| Research article - (2026)25, 858 - 865 DOI: https://doi.org/10.52082/jssm.2026.858 |
| Strength and Jump Responses to Distinct Repetition Volumes Produced by Peak-Velocity-Decline and Failure-Based Set Termination during Low-Load Blood-Flow-Restriction Full Back Squat Training |
Jinghui Zhong1, Yan Xiao1, Jiyan Xu1, Tongwu Yu1,2, Chang Lu3, Hao Wu1,4,5, |
| Key words: Blood flow restriction, full back squat, jump performance, maximal strength, repetition volume, set termination |
| Key Points |
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| Study design |
A parallel-group trial compared three set-termination strategies during 8 weeks of low-load BFR training. Forty-five participants were allocated equally to VL10%, VL40%, or volitional failure (FAIL; n = 15 per group) using computer-generated allocation numbers returned by an online randomization system. All groups performed full back squats at 30% of the current 1RM with BFR and differed in set-termination strategy. The termination strategy produced the observed working-set repetition volume; participants were not independently randomized to prespecified low-, moderate-, or high-volume doses. Movement velocity regulated only within-set repetition exposure and was not used to estimate or prescribe the external relative load. Primary outcomes were full back squat 1RM and IMTP net peak force, and jump outcomes were secondary. |
| Participants |
Forty-eight resistance-trained male university students volunteered for screening. Three were excluded before allocation because they were unable to complete the scheduled testing and training sessions, leaving 45 participants for randomization ( |
| Testing procedures |
Testing Schedule. All assessments were conducted during the week before and the week after the 8-week intervention in the following order: full back squat 1RM, IMTP, CMJ, SJ, and SBJ, with standardized warm-up procedures. Staff not involved in the training sessions conducted outcome assessments with the same equipment and standardized procedures at pretesting and posttesting. Full back squat 1RM was assessed following NSCA guidelines (Haff and Triplett, IMTP was performed on a force plate with a fixed barbell positioned at mid-thigh height (knee angle: 120-145°; hip angle: 140-150°). Participants performed 3 maximal 5-second pulls with 1-minute rest intervals. The highest net peak force (peak force minus body weight force) was used for analysis. CMJ and SJ were assessed using an accelerometer-based device (Myotest Pro2). For CMJ, participants performed a rapid countermovement from standing before jumping maximally. For SJ, participants descended to a parallel-squat position, paused, and then jumped maximally without countermovement. Three valid trials were recorded for each test, and the best jump height was analyzed. Previous work has reported acceptable validity and reliability of Myotest-derived jump-height estimates in field settings (Casartelli et al., SBJ was performed on an indoor track surface. After one practice trial, participants completed 3 maximal attempts with 2-minute rest intervals. The best distance was recorded. |
| Training Program Blood flow restriction protocol |
BFR was applied bilaterally using 5-cm-wide pneumatic cuffs connected to a portable intelligent pressure-training device (Yidongkang Intelligent BFR Training Device, model ZNJY-01, China) and positioned at the proximal portion of each thigh. Right-thigh circumference was measured with a flexible tape 48 hours before the intervention. Restriction pressure was selected using the published thigh-circumference-based scheme corresponding to 50% of estimated arterial occlusion pressure: 100 mmHg for thigh circumferences below 51.0 cm, 130 mmHg for 51.0-55.9 cm, 150 mmHg for 56.0-59.9 cm, and 180 mmHg for 60.0 cm or greater (Loenneke et al., |
| Training and set-termination protocol |
All groups performed 4 sets of full back squats with BFR twice weekly for 8 weeks, with 3-minute inter-set rest periods. Participants descended until the top surface of the thighs was below the horizontal plane and then initiated the concentric phase with maximal intended velocity. During sessions 1-8, the absolute load corresponded to 30% of baseline full back squat 1RM. The 1RM was reassessed after session 8, and the absolute load for sessions 9-16 was updated to 30% of the reassessed 1RM. The relative load was maintained at 30% of the current 1RM so that working-set repetition volume varied as a consequence of the set-termination strategy rather than a difference in prescribed relative intensity. A 