PRODUCT TECHNOLOGY BRIEFING | DOC. ZWP-TC-001 Rev. 1.0

TCA / TCB / TCC Torque Controllers

Keep Your Tools. Add the Control.

A torque control methodology built for air impact wrenches and pulse tools

Torque Controllers

Powerful Tools, Uncontrolled Torque

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The everyday reality of medium- and high-torque fastening

KEEP THE POWER. ADD THE CONTROL.

Why they are still used

High productivity, high power-to-weight ratio, rugged and durable — the workhorse of medium- and high-torque fastening.

What goes wrong

Torque is hard to control consistently, sensitive to operating conditions, with no real-time monitoring and no fastening data.

The real challenge

No longer how to tighten faster, but how to make every fastening measurable, controllable and traceable.

Most fastening operations still rely on operator experience rather than a defined control process. That is the gap ZIPPTORK closes.

One Patented Control Logic, Three Operating Modes

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From a patented pressure–residual torque relationship to application-based training

Patented control logic: the pressure–residual torque correspondence

Under a defined tool, fastening combination and fastening duration, a correspondence is established between working air pressure and residual torque. It is the foundation of every ZIPPTORK torque controller, and years of field application have grown it into an application-based training architecture.

Pressure / Transducer / ACCU

Three operating modes across different cost and accuracy needs

Job Profile

Every fastening operation runs from an established profile

One Patented Control Logic, Three Operating Modes

One patented control logic · application-based training · three operating modes — one controller platform, three control strategies.

Four Management Gaps on Conventional Impact & Pulse Tools

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The tools are fine — the process simply was never recorded

Torque is hard to control

Same tool, same job, results still drift

No repeatable basis for control

No real-time monitoring

No way to judge the cycle as it happens

Problems surface only afterwards

Sensitive to conditions

Pressure fluctuation, air supply condition, fastening time variation

Change the conditions and the torque changes

No data, no traceability

No fastening records, no identification data

Difficult to integrate with MES / IIoT

Three Operating Modes

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Three trade-offs between cost, control accuracy and existing tool capability

01

Pressure Mode | Tool + Controller

Control by trained working air pressure and fastening time; pressure is continuously stabilized and air shuts off at the trained time. No direct torque feedback. Typical controllability: impact wrench ±15–20%, pulse tool ±10–15%.

02

Transducer Mode | Tool + Wireless Torque Transducer + Controller

Real-time torque feedback and torque compensation, with automatic shut-off at target torque — the highest control accuracy. Typical controllability: impact wrench ±10–15%, pulse tool ±5–10%.

03

ACCU Mode | Tool + Transducer + Extended Duration

When the existing tool cannot reach target torque within the original duration, fastening time is extended to accumulate impact energy while torque and pressure are monitored. Typical controllability: impact wrench ±12–17%, pulse tool ±7–12%.

Control accuracy depends on a correctly established Job Profile, correct transducer installation and stable operating conditions.

Five Steps From Training to Production

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Turning actual fastening behavior into a repeatable Job Profile

Define the combination

Tool · Bolt / nut / washer · Joint · Stable air supply · Initial fastening time

Select the operating mode

Pressure / Transducer / ACCU

Controller training

On-station (preferred) or off-line (alternative)

Create the Job Profile

Tool · Fastener · Target torque · Pressure · Fastening time · Mode

Run production

Monitor → automatic shut-off → OK / NOK → fastening data

PH ≈ 90–95% of the highest stable working air pressure available at the workstation; PL ≈ the lowest pressure at which the selected tool still operates consistently.

Controller Training Architecture

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Two training locations, two training methods

On-station training (preferred)

Performed under actual production conditions — directly, or assisted by SWF + ST.

Off-line training (alternative)

Production conditions are replicated on a test bench or on the FCA analyzer.

Two training methods

Pressure / residual torque relationship (PH→TH, PL→TL), or time-based characterization (PH + defined time → clamp force vs. time → required fastening time for target torque).

