A gas channel separates the heater and sensing element to limit direct heating and improve thermal conductivity detection accuracy for hydrogen.
Natural convection through an internal inlet-channel-outlet path boosts hydrogen sensing sensitivity while lowering sensor manufacturing cost.
Segmented conductor bars switch between heating and sensing to boost thermal conductivity sensitivity and enable drift diagnostics.
A neural network replaces repetitive finite element thermal-bridge analysis to predict building temperature and heat-flow distributions faster.
Heating and measuring components in one MEMS cavity capture gas heat characteristics for accurate multi-component concentration sensing.
Parallel sensing elements measure flow at multiple tube locations, enabling faster bidirectional readings without medium-specific recalibration.
Inductive heating and thermal imaging classify composite connection points by surface temperature change, revealing air gaps and cracks non-destructively.
Adjustable front and rear apertures block holder and edge reflections, improving thermal conductivity and heat capacity measurements.
Periodic heating and infrared thermometry reveal low thermal resistance at deeply buried semiconductor interfaces without destructive sectioning.
A decoupled microheater and thin-film sensor cut thermal mass and power use, enabling more accurate trace vapor detection.
Portable acoustic and infrared sensing quantifies material thermal resistance and sleep environment suitability without lab-grade test equipment.
Standard vacuum hardware and a refitted cryogenic pump create a flexible cryogenic chamber with adjustable temperature control for varied property tests.
Multiple resistance members and thermal correction reduce flow-rate interference, improving target substance detection accuracy.
Combining flow, ultrasonic, and microthermal sensing in one meter enables near-user gas energy billing without separate calorific devices.
Combining thermal emission and reflected radiation detection improves reliable, non-destructive measurement of near-surface layer thickness and coating quality.
Frequency-modulated pump-probe imaging measures thermal conductivity and diffusivity across many sample sites at once, cutting characterization time.
Multi-point calibration uses synthetic 0 and 25 mol% parahydrogen gases to replace costly catalyst tubes.
Multiple detection elements use different heat dissipation characteristics to improve multi-substance accuracy and reduce measurement time.
MEMS probe arrays use density and thermal-response measurements to identify multiple gases without frequent calibration.