SubjectsPolymer ProcessingLesson 04 · Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems
Processing & ManufacturingLesson 0419 PPE Syllabus Aligned

Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems

Learn how hollow plastic containers — bottles, tanks, jerrycans — are manufactured through blow moulding, covering both extrusion blow moulding and injection stretch blow moulding (ISBM) used for PET bottles.

~35 min technical deep-dive·Standard Indian Curricula (CIPET / Anna Univ / ICT)

01 · Why This Matters in Industry & GATE XE-F

Applied directly across petrochemical refining, compounding plants, mold-flow simulations, and automotive part manufacturing (e.g., Reliance Industries, Supreme Petrochem, IOCL, CIPET testing protocols).

1

Molecular Mechanism: Master conformational physics, transition temperatures, and reaction kinetics.

2

Process & Quality: Predict viscosity behavior, solve molding defects, and apply ASTM/ISO testing standards.

02 · Technical Theory & Governing Equations

Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems

Melt flow and cooling line setup - Visual reference for Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems
Melt flow and cooling line setup - Visual reference for Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems

1. Why This Topic Matters

Blow moulding is the primary manufacturing method for hollow thermoplastic containers, ranging from small pharmaceutical bottles (10extmL10 ext{ mL}) to fuel tanks and large industrial drums (220extL220 ext{ L}). The three main variants are Extrusion Blow Moulding (EBM), Injection Blow Moulding (IBM), and Injection Stretch Blow Moulding (ISBM). Understanding parison programming, blow ratio (BRBR), wall thickness distribution, and biaxial orientation is critical for light-weighting and burst-strength optimization.

2. Learning Objectives

By completing this lesson, you will be able to:

  • Differentiate EBM, IBM, and 2-stage ISBM processes by container precision and material suitability.
  • Calculate blow expansion ratio (BRBR) and average container wall thickness.
  • Explain parison sag kinetics and electronic parison programming.
  • Diagnose pinch-off weld failure, thin corners, and rocker bottom defects.

3. Process Architecture Comparison

mermaid
graph TD
    A["Process Selection"] --> B["Extrusion Blow Moulding (EBM)"]
    A --> C["Injection Stretch Blow Moulding (ISBM)"]
    B --> D["Extrude Tubular Parison -> Clamp Mould -> Pinch Bottom -> Air Blow"]
    C --> E["Injection Mould Preform -> Reheat -> Stretch Rod + Biaxial Air Blow"]
    D --> F["HDPE / PP Containers (Handles, Flash Trimming Required)"]
    E --> G["PET Bottles (High Clarity, Biaxial Strength, Zero Flash)"]

4. Equations & Blow Ratio Calculation

4.1 Blow Expansion Ratio & Wall Thickness Qualification

The Blow Expansion Ratio (BRBR) measures circumferential stretching from parison diameter dpd_p to mold cavity diameter DcD_c:

BR = rac{D_c}{d_p}

Assuming constant polymer volume, the average final container wall thickness tavgt_{avg} is estimated from initial parison wall thickness tpt_p:

t_{avg} approx rac{t_p}{BR} = t_p left( rac{d_p}{D_c} ight)
Core Engineering Takeaway

[!NOTE] Idealized Constant-Volume Qualification: The calculated average wall thickness tavgt_{avg} represents an idealized uniform-thinning estimate under constant-volume assumptions. Real container wall thickness distribution is non-uniform due to parison sag, die swell, dynamic wall thickness programming, axial draw, and corner stretching.

