---
title: 'Concrete''s Greatest Weakness is Time'
source: 'https://youtube.com/watch?v=f2uad6LT9fo'
video_id: 'f2uad6LT9fo'
date: 2026-07-24
duration_sec: 1024
channel: 'Practical Engineering'
---

# Concrete's Greatest Weakness is Time

> Source: [Concrete's Greatest Weakness is Time](https://youtube.com/watch?v=f2uad6LT9fo)

## Summary

This video explores concrete's greatest weakness: the time required for it to gain strength. Through the story of the Skyline Plaza collapse and hands-on cylinder tests, the video explains the challenges of concrete curing, including workability windows, strength testing at various ages, and strategies to accelerate construction schedules.

### Key Points

- **Skyline Plaza Collapse** [00:00] — On March 2, 1973, a portion of the Skyline Plaza tower collapsed during construction after workers removed formwork too early. The concrete hadn't gained enough strength due to cold weather, killing 14 people.
- **Concrete's Unique Challenge** [01:26] — Unlike most building materials that are immediately usable, concrete requires time to cure. This creates unique challenges for engineers, architects, and contractors.
- **Two Key Phases** [02:06] — Concrete's working life has two phases: workability (phase one) where it must be easy to shape, and strength (phase two) where it must handle design loads. These phases demand opposite properties.
- **Ready-Mix and Specifications** [02:40] — Large projects use ready-mix batch plants where ingredients are measured and blended per specifications. Strict limits on drum revolutions help prevent ingredient breakdown.
- **Hydration Process** [04:34] — Concrete cures through a chemical reaction called hydration, not by drying. Water becomes part of the concrete, and the process is affected by temperature, wind, and delays.
- **Initial Set and Finishing Window** [05:03] — Initial set occurs in 2-4 hours, when concrete is firm enough to support workers but still workable. Finishing must happen between initial and final set.
- **24-Hour Strength Test** [05:49] — After 24 hours, concrete is strong enough to walk on but not much more. Test cylinders crumble easily under a hydraulic press.
- **7-Day Test** [06:34] — A 7-day test provides early indication of whether concrete will reach required strength. If not, corrective actions can be taken early.
- **Testing After Installation** [07:43] — A major challenge is that concrete cannot be fully tested until after it is placed. Suppliers often add extra strength margin to hedge against variation.
- **28-Day Benchmark** [09:39] — 28 days is the standard benchmark for concrete compressive strength. The rate of hydration flattens out by then, and most engineering is based on this strength.
- **75% Rule of Thumb** [10:34] — Concrete typically reaches about 75% of its final strength after 7 days. The 28-day samples were about 20% stronger than 7-day ones.
- **Speeding Up Strength Gain** [11:38] — Using a stronger mix, high early strength cement, chemical accelerators like calcium chloride, or heating can speed up curing. However, accelerators may cause corrosion or cracking.
- **Time as Concrete's Weakness** [14:28] — Concrete's slow strength gain makes time its greatest weakness. It requires a leap of faith and a long pause before knowing if it will perform, unlike other materials.

### Conclusion

Concrete's greatest weakness is time: it requires weeks to gain strength, creating bottlenecks in construction. However, through careful mix design, testing, and acceleration techniques, engineers can manage this challenge.

