IP Library Granted Patent US 12,348,463
Granted Patent B2
US 12,348,463 · App. 17/917,546 · Granted Jul 1, 2025

Frame structure design for downlink TDD-TDD carrier aggregation with pusch-less cell

Inventors: Bo Chen (Beijing, CN); Mingkai Nan (Beijing, CN); Alexei Yurievitch Gorokhov (San Diego, CA)
Assignee: QUALCOMM Incorporated
H04L5/1469H04L5/001H04L5/0051
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Quick Facts
Patent No.
US 12,348,463
App. No.
17/917,546
Granted
Jul 1, 2025
Kind
B2
Abstract

Wireless communications systems and methods related to transmitting communication signals with a carrier aggregated (CA) system TDD bands of a primary carrier component (PCC) and a secondary carrier component (SCC) PUSCH-less cell are provided. In particular, a CA frame structure with a PCC primary frame and an SCC secondary frame where a sounding reference signal (SRS) transmitted on the SCC secondary frame corresponds to a downlink slot on the PCC primary frame to avoid throughput loss. In some embodiments, the CA frame can be arranged such that at least one of the uplink slots on the PCC frame corresponds with downlink slots on the SCC frame.

Claims (74)

1. A method of operating a user equipment (UE) in communications with a base station (BS), comprising:

performing downlink and uplink with the BS using a primary frame on a first time-division-duplexed (TDD) band of a primary component carrier (PCC), wherein the primary frame has a primary frame structure that includes a plurality of slots with one or more downlink slots, one or more uplink slots, and one or more switching slots;

performing downlink with the BS using a secondary frame on a second band of a secondary component carrier (SCC), wherein the second frame has a secondary frame structure that includes a plurality of slots having one or more downlink slots, one or more uplink slots, and one or more switching slots; and

sending a sounding reference signal (SRS) on the SCC,

wherein the primary frame and the secondary frame form a carrier aggregation (CA) frame structure where the SRS on the secondary frame of the SCC is aligned with a downlink slot on the primary frame of the PCC.

2. The method of operating a UE according to claim 1 , wherein the primary frame and the secondary frame are configured such that an uplink slot of the primary frame is aligned with a downlink slot of the secondary frame.

3. The method of operating a UE according to claim 2 , wherein the CA frame structure is determined by

segregating the plurality of slots of the primary frame structure into a first section and a second section; and

deriving the secondary frame structure by switching order of the first section and the second section.

4. The method of operating a UE according to claim 2 , wherein the CA frame structure is determined by

segregating the plurality of slots of the secondary frame structure into a first section and a second section; and

deriving the primary frame structure by switching order of the first section and the second section.

5. The method of operating a UE according to claim 2 , wherein TDD band of the PCC and the SCC is a N41 band and N79 band.

6. The method of operating a UE according to claim 2 , wherein the CA frame structure is determined by time offsetting the primary frame from the secondary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots of the primary frame and the secondary frame.

7. The method of operating a UE according to claim 2 , wherein the CA frame structure is determined by time offsetting the secondary frame from the primary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots in the primary frame and the secondary frame.

8. A user equipment (UE) apparatus, comprising:

a processor;

a memory coupled to the processor, the memory including data and instructions to be executed on the processor;

a frame module that stores a carrier aggregation (CA) frame structure;

a communications module coupled to receive downlink and transmit uplink according to CA frame structure;

a transceiver coupled to the communications module to transmit and receive according to the CA frame structure; and

antennas coupled to the transceiver to transmit and receive in a first time division duplexed (TDD) band of a primary component carrier (PCC) and in a second TDD band of a secondary carrier component according to the CA frame structure,

wherein the processor executes instructions to

perform downlink and uplink with a base station (BS) using a primary frame on a first time-division-duplexed (TDD) band of a primary component carrier (PCC), wherein the primary frame has a primary frame structure that includes a plurality of slots with one or more downlink slots, one or more uplink slots, and one or more switching slots;

perform downlink with the BS using a secondary frame on a second band of a secondary component carrier (SCC), wherein the second frame has a secondary frame structure that includes a plurality of slots having one or more downlink slots, one or more uplink slots, and one or more switching slots; and

send a sounding reference signal (SRS) on the SCC,

wherein the primary frame and the secondary frame form a carrier aggregation (CA) frame structure where the SRS on the secondary frame of the SCC is aligned with a downlink slot on the primary frame of the PCC.

