SUL

Supplementary Uplink

Radio Access Network →
Introduced in Rel-15 Also in: User Equipment

SUL is a 5G NR feature that uses an additional lower-frequency carrier for uplink transmission to enhance coverage and capacity.

Category
Radio Access Network
Introduced
Rel-15
Where
Radio Access Network › NG-RAN (5G)
Also touches
1 segments
Specifications
30 specs
SUL Description Purpose Related Classification Detected Changes Specifications

Description

Supplementary Uplink (SUL) is a carrier aggregation-like technique defined in 3GPP Release 15 and enhanced in subsequent releases for 5G New Radio (NR). It specifically addresses uplink limitations by enabling a User Equipment (UE) to utilize two separate uplink carriers: a primary uplink (which is part of a paired spectrum in Frequency Division Duplex (FDD) or a Time Division Duplex (TDD) band) and a supplementary uplink carrier, typically deployed in a lower-frequency band (e.g., below 1 GHz). The downlink transmission occurs only on the primary carrier, while the uplink can dynamically or semi-statically use either or both carriers. This is distinct from traditional carrier aggregation, as SUL involves an asymmetric link where the supplementary carrier is uplink-only.

Architecturally, SUL is configured via Radio Resource Control (RRC) signaling. The network provides the UE with configuration parameters for the SUL carrier, including its absolute radio-frequency channel number (ARFCN), bandwidth, and associated physical random access channel (PRACH) resources. The UE performs initial access (e.g., random access) on either the primary or SUL carrier based on measured downlink reference signal received power (RSRP) thresholds. During connected mode, the gNB can schedule uplink transmissions on the SUL carrier using Downlink Control Information (DCI) formats in the physical downlink control channel (PDCCH), with the carrier indicated via a dedicated field. The UE's power is managed across both carriers, adhering to maximum power limits and specific power control procedures for the SUL.

Key components involve the gNB's scheduler, which decides carrier selection based on uplink channel conditions, UE capability, and load balancing. The physical layer handles separate channel estimation, modulation, and coding for each uplink carrier. Transport blocks can be transmitted independently on each carrier, though some enhancements allow joint processing. SUL operates within the framework of 3GPP specifications governing physical layer procedures (38.2xx series), radio resource management (38.3xx), and RF requirements (38.1xx series). Its role is to improve uplink throughput, reduce latency for uplink-intensive applications, and extend coverage, especially for high-frequency TDD bands (like n78 or n79) where uplink coverage is inherently limited due to higher path loss and lower UE transmit power compared to base stations.

Purpose & Motivation

SUL was introduced in 5G NR Release 15 to solve critical uplink coverage and capacity challenges, particularly as networks began deploying in mid- and high-band spectrum (e.g., 3.5 GHz in TDD mode). These higher frequencies offer large bandwidths for high downlink speeds but suffer from greater propagation loss and limited uplink coverage due to lower UE transmit power and unfavorable link budget. In dense urban or indoor scenarios, this results in poor uplink performance at cell edges, degrading user experience for applications like video uploads, real-time communication, and IoT data transmission.

Historically, LTE used carrier aggregation and supplemental uplink in specific contexts, but 5G's SUL is a more integrated solution. It allows operators to leverage existing low-band spectrum assets (often used for 4G) as an uplink supplement for 5G, optimizing spectrum utilization without requiring paired spectrum for 5G standalone operation in those bands. This addresses the economic and technical constraints of acquiring new, symmetric spectrum blocks. By decoupling downlink and uplink carriers, SUL provides a cost-effective means to enhance uplink without compromising downlink capacity or requiring full FDD deployment in low bands.

The motivation stems from the need for balanced link performance in 5G, ensuring that uplink does not become a bottleneck for emerging services like augmented reality, industrial IoT, and network slicing with stringent uplink requirements. SUL enables better support for these services by providing more reliable and higher-throughput uplink connections, thereby fulfilling 5G's promise of enhanced mobile broadband and ultra-reliable low-latency communication across diverse deployment scenarios.

