HAN CHANG · Carbon fiber and glass fiber molding

Carbon Fiber / Glass Fiber Hot Press Molding Machine | Ejector Series

Make part release a priority in your next composite press purchase. Han Chang’s ejector-series carbon fiber / glass fiber hot press molding machine forms and cures suitable reinforced composite molding materials under heat and pressure. An upper or lower ejector can be added on request to push the molded product out of the tool for easier manual removal.

Carbon Fiber / Glass Fiber Hot Press Molding Machine | Ejector Series
Shown with upper and lower ejection; options specified to your requirements.
Eject, then remove by handPush the product out of the mold for convenient manual removal
Tool-specific ejectionUpper or lower ejector available on request
Composite molding rangeCarbon fiber and glass fiber molding materials; 37–800 ton molding force

Machine advantages

Choose this series when convenient demolding and hands-on part removal matter to your production. From bicycle components and automotive shells to electronics housings, the press brings molding requirements and the tool’s ejection design into the same equipment decision. With 37–800 ton molding-force specifications, you can match the press to your material and mold while making repeated removal tasks easier and more efficient.

01

Make the part easier to take from the mold

The ejector pushes the molded product out of the tool so the operator can remove it more conveniently. If part release is a recurring concern on your shop floor, this is a practical feature to specify when buying a composite compression molding press.

02

Choose ejection around the tool

Specify an upper or lower ejector according to where the part remains after opening and how the mold is designed to release it. Matching this option to your tooling helps turn a general press requirement into a useful production configuration.

03

Support consistent molding and efficient handling

Appropriate heat, molding pressure and cure time, together with suitable material and tooling, provide the basis for consistent quality. Planning ejection alongside those requirements gives manual part removal the attention it needs, helping the work after curing run more smoothly.

04

Compare mold space as well as force

The specification range lets you compare molding force, platen size, daylight and stroke against the job. Include the position of the ejected part and the room needed to take it out by hand, so the selected press fits both the mold and the handling task.

Heated compression molding

Place the composite charge

Load the appropriate carbon-fiber- or glass-fiber-reinforced molding material into the mold, following the part’s charge-placement requirements.

Close, compress and cure

Form and cure the material in the closed mold under heat and pressure. Temperature, molding pressure and cure time follow the requirements of the material and component.

Open, eject and remove manually

After curing, open the mold and use the specified upper or lower ejector in accordance with the tool’s ejection design. The ejector pushes the product out of the mold; the operator then removes the part.

Materials and applications

Bicycle components and sporting goods

Applications include bicycle frame components, forks, one-piece handlebars, carbon fiber wheel rims, rackets and skis. Their different shapes and retained positions in the tool call for appropriate release arrangements. Tool-matched ejection makes it easier to plan how the operator takes each molded component out.

Automotive shells and aerodynamic parts

Rear spoilers, mirror housings, front-lip aerodynamic parts and battery-pack housings are among the composite molding applications. For shell production, consider the release direction and the room needed to handle the part as well as molding force. This makes the equipment decision useful beyond the pressing stage.

Drone structures and electronics housings

Drone bodies and wings, laptop housings and protective covers for consumer electronics can use suitable composite molding materials. Cosmetic surfaces and acceptable ejector contact locations are important tooling considerations, allowing convenient removal to be planned around the actual component.

Helmet shells

Composite helmet shells combine curved surfaces with a tool-specific parting and release arrangement. An ejector specified around that tooling can push the shell out for easier manual removal. Finished helmets require performance testing and qualification for their intended use.

Medical panels and assistive-device components

Applications include composite X-ray table panels and prosthetic or orthotic components. Flat panels and shaped supports have different handling needs, so part shape and removal space belong in the press-selection discussion. Finished medical products require the testing and regulatory qualification applicable to their intended use.

Robotic grippers and electrical insulating enclosures

Composite molding can form the required structural shape of robotic gripper components. Electrical insulating enclosures use an appropriate glass-fiber-reinforced molding material suited to the electrical application. Walls, local features and accessible handling points help guide the tool’s ejection arrangement.

Specifications and selection

The Ejector Series uses 12 specifications, from HCB-37 through HCB-800, covering 37–800 ton molding forces. Compare platen dimensions, daylight, stroke and heater capacity in the model tables below, then specify the upper or lower ejector required by your tooling.