9. The UE apparatus of claim 8 , wherein the primary frame and the secondary frame are configured such that an uplink slot of the primary frame is aligned with a downlink slot of the secondary frame.

10. The UE apparatus of claim 9 , wherein the CA frame structure is determined by

segregating the plurality of slots of the primary frame structure into a first section and a second section; and

deriving the secondary frame structure by switching order of the first section and the second section.

11. The UE apparatus of claim 9 , wherein the CA frame structure is determined by

segregating the plurality of slots of the secondary frame structure into a first section and a second section; and

deriving the primary frame structure by switching order of the first section and the second section.

12. The UE apparatus of claim 9 , wherein TDD band of the PCC and the SCC is a N41 band and N79 band.

13. The UE apparatus of claim 9 , wherein the CA frame structure is determined by time offsetting the primary frame from the secondary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots of the primary frame and the secondary frame.

14. The UE apparatus of claim 9 , wherein the CA frame structure is determined by time offsetting the secondary frame from the primary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots in the primary frame and the secondary frame.

15. A method of operating a base station (BS) in communications with a user equipment (UE), comprising:

performing downlink and uplink with the UE using a primary frame on a first time-division-duplexed (TDD) band of a primary component carrier (PCC), wherein the primary frame has a primary frame structure that includes a plurality of slots with one or more downlink slots, one or more uplink slots, and one or more switching slots;

performing downlink with the UE using a secondary frame on a second band of a secondary component carrier (SCC), wherein the second frame has a secondary frame structure that includes a plurality of slots having one or more downlink slots, one or more uplink slots, and one or more switching slots; and

receiving a sounding reference signal (SRS) on the SCC,

wherein the primary frame and the secondary frame form a carrier aggregation (CA) frame structure where the SRS on the secondary frame of the SCC is aligned with a downlink slot on the primary frame of the PCC.

16. The method of operating a base station (BS) according to claim 15 , wherein the primary frame and the secondary frame are further configured such that an uplink slot of the primary frame is aligned with a downlink slot of the secondary frame.

17. The method of operating a base station (BS) according to claim 16 , wherein the CA frame structure is determined by

segregating the plurality of slots of the primary frame structure into a first section and a second section; and

deriving the secondary frame structure by switching order of the first section and the second section.

18. The method of operating a base station (BS) according to claim 16 , wherein the CA frame structure is determined by

segregating the plurality of slots of the secondary frame structure into a first section and a second section; and

deriving the primary frame structure by switching order of the first section and the second section.

19. The method of operating a base station (BS) according to claim 16 , wherein TDD band of the PCC and the SCC is a N41 band and N79 band.

20. The method of operating a base station (BS) according to claim 16 , wherein the CA frame structure is determined by time offsetting the primary frame from the secondary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots of the primary frame and the secondary frame.

21. The method of operating a base station (BS) according to claim 16 , wherein the CA frame structure is determined by time offsetting the secondary frame from the primary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots in the primary frame and the secondary frame.

22. A base station (BS), comprising:

a processor;

a memory coupled to the processor, the memory including data and instructions to be executed on the processor;

a frame module that stores a carrier aggregation (CA) frame structure;

a communications module coupled to transmit downlink and receive uplink according to CA frame structure;

a transceiver coupled to the communications module to transmit and receive according to the CA frame structure; and

antennas coupled to the transceiver to transmit and receive in a first time division duplexed (TDD) band of a primary component carrier (PCC) and in a second TDD band of a secondary carrier component according to the CA frame structure,

wherein the processor executes instructions to

perform downlink and uplink with a user equipment (UE) using a primary frame on a first time-division-duplexed (TDD) band of a primary component carrier (PCC), wherein the primary frame has a primary frame structure that includes a plurality of slots with one or more downlink slots, one or more uplink slots, and one or more switching slots;

perform downlink with the UE using a secondary frame on a second band of a secondary component carrier (SCC), wherein the second frame has a secondary frame structure that includes a plurality of slots having one or more downlink slots, one or more uplink slots, and one or more switching slots; and

receive a sounding reference signal (SRS) on the SCC,

wherein the primary frame and the secondary frame form a carrier aggregation (CA) frame structure where the SRS on the secondary frame of the SCC is aligned with a downlink slot on the primary frame of the PCC.