Classification

Related approachesTDDFDD

Release Timeline

Detected Changes Across Releases

from 3GPP Change Requests

Specific changes extracted from the „Change history“ tables of 3GPP specifications (30 CRs across 5 releases). Complements the general historical overview above with the evidence-based evolution of this function.

Rel-15 6 changes

In Release 15, the SUL function was introduced and refined through corrections and clarifications to its operation. This included defining the UL/SUL indicator field in Downlink Control Information (DCI) formats 0_0 and 0_1, as well as DCI format 2_3 for power control. The release also specified procedures for bandwidth part (BWP) switching and random access when a Supplementary Uplink is configured.

  • Correction on DCI format 2_3 for SUL cell in TS 38.212 TS 38.212CR0009
  • Clarification on UL_SUL indicator field and SRS request field TS 38.212CR0013
  • Correction on UL/SUL indicator in DCI format 0_0 TS 38.212CR0016
  • CR on UL/SUL indicator in DCI format 0_1 TS 38.212CR0021
  • Correction of BWP switching when SUL is configured TS 38.321CR0452
  • Clarification for random access on SUL TS 38.321CR0638
Rel-16 7 changes

In Release 16, the Supplementary Uplink (SUL) function was expanded with the introduction of new SUL bands, specifically n89 and the 2010-2025MHz band. The release also provided technical clarifications and corrections, including the non-support of SUL with DAPS handover, FDD-TDD differentiation for SUL bands, and corrections to the SRS Spatial Relation Indication MAC CE and fallback band combinations.

  • CR on Introduction and Protection of SUL band n89 into TS 38.104 TS 38.104CR0036
  • Introduction of 2010-2025MHz SUL band into Rel-16 TS 38.104 TS 38.104CR0050
  • Clarification on no support of SUL with DAPS TS 38.300CR0333
  • Clarfication on FDD-TDD differentiation for SUL band TS 38.306CR0523
  • Endorsed CR to 38307 on applicable SUL requirements TS 38.307CR0023
  • Corrections to SUL field in SRS Spatial Relation Indication MAC CE TS 38.321CR0890

+ 1 more changes

Rel-17 12 changes

In Release 17, the Supplementary Uplink (SUL) function was expanded with the introduction of two new dedicated frequency bands for SUL operation: 1880-1920 MHz and 2300-2400 MHz, as specified in TS 38.104. The release also specifically introduced SUL for the uplink of NR band n24 and removed previous restrictions on the maximum number of MIMO layers for SUL operation. Furthermore, extensive work was done to update test specifications, adding and updating applicability for new test cases involving SUL with Uplink MIMO.

  • Introduction of 1880-1920MHz SUL band into Rel-17 TS 38.104 TS 38.104CR0240
  • Introduction of 2300-2400MHz SUL band into Rel-17 TS 38.104 TS 38.104CR0241
  • CR for TS 38.104 Introduction of SUL for UL of NR band n24 TS 38.104CR0262
  • CR to 38.807 Release independent for UE power class 2 NR inter-band CA and SUL configurations (R17) TS 38.307CR0051
  • CR for 38.307 to update the release independence for R17 SUL band combinations TS 38.307CR0099
  • Remove the maximum number of MIMO layers restrictions for SUL TS 38.306CR0532

+ 6 more changes

Rel-18 4 changes

In Release 18, the enhancements for the Supplementary Uplink (SUL) function focused on clarifications and testing. Specifically, corrections and clarifications were made regarding the uplink/SUL field in DCI format 1_0 for LTM and for typeA SRS TPC commands. Furthermore, new test applicability was added for FR1 SUL test cases, and a missing regulatory reference was addressed.

