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Laser Measurement and Numerical Simulation of Elastomer Stopper Motion During High-Altitude Shipping of Pharmaceutical Syringes

Kirk Roffi, Naveed Siddiqui, Samantha Portelli, Divya Sharma, Jennifer Juneau, Parag Kolhe and Advait Badkar
PDA Journal of Pharmaceutical Science and Technology July 2023, pdajpst.2022.012809; DOI: https://doi.org/10.5731/pdajpst.2022.012809
Kirk Roffi
Pfizer
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  • For correspondence: kdr152004@gmail.com
Naveed Siddiqui
Pfizer
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  • For correspondence: naveed.siddiqui@pfizer.com
Samantha Portelli
Pfizer
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  • For correspondence: samantha.portelli@pfizer.com
Divya Sharma
Pfizer
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  • For correspondence: divya.sharma2@pfizer.com
Jennifer Juneau
Pfizer
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  • For correspondence: jennifer.juneau@pfizer.com
Parag Kolhe
Pfizer
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  • For correspondence: parag.kolhe@pfizer.com
Advait Badkar
Pfizer
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  • For correspondence: advait.v.badkar@pfizer.com
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Abstract

During high-altitude shipping of pre-filled syringes, pressure differentials can cause the elastomer stopper to move unintentionally. This motion represents a risk to container closure integrity and drug product sterility. To understand and quantitate this risk, we combined high-accuracy laser measurements and numerical simulations of stopper motion. We tested the effects of syringe barrel siliconization, stopper design, syringe orientation, and altitude rate on stopper displacement; only the siliconization factor had a significant effect. Our observations were compared with two mathematical models based on Boyle′s Law and a force balance approach. For well-lubricated syringes, stopper motion was reasonably predicted by Boyle′s Law (residual ≤ 10%). When the lubricant amount was reduced, Boyle′s Law failed to accurately predict stopper motion (residual ≈ 40%). To simulate stopper motion more accurately, we developed a dynamic model in MATLAB-Simulink to incorporate the dry and viscous friction inherent to the lubricated interference fit. Using a Coulomb-viscous subroutine, deviations from Boyle′s Law were successfully explained in terms of the displacement, but the system dynamics were not fully accurate. The combination of laser measurements and numerical simulation has yielded unique insight into stopper motion during high-altitude shipping. These tools can provide valuable input to a risk-based drug development strategy to enable global distribution of pre-filled syringes.

  • Laser
  • Matlab
  • modeling
  • shipping
  • simulation
  • syringe
  • Received November 15, 2022.
  • Accepted June 29, 2023.
  • Copyright © 2023, Parenteral Drug Association

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PDA Journal of Pharmaceutical Science and Technology: 79 (1)
PDA Journal of Pharmaceutical Science and Technology
Vol. 79, Issue 1
January/February 2025
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Laser Measurement and Numerical Simulation of Elastomer Stopper Motion During High-Altitude Shipping of Pharmaceutical Syringes
Kirk Roffi, Naveed Siddiqui, Samantha Portelli, Divya Sharma, Jennifer Juneau, Parag Kolhe, Advait Badkar
PDA Journal of Pharmaceutical Science and Technology Jul 2023, pdajpst.2022.012809; DOI: 10.5731/pdajpst.2022.012809

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Laser Measurement and Numerical Simulation of Elastomer Stopper Motion During High-Altitude Shipping of Pharmaceutical Syringes
Kirk Roffi, Naveed Siddiqui, Samantha Portelli, Divya Sharma, Jennifer Juneau, Parag Kolhe, Advait Badkar
PDA Journal of Pharmaceutical Science and Technology Jul 2023, pdajpst.2022.012809; DOI: 10.5731/pdajpst.2022.012809
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