Showing posts with label Plastic Injection Mould/Moulding's. Show all posts
Showing posts with label Plastic Injection Mould/Moulding's. Show all posts

Friday, 15 June 2012

Plastic Injection Moulding - SECRETS OF SUCCESSFUL THIN-WALL MOLDING


SECRETS OF SUCCESSFUL THIN-WALL MOLDING


                          
                                                                     Demands to create smaller, lighter parts have made thin-wall molding one of the most sought after capabilities for an injection molder. These days, "thin-wall" is generally defined by portable electronics parts having a wall thickness less than 1 mm. For large automotive parts, "thin" may mean 2 mm. In any case, thinner wall sections bring changes in processing requirements: higher pressures and speeds, faster cooling times, and modifications to part-ejection and gating arrangements. These process changes have in turn prompted new considerations in mold, machinery, and part design.

Machinery considerations

                                                                      Standard molding machinery can be used for many thin-wall applications. Capabilities built into newer standard machines go well beyond those of 10 years ago. Advances in materials, gating technology, and design further expand the capabilities of a standard machine to fill thinner parts.
But as wall thicknesses continue to shrink, a more specialized press with higher speed and pressure capabilities may be required. For example, with a portable electronics part less than 1 mm thick, fill times of less than 0.5 sec and injection pressures greater than 30,000 psi are not uncommon. Hydraulic machines designed for thin-wall molding frequently have accumulators driving both injection and clamping cycles. All-electric and hybrid electric/hydraulic models with high speed and pressure capabilities are starting to appear as well.
                                                                                        To stand up to the high pressures involved, clamp force should be a minimum of 5-7 tons/sq in. of projected area. In addition, extra-heavy platens help to reduce flexure as wall thicknesses drop and injection pressures rise. Thin-wall machines commonly have a 2:1 or lower ratio of tiebar distance to platen thickness. Also, with thinner walls, closed-loop control of injection speed, transfer pressure, and other process variables can help to control filling and packing at high speeds and pressures.
                                                                             When it comes to shot capacity, large barrels tend to be too large. We suggest you aim for a shot size of 40% to 70% of barrel capacity. The greatly reduced total cycle time seen in thin-wall applications may make it possible to reduce the minimum shot size to 20%-30% of barrel capacity, but only if the parts are thoroughly tested for property loss due to possible material degradation. Users must be careful, as small shot sizes can mean longer barrel residence times for the material, resulting in property degradation.

Molds: make 'em rugged

                                                             Speed is one of the key attributes of successful thin-wall molding. Faster filling and higher pressures are required to drive molten thermoplastic material into thinner cavities at a sufficient rate to prevent freeze off. If a standard part is filled in 2 sec, then a reduction in thickness of 25% potentially can require a drop in fill time of 50% to just 1 sec.
                                                     One benefit of thin-wall molding is that as wall sections drop, there is less material to cool. Cycle times can drop by 50% with aggressive wall-thickness reduction. Careful management of the melt-delivery system can keep runners and sprues from diminishing that cycle-time advantage. Hot runners and heated sprue bushings are often used in thin-wall molding to help minimize cycle time.
                                                          Mold material should be reviewed too. P20 steel is used extensively in conventional applications, but due to the higher pressures of thin-wall molding, molds must be built more robustly. H-13 and other tough steels add an extra degree of safety for thin-wall tools. (If possible, you will also want to select a molding material that doesn't accelerate mold wear when injected into the cavity at high speeds.)
However, robust tools cost money—possibly even 30% to 40% more than a standard mold. Yet the cost is often offset by increased productivity. In fact, the thin-wall approach is frequently used to save money on tooling. A 100% increase in productivity can mean that fewer molds need to be built, thereby saving money over the life of a program.
Here are some more tips on tool design for thin walls:
  • For aggressive thin-wall applications, use steel harder than P20, especially when high wear and erosion are expected. H-13 and D-2 steels have been successful in gate inserts.

  • Mold interlocks sometimes can stave off flexing and misalignment.

  • Cores that telescope into the cavity can help reduce core shifting and breakage.