TCA with built-in 10" HMI
TCA with built-in 10" HMI

Any change to the preset fastening duration requires retraining and a new Job Profile — old parameters must not be carried over.

From Tool to Connected Production

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An open architecture that brings existing pneumatic tools into a controlled, connected, traceable system

Air Impact Wrench / Pulse Tool

TCA / TCB / TCC Torque Controller

Execute Job Profile Mode

Monitoring & Automatic Shut-Off

OK / NOK + Fastening Data

Production System / MES

Any compatible brand, any impact mechanism

Job Profile management · intelligent control logic

Pressure / Transducer / ACCU

Pressure stabilization · torque feedback · alarms

Job Profile · pressure · time · torque · identification

Traceability · quality · process analysis · production

Open-platform tool compatibility

Brand independent — works with compatible air impact and pulse tools from different manufacturers

Mechanism independent — twin hammer · jumbo hammer · pin clutch · rocking dog · single / multi-blade pulse units

Application-based training — parameters established on the actual tool, fastener, joint and workstation conditions

Fastening Data & Production Traceability

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Every result recorded with its Job Profile and identification data

Fastening data

Job Profile · Fastening time · Working air pressure · Torque · Result

Identification data

Tool ID · Transducer ID · Operator ID · Barcode · Serial no. · Bolt ID · Timestamp

Judgment & alarms

Pressure out of allowable range → alarm + NOK; every cycle judged against the Job Profile

Upload & integration

Controller → production database / MES → traceability · quality review · process analysis

Fastening Data & Production Traceability

Controller Specifications

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One control architecture, three configurations for different production needs

Max. air flow

2,000 L/min (all three)

Operating modes

All three modes on TCA / TCB / TCC

Pressure mode accuracy

Impact ±15–20% | Pulse ±10–15%

Transducer mode accuracy

Impact ±10–15% | Pulse ±5–10%

ACCU mode accuracy

Impact ±12–17% | Pulse ±7–12%

Serial interface

2×RS-232 / 1×RS-232 / —

ItemTCA-2000TCB-2000TCC-2000
User interface10" built-in HMIPC / laptopPC / tablet
Operating systemLinuxWindowsAndroid / Windows
Air pressure regulationAutomaticAutomaticManual
Torque curve display
CommunicationEthernet / Wi-FiWi-Fi / BluetoothWi-Fi / Bluetooth
Weight10.5 kg6 kg3.7 kg
Controller Specifications

Torque source: measured torque in Transducer Mode, estimated final torque in ACCU Mode, estimated residual torque in Pressure Mode. TCA and TCB regulate pressure automatically through a proportional valve; TCC monitors pressure only and flags out-of-range fastening as NOK. Air flow measurement is optional and provides air-consumption information only — it does not affect torque control accuracy. Specifications subject to engineering review and confirmation.

Six Typical Applications

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The best application is not defined by industry — it is defined by a repeatable fastening process

High-torque assembly

Large bolts and high-torque fastening at fixed production stations

Traceable production

Fastening results plus identification data form a complete record

Repetitive assembly

Consistent, trainable, repeatable fastening stations

Tool manufacturers

Add a smart control option to existing tool platforms

Multiple fastening jobs

Different jobs managed and switched through Job Profiles

Distribution partners

Create upgrade and service opportunities from the installed tool base

TC — Keep the Power, Add the Control

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TRAIN → JOB PROFILE → CONTROL → RECORD → CONNECT

ZIPPTORK Bolting Technology | White Paper ZWP-TC-001 Version 1.0 | www.zipptork.com

One patented control logic — the pressure–residual torque correspondence — grown into three selectable operating modes.

Open platform: brand independent, mechanism independent — existing pneumatic tools join the control system directly.

Application-based training: control parameters are established on the actual tool, fastener, joint and workstation.

Every fastening leaves a Job Profile, its process parameters and an OK / NOK result, ready to upload to MES.

The source document

READ IT HERE

Bring this to your line.

Send the fastener size, target torque and the tool you use today. A product engineer replies with the configuration that fits.

ZIPPTORK | China Pneumatic Corporation | www.zipptork.com

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