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USB Type‑B Connector

Definition

USB Standard‑B, commonly called USB Type‑B, is the nearly square connector historically used on the peripheral side: printers, audio interfaces, test instruments, and other host-controlled equipment. It is not reversible. USB 1.x/2.0 uses 4 contacts; the SuperSpeed version adds 5 contacts, for 9 contacts total, in a taller receptacle that remains compatible with USB 2.0 plugs.


Revisions and capabilities

SpecificationCommon marketing nameMaximum raw rateType‑B
USB 1.0 / 1.1Low‑Speed / Full‑Speed1.5 / 12 Mbit/s4 contacts
USB 2.0Hi‑Speed480 Mbit/s4 contacts
USB 3.0 / USB 3.1 Gen 1SuperSpeed USB 5Gbps5 Gbit/s9 contacts
USB 3.1 Gen 2 / USB 3.2 Gen 2x1SuperSpeed USB 10Gbps10 Gbit/s9 contacts

A USB 2.0 Type‑B plug fits a SuperSpeed Type‑B receptacle. The reverse is not possible: the upper section of a SuperSpeed plug prevents it from entering a USB 2.0 receptacle.


USB 1.x / USB 2.0 pinout — 4 contacts

4-contact USB Type-B plug and receptacle pinout

Pin numbers are electrically identical on the plug and receptacle. Their visual positions are mirrored when both parts are drawn from the front, ready to mate.

PinNameCommon colorFunction
1VBUSRedNominal +5 V supply received from the host
2D−WhiteNegative differential data
3D+GreenPositive differential data
4GNDBlackGround and power return
ShellShieldBraid / drainCable shield and chassis

SuperSpeed USB 3.x pinout — 9 contacts

9-contact SuperSpeed USB Type-B plug and receptacle pinout

The four USB 2.0 contacts remain present. Five additional contacts carry the SuperSpeed pairs and their reference ground.

PinNameShort function
1VBUSNominal +5 V supply received from the host
2D−Negative USB 2.0 data
3D+Positive USB 2.0 data
4GNDPower return
5SSTX−Negative SuperSpeed transmit from the peripheral
6SSTX+Positive SuperSpeed transmit from the peripheral
7GND_DRAINSuperSpeed reference / drain
8SSRX−Negative SuperSpeed receive at the peripheral
9SSRX+Positive SuperSpeed receive at the peripheral
ShellShieldShield and chassis

RX/TX names are given from the Type‑B peripheral's perspective. In a Standard‑A to Standard‑B cable, each end's transmit pair connects to the other end's receive pair.


Voltage and current

Power modeNominal voltageMaximum advertised current
USB 2.0, before configuration5 V100 mA per unit load
USB 2.0, configured device5 V500 mA
USB 3.x, before configuration5 V150 mA per unit load
USB 3.x, configured device5 V900 mA
USB Battery Charging 1.25 Vup to 1.5 A with a compatible source

Type‑B is normally the end powered by the upstream host or charger. Proprietary modes may provide more current, but they must not be assumed without explicit identification or documentation. For an interoperable design, observe the limits of the USB or Battery Charging mode that was actually detected.


Cable selection and recommended length

Data conductors

  • USB 1.1 / 2.0: use a shielded 90 Ω differential twisted pair, commonly 28 AWG, with a practical Hi‑Speed maximum of 5 m.
  • USB 3.x 5 Gbit/s: use a controlled 90 Ω SuperSpeed cable with shielded pairs; the typical practical maximum is about 3 m.
  • USB 3.x 10 Gbit/s: prefer a short certified cable, typically 1 m and up to roughly 2 m depending on construction. AWG alone does not guarantee signal integrity.

Power conductors

The following is an engineering recommendation, calculated for copper at 20 °C and a maximum voltage drop of approximately 5% (0.25 V) over the complete VBUS + GND loop. Final length must also remain within the data limit.

Cable power wireTypical resistance per conductor500 mA900 mA1.5 A
28 AWG0.213 Ω/m1.2 m0.65 m0.39 m
26 AWG0.134 Ω/m1.9 m1.0 m0.62 m
24 AWG0.084 Ω/m3.0 m1.65 m0.99 m
22 AWG0.053 Ω/m4.7 m2.6 m1.57 m
20 AWG0.033 Ω/m7.5 m4.2 m2.50 m

Practical advice: for a 3–5 m USB 2.0 cable that actually powers a device, use 22–24 AWG power conductors and a 28 AWG data pair. For 900 mA or 1.5 A, shorten the cable or use 20–22 AWG. Verify voltage at the device under load.


Official sources

USB‑IF specifications take precedence over this page's summary values. AWG-related lengths are conservative voltage-drop recommendations, not normative USB‑IF limits.