  • Use heavier support plates (often 2 to 3 in. thick) with support pillars (typically preloaded 0.005 in.) under the cavities and sprue.

  • Use more and larger ejector pins than with conventional molds to reduce pin pushing.

  • Consider strategic placement of sleeve and blade knockouts.

  • No. 2 diamond polish on cores and ribs can eliminate problems of part sticking. Mold surface treatments, such as nickel-PTFE can also improve part release.

  • Venting is critical and can be facilitated with vented core pins and ejector pins, as well as venting along up to 30% of the parting line around the part. Vents are typically 0.0008 to 0.0012 in. deep and 0.200 to 0.0400 in. wide. While not usually necessary, some processors have sealed the parting line with an O-ring in order to pull a vacuum on the cavity for quick gas evacuation.

  • With higher injection speeds, gates larger than the nominal walls help reduce material shear and gate wear and help prevent freeze-off before good packing is achieved.

  • Gate inserts with a Rockwell (Rc) hardness greater than 55 are typically used to withstand high injection pressures.

  • When gating directly onto a thin wall with a sprue, pinpoint, or hot-drop, use gate wells to reduce stress at the gate, aid filling, and reduce part damage when degating.

  • Hot manifolds can help reduce pressure loss in runner systems, but they require at least 0.5-in.-diam. inner passages with no sharp corners or dead zones. Manifolds should have external, not internal, heaters. Valve gates, if used, must be non-restrictive and built to take high pressure.

In addition, cooling of the cores and cavities is more critical and challenging in thin-wall applications. Two important guidelines are:
  1. Non-looping cooling lines should usually be located directly in the core and cavity blocks to help keep the mold surface temperature as consistent as possible.

  1. Instead of decreasing coolant temperature to maintain the desired steel temperature, it is generally better to increase the amount of coolant flow through the tool. As a rule of thumb, the difference in temperature between the delivery coolant and return coolant should be no more than 5° to 10° F.


STANDARD VS. THIN-WALL PROCESSING
Key FactorsConventionalThin-Wall
Typical Wall, in.0.080-0.1200.050-0.080<0.050
MachineryStandardHigh-endCustom
Inject. Pressure, psi9000-14,00016,000-20,00020,000-35,000
Hydraulic SystemStandardStandardAccumulators on injection & clamp units. Servo valves.
Control SystemStandardClosed-loop on injection speed, hold pressure, decompression speed, screw rpm, backpressure, and all temperatures.Same as at left, with resolution of 0.40 in. on speed, 14.5 psi on pressure, 0.004 in. on position, 0.01 sec on time, 1 rpm on rotation, 0.10 ton on clamp force, 2° F on temperature.
Processing
Fill Time, sec>21-20.1-1
Cycle Time, sec40-6020-406-20
ToolingStandardBetter venting, heavier construction, more ejector pins, better polishExtreme venting, very heavy construction, mold interlocks, precise surface preparation, extensive ejection features, mold costs 30-40% higher than standard.

Monday, 11 July 2011

PHOTOS - Plastic Injection Molding Products...

PHOTOS - Plastic Injection Mold / Mould...


PLASTIC INJECTION MOLD WHICH IS FINISHED AND READY FOR PACKAGING AND EXPORTING




PLASTIC INJECTION MOLD WHICH IS FOR - BOTTLE CAP





LARGE PLASTIC INJECTION MOLD WITH - HOT RUNNER TECHNOLOGY





LARGE PLASTIC INJECTION MOLD ON - SIDE VIEW





PLASTIC INJECTION MOLD  - BEFORE ASSEMBLED





PLASTIC INJECTION MOLD  - WITH 4 SIDE CORE (SLIDER) TECHNOLOGY





PLASTIC INJECTION MOLD  - IN OPENED CONDITION





PLASTIC INJECTION MOLD  - FOR UPVC PIPE FITTING (CAVITY SIDE)





PLASTIC INJECTION MOLD  - FOR UPVC PIPE FITTING (CORE SIDE)