  • Correction on UL/SUL field in DCI format 1_0 in LTM TS 38.212CR0188
  • Adding test applicability for new FR1 SUL test case 6.3C.3.6 and 6.3C.3.6_1 TS 38.522CR0464
  • (NR_SUL_UL_n24-Core) Missing reference to FCC Order DA 20-48 TS 38.104CR0659
  • Clarification on typeA SRS TPC commands for SUL TS 38.212CR0176
Rel-19 1 change

In Release 19, a correction was made to the specification for the Supplementary Uplink (SUL) function. Specifically, the change involved correcting the uplink transmission bandwidth symbol LCRB (Length of Contiguous Resource Blocks) within the MSD (Maximum Sensitivity Degradation) tables. This update ensures the accurate definition of transmission parameters for SUL operation.

  • (NR_CADC_SUL_R19-Core) CR to 38.719-03-01 to correct UL transmission bandwidth symbol LCRB in MSD tables TS 38.719CR0001

Explore further

Broader topics and technologies where SUL plays a role.

Defining Specifications

3GPP specifications that define or reference SUL, with the latest known release. Sourced from the 3GPP document catalog — see methodology.

SpecificationTitleRelease
TS 36.413 vj10 S1 Application Protocol (S1AP) Rel-19
TS 37.716 3GPP TR 37.716 Rel-15
TS 37.717 3GPP TR 37.717 Rel-15
TS 37.718 3GPP TR 37.718 Rel-15
TS 37.872 vf10 Technical Report on SUL & LTE-NR DC with SUL Rel-15
TS 37.898 vj00 Rel-19 HPUE for EN-DC Band Combinations Rel-19
TS 38.101 vj31 NR User Equipment Radio Transmissions Rel-19
TS 38.104 vj20 NR Base Station RF Requirements Rel-19
TS 38.133 vj20 5G UE Radio Requirements for RRC_IDLE Mobility Rel-19
TS 38.141 vj20 NR Base Station RF Conformance Testing Part 1 Rel-19
TS 38.176 vj20 IAB Conformance Testing Specification Rel-19
TS 38.212 vj10 NR Multiplexing and Channel Coding Rel-19
TS 38.300 vj00 NG-RAN Overall Description Rel-19
TS 38.306 vj00 NR UE Radio Access Capability Parameters Rel-19
TS 38.307 vj20 NR UE Release Independent Requirements Rel-19
TS 38.321 vj00 NR MAC Protocol Specification Rel-19
TS 38.423 vj10 Xn Application Protocol (XnAP) specification Rel-19
TS 38.473 vj10 5G F1 Application Protocol (F1AP) Rel-19
TS 38.521 vj20 NR Physical Layer UE Conformance Testing Rel-19
TS 38.522 vj11 UE Conformance Test Applicability Statement Rel-19
TS 38.719 vj00 Rel-19 NR SUL Configurations and CA Band Combinations Rel-19
TS 38.746 vj00 High Power UE for NR Inter-band CA/DC Rel-19
TS 38.750 vj00 High Power UE for NR Inter-band CA/DC Rel-19
TS 38.755 vj10 NR FR1 DL Fragmented Carriers Study Rel-19
TS 38.793 vj00 Simultaneous Rx/Tx Band Combinations TR Rel-19
TS 38.817 3GPP TR 38.817 Rel-15
TR 38.839 vh00 Simultaneous Rx/Tx band combinations Rel-17
TR 38.881 vi00 Technical Report on Lower MSD for Inter-band CA/EN-DC/DC Rel-18
TR 38.889 vg00 NR-based access to unlicensed spectrum study Rel-16
TR 38.894 vi00 Technical Report Rel-18
Patrick Zandl

About the author: Patrick Zandl (b. 1974)

Telecommunications specialist, technology journalist (founder of the Mobil server), and developer who has been running since 2025 — the largest Czech-language resource on AI-assisted programming. Formerly Chief Wizard Architect at Prusa3D and head of development for Turris at CZ.NIC; currently a consultant and instructor on AI implementation in companies.