WGZ Drum Shape Gear Coupling with Brake Drum

The WGZ Drum Shape Gear Coupling with Brake Drum integrates a cylindrical brake drum for shoe brakes per JB/T7003-93, covering 14 sizes from 710 N·m to 160,000 N·m at up to 4000 EPM. With brake drum diameters D0 from 160–800 mm and Y, J1, Z1 bore options, it is the preferred brake coupling for heavy crane hoists, mine auxiliary drives, inclined conveyor emergency stops, and spring-applied brake systems requiring high braking torque.

MOQ: 50 pcs. Minimum order value USD 1,500; mixed orders and trial quantities welcome.

WGZ Drum Shape Gear Coupling with Brake Drum: engineering overview

For WGZ Drum Shape Gear Coupling with Brake Drum, the most useful way to read the product data is to begin with the drive requirement and then confirm geometry. The description below therefore separates operating principle, configuration details, selection checks, installation and maintenance before presenting the source specification data.

This coupling transfers torque through meshing external and internal teeth. Crowned or drum-shaped tooth geometry gives the mesh room to accommodate limited angular, axial and installation offset while retaining the high torque density expected from an all-metal coupling. The tooth contact and lubricant film are therefore central to both capacity and service life.

WGZ drum shape gear coupling with brake drum close-up showing cylindrical drum surface, hub, and shoe brake engagement zone

Key Features & Design Characteristics

⚙

Crowned-tooth engagement

Gear-tooth contact is designed to transmit torque while allowing limited shaft misalignment within the selected model limits.

✓

High torque density

The geared connection provides a compact mechanical path for industrial power transmission.

⇄

Misalignment accommodation

Hub and sleeve geometry is selected with angular, axial and parallel displacement requirements in mind.

Maintainable drive element

Lubrication, tooth condition, seals and fasteners can be included in planned inspection routines.

How this version is configured

Gear couplings are well suited to high-load drive trains, but they are not maintenance-free. Misalignment changes the contact pattern across the tooth flanks, and excessive offset can raise tooth-edge stress, heat and bearing reaction forces. Operating behavior depends on tooth geometry, speed, lubricant condition, sleeve construction and the shaft connection on both sides.

  • An integrated brake drum / wheel allows the braking function to share the coupling assembly; brake diameter and caliper or shoe geometry must be coordinated with the machine.

Selection sequence for a real machine

Size the coupling from transmitted torque after applying an appropriate service factor for starts, reversals, shock and driven-equipment characteristics. Then verify maximum speed, shaft bore range, hub length, outside diameter and available axial space. If the version includes a brake drum, brake disc, spacer or intermediate sleeve, confirm that those added dimensions match the surrounding machine and brake arrangement.

  1. Define continuous torque, starting torque and any short-duration peak load instead of selecting from motor power alone.
  2. Confirm rotational speed and check whether balance, centrifugal loading or critical-speed limits affect the chosen size.
  3. Match every shaft interface: bore diameter, key or locking method, hub length, flange pilot, bolt pattern and available assembly clearance.
  4. Review angular, axial and parallel displacement separately. A coupling that tolerates one form of movement may have a much lower limit for another.
  5. Check the surrounding equipment for guards, brakes, bearings, seals and maintenance access before freezing the final outside diameter and overall length.
  6. Use the exact model matrix for the final dimensional decision; do not interpolate a bore, torque or speed value that is not listed.

Technical Specifications & Dimensions

Use the tables below as the dimensional and model reference. Confirm bore, shaft fit, speed, torque and installation envelope before final selection.