PLASTIC INJECTION MOLD  - NORMALLY B4 ASSEMBLE





PLASTIC INJECTION MOLD  - CORE SIDE (ELECTRONIC PRODUCT)





PLASTIC INJECTION MOLD  - MULTI CAVITY PLASTIC SPOON MOLD





PLASTIC INJECTION MOLD  - FOR ONE CAR PART





PLASTIC INJECTION MOLD  - MOBILE BACK COVER (CORE SIDE)






PLASTIC INJECTION MOLD  - 1 BIKE PART (CORE SIDE)
















Question &Ans:- Injection Molding Process - Introduction

Quest:-




What is plastic Injection molding?




Ans:-



 Plastic injection molding starts with small pellets compounded to meet certain physical properties. 

These pellets are then dried and fed into a hopper,
which allows them continuously dried and fed into the throat of the machine.


The machine them melts the plastic in a heated barrel,
and injects it under high pressure out of the barreland  into your mold cavity.

The injected plastic quickly fills the cavity,
and it is then allowed to cool while the machine fills its barrel for the next cycle.

 As the plastic cools, it changes back to a solid.

After a set amount of time, the mold opens, exposing the part, and hydraulic ejector pins push the part out of the cavity.



Question & Ans -about RAPID INJECTION MOLDING technology...

Although traditional rapid prototyping is still widely used, a growing number of engineers are turning to rapid injection molding for prototyping and short-run production...
QUEST:-
What’s the difference between rapid prototyping and rapid injection molding ?
ANS:-
While rapid prototyping and rapid injection molding both start with a 3D CAD part model, the actual processes and end results are very different. Rapid prototyping, which includes technologies like stereolithography, selective laser sintering, fused deposition modeling, laminated object manufacturing, and three-dimensional printing, creates a prototype layer by layer to form the end product. Rapid injection molding, on the other hand, uses the familiar process of injecting heated thermoplastics into a metal mold, where the material cools into the desired shape.


QUEST:-
What are the advantages of rapid injection molding?


ANS:-
Unlike rapid prototyping, rapid injection molding produces a fully functional, injection molded part. The resulting quality difference is so significant that many design engineers who test form and fit using rapid prototyping will still check the functionality of their prototypes using rapid injection molding. Also, while conventional mold making is very labor-intensive, rapid injection molding fully automates this step, typically reducing tooling cost and lead time by two-thirds.



QUEST:-
How does the rapid injection molding process work?


ANS:-


It’s a unique, highly automated method of producing injection molded parts from a 3D CAD part model. The core technology is proprietary software that automatically converts the part model into toolpaths for CNC milling machines. These, in turn, produce the mold components that, when assembled and mounted on an injection molding press, produce the desired part.


QUEST:-
How did rapid injection molding improve plastic housing?



ANS:-


Besides reducing the cost and delay of individually machining parts, the new injection-molded housing has a lot of advantages over what we were producing before. It’s much more compact, which is a big benefit for customers. Their research often requires placing the filled housings into controlled-environment chambers, so when we save them space, they get more research done faster.


QUEST:-
How much did it save?


ANS:-

Traditional injection molders gave  quotes of about $25,000 (eg) and required months of lead time to produce a part. Rapid injection molding came in at around $4,000, and even with highly polished surface for enhanced cosmetics, something the other molders weren’t even quoting, it still cost us less than $5,800. And the parts can even shipped in 10 business days.






Thursday, 7 July 2011

History of Plastic Moulding???

                                        

History of Plastic Moulding

Plastic Comb
         The injection moulding has seen steady growth since its beginnings in the late 1800's. The technique has evolved from the production of combs and buttons to major consumer, industrial, medical, and aerospace products.

In 1868, perhaps in response to a request by billiard ball maker Phelan and Collander, John Wesley Hyatt invented a way to make billiard balls by injecting celluloid into a mould. By 1872, John and his brother Isaiah Hyatt patented the injection moulding machine. The machine was primitive yet it was quite suitable for their purposes. It contained a basic plunger to inject the plastic into a mould through a heated cylinder.

