Normal Ranges for a Semen Analysis: What You Need to Know

Normal Ranges for a Semen Analysis: What You Need to Know

Based on the Sperm Analysis course developed by Laura E. A. Cook, M.D., Jan A. Enabore, and William E. Roudebush, Ph.D., HCLD — Department of Biomedical Sciences, University of South Carolina School of Medicine Greenville

When a couple is having difficulty conceiving, a semen analysis is one of the first and most important diagnostic steps. Although infertility is commonly felt to be a female condition, a male factor often plays a significant role. Understanding what a semen analysis measures — and what the results mean — is an important part of navigating a fertility evaluation.

Editor’s Note: Statistics indicate that approximately 40% of infertility cases are attributed to female factors, 40% to male factors, and the remaining 20% to unexplained infertility. (Source: American Society for Reproductive Medicine)

What Is a Semen Analysis?

A semen analysis is the study of an ejaculate sample from a male. These studies are done in order to determine if there are any abnormalities in the semen or spermatozoa (sperm cell) that might prevent successful impregnation.

Certain risk factors place a male at higher risk of having infertility, including abnormalities or issues with the testicles themselves, prior treatment for cancer, hormonal disorders, prior scrotal surgery, or infections such as a sexually transmitted disease.

How Is the Sample Collected?

Semen samples are normally collected via masturbation. Ideally the sample is collected in a private room near the laboratory where the analysis is to be completed. If this is not an option, the sample must be brought to the laboratory within 60 minutes of collection.

For patients who cannot give a sample via masturbation, a physician or laboratory may supply a special condom to collect the sample. Coitus interruptus (the withdrawal method) is an unacceptable method to obtain a sample — the first portions of ejaculate contain the highest concentration of sperm and may be lost using this method.

Preparing for the Test

Proper preparation is essential for an accurate result:

  • Patients must abstain from sex or masturbation for more than 48 hours, but less than 7 days, for an optimal semen sample.
  • Sperm count can be affected when the male has ejaculated less than 48 hours prior to giving a sample.
  • Motility and vitality of sperm can be affected when the male has not ejaculated for greater than 7 days.
  • Samples are collected in a clean, wide-mouth container and stored at warm temperatures of 20–40 degrees Celsius to maintain sperm motility.
    A clinical laboratory somatic cell counting workstation used for sperm analysis. The image shows a Baxter Somatic Counter machine with timer and speed controls, microscope slides, capped semen sample vials, a digital timer, and a clear specimen container positioned on the instrument platform. .
    Figure 1. A clinical laboratory somatic cell (sperm counting)
    A gloved laboratory technician holds a capped specimen container containing a sperm sample above a Thermolyne laboratory mixer or vortex device. The clinical lab setting includes sterile equipment and a red biohazard disposal container in the background, illustrating sample preparation and handling during semen analysis or fertility testing procedures.Figure 2. Analysis of the sperm sample

What Does Analysis Measure

1. Liquefaction

Liquefaction is the process in which a semen sample liquefies or becomes less viscous. Normal semen samples liquefy within 60 minutes at room temperature, but often liquefaction is complete within 15 minutes. It is important for the analysis that the sample becomes liquefied.

If complete liquefaction does not occur within 1 hour, additional treatment such as mechanical mixing or enzyme digestion may be necessary.

2. Viscosity

A liquid is described as viscous if it flows very slowly or is thick. Viscosity of a semen sample affects both the function and ability of sperm to reach a female egg, as well as the ability for a technician to analyze the sample.

A gloved laboratory technician holds a capped specimen container containing a sperm sample above a Thermolyne laboratory mixer or vortex device. The clinical lab setting includes sterile equipment and a red biohazard disposal container in the background, illustrating sample preparation and handling during semen analysis or fertility testing procedures.

 

 

 

 

 

 

 

 

Figure 3. Viscosity is determined by drawing up some of the sample into a pipette and observing the speed of flow and how it drips with gravity. Normal semen viscosity drips from the pipette in small drops, while semen with abnormal viscosity drips in longer threads greater than 2 centimeters in length.

A close-up laboratory image showing a clear pipette dispensing small droplets of semen sample into a translucent specimen container. The sample demonstrates normal viscosity, with fluid separating into individual drops rather than forming long strands. The softly blurred clinical laboratory background emphasizes precision handling and semen analysis procedures used in fertility testing.Figure 4. Normal semen viscosity drips from the pipette in small drops A close-up laboratory image showing a gloved technician holding a translucent specimen container while a pipette lifts a long, string-like strand of semen sample from the container. The elongated strand demonstrates abnormal viscosity, where the sample remains excessively thick and stretchy rather than separating into small droplets.Figure 5. Abnormal viscosity drips in longer threads greater than 2 centimeters in length

 

3. Volume

Volume of the sample is an important component of a semen analysis. Low semen volume may contain a low sperm count, which decreases the likelihood of pregnancy. A normal volume of semen is greater than 2 milliliters.