## Transcript

On March 2, 1973, the Skyline Plaza tower was&nbsp; under construction in a suburb of Washington,&nbsp;&nbsp; DC. Crews had just placed a portion of the floor&nbsp; slab for the 24th story, just two floors short&nbsp;&nbsp;
of the project’s final height. Shortly after&nbsp; lunch, workers noticed that the new slab was&nbsp;&nbsp; deflecting. Suddenly, a portion of the building&nbsp; collapsed, killing 14 and injuring many more.&nbsp;&nbsp;
The collapse left a gap in the building 18 meters&nbsp; or 60 feet wide, essentially slicing it in two. Investigators later found that workers had removed&nbsp; the formwork and shoring for the lower floors too&nbsp;&nbsp;
early. Because of cold weather, the already-placed&nbsp; concrete in those lower floors hadn’t gained&nbsp;&nbsp; strength as quickly as they expected. Without&nbsp; the shoring transferring loads into the structure&nbsp;&nbsp; below, the under-cured concrete was forced to&nbsp; bear the weight. And it just wasn’t strong enough.
Concrete is an incredible material. I’ve&nbsp; covered a lot of concrete topics in previous&nbsp;&nbsp; videos. There are good reasons why we use&nbsp; so much of it in the built environment. But,&nbsp;&nbsp;
and this is hard for me to say,&nbsp; it’s not without its flaws.&nbsp;&nbsp; Even putting aside the environmental&nbsp; issues, as a building material,&nbsp;&nbsp; concrete creates challenges that are unique&nbsp; and, in many cases, not that well-understood.
Most building materials, after they're fastened&nbsp; or put in place, are immediately ready to use.&nbsp;&nbsp; That’s not true for concrete, and even if&nbsp; it seems kind of obvious, it creates some&nbsp;&nbsp;
really interesting challenges for engineers,&nbsp; architects, and contractors. So I’ve cast some&nbsp;&nbsp; concrete cylinders in the garage, and we’re going&nbsp; to break them to understand this weird property&nbsp;&nbsp; of concrete and some of the ways we work around&nbsp; it. I’m Grady, and this is Practical Engineering.
As soon as water meets the cement in&nbsp; concrete mix, the clock starts ticking,&nbsp;&nbsp; and there’s basically no stopping it. The working&nbsp; life of concrete consists of two key phases,&nbsp;&nbsp; and they demand almost opposite properties.&nbsp; Phase one has to be workable and easy to shape.&nbsp;&nbsp;
Concrete placement and finishing is a&nbsp; ton of work with a lot of steps that&nbsp;&nbsp; each have to happen at the right time.&nbsp; Of course, the second phase is strength;&nbsp;&nbsp; no matter how beautifully formed concrete is, it’s&nbsp; useless unless it can handle its designed load.
The process begins even before the concrete&nbsp; arrives on site. Most large jobs rely on ready-mix&nbsp;&nbsp; batch plants, where ingredients are measured&nbsp; and blended according to project specifications,&nbsp;&nbsp;
then loaded into rotating drum trucks for&nbsp; delivery. Concrete is relatively cheap by&nbsp;&nbsp; weight compared to other building materials. At&nbsp; its most basic, it’s just sand, gravel, cement,&nbsp;&nbsp; and water. But placing it is labor-intensive,&nbsp; time-sensitive, and expensive, plus many projects&nbsp;&nbsp;
use a lot of it. So it’s important that the right&nbsp; stuff makes it to the job. Engineers often put&nbsp;&nbsp; strict specifications not only the the ingredients&nbsp; themselves, but how the concrete is handled on the&nbsp;&nbsp;
way to the job site. Some even put limits on&nbsp; the number of drum revolutions allowed before&nbsp;&nbsp; the concrete is dispensed, helping to prevent&nbsp; ingredient breakdown and loss of entrained air.
Once on site, the first task is getting&nbsp; the concrete into the forms. At this stage,&nbsp;&nbsp; workability is everything. It doesn’t need&nbsp; to flow like water, but it should move easily&nbsp;&nbsp; enough to be placed quickly and completely.&nbsp; You want some flow, especially for complex&nbsp;&nbsp;
shapes or when you have a lot of reinforcement.&nbsp; Next is consolidation - usually with vibration&nbsp;&nbsp; or agitation - to get rid of excess trapped air.&nbsp; For slabs, workers screed the surface to level it,&nbsp;&nbsp;