                                           Revolutionizing the plastics industry in 1946, James Hendry built the first screw injection moulding machine with an auger design to replace Hyatt's plunger. The auger is placed inside the cylinder and mixes the injection material before pushing forward and injecting the material into the mould. Today, almost all injection moulding machines use this same technique.

What is PLASTIC molding / moulding?

                                                 Plastic moulding is the process of shaping plastic using a rigid frame or mould. The technique allows for the creation of objects of all shapes and sizes with huge design flexibility for both simple and highly complex designs. 

Plastic Moulding Techniques:-


                                                          While there are many plastic moulding processes and techniques,some of them are  rotational moulding, injection moulding, blow moulding, and compression moulding.

                  
                                                                                  Plastics are synthetically produced non-metallic compounds. It can be molded into various forms and hardened for commercial use. Plastic molding products can be seen everywhere. Examples are jars, protective caps, plastic tubes, grips, toys, bottles, cases, accessories, kitchen utensils and a lot more
.

Even the keyboard and the mouse that you use are made through plastic molding. Even the plastic parts of the chair that you are sitting on are created this way.


The basic idea in plastic molding is inserting molten liquid plastic into a ready shaped mold, for example the mold of a bottle. It will be then allowed to cool, then the mold will be removed to reveal the plastic bottle.

Plastic molding can also custom-mold a wide variety of plastic products including: garden pots, cabinets, office trays and boxes, barriers, barricades and traffic signage.




The Plastic Molding Processes:


  1. Injection Molding In Injection Molding, melted plastic is forced into a mold cavity. Once cooled, the mold can be removed. This plastic molding process is commonly used in mass-production or prototyping of a product. Injection molding machines were made in the 1930’s. These can be used to mass produce toys, kitchen utensils, bottle caps, and cell phone stands to name a few. 
  2. Blow Molding Blow molding is like injection molding except that hot liquid plastic pours out of a barrel vertically in a molten tube. The mold closes on it and forces it outward to conform to the inside shape of the mold. When it is cooled, the hollow part is formed. Examples of blow molding products are bottles, tubes and containers.


  3. Compression Molding In this type of plastic molding, a slug of hard plastic is pressed between two heated mold halves. Compression molding usually uses vertical presses instead of the horizontal presses used for injection and blow molding. The parts formed are then air-cooled. Prices of equipments used for compression molding are moderate.
  4. Film Insert Molding This plastic molding technique imbeds an image beneath the surface of a molded part. A material like film or fabric is inserted into a mold. Plastic is then injected.
  5. Gas Assist Molding Also called gas injection molding is used to create plastic parts with hollow interiors. Partial shot of plastic is then followed by high-pressure gas to fill the mold cavity with plastic
    .
  6. Rotational Molding Hollow molds packed with powdered plastic are secured to pipe-like spokes that extend from a central hub. The molds rotate on separate axes at once. The hub swings the whole mold to a closed furnace room causing the powder to melt and stick to the insides of the tools. As the molds turn slowly, the tools move into a cooling room. Here, sprayed water causes the plastic to harden into a hollow part. In this type of plastic molding, tooling costs are low and piece prices are high. Cycle time takes about 40-45 minutes.
  7. Structural Foam Molding Structural foam molding is a process of plastic molding usually used for parts that require thicker walls than standard injection molding. Inserting a small amount of nitrogen or chemical blow agent into the plastic material makes the walls thicker. Foaming happens as the melted plastic material enters the mold cavity. A thin plastic skin forms and solidifies in the mold wall. This type of plastic molding can be used with any thermoplastic that can be injection molded.
  8. Thermoforming In this plastic molding process, sheets of pre-extruded rigid plastics are horizontally heated and sucked down into hollow one-piece tools. When the hot plastic solidifies, its shape conforms to that of the mold.
    Tooling costs are usually low and piece prices vary on the machinery.

Plastic molding is a very technical process. It needs experts in this type of manufacturing business for it to be competitive in the market. Therefore, a very scientific and systematic study should be first made before going into this endeavor.