WGZ drum shape gear coupling dimensional drawing showing cylindrical brake drum D0, D, D2, D4, B, F, B0, C, C1, C2 dimensions
Size Torque
(N·m)
Speed
(rpm)
Bore d1,d2,dz
(mm)
Y bore
length
J1,Z1
length
D0 Options
(mm)
D D2 D4 B F Inertia
(Kg·m²)
Weight
(Kg)
WGZ1 710 4000 12 – 42 32–112 –/44/84 160 / 200 / 250 122 98 60 58 30 0.0078 5.62
WGZ2 1250 4000 22 – 56 52–112 –/60/84 200 / 250 / 315 150 118 77 68 30 0.022 9.65
WGZ3 2500 4000 22 – 63 52–142 –/60/107 200 / 250 / 315 170 140 90 80 30 0.047 16.5
WGZ4 4500 3000 30 – 80 82–172 –/84/132 250 / 315 / 400 200 160 112 90 30 0.098 25.3
WGZ5 7100 3000 30 – 90 82–172 –/84/132 315 / 400 225 180 128 100 30 0.174 34.7
WGZ6 10000 3000 32 – 100 82–212 –/107/167 315 / 400 245 200 145 112 30 0.29 51.3
WGZ7 14000 2500 32 – 110 82–212 –/107/167 400 / 500 272 230 160 122 30 0.53 68
WGZ8 20000 2500 55 – 125 112–212 –/107/167 400 / 450 290 245 176 136 30 0.71 79
WGZ9 25000 2000 65 – 140 142–252 107/202 400 / 500 / 630 315 265 190 140 30 1.05 106.5
WGZ10 40000 2000 75 – 160 142–302 107/242 400 / 500 / 630 355 300 225 165 30 1.74 159
WGZ11 56000 1700 85 – 180 172–302 132/242 500 / 630 / 710 412 345 256 180 40 3.67 215
WGZ12 80000 1700 120 – 200 212–352 167/282 500 / 630 / 710 440 375 288 207 40 6.4 303
WGZ13 112000 1700 140 – 220 252–352 202/282 630 / 710 490 425 320 235 50 10.45 391
WGZ14 160000 1500 160 – 260 302–410 242/330 710 / 800 545 462 362 265 50 17.48 523
D0 Brake Drum
Diameter (mm)
T — Drum
Width (mm)
K — Hub
Height (mm)
Drum Weight
(Kg)
Drum Inertia
(Kg·m²)
Compatible WGZ Sizes
160 70 6 2.83 0.014 WGZ1
200 85 8 5.20 0.043 WGZ1, WGZ2, WGZ3
250 105 10 10.1 0.128 WGZ1, WGZ2, WGZ3, WGZ4
315 135 12 17.2 0.354 WGZ2, WGZ3, WGZ4, WGZ5, WGZ6
400 170 14 33.4 1.11 WGZ4, WGZ5, WGZ6, WGZ7, WGZ8, WGZ9, WGZ10
500 210 18 56.3 3.07 WGZ7, WGZ8 (450 only), WGZ9, WGZ10, WGZ11
630 265 22 101.3 8.55 WGZ9, WGZ10, WGZ11, WGZ12, WGZ13
710 300 22 145.8 15.52 WGZ11, WGZ12, WGZ13, WGZ14
800 340 26 203.0 26.76 WGZ14
Feature WGZ (this product) WGP (disc / caliper) WG (no brake) Jaw Coupling
Braking Component Cylindrical drum — shoe brake Flat disc — caliper brake None None
Braking Torque per Actuator Force High — wide arc contact area Moderate — pad contact area N/A N/A
Performance in Dusty Conditions Good — drum rotation expels dust Good N/A N/A
Brake Response Speed Moderate — shoe pivot travel Fast — caliper clamps instantly N/A N/A
Crowned Tooth Gear Mesh Yes — 1.0–1.5 deg tolerance Yes — 1.0–1.5 deg tolerance Yes — 1.0–1.5 deg tolerance Up to 1 deg (elastomer)
Preferred Application Heavy hoisting, mine hoists, large cranes, emergency stop conveyors VFD drives, crane travel, precise positioning Standard horizontal drives Light–medium duty
Factor WG WGP WGC WGZ WGT
Standard JB/T8854.2 JB/T7001 JB/T7002-93 JB/T7003-93 JB/T7004
Braking Feature None Flat disc — caliper None Cylindrical drum — shoe brake None
Shaft Orientation Horizontal Horizontal Vertical Horizontal Horizontal
Intermediate Shaft No No No No Yes
Max Speed 7500 rpm (WG1) 4000 rpm 7500 rpm (WGC1) 4000 rpm (WGZ1–3) 7500 rpm (WGT1)
Sizes Available 24 14 14 14 24
Choose When... Standard horizontal, no brake Caliper disc brake; VFD drives Vertical shaft drives Maximum braking torque; shoe brake system; heavy hoisting Distant shafts; axle withdrawal needed

Standards and designation references found in the source data

Where a standard or designation is shown below, treat it as a reference tied to the original product data and verify the applicable revision when placing an order.

JB/T7003JB/T8854.2JB/T7001JB/T7002JB/T7004ISO 9001:2015
EP gear coupling manufacturing facility showing precision CNC machining and inspection of WGZ brake drum coupling components

Shaft fit, alignment and assembly checks

Accurate shaft alignment at installation extends tooth and seal life even though the coupling can compensate for a limited amount of misalignment. Clean the gear teeth and lubricant cavity, check keys and hub fits, assemble seals without damage and tighten fasteners uniformly. After alignment, fill with the lubricant quantity and grade specified for the selected size and duty.

