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Cubic Inch/Hour [in³/h]


Cubic inch per hour [in³/h] is a unit of volumetric flow rate that measures the volume of fluid or material passing through a system every hour, based on the cubic inch. One cubic inch equals approximately 16.387 milliliters. When expressed per hour, in³/h is commonly used in laboratory experiments, small-scale industrial processes, and precision fluid handling where very low flow rates need to be monitored accurately. For example, in microfluidic devices or chemical dosing systems, a flow of 100 in³/h allows precise control of reagents or liquids over time. It is also used in specialized lubrication systems, medical fluid delivery, and other applications where small, consistent volumes must be maintained. Compared to in³/day, cubic inch per hour provides finer temporal resolution, enabling operators to monitor and adjust flow in near real time. Using cubic inches per hour allows engineers, scientists, and technicians to measure, regulate, and optimize small-volume flows, ensuring accuracy, safety, and efficiency in laboratory, medical, and industrial applications requiring precise fluid control.


Centimeter/Hour [cm³/h]


Cubic centimeter per hour (cm³/h) is a unit of volumetric flow rate that measures the volume of a fluid—liquid or gas—moving through a system over one hour. One cubic centimeter is the volume of a cube with sides of one centimeter, so cm³/h quantifies how many such small volumes flow every hour. This unit is widely used in laboratory experiments, medical infusions, chemical dosing, and precision fluid systems where very low flow rates must be accurately controlled. For example, in medical applications, intravenous medication or nutrient delivery is often regulated in cm³/h to ensure patients receive the exact required dose over time. In chemical or analytical laboratories, pumps dispensing reagents rely on cm³/h measurements for accurate reactions and experiments. Compared to cm³/d, this unit provides finer resolution for processes that require monitoring on an hourly basis, making it ideal for controlled, slow, and continuous flows. Using cubic centimeters per hour allows scientists, engineers, and technicians to measure, manage, and optimize fluid delivery with high precision, ensuring accuracy, safety, and consistency in applications where small variations can significantly affect results.



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