Why Ankle Stiffness Is One of the Key Contributors to Sprint Speed in Children
When most parents think about making their child faster, they think about running more or harder.
Think about the feet.
Every fast runner has one thing in common—they produce force into the ground through strong, springy ankles.
When an ankle lacks strength and stiffness, it slightly collapses every time the foot lands. Although this collapse might only be a few millimetres, it happens hundreds of times during a run.
Instead of directing force forwards, some of that force disappears down into the ground.
Think of trying to jump on a soft mattress versus a trampoline. A trampoline returns energy. A mattress absorbs it.
Your child’s ankle works the same way.
The Chain Reaction
A weak ankle doesn’t just affect the foot.
It changes everything above it.
When the ankle collapses:
- the knee bends more than it should
- the hip cannot drive forwards as effectively
- knee lift becomes lower
- the foot often lands too far in front of the hips instead of underneath the body
- braking forces increase
- stride efficiency decreases.
One small weakness at the foot affects every step the child takes.
Running is a chain. If the first link is weak, every link above it is affected.
These cues encourage:
- shorter ground contact time
- improved posture
- better force production
- improved leg stiffness
- reduced overstriding
which are all characteristic of faster sprinting.
Three Parts of Great Ankle Stiffness
1. Strong muscles
The calf muscles (gastrocnemius and soleus) and the muscles at the front of the shin (tibialis anterior) provide the strength needed to stabilise the ankle.
Without strength, there is no stiffness.
2. Elastic spring
Speed isn’t only about strength.
It’s about how quickly the ankle can absorb force and rebound off the ground.
The best sprinters spend very little time on the ground.
They hit the ground…
…and bounce straight back off it.
3. Force into the ground
Children often improve instantly with one coaching cue.
I simply tell them:
“Hit the ground hard like you mean it.”
Then I ask them to run softly.
Every single child notices the difference.
Running with intent helps children produce more force into the ground, which leads to better acceleration and speed.
Simple Coaching Cues That Fix Running Technique
Instead of giving children complicated instructions, I use simple cues.
- “Be tall.”
- “Eyes looking forwards.”
- “Hit the ground hard and fast.”
- “Bounce off the ground.”
- “Quick feet.”
- “Land underneath your hips.”
- “Run quietly but powerfully.”
- ” hot coals on the ground”
Interestingly, simply asking children to look forwards often improves their posture immediately.
The hips rise, the chest becomes taller, the core naturally activates, and their entire running position improves.
Sometimes the biggest improvements come from the simplest cues.
Exercises We Use
To build stronger ankles we regularly include:
Strength
- Gastrocnemius calf raises
- Soleus calf raises
- Isometric calf holds
- Bent-knee soleus holds
- Static lunge heel pumps
- Bar stuck heavy calf/soleus raises isometric push
- Tibialis anterior wall raises
- Heel walks
- Tip-toe walks
- Outside-edge (lateral foot) walks
Plyometrics
- Pogos
- Mini hurdle jumps
- Cone hops
- Quick ankle jumps
- Low-level reactive hops
Technique drills
- Forefoot strike drills
- Foot-up marching drills
- A-skips
- Ankling drills
- Fast feet drills
- Speed ladder or mini hurdles to encourage landing under the hips
Supporting muscles
- Crab walks
- Monster walks
- Glute medius strengthening
Strong hips help keep the knees tracking correctly, allowing force to transfer efficiently from the ground through the entire body.
Don’t Forget Hill Sprints
One of my favourite exercises for developing strong feet and ankles is hill sprinting, jumping and hopping.
Running uphill naturally places greater demand on the calves, Achilles tendon and foot muscles.
It teaches children to push into the ground, improve ankle stiffness and produce more force while reducing the braking forces seen during flat sprinting.
Hill sprints are a simple but incredibly effective way to build stronger, more powerful runners.
The Research
Research consistently shows that:
- greater ankle plantarflexor strength is associated with faster sprint performance and better jumping ability.
- higher leg and ankle stiffness improves running economy and sprinting performance.
- plyometric training improves sprint speed, reactive strength and lower-limb stiffness in children and adolescents.
- strong calf muscles and Achilles tendon function allow greater storage and return of elastic energy during running, making every stride more efficient.
Key references
- Brughelli M, Cronin J. A review of research on the mechanical stiffness in running and jumping. Sports Medicine. 2008.
- Bohm S, Mersmann F, Arampatzis A. Human tendon adaptation in response to mechanical loading. Nature Reviews Rheumatology. 2015.
- Ramirez-Campillo R et al. Effects of plyometric training on physical fitness in youth. Journal of Science and Medicine in Sport. 2020.
- Weyand PG et al. Faster top running speeds are achieved with greater ground forces. Journal of Applied Physiology. 2000.
1. Plyometric training makes children faster
A 2025 systematic review including 17 studies and 587 children found that plyometric jump training significantly improved:
- Sprint speed (5–30 m)
- Vertical jump
- Standing long jump
The authors concluded that plyometric training is an effective way to improve sprint performance in children
2. Better ankle stiffness means better sprint mechanics
Research on sprint biomechanics shows that faster runners have:
- greater ankle stiffness
- shorter ground contact times
- greater storage and return of elastic energy
- more propulsion from the ankle rather than the knee.
When the ankle behaves like a stiff spring instead of collapsing, more energy is returned into the next stride instead of being lost.
Coaching cue:
“Bounce off the ground.”
3. Strong calves are one of the biggest contributors to speed
Recent biomechanics research highlighted by Stanford University’s Human Performance research shows that:
- the gastrocnemius
- the soleus
produce more than half of the upward and forward propulsive forces during running.
Elite runners rely much more on their ankles than recreational runners. Recreational runners rely more on their quadriceps, which increases braking forces.
4. Children should do plyometrics
The latest evidence shows appropriately supervised plyometric training is safe and improves:
- sprint performance
- jumping
- change-of-direction speed
- reactive strength
in children and adolescents.
What actually happens when the ankle collapses?
When the ankle collapses into excessive dorsiflexion after foot strike:
- ground contact time increases
- the body spends longer absorbing force
- elastic energy is lost
- the knee bends more
- hip extension becomes less powerful
- the foot often lands further in front of the hips
- braking forces increase
- sprint speed decreases.
Conversely, a stiffer ankle allows the Achilles tendon and calf muscles to store and rapidly release elastic energy, producing a quicker, more forceful push-off.
- Wu, H., Li, S., Lai, J., Bian, W., Ramirez-Campillo, R., Sáez de Villarreal, E., & Zhao, Q. (2025). Children’s sprint and jump performance after plyometric-jump training: A systematic review. Journal of Sports Science and Medicine, 24(1), 52–74. https://doi.org/10.52082/jssm.2025.52
- Weyand, P. G., Sternlight, D. B., Bellizzi, M. J., & Wright, S. (2000). Faster top running speeds are achieved with greater ground forces not more rapid leg movements. Journal of Applied Physiology, 89(5), 1991–1999.
- Brughelli, M., & Cronin, J. (2008). A review of research on the mechanical stiffness in running and jumping: Methodology and implications. Sports Medicine, 38(10), 819–845.
- Bohm, S., Mersmann, F., & Arampatzis, A. (2015). Human tendon adaptation in response to mechanical loading: A systematic review and meta-analysis. Sports Medicine, 45(1), 111–123.
- Lloyd, R. S., Oliver, J. L., Hughes, M. G., & Williams, C. A. (2012). The effects of 4-weeks of plyometric training on reactive strength index and leg stiffness in male youths. Journal of Strength and Conditioning Research, 26(10), 2812–2819.