4-session familiarization period preceded the intervention. Peak bar velocity was monitored using an accelerometer-based device (Enode Pro), which was magnetically attached to one side of the barbell and calibrated before each training session according to the manufacturer's instructions. Peak velocity was used because this metric had been prospectively configured for real-time set-termination feedback. Device-specific evidence includes between-session reliability for a peak vertical velocity measure during weightlifting (ICC = 0.954; Chavda et al., RPE was assessed using the Borg 6-20 scale after each set during all supervised training sessions. Session-averaged set RPE was defined as the mean of the 4 set-specific RPE scores recorded within each supervised session. |
| Statistical analysis |
Data are presented as mean ± SD. Normality was assessed using the Shapiro-Wilk test, and homogeneity of variance was examined using Levene's test. A 3 (group) × 2 (time) mixed-design ANOVA was performed for each outcome. When significant group × time interactions were detected, Bonferroni-adjusted post hoc comparisons of between-group pre-to-post changes were performed. For full back squat 1RM change scores, which violated normality, the Kruskal-Wallis test was additionally performed as a sensitivity analysis. For SJ height and IMTP change scores, which violated homogeneity of variance, Welch's ANOVA and Games-Howell post hoc tests were used. Cohen's d for between-group change-score contrasts was calculated using the pooled standard deviation of the individual change scores, and partial eta squared quantified ANOVA effects. Multiple secondary outcomes were interpreted cautiously. For each working set, the best peak velocity was defined as the highest valid velocity, terminal peak velocity as the velocity of the final completed repetition, and mean repetition peak velocity as the repetition-weighted mean across all working repetitions. Decline from the session reference and best-to-terminal decline were calculated at the set level and then averaged across the 64 working sets for each participant. Participant-level values were used to calculate group means and SDs. Between-group differences in the continuous |
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| Participant flow and baseline characteristics |
Forty-eight volunteers were screened, and 3 were excluded before allocation because they could not complete the scheduled testing and training requirements ( |
| Pre-to-Post Changes |
A significant main effect of time was observed for all primary and secondary outcomes (all p < 0.001; |
| Between-Group Comparisons of Change Scores Primary strength outcomes |
VL10% showed smaller 1RM improvements than VL40% (mean difference = -8.53 kg, 95% CI = -12.35 to -4.72, adjusted p < 0.001, d = -1.67) and FAIL (mean difference = -6.20 kg, adjusted p = 0.049, d = -0.93). No statistically significant difference was detected between VL40% and FAIL (mean difference = 2.33 kg, 95% CI = -2.58 to 7.25, adjusted p = 1.000). For IMTP, VL10% showed smaller improvements than VL40% (mean difference = -115.7 N, 95% CI = -167.50 to -63.96, adjusted p < 0.001, d = -1.67) and FAIL (mean difference = -185.9 N, 95% CI = -282.38 to -89.49, adjusted p = 0.002, d = -1.48), whereas no statistically significant difference was detected between VL40% and FAIL (mean difference = -70.2 N, 95% CI = -167.48 to 27.08, adjusted p = 0.442). Complete pairwise comparisons are presented in |
| Jump performance |
Both VL10% (mean difference = 1.59 cm, adjusted p < 0.001, d = 1.90) and VL40% (mean difference = 1.26 cm, adjusted p = 0.004, d = 1.30) showed greater CMJ-height improvements than FAIL, with no statistically significant difference between VL10% and VL40% (adjusted p = 1.000). For SJ height, VL40% showed greater improvements than FAIL (mean difference = 1.44 cm, adjusted p = 0.009, d = 1.20) and VL10% (mean difference = 2.15 cm, adjusted p < 0.001, d = 2.48). For SBJ distance, VL10% showed greater improvement than FAIL (mean difference = 5.00 cm, adjusted p = 0.012, d = 1.14), whereas VL40% showed no statistically significant difference from either comparator. Complete pairwise comparisons are presented in |
| Working-set repetition volume, velocity, and perceived exertion |
The termination strategies produced distinct working-set repetition volumes ( |
