Combines a Triangular Thread Profile with a Twin-Start Thread
TWIN TT combines a special triangular or trilobular thread cross-section with a twin-start thread design. The triangular thread profile helps reduce thread-forming contact resistance, while the twin-start thread increases axial travel per revolution, providing both thread-forming capability and faster installation.
Double Lead Increases Driving Speed
Two interlaced helical thread starts allow the screw to advance a greater axial distance with each revolution, reducing the number of turns required to reach the specified installation depth and helping shorten fastening time.
Actual driving speed will still depend on screw length, thread pitch, tool speed, and workpiece material.
Triangular Profile Helps Reduce Thread-Forming Resistance
The triangular or trilobular thread profile does not contact the entire circumference of the hole wall simultaneously. Instead, the raised areas progressively displace the workpiece material, helping reduce contact area and friction during the thread-forming stage.
Actual driving torque should be evaluated according to pilot hole size, material hardness, thread profile, and screw surface condition.
Forms Internal Threads Directly in a Pilot Hole
When driven into a properly sized pilot hole, TWIN TT forms matching internal threads through material displacement, reducing the need for a separate tapping operation.
TWIN TT generally still requires an appropriate pilot hole and is not intended to drill directly into every material.
Helps Reduce Chip Generation
When designed as a thread-forming type, TWIN TT primarily causes plastic deformation of the workpiece material rather than cutting it away. Compared with thread-cutting self-tapping screws, this can help reduce the generation of metal or plastic chips.
This makes it suitable for electronic equipment, precision components, and assembly environments where internal cleanliness is important.
Improves High-Volume Assembly Efficiency
The twin-start thread reduces the number of rotations required for fastening, while the triangular profile helps control thread-forming resistance. This makes TWIN TT suitable for high-volume production and products with demanding assembly cycle times.
Before mass production, the fastening equipment’s rotational speed, downward force, torque control, and stopping response should be verified for compatibility with the double-lead thread characteristics.
Improves Thread Engagement Stability
Because the internal threads are formed directly by the screw, the resulting contact surfaces can closely match the special thread profile, helping improve thread engagement and pull-out stability.
Actual load capacity should be tested according to workpiece material, wall thickness, pilot hole size, and effective thread engagement.
Provides Auxiliary Anti-Loosening Performance
The triangular thread profile can increase localized contact pressure and friction between the screw and the formed internal threads. Under general vibration conditions, this may help reduce the possibility of reverse rotation and self-loosening.
TWIN TT should be regarded as an auxiliary anti-loosening design. Additional locking methods should still be considered for high-vibration, high-load, or safety-critical applications.
May Eliminate the Need for a Separate Nut
The screw can be driven directly into a workpiece with a suitable pilot hole, making it suitable for one-sided assembly, locations where rear-side nut installation is difficult, or products with limited internal space.
Simplifies Tapping and Assembly Processes
Once the specified pilot hole is prepared, TWIN TT can form the internal thread and fasten the component in the same operation, reducing pre-tapping, nut installation, and multi-component assembly steps.
Suitable for Automated Fastening
TWIN TT screws with consistent specifications can be used with vibratory bowls, feeding tracks, and automatic screw-fastening equipment, making them suitable for high-volume assembly of electronics, home appliances, automotive components, and mechanical assemblies.
Multiple Head and Point Designs Available
Depending on product appearance, installation tools, workpiece material, and available assembly space, TWIN TT screws can be designed with pan heads, countersunk heads, hex heads, and other head types, together with pointed ends, flat ends, pilot points, reduced-diameter points, or other point structures.
Customization Based on Drawings and Samples
TWIN TT screws can be customized according to customer engineering drawings or physical samples, including screw head type, drive recess, thread diameter, thread pitch, lead, triangular-thread profile, overall length, point structure, material, hardness, tolerances, heat treatment, and surface treatment.
Common Applications
TWIN TT screws are commonly used in:
- Metal enclosures, cabinets, and sheet metal structures
- Electronic and electrical equipment
- Automotive and motorcycle components
- Aluminum alloy and zinc alloy die-cast parts
- Engineering plastic housings and components
- Home appliances and consumer products
- Telecommunications and information equipment
- Motors, fans, and mechanical components
- Instruments and precision equipment
- Metal furniture and hardware accessories
- One-sided assembly locations or areas where rear-side nut installation is difficult
- Mass-production and automated fastening lines
Key Considerations When Selecting TWIN TT
Before selection, confirm that “twin thread” refers to a twin-start thread rather than two different thread profiles, a double-layer thread, or another special structure. The actual thread profile, thread pitch, and lead should be confirmed according to the engineering drawing or physical sample.
Twin-start threads advance faster, so fastening equipment must provide appropriate stopping response and torque control. If rotational speed is too high or tool shut-off is delayed, the screw may continue rotating after the head seats against the workpiece, potentially causing thread stripping, hole enlargement, or workpiece cracking.
Pilot hole size is a critical factor affecting thread-forming quality. If the pilot hole is too small, driving torque may become excessively high, potentially causing screw breakage, drive recess damage, workpiece cracking, or excessive load on the fastening equipment. If the pilot hole is too large, thread engagement may be insufficient, resulting in free spinning or reduced pull-out strength.
The workpiece must have adequate plasticity and ductility to form complete internal threads through material displacement. If the material is too hard, brittle, or thin, the thread profile, pilot hole size, and thread-forming method should be reevaluated.
The screw surface hardness must be sufficient to form the internal threads, while the core should retain adequate toughness. Improper material selection or heat treatment may result in thread wear, torsional deformation, or brittle screw fracture.
For engineering plastic applications, the boss outside diameter, wall thickness, pilot hole depth, and material shrinkage characteristics should be confirmed. An oversized screw diameter, excessive driving speed, or excessive tightening torque may cause stress whitening, expansion, or cracking of the boss.
If TWIN TT screws are intended for repeated assembly and disassembly, the durability of the formed internal threads should be confirmed. Repeated removal may wear or enlarge the internal threads in the hole wall, reducing subsequent driving torque and pull-out strength.
Before mass production, driving torque, tightening torque, stripping torque, failure torque, pull-out strength, and vibration anti-loosening performance should be tested to confirm that the fastening process has an appropriate safety margin.









