{"id":1042,"date":"2026-09-14T08:46:08","date_gmt":"2026-09-14T08:46:08","guid":{"rendered":"https:\/\/isbmmolding.com\/?p=1042"},"modified":"2026-09-14T08:46:08","modified_gmt":"2026-09-14T08:46:08","slug":"how-many-bottles-per-hour-does-an-isbm-machine-produce","status":"publish","type":"post","link":"https:\/\/isbmmolding.com\/id\/how-many-bottles-per-hour-does-an-isbm-machine-produce\/","title":{"rendered":"How many bottles per hour does an ISBM machine produce?"},"content":{"rendered":"
The output rate of a one-step ISBM machine \u2014 measured in bottles per hour \u2014 depends on four variables that interact with each other: the machine\u2019s cycle time for your specific bottle, the cavity count of the mould set, the bottle volume (which determines how long the blow and cooling steps take), and the station configuration (3-station vs 4-station vs 6-station). Understanding how these variables combine is essential for matching the right machine model to your production requirement before purchase.<\/p>\n
ISBM output in bottles per hour is calculated from two inputs: cycle time (seconds per cycle) and cavity count (bottles produced per cycle).<\/p>\n
Bottles per hour = (3,600 \u00f7 cycle time in seconds) \u00d7 cavity count<\/strong><\/p>\n For example, a 4-station EP-HGY150-V4 running a 500 ml PET water bottle on a 2-cavity mould at a cycle time of 6 seconds produces: (3,600 \u00f7 6) \u00d7 2 = 1,200 bottles per hour. The same machine with a 4-cavity mould at the same cycle time produces 2,400 bottles per hour. This relationship is linear with cavity count: doubling the cavities doubles the output at constant cycle time.<\/p>\n Cycle time is the time from one injection shot to the next. In a one-step ISBM machine, the cycle time is determined by the longest single operation in the machine \u2014 typically the injection step, which requires sufficient time for: resin injection (0.5\u20132 seconds depending on preform weight and cavity count); packing (1\u20133 seconds to compensate for shrinkage); and cooling in the injection mould (2\u20138 seconds depending on preform wall thickness). On 4-station machines, the conditioning, blow, and ejection stations all operate in parallel with the injection station, so their durations do not add to the cycle time as long as they complete within the injection station\u2019s time window.<\/p>\n Factors that increase cycle time: larger bottle volume (heavier preform, longer injection and cooling time); thicker preform walls; more cavities per shot (larger total shot volume, longer fill time); and hot-fill applications (blow mould runs hot, requiring longer bottle cooling in the mould before ejection). Factors that decrease cycle time: 6-station configuration (additional post-blow cooling station allows shorter mould dwell time); optimised conditioning profiles; and reduced preform wall thickness through mould design refinement.<\/p>\n 4-station ISBM rotary process \u2014 all stations operate simultaneously, so cycle time is determined by the slowest station (typically injection), not the sum of all station times.<\/p>\nWhat Determines Cycle Time<\/h2>\n
<\/p>\nOutput Rates by Machine Model and Bottle Size<\/h2>\n