then use floats to push down coarse aggregates and&nbsp; prepare for the final finish. This is physically&nbsp;&nbsp; demanding work, and every step has to be done&nbsp; before the mix becomes too stiff to work with.
We do have some tools to manage this process.&nbsp; Admixtures can adjust the set time and improve&nbsp;&nbsp; workability without adding extra water,&nbsp; which would otherwise weaken the final&nbsp;&nbsp; product. But the water in concrete isn’t&nbsp; a solvent that dries out. Concrete cures&nbsp;&nbsp;
through a chemical reaction called hydration.&nbsp; The water becomes a part of the concrete. And&nbsp;that hydration process can be affected&nbsp; by jobsite conditions like temperature,&nbsp;&nbsp; wind, or delays at the batch plant,&nbsp; which are out of your control. That&nbsp;&nbsp;
unpredictability can make a big concrete pour&nbsp; extremely stressful. You don’t get do-overs. Depending on conditions, concrete typically&nbsp; reaches its initial set in about 2 to 4 hours.&nbsp;&nbsp;
That’s when the mix is firm enough that you can’t&nbsp; easily press a finger into it. At this point,&nbsp;&nbsp; it’s ready for finishing, whether&nbsp; that’s troweling for a smooth floor,&nbsp;&nbsp; brooming for a textured sidewalk,&nbsp; or stamping for decorative work.&nbsp;&nbsp;
Each technique has to happen during a short&nbsp; window between the initial and final set,&nbsp;&nbsp; when the concrete is firm enough to support&nbsp; workers but still soft enough to shape. On big projects, timing is critical.
Standardized&nbsp; tests are often used to measure set times and&nbsp;&nbsp; guide trial batches so that each task can be&nbsp; scheduled precisely. After final set, the next&nbsp;&nbsp; phase begins: waiting. I cast a bunch of concrete&nbsp; cylinders to show you exactly what I mean.
It’s 24 hours later, so let’s get these on&nbsp; the hydraulic press. I’ve got Brady in the&nbsp;&nbsp; shop supervising the process. And my scale isn’t&nbsp; calibrated, so we’ll do all the comparisons in&nbsp;&nbsp; arbitrary units of force. Some people suggested&nbsp; kilogradys last time I used this, so let’s go&nbsp;&nbsp;
with that. Even without looking at the scale, you&nbsp; can tell these samples aren’t very strong. Under&nbsp;&nbsp; the press, they kind of crumble more than break&nbsp; apart, and this is pretty typical.
After a day,&nbsp;concrete’s strong enough to walk on. And,&nbsp; depending on the structure, this could be a&nbsp;&nbsp; good time to strip off the formwork, but you’re&nbsp; not going to get away with much more than that.&nbsp;&nbsp; I broke 3 cylinders, and we’ll plot them on the&nbsp; graph like this. Let’s fast forward to 7 days.
For large projects, the concrete&nbsp; specifications often require a test&nbsp;&nbsp; at this point. It’s the same idea as what&nbsp; I’m doing here, just with more sophisticated&nbsp;&nbsp; equipment. Samples collected on site are put&nbsp; in cylindrical or cubic molds, taken to a lab,&nbsp;&nbsp;
and cured in controlled conditions. Then they’re&nbsp; put into a press much more complicated than this,&nbsp;&nbsp; and the force required to break them is&nbsp; measured. The idea behind a 7-day test is that,&nbsp;&nbsp;
if the concrete isn’t going to reach its required&nbsp; strength, you want to know as early as possible. Let’s put these test results in on our&nbsp; graph. The average was 9300 kilogradys so,&nbsp;&nbsp;
a 3X increase from the 1-day breaks. Strength&nbsp; gain usually follows a predictable curve,&nbsp;&nbsp; so early results can be extrapolated with&nbsp; reasonable confidence. If something’s wrong,&nbsp;&nbsp;
you can often tell early and start planning&nbsp; accordingly, even if that means tearing out&nbsp;&nbsp; a pour and resetting the schedule. As costly&nbsp; as it sounds, it’s nothing compared to the&nbsp;&nbsp; consequences of trusting concrete that isn’t&nbsp; as strong as the engineer assumed in design.
This highlights one of the biggest challenges with&nbsp; concrete: you can’t fully test quality until after&nbsp;&nbsp; installation. Most building materials go through&nbsp; inspection before arriving on site. With concrete,&nbsp;&nbsp;
