in the liquid, which repeatedly expand and
close under the action of the sound waves, instantly generating
thousands of atmospheres of pressure and high temperatures
(reaching over a thousand degrees Celsius in some areas), stripping
away dirt from the workpiece surface.
2. Auxiliary Mechanism
Straight Flow Effect: Ultrasonic waves propel the liquid into a
unidirectional flow, impacting contaminants trapped in crevices on
complex surfaces.
Acceleration Effect: High-frequency vibrations accelerate dirt
particles away from the workpiece surface, improving cleaning
efficiency.
II. Technical Parameter Examples
| Parameters | Typical Range |
| Frequency Range | 20-40kHz (customizable low frequency) |
| Heating Power | 3-15kW (adaptable volume) |
| Filtering Rating | 1-50μm (multi-level adjustable) |
| Power Supply Specifications | 220V/380V AC, 50/60Hz |
Application Scenarios
Industrial: Cleaning oil stains from precision parts, removing
mold particles;
Medical: Sterilizing surgical instruments, removing organic matter
from laboratory vessels;
Semiconductor and Optics: Damage-free cleaning of wafer surfaces,
pre-treatment of lens coatings.
Operating Precautions
1. Cleaning Fluid Selection: Match the workpiece material (e.g.,
alkaline fluid for metal parts, neutral fluid for precision parts);
2. Parameter Setting: Extend the cleaning time for complex
workpieces, and reduce the power for brittle materials to avoid
cavitation damage.
3. Maintenance Requirements: Regularly clean the bottom of the
tank, replace the filter bag, and check the transducer's tightness.
I. Core Structure
1. Ultrasonic Generator
Converts electrical energy into a high-frequency electrical signal
(typical frequency 20-40kHz). The power and frequency are adjusted
to optimize cleaning results. Some devices support programmable
parameter settings (such as cleaning time and power).
Built-in components such as a power transformer, oscillator, and
power amplifier ensure stable high-frequency signal output.
2. Transducer
Material and Type
Primarily piezoelectric ceramic (such as lead zirconate titanate
PZT). Some use composite transducers or sandwich structures to
improve energy conversion efficiency.
Mounting Method
Fixed to the bottom or side of the cleaning tank, the device
transmits mechanical vibration energy via a coupling agent. A
vibration damping device is designed at the bottom to reduce
mechanical loss. 3. Cleaning Tank
Material: Primarily stainless steel (304/316L), offering both corrosion resistance and high strength. Some laboratory equipment utilizes polypropylene (PP) or polytetrafluoroethylene (PTFE) to accommodate specialized media.
Structural Design: A double-layer stainless steel tank with a vibration damping layer or internal ultrasonic radiation surfaces optimizes the sound wave propagation path and enhances cavitation uniformity.
II. Auxiliary Systems
1. Temperature Control and Heating Module
Built-in electric heating tubes or titanium alloy coils maintain the cleaning fluid temperature (typically 30-80°C) through steam/electric heating. Some industrial models support temperatures up to 100°C.
Integrated high-precision temperature sensors and a PLC provide constant temperature control and over-temperature protection.
2. Circulating Filtration System
Filtration Component: Equipped with PP filter bags (1-50μm precision) or activated carbon adsorption modules, it removes suspended particles and organic matter in stages.
Circulating Pump: A corrosion-resistant magnetic pump drives the
tank fluid flow, combined with sealed piping to prevent leaks and
reduce sediment accumulation. 3. Safety and Control System
Protective Design: The tank cover is equipped with a splash-proof
seal and a pressure relief valve to prevent liquid splashing or
abnormal pressure.
Monitoring Module: A liquid level sensor, leakage protection
device, and emergency stop function are integrated to ensure safe
operation.
III. Other Key Components
1. Suspension and Fixtures
A patented tilting bracket or spiral groove design prevents direct
contact between the workpiece and the tank bottom, minimizing blind
spots.
Customizable fixtures accommodate complex workpieces (such as
camshafts and pipes) to ensure uniform ultrasonic energy coverage.
2. Chamber and Support Structure
The external chamber is constructed of steel plates or a
corrosion-resistant frame, with built-in vibration damping material
to reduce noise (≤65dB on some models).
The panel integrates the operating interface, including an ammeter,
power switch, and frequency adjustment knob.
Features:
1.High cost performance: Based on the customer's product
positioning and development strategy, and with economic
affordability as the foundation, we achieve the best cost
performance.
2.The advanced and meticulous design concept of the equipment,
along with the highly automated industrial equipment, showcases the
image of a modern and advanced enterprise.
3. It has high adaptability, meeting the current production
requirements and reserving room for development, taking into
account the needs of increased production and improved quality in
the future.
4.Quality compliance strictly adheres to the ISO900 quality
management system, with every minute detail of the entire equipment
installation being strictly controlled.

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