4.2 Biaxial Stretch Ratios in ISBM (PET Bottles)

For Injection Stretch Blow Moulding (ISBM), stretching is biaxial:

  • Hoop Stretch Ratio (SRhoopSR_{hoop}): SR_{hoop} = rac{D_{bottle}}{d_{preform}} (3.54.5imes3.5 - 4.5 imes)
  • Axial Stretch Ratio (SRaxialSR_{axial}): SR_{axial} = rac{L_{bottle}}{l_{preform}} (2.03.0imes2.0 - 3.0 imes)
  • Total Area Stretch Ratio (SRareaSR_{area}): SRarea=SRhoopimesSRaxialSR_{area} = SR_{hoop} imes SR_{axial} (8.012.0imes8.0 - 12.0 imes)

Worked Numerical Example:

Problem: An HDPE milk jug is produced via EBM using an extruded parison of outer diameter dp=40.0extmmd_p = 40.0 ext{ mm} and wall thickness tp=3.20extmmt_p = 3.20 ext{ mm}. The cylindrical mold cavity has a diameter of Dc=120.0extmmD_c = 120.0 ext{ mm}. Calculate:

  1. Blow expansion ratio (BRBR)
  2. Estimated average container wall thickness (tavgt_{avg})

Solution:

  1. Blow Expansion Ratio (BRBR):
BR = rac{120.0 ext{ mm}}{40.0 ext{ mm}} = 3.00
  1. Estimated Average Wall Thickness (tavgt_{avg}):
t_{avg} = rac{3.20 ext{ mm}}{3.00} = 1.067 ext{ mm}

5. Industrial Applications

  • PET Carbonated Soft Drink Bottles: 2-stage stretch blow moulding in Silvassa plant. (Illustrative Indian industry scenario based on beverage packaging operations).

6. Key Takeaways & Glossary

  • Parison: Extruded hollow molten tube used in EBM.
  • Preform: Injection-moulded test-tube shaped entry piece used in IBM/ISBM.

7. Sources & Standard References

  1. ISO 23559:2011 — Plastics — Guidance for the specification and testing of blow-moulded containers, ISO.
  2. Lee, N. C. (2006). Practical Guide to Blow Molding, Hanser Publishers.

Blow Moulding: Extrusion Blow (EBM), Injection Blow (IBM) & ISBM Systems · Engineering Triad

Material Synthesis · Processing Hardware · Commercial Application

ASTM / ISO Aligned
1. MaterialResin / Chemistry

Polypropylene Homopolymer (PP-H)

—[CH₂—CH(CH₃)]ₙ— (Isotactic, PDI ~ 3.5–5.0)

Melt Flow Rate:12–25 g/10min
Melt Temp (Tm):160–165 °C
Mold Shrinkage:1.2–2.0%
Flexural Modulus:1,400–1,600 MPa
Morphology: Spherulitic monoclinic alpha-crystal structure
2. Machine & MouldShop Floor

180-Ton Electric Toggle Injection Moulding Machine

Reciprocating Screw (L/D = 22:1, Compression Ratio 3:1)

Barrel Temps (Z1-Z4):200–235 °C
Injection Pressure:80–120 MPa
Holding Pressure:50–70 MPa
Mold Cooling Temp:30–45 °C
Tooling: 4-Cavity Cold-Runner P20 Hardened Steel Tool with Sub-Gates
3. Real ProductApplication

Automotive Interior Door Trims & Battery Casings

High-stiffness thin-walled automotive structural components

Standard:ASTM D4101 / ISO 19069-1 / JIS K6921
Resin Grades: Reliance Repol H110MA, SABIC PP 575P, HPCL PP1110
Section 05 · Knowledge Check

Test Your Conceptual Understanding

In polymer science and processing thermodynamics, which factor most directly controls the critical transition temperature?

Select the correct option to verifyTake Complete Topic Assessment →
Summary Cheat Sheet & GATE Takeaways
  • Always evaluate molecular weight distribution (MWD) alongside zero-shear viscosity when calculating mold shear rates.
  • Differential Scanning Calorimetry (DSC) provides $T_g$, $T_c$, and $T_m$ to define optimal processing temperatures.
  • Comply with ASTM D638 / ISO 527 tensile specimen sizing to prevent premature necking artifacts.
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