you can test the raw ingredients and even&nbsp; make trial batches, but the real test is&nbsp;&nbsp; whether the mix you placed in the formwork&nbsp; meets strength requirements after it cures.&nbsp;&nbsp; That uncertainty adds risk. To hedge against it,&nbsp; suppliers often design mixes with extra strength&nbsp;&nbsp;
margin to make sure that, even with some random&nbsp; variation, strength will never come in too low.&nbsp;&nbsp; Sometimes, waiting longer can help a&nbsp; borderline mix catch up. But in some cases,&nbsp;&nbsp; a failed strength test really does mean&nbsp; tearing everything out and starting over.
Another complication is where samples are&nbsp; cured. Standard lab specimens are kept in&nbsp;&nbsp; tightly controlled environments. This helps&nbsp; verify that the supplier met the required&nbsp;&nbsp; mix specifications. But it doesn’t always&nbsp; reflect conditions in the actual structure,&nbsp;&nbsp;
where temperature, humidity, and weather can vary&nbsp; wildly. That’s why many projects also include&nbsp;&nbsp; testing of field-cured samples, which gives a&nbsp; more realistic picture of the in-place strength.&nbsp;&nbsp;
If this had been done at Skyline Plaza, the&nbsp; cold-weather delays in curing might have&nbsp;&nbsp; been caught, preventing a costly and deadly&nbsp; failure when shoring was removed too early. On a well-run job, a good 7-day result&nbsp; gives confidence that everything is on track.
you have a solid indication that it will. I also broke some 14-day samples, not typically&nbsp; required on jobs, but useful for seeing the big picture.
though the rate is already slowing.&nbsp; Let’s jump ahead two more weeks. 28 days is a fairly arbitrary, but widely used&nbsp; benchmark for when the rate of hydration flattens out.
Usually, when we talk about the compressive&nbsp; strength of concrete - 4000 psi or 28 MPa,&nbsp;or&nbsp; 10,000 kilogradys per square smoot, or&nbsp; whatever it might be - we’re talking about&nbsp;&nbsp;
the minimum 28-day strength. A significant amount&nbsp; of concrete engineering is based on this strength.&nbsp;&nbsp; The goal is that 28 days after placement,&nbsp; you can feel confident that the structure&nbsp;&nbsp;
will perform up to the maximum loads as it&nbsp; was designed. My 28-day samples broke at an&nbsp;&nbsp; average force of about 11,000 kilogradys, about&nbsp; 20 percent stronger than the 7-day ones. Pretty&nbsp;&nbsp;
close to the rule of thumb that concrete reaches&nbsp; around 75% of its final strength after one week. But you see the problem here. A month is a&nbsp; long time, and time is money in the world of&nbsp;&nbsp;
construction. There are some things you can do in&nbsp; the interim - maybe install anchors or apply light&nbsp;&nbsp; loads. For a sidewalk or driveway that rarely sees&nbsp; heavy vehicles, concrete might be strong enough&nbsp;&nbsp; at 7 days. But for applications where the margin&nbsp; between expected loads and material strength are&nbsp;&nbsp;
tighter, you just have to wait. And this can&nbsp; be a real problem in some cases. Think about&nbsp;&nbsp; concrete roadways. How long are you willing&nbsp; to wait to keep a lane closed after a repair?&nbsp;&nbsp; Tall buildings have a similar problem. If&nbsp; you wait 28 days for every floor to cure,&nbsp;&nbsp;
it’s going to be a long and slow project.&nbsp; You can see how concrete cure time turns&nbsp;&nbsp; into a serious bottleneck and can often become&nbsp; the critical path on a construction schedule. Luckily, there are a few ways to speed things up.&nbsp; One is just to use a stronger mix. The logic here&nbsp;&nbsp;
is simple. Say you need a 4000 psi concrete, but&nbsp; you don’t want to wait 28 days. If you use a 5000&nbsp;&nbsp; psi mix design, theoretically, you’ll hit 4000 psi&nbsp; after just over a week. This adds material cost,&nbsp;&nbsp;
but the time savings can make it worthwhile.&nbsp; Other strategies include using “high early&nbsp;&nbsp; strength” cement that’s ground more finely to&nbsp; speed up hydration, or altering the mix ratio by&nbsp;&nbsp; adding more cement or reducing water. Heating the&nbsp; mix water or curing under blankets can also help.