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This study compared three set-termination strategies that produced clearly separated working-set repetition volumes during low-load BFR full back squat training. Three findings were central. First, VL10%, VL40%, and FAIL produced progressively greater repetition volume and perceived exertion, despite similar session-reference and best working-set peak velocities. Second, no statistically significant between-group difference was detected between VL40% and FAIL in the primary strength outcomes, although VL40% involved 21.1% fewer working-set repetitions per session. Third, VL10% produced the lowest repetition volume and favorable changes in selected jump outcomes but smaller primary strength improvements than VL40%. These findings indicate trade-offs among the repetition volumes and fatigue exposures produced by the termination strategies rather than a universally optimal velocity threshold. The approximately 2.00 m·s-1 session-reference peak velocities were plausible for a low-load full back squat. Sánchez-Medina et al.,( VL40% involved 21.1% fewer working-set repetitions per session than FAIL and lower session-averaged set RPE, yet no statistically significant between-group difference was detected for 1RM or IMTP. This observation is consistent with evidence that nonfailure BFR can produce some similar chronic adaptations with less discomfort than failure protocols (Kataoka et al., The strength pattern differs from that reported by Sánchez-Valdepeñas et al.,( |
| Limitations |
Several limitations should be acknowledged. Repetition volume was an outcome of the randomized set-termination strategy rather than an independently randomized factor, and it co-varied with velocity decline and perceived exertion; causal effects of volume alone therefore cannot be isolated. The sample consisted of resistance-trained male university students performing a single low-load BFR full back squat model, which limits generalizability. Individual arterial occlusion pressure was not measured with Doppler ultrasound, so applied pressure could not be expressed as a confirmed percentage of arterial occlusion pressure. Thresholds based on peak velocity relative to a pre-session calibration are not directly interchangeable with conventional set-internal mean concentric or mean propulsive velocity thresholds. Finally, the 5 calibration repetitions were excluded from working-set totals despite contributing to total exposure, multiple secondary outcomes were examined, and no hypertrophy or mechanistic markers were measured. |
| Practical implications |
For resistance-trained young men performing this low-load BFR full back squat protocol, velocity-regulated termination can be used to individualize working-set repetition volume. VL40% produced lower repetition volume and perceived exertion than failure while no between-group difference was detected in the primary strength outcomes. VL10% minimized repetition exposure further, although its smaller strength improvements relative to VL40% should be weighed against favorable changes in selected jump outcomes. These recommendations concern complete termination strategies and should not be interpreted as isolated volume-dose effects. |
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Under the same relative-load BFR prescription, VL10%, VL40%, and FAIL produced distinct working-set repetition volumes and perceived exertion. VL40% involved fewer repetitions than failure without a detected difference in the primary strength outcomes, whereas VL10% involved the lowest repetition volume but smaller strength improvements than VL40%. Because repetition volume resulted from the assigned set-termination strategy and co-varied with velocity and fatigue characteristics, the observed adaptations cannot be attributed to repetition volume alone. |
| ACKNOWLEDGEMENTS |
This study was supported by the Science and Technology Enhancement Project of Capital University of Physical Education and Sports (155226001/003) and the National Key Research and Development Program of China (Nos. 2018YFF0300603 and 2018YFF0300902). The authors thank the participants for their time, commitment, and compliance throughout the training and testing period. The datasets generated during the current study are not publicly available but are available from the corresponding author upon reasonable request. The authors declare that they have no conflict of interest. All experimental procedures were conducted in compliance with the relevant legal and ethical standards of the country where the study was carried out. The authors declare that no Generative AI or AI-assisted technologies were used in the writing of this manuscript. |
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