23. The BS of claim 22 , wherein the primary frame and the secondary frame are further configured such that an uplink slot of the primary frame is aligned with a downlink slot of the secondary frame.

24. The BS of claim 23 , wherein the CA frame structure is determined by

segregating the plurality of slots of the primary frame structure into a first section and a second section; and

deriving the secondary frame structure by switching order of the first section and the second section.

25. The BS of claim 23 , wherein the CA frame structure is determined by

segregating the plurality of slots of the secondary frame structure into a first section and a second section; and

deriving the primary frame structure by switching order of the first section and the second section.

26. The BS of claim 23 , wherein TDD band of the PCC and the SCC is a N41 band and N79 band.

27. The BS of claim 23 , wherein the CA frame structure is determined by time offsetting the primary frame from the secondary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots of the primary frame and the secondary frame.

28. The BS of claim 23 , wherein the CA frame structure is determined by time offsetting the secondary frame from the primary frame by an integer number of time durations T, the time duration T being the duration of each of the slots in the plurality of slots in the primary frame and the secondary frame.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 6, 2022
From: CHEN, BO; NAN, MINGKAI; GOROKHOV, ALEXEI YURIEVITCH
To: QUALCOMM INCORPORATED
Reel/Frame 061999/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2022
From: CHEN, BO; NAN, MINGKAI; GOROKHOV, ALEXEI YURIEVITCH
To: QUALCOMM INCORPORATED
Reel/Frame 061461/0439 →
Priority Claims (1)
WO PCT/CN2020/087537 · Apr 28, 2020 · international
Continuity (1)
Related Publication 20230171080A1 · Jun 1, 2023
References Cited (21)
US 11153126B2 · He · 2021 [cited by examiner]
US 11968641B2 · Kim · 2024 [cited by examiner]
US 20150139175A1 · Ratasuk et al. · 2015 [cited by applicant]
US 20160323842A1 · Dinan · 2016 [cited by applicant]
US 20170163389A1 · Fu et al. · 2017 [cited by applicant]
US 20190319824A1 · Rico Alvarino et al. · 2019 [cited by applicant]
US 20200021422A1 · Chen et al. · 2020 [cited by applicant]
US 20210126753A1 · Mochizuki · 2021 [cited by examiner]
CN 103796286A · 2014 [cited by applicant]
CN 104012017A · 2014 [cited by applicant]
CN 104584475A · 2015 [cited by applicant]
CN 111066361A · 2020 [cited by applicant]
WO 2015196483A1 · 2015 [cited by applicant]
WO 2018005481 · 2018 [cited by applicant]
WO WO2018005481A1 · 2018 [cited by examiner]
WO 2018081597A1 · 2018 [cited by applicant]
NPL-Ericsson: “Correction in SRS Switching Requirements”, 3GPP TSG-RN WG4 Meeting #86 bis, R4-1804692, Melbourne, Australia, Apr. 16-20, 2018, Apr. 24, 2018, 3 Pages (Year: 2018). [cited by examiner]
Ericsson: “Correction in SRS Switching Requirements”, 3GPP TSG-RN WG4 Meeting #86bis, R4-1804692, Melbourne, Australia, Apr. 16-20, 2018, Apr. 24, 2018 (Apr. 24, 2018) the Whole Document, 3 Pages. [cited by applicant]
International Search Report and Written Opinion - PCT/CN2020/087537—ISA/EPO—Jan. 26, 2021. [cited by applicant]
International Search Report and Written Opinion—PCT/CN2021/089366—ISA/EPO—Jul. 5, 2021. [cited by applicant]
Supplementary European Search Report—EP21797688—Search Authority—The Hague—Mar. 22, 2024. [cited by applicant]