Chemical accelerators are another tool. Calcium&nbsp; chloride is a popular choice because it’s cheap,&nbsp;&nbsp; but it has drawbacks. Chloride ions can&nbsp; speed up corrosion of steel reinforcement,&nbsp;&nbsp; so lots of engineers won’t allow calcium chloride&nbsp; in concrete in their projects. Non-chloride&nbsp;&nbsp;
accelerators (or NCAs) have gotten better&nbsp; over the years and may be a safer alternative,&nbsp;&nbsp; but they still pose challenges. The curing&nbsp; of concrete is an exothermic reaction,&nbsp;&nbsp; so faster hydration generates more heat, which&nbsp; can lead to cracking as the concrete cools. And,&nbsp;&nbsp;
I hope you can see the complexity in all&nbsp; this. There is a lot we ask concrete to do,&nbsp;&nbsp; and because it hardens relatively slowly, there’s&nbsp; a lot riding on how and when concrete gains&nbsp;&nbsp;
strength. It’s not just about stripping forms or&nbsp; removing shoring. In many construction projects,&nbsp;&nbsp; the strength gain of the concrete governs&nbsp; every downstream operation. It determines&nbsp;&nbsp;
when floors can support framing, when roads&nbsp; can open, and when a project can move forward. And there’s nothing magical about 28 days. It’s&nbsp; just four weeks. It’s a number of convenience&nbsp;&nbsp; that makes it easy to talk about concrete&nbsp; strength and compare properties. In fact,&nbsp;&nbsp;
most concrete will continue to gain strength for&nbsp; months or even years after that first four weeks,&nbsp;&nbsp; depending on the mix design and steps&nbsp; taken during curing. And many projects&nbsp;&nbsp;
require that it does. Compressive strength&nbsp; isn’t everything when it comes to concrete.&nbsp;&nbsp; There are time- or exposure-dependent&nbsp; failure modes like shrinkage, creep,&nbsp;&nbsp; and long-term degradation from freeze-thaw&nbsp; that play an important role in design.&nbsp;&nbsp;
So some projects like dams and bridges often have&nbsp; 90-day requirements to ensure that the concrete&nbsp;&nbsp; eventually reaches a strength to resist them,&nbsp; even if it doesn’t need to happen right away. But that 28-day convention gives a hint about&nbsp; concrete’s greatest weakness: time. Really,&nbsp;&nbsp;
no other structural material requires&nbsp; you to wait weeks before knowing whether&nbsp;&nbsp; it will actually perform as expected. While&nbsp; most materials arrive on site ready to use,&nbsp;&nbsp; concrete requires a leap of&nbsp; faith. And then, a long pause.
Concrete is strong, durable, and incredibly&nbsp; versatile. There’s nothing like it! It’s&nbsp;&nbsp; a building material worth celebrating in many&nbsp; ways, but only on its own terms. You can place&nbsp;&nbsp; it quickly. You can shape it into nearly&nbsp; anything. But you can’t rush what happens&nbsp;&nbsp;
next. That’s the challenge and the art of concrete&nbsp; construction: it’s a balancing act between acting&nbsp;&nbsp; fast and waiting long enough. It’s a material&nbsp; that embodies both a sprint and a marathon.
A lot of people don’t think about concrete as&nbsp; an academic topic, but because of its importance&nbsp;&nbsp; across the globe, there are a lot of researchers&nbsp; who spend their entire careers studying it. I read&nbsp;&nbsp; a lot of journal articles about concrete as&nbsp; research for this video, most of them helpful&nbsp;&nbsp;
if not particularly groundbreaking. But every&nbsp; once in a while, an academic paper takes on a&nbsp;&nbsp; life of its own. That’s the story told by my&nbsp; friend Kevin of the “Bobby Broccoli” channel&nbsp;&nbsp;
in the new documentary, 17 Pages. A single&nbsp; paper sparked a scandal so big it was called&nbsp;&nbsp; the “Scientific Watergate. 17 Pages dives deep&nbsp; into one of the most controversial science ethics&nbsp;&nbsp;
cases of the 20th century. And if you want to&nbsp; check it out, it’s only available on Nebula. Nebula’s a streaming platform built by and for&nbsp; independent creators, including channels like&nbsp;&nbsp; Strange Parts, Integza, Real Engineering, and&nbsp; Hacksmith Industries. You get early access,&nbsp;&nbsp;
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