Where was it built?
Japan — built for Taiwan.
Kawasaki worked with Hitachi and Nippon Sharyo on the 700T trains. The design adapts Shinkansen technology to Taiwan’s conditions.
Taiwan High Speed Rail
Taiwan’s 700T uses technology from Japan’s Shinkansen. It was adapted for Taiwan’s railway and climate. This shows how an idea from one country can be developed for another.

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A collector takes electricity from the overhead wire. Electrical equipment prepares that power, and motors turn the wheels.
A smooth nose helps the train slip through the air. The driver looks out through the dark windscreen above it.
A 12-car train adapted from Japanese Shinkansen technology for Taiwan’s climate and railway. Its shorter duckbill nose distinguishes it from the N700S.
People travel in the long car body above the wheels. Windows, doors and the connections between cars are useful clues on the outside.
This is an electric multiple unit: propulsion equipment is distributed through the trainset. Passenger space sits above the underfloor systems. Only three representative cars are shown.
This spring-loaded arm touches an overhead wire and collects electricity for the train.
The roof collector is called a pantograph. High-speed electric trains normally take their traction power from overhead wires. Its position here is a teaching example, not an exact car-by-car equipment plan.
A bogie is the frame that holds a group of wheels. Springs help make the ride smoother.
Wheelsets, suspension and braking equipment form part of the running gear. Powered bogies also carry traction motors. This simplified model does not reproduce a specific bogie or show every motor and brake.
Electrical boxes help turn electricity into the power the motors need. They share space with other equipment underneath the train.
Transformers and power electronics condition electrical power for the traction motors. Different cars carry different equipment; these boxes show the general underfloor zone, not the exact position or contents of each cabinet.
Japan — built for Taiwan.
Kawasaki worked with Hitachi and Nippon Sharyo on the 700T trains. The design adapts Shinkansen technology to Taiwan’s conditions.
Electric motors supply the push; a smooth shape helps it move through the air.
Fast running takes a whole system: suitable track, reliable brakes, signalling and power. A pointy nose alone cannot make a train fast. Stopping at stations also makes a journey’s average speed lower.
The first 700T train was shipped in 2004.
Shipping is a build-and-delivery milestone. Passenger service on Taiwan High Speed Rail began later; the catalogue records 2007.
Taiwan’s high-speed railway along the western side of the island.
This is the route context in the existing catalogue, not a live timetable. Current assignments and stopping patterns still need a fresh operator check.
We leave gaps visible instead of guessing. The original catalogue and our learning model do not establish every real-world specification.
A train uses different materials for different jobs: metals for strength, glass for windows and insulating materials around wires. Paint colour cannot tell us whether the body underneath is steel or aluminium.
Old photographs and launch announcements do not prove that a train still runs. A whole class may still work even after one member retires. We need a recent operator or museum source.
Follow these steps, then find the matching sections in the model above.
Electricity reaches the train from overhead.
It controls the supply reaching the motors.
A motor turns electrical energy into movement.
Powered wheelsets turn against the rails.
Look underneath: wheelsets support the train and carry the forces used to accelerate and brake. The model simplifies the real running gear.
Kawasaki specifies a maximum of 300 km/h for the 700T. This collection models the 700T, not the newer N700ST.
A fast train is a whole system: vehicle, track, electricity or fuel, brakes, signalling and trained people. A race in the game is a simplified comparison.
The motors provide the power. A smooth shape reduces air resistance, and on trains such as the E5 the long nose also softens tunnel pressure waves. Fast travel depends on the track, brakes and control systems, too.
No steering wheel is needed to choose a direction. The rails guide the wheelsets. At a junction, movable sections of rail called points or switches guide the train onto another track. The driver controls speed and braking.
A moving train has energy. Brakes must remove that energy to slow it down. A heavy train travelling fast needs room to stop, so railway signals help keep trains safely separated.
Compare how they look, what they carry and where their power comes from.
A frame holding wheelsets beneath a vehicle. It can turn relative to the body to help the train follow curves.
The distance between the inside faces of the two running rails. Narrow gauge means closer rails; loading gauge describes the space a train may occupy.
A folding roof collector that stays in contact with an overhead power wire.
The force used to pull or propel the train. Grip between wheels and rails limits how much force can be used.
A train with propulsion equipment within its passenger vehicles, operated together from one cab.
A powered vehicle whose main job is to move other railway vehicles.
Moving and arranging vehicles in a yard, often at low speed.
The colours, stripes, logos and other markings painted or applied to a train.
The permitted speed for passenger or freight operation on a suitable section. It is not the journey average.
A speed achieved on a particular test or record attempt, sometimes with special equipment and conditions.
A vehicle coupled to a steam locomotive to carry extra water and fuel. A tank engine carries water on the locomotive itself.
An early vehicle built to develop and test a design before a production fleet.
Follow the operator, builder and museum references below for more detail. Links beside an answer show which source supports that answer.
Edition 2026-09-27. Catalogue background is carried forward from the original collection; it is not a new independent verification. Engineering explanations describe principles. Portraits and 3D models are illustrations, with simplified parts and proportions. This is an independent learning guide, not an operator’s timetable.