A close-up laboratory image of a transparent graduated pipette used during semen analysis and fertility testing procedures.

4. pH

The pH value is a unit of measurement to determine how acidic a fluid is. The pH scale ranges from 0 to 14, with 7 being neutral. The pH of semen is important for normal biological function and survival of sperm.

The pH of the female vagina is an acidic environment, while the pH of normal semen is basic. Survival of sperm within the vagina therefore relies upon a normal basic pH of semen.

A normal pH of semen is greater than or equal to 7.2. A pH of less than 7.0 in a sample that contains no sperm can indicate an ejaculatory duct obstruction or bilateral congenital absence of vas deferens — a tube that transports sperm from the testicles to the urethra for ejaculation — thus preventing sperm from being released from the testicles and successful conception.

The pH of semen is measured within one hour of ejaculation via a single drop sample onto pH indicator paper.

 

A close-up fertility laboratory image showing a transparent pipette applying a semen sample onto a yellow pH test strip held with metal forceps. The sample appears green on the strip, indicating pH testing during semen analysis.Figure 7. A single drop of semen sample being placed onto pH indicator paper A close-up laboratory image showing a pH indicator testing kit used during semen analysis. A gloved hand holds metal forceps gripping a yellow pH test strip with a dark green sample spot positioned beside a Hydrion MicroFine pH color comparison chart ranging from pH 6.0 to 8.0. The clinical testing setup demonstrates pH evaluation procedures commonly performed in fertility and reproductive medicine laboratories.Figure 8. pH paper turned blue, indicating a normal basic pH ≥ 7.5

 

5. Appearance (Microscopic Analysis)

A semen sample must be visualized using a microscope. The sample must be visualized within an hour of collection, while the sample is liquefied. The andrologist — a highly trained laboratory technician who studies male reproduction — observes how sperm in the sample vary in:

  • Number (concentration and total count)
  • Color
  • Shape (morphology)
  • Motility — the speed and direction of movement of the sperm

 

A close-up laboratory image showing gloved hands using a micropipette to transfer a semen sample into a translucent specimen container. The scene takes place in a clinical fertility laboratory, with sterile equipment and a red biohazard disposal container visible in the softly blurred background. The image highlights precision sample handling during semen analysis and reproductive testing procedures.

Figure 9a. Microscope setup for semen analysis

A close-up laboratory image showing a pipette dispensing a semen sample onto a blue microscope analysis slide within a clinical fertility laboratory workstation. Nearby sample vials, slide holders, and laboratory equipment are visible around the testing platform, while a gloved technician’s hand appears in the foreground. The image highlights precision preparation of semen samples for microscopic evaluation and fertility testing procedures.

Figure 9b. Microscope slide preparation

A laboratory microscope used for semen analysis and sperm evaluation in a fertility testing laboratory. The image shows a high-powered binocular microscope positioned beside a computer workstation and monitor in a clean clinical environment, highlighting microscopic examination procedures used in reproductive medicine and andrology laboratories.

Figure 9c. Semen sample on slide under microscope

A close-up laboratory image of a microscope objective lens focused on a blue analysis slide used for semen evaluation and sperm analysis. The microscope stage, measurement controls, and glass slide are shown in detail, highlighting microscopic examination procedures performed in fertility and reproductive medicine laboratories.

Figure 9d. Microscopic view of sperm

 

Normal Reference Values

The following tables present the original course reference values (WHO 5th Edition, 2010) alongside the updated values (WHO 6th Edition, 2021). The core parameters have not changed — some thresholds have been refined as more data became available.

WHO 5th Edition (2010)
Course Reference Values
Parameter Normal Value
Liquefaction Within 60 minutes
Viscosity Thread length < 2 cm
Volume > 2.0 mL
Sperm Count > 40 × 10&sup6; total
Sperm Concentration > 20 × 10&sup6;/mL
Motility > 50% total (A+B)
> 25% progressive (A)
Morphology ≥ 4% normal forms
pH > 7.2

Source: WHO Laboratory Manual for the Examination and Processing of Human Semen, 5th Edition, 2010. As presented in the INCIID Sperm Analysis course by Cook, Enabore & Roudebush, University of South Carolina School of Medicine Greenville.

