EXAM 2026 DETAILED CORRECT
ANSWERS WITH RATIONALES VERIFIED
SOLUTIONS 1 to 150 GRADE A+
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ASTM Certified Soils Technician Practice Examination
1. When performing a laboratory compaction test using
standard effort according to ASTM D698, the soil is
compacted into a specific mold using a regulated rammer.
What are the exact dimensions of the rammer drop height
and weight required for this standard method?
A. A 10.0-lbf rammer dropped from a height of 18.0
inches.
B. A 5.5-lbf rammer dropped from a height of 12.0
inches.
C. A 10.0-lbf rammer dropped from a height of 12.0
inches.
D. A 5.5-lbf rammer dropped from a height of 18.0 inches.
Correct Answer: B. Rationale: ASTM D698 explicitly
specifies a 5.5-lbf (24.4-N) rammer dropped from a
height of 12.0 inches (305 mm) to apply standard
compactive effort, whereas ASTM D1557 utilizes the
heavier 10.0-lbf rammer dropped from 18.0 inches for
modified effort.
2. A technician is conducting a field density test using the
sand cone method in accordance with ASTM D1556.
During the test, the technician notices that passing heavy
traffic is causing significant continuous vibrations in the
, immediate testing area. How should the technician
proceed to ensure accuracy?
A. Continue the test normally but apply a manual
correction factor to the final calculated density.
B. Stop the test immediately, isolate the area from
vibrations, and re-dig a new test hole nearby.
C. Increase the time the sand flow valve is open to
compensate for any premature settlement of the sand.
D. Use a coarser grade of Ottawa sand to minimize the
shifting effects caused by the external vibrations.
Correct Answer: B. Rationale: ASTM D1556 states that
vibrations cause the calibrated sand to densify or pack
more tightly inside both the hole and the jar, leading to
an overestimation of the hole volume and a falsely low
field density calculation. The test must be rerun under
vibration-free conditions.
3. According to the Unified Soil Classification System (USCS)
outlined in ASTM D2487, a soil sample is processed and
found to have 65% of its total weight passing through the
No. 200 (75-µm) sieve. What is the primary operational
classification category for this soil sample?
A. Coarse-grained soil.
B. Fine-grained soil.
C. Organic peat soil.
D. Well-graded gravel.
Correct Answer: B. Rationale: ASTM D2487 defines fine-
grained soils as those where 50% or more by dry weight
passes through the No. 200 sieve. Since 65% passes, it
falls strictly into the fine-grained category (silts and
clays).
4. When performing the liquid limit test using the multipoint
method described in ASTM D4318, the technician uses the
standard Casagrande liquid limit device. What is the
required rate of dropping the cup to ensure standardized
, kinetic energy is applied to the soil pat?
A. 1 drop per second.
B. 2 drops per second.
C. 3 drops per second.
D. 4 drops per second.
Correct Answer: B. Rationale: ASTM D4318 specifies that
the crank of the liquid limit device must be turned at a
consistent rate of 2 drops per second (±0.1 drops per
second) until the two halves of the soil pat come into
contact.
5. During a plastic limit determination under ASTM D4318, a
technician rolls a soil sample into a continuous thread on a
ground-glass plate. At what precise diameter must the
thread begin to crumble or break apart to correctly
indicate that the plastic limit moisture content has been
reached?
A. 1/16 inch (1.6 mm).
B. 1/8 inch (3.2 mm).
C. 1/4 inch (6.4 mm).
D. 3/16 inch (4.8 mm).
Correct Answer: B. Rationale: The plastic limit is defined
by ASTM D4318 as the water content at which a soil
thread cracks or crumbles when manually rolled to a
uniform diameter of exactly 1/8 inch (3.2 mm).
6. A soils technician is executing a particle-size distribution
analysis using a hydrometer under ASTM D7928. At what
point or area of the hydrometer stem should the
technician read the meniscus when taking a measurement
suspended in a soil-water slurry?
A. At the exact bottom of the meniscus.
B. At the exact top of the meniscus.
C. Directly in the center of the meniscus gradient.
D. One full millimeter below the visible meniscus line.
Correct Answer: B. Rationale: Because soil suspensions
, are opaque, it is impossible to see the bottom of the
meniscus clearly. ASTM D7928 mandates reading the top
of the meniscus on the hydrometer stem and applying a
specific meniscus correction factor during calculation.
7. Under ASTM D2216, which governs the laboratory
determination of water (moisture) content of soil and rock
by mass, what is the standard temperature range required
for drying a typical soil specimen in a forced-draft oven?
A. 60°C ± 5°C.
B. 105°C ± 5°C.
C. 110°C ± 5°C.
C. 140°C ± 10°C.
Correct Answer: C. Rationale: ASTM D2216 sets the
standard drying oven temperature at 110°C ± 5°C (230°F
± 9°F) to ensure complete evaporation of free water
without damaging or altering organic or mineral
structures that break down at higher heats.
8. When determining the field moisture-density relationship
using a nuclear density gauge under ASTM D6938, which
of the following practices is strictly required regarding the
reference standard block?
A. The gauge must be standardized on the block once
every calendar month.
B. The gauge must be standardized on the block
daily before starting any field measurements.
C. The standard block must be placed directly on the soil
being tested during calibration.
D. Standardizations must only be performed after an
explicit gauge failure or error code occurs.
Correct Answer: B. Rationale: ASTM D6938 dictates that
a standardization check using the manufacturer's
reference standard block must be conducted daily before
field use to account for source decay and verify proper
electronic functionality.