Model HCB-37
Clamping force  (Ton) 37
Plate size (m/m) 330×340
Cylinder diameter (m/m) 150
Stroke (m/m) 370
Daylight (m/m) 450
Pump pressure (kg/cm2) 210
Motor (HP) 3
Heater capacity (Kw) 4.8
Oil reservoir capacity (gallon) 56
Machine size LxWxH (m/m) 1384x 900x 1690
Net weight approx (kg) 1100
Model HCB-50
Clamping force (Ton) 50
Plate size (m/m) 380×380
Cylinder diameter (m/m) 190
Stroke (m/m) 370
Daylight (m/m) 600
Pump pressure (kg/cm2) 210
Motor (HP) 3
Heater capacity (Kw) 5
Oil reservoir capacity (gallon) 56
Machine size LxWxH (m/m) 1555x 1050x 2060
Net weight approx (kg) 1400
Model HCB-80
Clamping force (Ton) 80
Plate size (m/m) 485×465
Cylinder diameter (m/m) 236
Stroke (m/m) 410
Daylight (m/m) 630
Pump pressure (kg/cm2) 210
Motor (HP) 3
Heater capacity (Kw) 7.6
Oil reservoir capacity (gallon) 70
Machine size LxWxH (m/m) 1720x1200x2115
Net weight approx (kg) 2750
Model HCB-100
Clamping force (Ton) 100
Plate size (m/m) 540×605
Cylinder diameter (m/m) 265
Stroke (m/m) 460
Daylight (m/m) 690
Pump pressure (kg/cm2) 210
Motor (HP) 5
Heater capacity (Kw) 10.6
Oil reservoir capacity (gallon) 100
Machine size LxWxH (m/m) 1940x1200x2370
Net weight approx (kg) 3700
Model HCB-150
Clamping force (Ton) 150
Plate size (m/m) 660×620
Cylinder diameter (m/m) 300/315
Stroke (m/m) 480
Daylight (m/m) 700
Pump pressure (kg/cm2) 210
Motor (HP) 7.5
Heater capacity (Kw) 10.6
Oil reservoir capacity (gallon) 100
Machine size LxWxH (m/m) 2030x1350x2370
Net weight approx (kg) 4000
Model HCB-200
Clamping force (Ton) 200
Plate size (m/m) 660×620

720×720

Cylinder diameter (m/m) 368
Stroke (m/m) 500
Daylight (m/m) 820
Pump pressure (kg/cm2) 210
Motor (HP) 10
Heater capacity (Kw) 15.2
Oil reservoir capacity (gallon) 120
Machine size LxWxH (m/m) 2300x1350x2670
Net weight approx (kg) 4500

5700

Model HCB-250
Clamping force (Ton) 250
Plate size (m/m) 720×720
Cylinder diameter (m/m) 400
Stroke (m/m) 520
Daylight (m/m) 810
Pump pressure (kg/cm2) 210
Motor (HP) 10
Heater capacity (Kw) 18.8
Oil reservoir capacity (gallon) 150
Machine size LxWxH (m/m) 2410x1350x2780
Net weight approx (kg) 5800

6200

Model HCB-300
Clamping force (Ton) 300
Plate size (m/m) 720×720

900×860

Cylinder diameter (m/m) 450
Stroke (m/m) 560
Daylight (m/m) 810
Pump pressure (kg/cm2) 210
Motor (HP) 15
Heater capacity (Kw) 20
Oil reservoir capacity (gallon) 200
Machine size LxWxH (m/m) 2480x1490x2945
Net weight approx (kg) 6500

8200

Model HCB-400
Clamping force (Ton) 400
Plate size (m/m) 660×620 720×720 980×860
Cylinder diameter (m/m) 500
Stroke (m/m) 560
Daylight (m/m) 950
Pump pressure (kg/cm2) 210
Motor (HP) 15
Heater capacity (Kw) 27
Oil reservoir capacity (gallon) 250
Machine size LxWxH (m/m) 2580x1500x3800
Net weight approx (kg) 6500