Measure the actual shaft diameters and keyways before machining or confirming a finished bore. A drawing should identify shaft tolerances, key dimensions, required hub position and any shoulder, locknut or axial-retention feature. Alignment readings should be taken after the machine is in its normal installed condition because base distortion, pipe strain, belt pull or thermal growth can move the shaft centers after an initial bench alignment.

After assembly, turn the drive through at least one full revolution by hand where practical. Check for interference with guards, brake hardware and adjacent structures, then verify fastener security. On equipment that changes temperature significantly between start-up and steady operation, compare cold and hot alignment expectations before setting final offsets.

Operating behavior and service planning

Routine checks should include lubricant leakage, seal condition, bolt security, abnormal noise, temperature rise and backlash growth. During planned shutdowns, inspect tooth flanks for pitting, fretting, scoring or concentrated edge contact. Replace degraded lubricant rather than simply topping up contaminated grease, especially on dusty, wet or high-temperature equipment.

A coupling should not be used as a permanent correction for poor machine alignment. If vibration, temperature or noise changes after commissioning, compare the current condition with the initial baseline. Check connected bearings and shafts at the same time, because many coupling symptoms originate from looseness, soft foot, imbalance or movement elsewhere in the drivetrain.

For planned maintenance, record the installed model, actual bore sizes, fastener details, lubricant or flexible-element grade where applicable, and the measured alignment at return to service. That information makes later inspection more useful and helps distinguish normal wear from a change in machine condition.

Information to include with an RFQ or drawing review

  • Required model or the closest model already identified from the specification data.
  • Driving and driven shaft diameters, tolerances, keyways and available engagement length.
  • Continuous torque, peak torque, starts per hour and whether the drive reverses.
  • Normal and maximum rotational speed.
  • Expected angular, axial and parallel movement during operation.
  • Required overall length, shaft separation, flange or brake dimensions and surrounding clearance.
  • Operating temperature, contamination, washdown, corrosion or other environmental conditions.
  • Quantity, drawing revision and any material, coating, balance or inspection requirement.

Frequently asked engineering questions

Can I select this coupling only from the motor power?

No. Motor power is only a starting point. The selection should use actual torque, service factor, peak load, speed and the driven-machine characteristics.

Which dimension should be confirmed before ordering?

Confirm the shaft interface first, then the overall installation envelope. Bore, key or locking method, hub length, pilot or flange details and available removal clearance all affect whether a listed model will fit.

How much misalignment should be allowed in normal service?

Use the model-specific limit as a maximum capability, not as the target installation condition. Better initial alignment usually reduces cyclic load, heat and wear in both the coupling and connected bearings.

What information is needed for a custom bore or connection?

Provide a dimensioned shaft drawing or at minimum the shaft diameter and tolerance, keyway, engagement length, shoulder or axial-retention details and required hub position.

Should the coupling be inspected after commissioning?

Yes. A short follow-up inspection after the machine has run under real load can reveal fastener settlement, lubricant leakage, unexpected movement or alignment change before these develop into a larger problem.

How should I use the specification blocks on this page?

Treat the listed values as the model reference. Select a candidate from torque and speed, then verify every geometric field that affects your installation before issuing the final order drawing.

Applications

◆

Steel & metallurgy

Commonly considered for rolling, handling and processing equipment with demanding drivetrain loads.

⚙

Mining & minerals

Applicable to crushers, conveyors and processing machinery where robust torque transmission is required.

⇄

Cranes & hoisting systems

Used in drive systems where torque, braking arrangement and alignment must be checked together.

✓

Heavy process equipment

Suitable for industrial machinery where service access and drivetrain reliability are important design considerations.

Common installations include steel and nonferrous processing lines, cranes, conveyors, mills, mining systems, bulk-handling equipment and other drives that combine high torque with moderate alignment movement. Selection should be based on the exact shaft and duty data shown in the specification matrix.

The same coupling family can behave very differently in a smooth continuous drive and in a reversing, impact-loaded or frequently started drive. For that reason, application name alone is not enough for selection. Supply the operating torque, peak load, speed, shaft dimensions, expected movement, ambient conditions and required service access so the configuration can be checked against the complete duty.

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RP Techniek BV (EVER-POWER Netherlands Branch)

Mail:

sales@netherlandsdrive.com

Professional production Speed Reducer, Worm Gearbox, Sprocket, Rack, Gear, Roller Chain, V-Belt Pulley, Motor, PTO Drive Shaft, Chain CC600, Taper Bushes Manufacturer and Supplier.

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