Overview
A dual-channel TDS ASIC for inlet/outlet comparison in reverse-osmosis and purification equipment. Both channels share the same integrated conversion and temperature-correction architecture.

Dual-channel sensing ASIC designed for inlet/outlet comparison in purification equipment.
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Dual-channel sensing ASIC designed for inlet/outlet comparison in purification equipment.
A dual-channel TDS ASIC for inlet/outlet comparison in reverse-osmosis and purification equipment. Both channels share the same integrated conversion and temperature-correction architecture.
Dual-channel sensing ASIC designed for inlet/outlet comparison in purification equipment.
Dual-channel sensing ASIC designed for inlet/outlet comparison in purification equipment.
A dual-channel TDS ASIC for inlet/outlet comparison in reverse-osmosis and purification equipment. Both channels share the same integrated conversion and temperature-correction architecture.
UART, 2400 / 9600 bps, 8N1 · 3.3 V, ripple <20 mV; current <3 mA
0–3000 ppm TDS, dual channel · < 2% F.S.
Keep probes measuring the same water at least 1 m apart to reduce electrical interaction.
The official Chinese document is currently shared by every language version.
Two 0–3000 ppm TDS channels, each below 2% F.S. reference error.
0–100 °C measurement with ±0.5 °C reference accuracy.
3.3 V, below 3 mA; UART supports 2400 or 9600 bps in SOP14.
The two connected TDS probes must be the same model; bipolar drive reduces polarization.
Keep probes measuring the same water at least 1 m apart to reduce electrical interaction.
Match both NTC networks and probe types before channel-to-channel calibration.
Use isolated or exceptionally clean power in noisy appliance environments.
Use the product as part of a complete measurement workflow, not as an isolated component. Confirm the water matrix, target range and decision that the data must support.
Integrated TDS and conductivity components for dispensers, purifiers, filter-life estimation and quality indication.
Digital sensors and embedded ASICs for equipment builders, automation systems and water-intensive production.
Small-footprint sensing electronics for connected water devices, pet appliances and intelligent home products.
The applications above are common examples. If this measurement principle may solve a different problem in your field, we welcome a feasibility discussion.
Define the measurement objective and expected range.
Match the sensor, probe or analyzer to the real sample matrix.
Complete mechanical, electrical and communication integration.
Validate results with reference samples before routine operation.
Validate the complete system with representative samples. Record the reference method, temperature and installation conditions. Recheck after cleaning, replacement or process changes, and define a maintenance interval from actual fouling rather than a fixed assumption.
The product platform is defined, but range, calibration and installation must still be confirmed against the actual water matrix and project objective.
Confirm power, interface, cable length, enclosure, sampling frequency, probe position and the host system data format.
Compare representative samples with an agreed reference method and document the acceptance criteria before commissioning.
Yes. Ask for the current ordering specification and describe your application so the correct materials can be supplied.

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Tell us what you need to measure. Our product and application team will reply by email.