WHO 6th Edition (2021)
Updated Reference Values
Parameter Normal Value
Liquefaction Within 60 minutes
Viscosity Thread length < 2 cm
Volume > 1.4 mL ↓
Sperm Count > 39 × 10&sup6; total
Sperm Concentration > 16 × 10&sup6;/mL ↓
Motility > 42% total
> 30% progressive ↓
Morphology ≥ 4% normal forms
pH > 7.2

Source: Chawre S, et al. “A Review of Semen Analysis: Updates From the WHO Sixth Edition Manual.” Cureus. 2024;16(6):e63485. doi: 10.7759/cureus.63485

* Values shown in red ↓ indicate parameters where the 2021 threshold was lowered from the 2010 edition.

* It is commonly accepted that a semen sample with less than 4% of sperm cells with normal morphology is likely to have decreased fertility.

* It is commonly accepted that a semen sample with less than 4% of sperm cells with normal morphology is likely to have decreased fertility.

 

What Happens If Results Are Abnormal? — Understanding IUI

If a semen analysis reveals abnormalities, one treatment option is intrauterine insemination (IUI). Intrauterine insemination is a procedure in which the male’s semen specimen is “washed” and then inserted directly into the female’s uterus just prior to ovulation, in order to improve the likelihood of conception.

The “washing” procedure effectively removes the viscous seminal fluid and subsequently enhances sperm motility. IUI is a less invasive procedure, as well as more cost effective, than in vitro fertilization (IVF).

A medical illustration demonstrating the intrauterine insemination (IUI) process within the female reproductive system. The diagram shows washed sperm placed into a syringe and catheter, which delivers sperm directly into the uterus. Multiple sperm cells are illustrated swimming upward through the uterus and along the fallopian tubes toward a waiting egg near the end of the right fallopian tube. Labels identify “washed sperm,” “injected sperm,” and “fertilized egg,” visually explaining how sperm travel toward fertilization during IUI treatment.

A Clinical Example: The Case of Mr. Simpson

To illustrate how semen analysis results are interpreted, consider this case. Mr. Simpson’s semen was found to have delayed liquefaction (greater than 1 hour) which also resulted in a high degree of viscosity — a seminal fluid thread length of over 3 cm.

He had normal morphology of sperm. His semen showed a pH of 7.5, a normal value. Most likely due to the high viscosity, his specimen had only 25% sperm motility with only 10% progressive motility. He had normal sperm count and concentration.

It was therefore assumed that due to a lack of liquefaction and high viscosity, his spermatozoa were unable to effectively reach the female egg for fertilization. The couple was recommended to have a maximum of three intrauterine insemination (IUI) procedures. After their second IUI attempt, the couple had a successful conception.

Take the Full Interactive Course

INCIID offers a complete interactive course on sperm analysis and the male reproductive system, developed by physicians and scientists at the University of South Carolina School of Medicine Greenville. The course includes visual demonstrations of the analysis process, reference value tables, and a clinical case study.

Editor’s Note — 2026 Update:

The core components of a semen analysis described in this course — liquefaction, viscosity, volume, pH, motility, morphology, and concentration — remain the foundation of male fertility evaluation and are still assessed in clinics worldwide today. However, two important developments have occurred since this course was produced.

Updated Reference Values: The WHO published its sixth edition laboratory manual in July 2021, updating some of the reference ranges used in clinical practice. Notably, the six-edition simplified sperm motility grading to two grades (A and B) from the previous four-grade system, making assessments easier to understand and more standardized. PubMed CentralJomh

Technology Advances: Many fertility clinics now use Computer-Assisted Sperm Analysis (CASA) — automated systems that use computer algorithms and imaging technology to assess sperm count, motility, and morphology with greater precision and consistency than manual microscope analysis alone. Advances in artificial intelligence are further transforming sperm analysis, with AI-enhanced CASA systems now able to detect subtle patterns not easily discernible by human observation. nihThe Kingsley Clinic

This article provides a foundational overview of what is measured and why — the parameters themselves have not changed. For information on advanced sperm tracking technology, see INCIID’s article on the STAR (Sperm Tracking and Recovery) System 

References

WHO Laboratory Manual for the Examination and Processing of Human Semen, 5th Edition. World Health Organization. Cambridge, UK: Press Syndicate of the University of Cambridge, 2010.

Course content developed by Laura E. A. Cook, M.D., Jan A. Enabore, and William E. Roudebush, Ph.D., HCLD — Department of Biomedical Sciences, University of South Carolina School of Medicine Greenville, Greenville, SC, USA. All Rights Reserved © INCIID.

INCIID thanks and appreciates the students and faculty of the University of South Carolina School of Medicine and Drs. Laura Cook and Bill Roudebush for their help and support in the education of patients.

Questions or requests? Contact INCIID

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