7200

8200

Model HCB-500
Clamping force (Ton) 500
Plate size (m/m) 800×800

900×900

1140×1100

Cylinder diameter (m/m) 560
Stroke (m/m) 580
Daylight (m/m) 1000
Pump pressure (kg/cm2) 210
Motor (HP) 15
Heater capacity (Kw) 30
Oil reservoir capacity (gallon) 250
Machine size LxWxH (m/m) 2810x1705x3135
Net weight approx (kg) 12000

13500

15800

Model HCB-600
Clamping force (Ton) 600
Plate size (m/m) 900×900

1200×1140

Cylinder diameter (m/m) 620
Stroke (m/m) 610
Daylight (m/m) 1020
Pump pressure (kg/cm2) 210
Motor (HP) 20
Heater capacity (Kw) 30
Oil reservoir capacity (gallon) 300
Machine size LxWxH (m/m) 3000x1750x4100
Net weight approx (kg) 14200

16000

Model HCB-800
Clamping force (Ton) 800
Plate size (m/m) 1800×1400
Cylinder diameter (m/m) 700
Stroke (m/m) 700
Daylight (m/m) 1060
Pump pressure (kg/cm2) 210
Motor (HP) 30
Heater capacity (Kw) 40
Oil reservoir capacity (gallon) 355
Machine size LxWxH (m/m) 3220x1850x4350
Net weight approx (kg) 26000

Match molding force to the process pressure, projected molding area and cavity count. Check the mold footprint, closed height and opening needs against the press data, including space for manual removal after ejection. A part drawing and any existing tooling details are a useful starting point.

Mold and press selection

Start with the part you need to release

Send Han Chang a product photo or drawing and explain how the part is currently removed. Tell us where it remains when the mold opens and which handling step you want to improve. You can start the discussion before choosing a press tonnage.

Put the required ejector in the quotation

If you have tooling, include its footprint, closed height and ejection details. We can discuss force, mold space and the upper or lower ejector option together. Existing requirements for ejector stroke or force are useful inputs for defining the quoted configuration.

Buyer questions

Why choose an ejector-series composite compression molding press?

Choose it when easier mold release and manual part removal are priorities. Han Chang’s Ejector Series hot press forms and cures suitable carbon fiber or glass fiber composite molding materials. An upper or lower ejector can be specified on request to push the product out of the mold, making the operator’s removal task more convenient and efficient.

How do I choose an upper or lower ejector?

Start with where the part remains after the mold opens, the tool’s ejection design and how the operator will take the part away. An upper or lower ejector is an option added to suit those requirements. Product and mold drawings provide a useful basis for selecting the configuration.

Which ejectors are fitted to the machine in the photo?

The photographed machine has both upper and lower ejection. For your order, the upper or lower ejector option is selected around your tooling requirements and identified in the quotation.

How is the part removed after ejection?

The ejector pushes the molded product out of the tool, and the operator then removes it by hand. Consider the part’s position after ejection, its shape and the available handling space when planning the mold and press configuration.

What carbon fiber and glass fiber products can this press mold?

Applications include bicycle components, rackets, skis, automotive shells, drone structures and electronics housings. Each uses the appropriate reinforced composite molding material, tooling and heated curing conditions. The ejector option is matched to the component’s release requirements.

How do molding force and ejector requirements differ?

The 37–800 ton range describes the press’s molding force. Select it using the material’s molding pressure, projected molding area and cavity count. Ejector force and ejector stroke are separate requirements discussed around the tool and part release, alongside the press’s platen size, daylight and stroke.

What should I include when discussing production rate?

Share the material, part drawing, cavity count and target output, together with any known cure time and current removal method. Production planning considers curing, opening, ejection and manual handling. Easier removal helps the handling work, while the material and tooling remain important to the overall cycle.

What determines the price, and how can I request a quote?

The selected molding-force specification, machine dimensions and requested ejector option define the equipment quotation. Send a part photo or drawing, the intended molding material and the removal task you want to improve. Existing mold dimensions and ejection requirements help Han Chang discuss a suitable press configuration; you do not need every parameter settled before contacting us.

Choose a press that makes part removal easier

Show Han Chang your carbon fiber or glass fiber component and tell us how you want to improve demolding. Send a photo or drawing to discuss the Ejector Series, suitable molding force and mold space, and an upper or lower ejector option for your equipment quotation.

Request a quotation

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